150 Commits
v0.19 ... main

Author SHA1 Message Date
Matias Fernandez
7607f0a4bd Fix typo in README.md 2024-03-26 20:33:06 +01:00
Krzysiek Egzmont
f2cdf1975f refactor 2024-03-17 15:43:45 +01:00
Bogdan-Ioan BRUDIU
eeee11cf1b spectrum analyzer assignable to Side button, close #478
Signed-off-by: Krzysiek Egzmont <egzumer@gmail.com>
2024-02-23 21:43:38 +01:00
egzumer
1da45d5a77 Update README.md 2024-02-21 00:16:58 +01:00
Krzysiek Egzmont
1098e8c386 Fix DTMF_auto_reset_time sanity check bug 2024-02-04 22:54:31 +01:00
losehu
ce2dd10d45 The dbMax range is more stringent
"If you want the dbMax value to always be greater than dbMin, there should be at least a '+1'."
2024-02-01 20:41:16 +01:00
Krzysiek Egzmont
a22760c0b4 Fix #434: Don't send tail tone when STE is off 2024-01-29 22:48:37 +01:00
Krzysiek Egzmont
aa92e93c56 Refactor 2024-01-29 22:42:38 +01:00
Krzysiek Egzmont
dc1808b1fe FIX #444: build error when ENABLE_DTMF_CALLING disabled 2024-01-29 16:50:58 +01:00
Krzysiek Egzmont
dff4384dbe FIX #397: Duplex off not working when UNLOCK ALL is used 2024-01-29 16:34:55 +01:00
Krzysiek Egzmont
f85ed9440d Refactor 2024-01-28 23:57:15 +01:00
Krzysiek Egzmont
604a5b430f PTTID sanity check 2024-01-28 22:07:08 +01:00
Krzysiek Egzmont
ed5ebc4854 FIX #441: Setting ENABLE_NO_CODE_SCAN_TIMEOUT at 1 or 0 has no effect 2024-01-28 21:59:20 +01:00
egzumer
c74c0d20fc README.md, recommend other forks 2024-01-22 00:03:43 +01:00
Krzysiek Egzmont
46e2d1a0fd FM radio band selection #230 2024-01-15 22:30:12 +01:00
Krzysiek Egzmont
adbc466c49 Refactor 2024-01-15 17:01:42 +01:00
Krzysiek Egzmont
f8ff71aaa3 Fix #193: DTMF interrupt temporarily disabled after TX causing DTMF tones lost 2024-01-14 00:58:40 +01:00
Krzysiek Egzmont
ea3b5b23a9 Refactor 2024-01-14 00:25:02 +01:00
Krzysiek Egzmont
8941576887 Fix #286: Lack of continuous tuning and monitor lockout while holding up/down button in monitor mode. 2024-01-13 23:35:33 +01:00
Krzysiek Egzmont
04b0bd8c93 Refactor 2024-01-13 23:30:44 +01:00
wu58430
4efabfc2b6 Prohibit entering submenus when displaying DTMF information 2024-01-12 17:51:36 +01:00
Krzysiek Egzmont
9472bbb58b Fix #384: FM radio getting stuck off on unrecognized incoming CTCSS tone 2024-01-12 15:54:36 +01:00
Krzysiek Egzmont
685ecb062b Refactor 2024-01-12 15:54:35 +01:00
Krzysiek Egzmont
3bf993d8b8 Cleanup the ENABLE_SQUELCH_MORE_SENSITIVE option, it was still applying some corrections even if disabled 2024-01-09 02:42:47 +01:00
Yuri_su
01ccaaf212 Update app.c fix DTMF not reply
If set DTMF reply only, sometimes the DTMF call will not reply.
2024-01-08 23:40:01 +01:00
Krzysiek Egzmont
ed5ae7842b Fix #366: Scan list 2 ignored everywhere 2024-01-01 20:50:21 +01:00
Krzysiek Egzmont
ac8c51d605 Fix s-meter and DTMF overlaying problem 2023-12-31 13:31:39 +01:00
Wouter van Gulik
429cffc0bc ui/menu.c: Simplify code; move name printing into main switch statement.
This saves a few bytes of flash.
2023-12-30 20:38:59 +01:00
Wouter van Gulik
fbdaf6631d menu: use const char* const 2023-12-30 20:35:11 +01:00
Krzysiek Egzmont
f8feef1ad5 Refactor 2023-12-30 20:22:55 +01:00
Krzysiek Egzmont
42a45a7ef2 Update README 2023-12-30 15:35:28 +01:00
Krzysiek Egzmont
3f012b3afe Fix uart BK regs reading/writing 2023-12-30 15:32:11 +01:00
Juan Antonio
289418f1c7 Reduce nesting 2023-12-28 22:08:57 +01:00
Juan Antonio
ea733115de init.c: Declare loop variables in the loop 2023-12-28 22:08:57 +01:00
Juan Antonio
e5cff16d98 Merge guarded code. Simplify DTMF_CheckGroupCall 2023-12-28 22:08:56 +01:00
Krzysiek Egzmont
f35ce8d789 Menu style build option ENABLE_CUSTOM_MENU_LAYOUT 2023-12-28 22:08:56 +01:00
Juan Antonio
36ecde86e9 Reduce nesting 2023-12-28 22:08:56 +01:00
Krzysiek Egzmont
8f6e1be5e0 Refactor 2023-12-28 22:08:56 +01:00
Juan Antonio
cceba5a474 Add missing UI_DisplayClear() 2023-12-26 03:01:24 +01:00
Krzysiek Egzmont
1882ab0cc1 Refactor 2023-12-26 01:40:04 +01:00
Krzysiek Egzmont
995045006f Read/write BK4819 regs through UART 2023-12-25 23:52:15 +01:00
Krzysiek Egzmont
38ec40b0db Faster AGC debugging print 2023-12-25 22:49:58 +01:00
Juan Antonio
cbf4a7c140 Use function table. Simplify logic
Size: 60364 -> 60220
2023-12-25 22:49:06 +01:00
Juan Antonio
7a7010da55 Unify PrintSmall functions
Size: 60420 -> 60364
2023-12-25 22:49:06 +01:00
Juan Antonio
78a45d9bbd Create function to zero gFrameBuffer
Size: 60464 -> 60420
2023-12-25 22:49:06 +01:00
Juan Antonio
f8ef687026 Use pointers to avoid some string copying
Size: 60664 -> 60464
2023-12-25 22:49:06 +01:00
Juan Antonio
1281bbf033 Remove redundant mensets. Memmove -> memcpy
* The whole gEeprom has been zero'd before. Moreover, strcpy null-terminates.
* There's no aliasing between gEeprom.* and Data.

Size: 60760 -> 60664
2023-12-25 22:49:06 +01:00
Juan Antonio
edf1f983d6 Ignore k5_eeprom.raw 2023-12-25 22:49:06 +01:00
Juan Antonio
b0d131d546 Fix include directives 2023-12-25 22:49:06 +01:00
Wouter van Gulik
ab61c4e74f Makefile: always provide VERSION_STRING if none set.
Without this set the compile-without-docker script did not work. They do
not have git installed.
2023-12-25 01:01:53 +01:00
Juan Antonio
986c0ce368 Fix RX not honoring Backlight on TX/RX settings properly
Fixes #317
2023-12-24 22:56:35 +01:00
Juan Antonio
e929a79765 Move variable declaration outside of guarded region
Fixes #328
2023-12-24 20:55:29 +01:00
Juan Antonio
d75209bad0 Rename str_ptr to adhere to the current style 2023-12-24 13:34:05 +01:00
Juan Antonio
ee0ba9886d Simplify DTMF_FindContact 2023-12-24 13:34:05 +01:00
Juan Antonio
084fe4dd26 Fix 1750Hz so that it can perform STE
1750Hz and CTCSS tones can be send together.
2023-12-24 13:34:05 +01:00
Juan Antonio
a715389a8b Add Doxygen configuration file and makefile target
It can be used to generate sometimes useful call-graphs.
2023-12-24 13:34:05 +01:00
Juan Antonio
6f1cabc807 Simplify gSchedulePowerSave logic
There was quite convoluted logic there, and what I believe, was a bug.

Rationale:

Both,
- gBatterySaveCountdown_10ms = battery_save_count_10ms;, and
- gSchedulePowerSave = false
are always executed inside FUNCTION_Select().

So the code is equivalent to:

if (any of those OR'd) {
	gBatterySaveCountdown_10ms = battery_save_count_10ms;
	gSchedulePowerSave = false; (but only if we have NOAA disabled)
} else {
	[other stuff from FUNCTION_Select()]
	gBatterySaveCountdown_10ms = battery_save_count_10ms;
	gSchedulePowerSave = false; (regarless of having NOAA or not)
}

So:
- OR is true, have NOAA-> don't clear gSchedulePowerSave
	-> implies we will enter here, again, until the OR is false, but only if we have NOAA.
- OR is False -> clear gSchedulePowerSave.

Moreover, checking with DualTachyon code at
6f8afac886/app/app.c (L747)
gSchedulePowerSave is always set to false if it was true.
2023-12-24 13:34:05 +01:00
Juan Antonio
a08420a0b7 Simply some logic. Unify some #ifdef regions 2023-12-24 13:34:05 +01:00
Juan Antonio
1f4f026162 Simplify APP_EndTransmission
* Unify Roger-Beep selection
 * Extract function for DTMF EoT
2023-12-24 13:34:05 +01:00
Juan Antonio
34f2168856 Spectrum warp-around when switching steps 2023-12-24 13:34:05 +01:00
Juan Antonio
bc9bb489e6 Un-unroll some loops and save a few bytes 2023-12-24 13:34:05 +01:00
Juan Antonio
7d982f1f8d Correct include guard #endif placement 2023-12-22 20:26:07 +01:00
Krzysiek Egzmont
2cc60da9ab Fix #314:Reset current bar when blacklisting in scan range 2023-12-22 20:22:39 +01:00
Krzysiek Egzmont
39eb3e835e Scan range in spectrum 2023-12-19 18:25:45 +01:00
egzumer
0d66eb8577 Update README.md 2023-12-19 17:37:24 +01:00
Krzysiek Egzmont
13b6bb06b2 Spectrum analyzer, more frequency steps 2023-12-19 03:08:18 +01:00
Krzysiek Egzmont
88f3537af0 9kHz, 20kHz, 200kHz frequency steps added #295 2023-12-18 17:12:33 +01:00
Krzysiek Egzmont
de8c501d65 S0, S9 settings even more constrained 2023-12-18 15:27:31 +01:00
egzumer
76bbaf9442 Update README.md 2023-12-18 15:23:02 +01:00
Krzysiek Egzmont
c4d9cfc895 Add AM-fix build option to EEPROM 2023-12-17 03:47:17 +01:00
Juan Antonio
2a75f8a9be Refactoring #285
Signed-off-by: Krzysiek Egzmont <egzumer@gmail.com>
2023-12-16 18:34:54 +01:00
Krzysiek Egzmont
e7a21c470f Makefile Mac build fix #284 2023-12-15 21:08:50 +01:00
Krzysiek Egzmont
fc679c77a4 Fix other backlight menu issues #275 2023-12-15 18:08:40 +01:00
Krzysiek Egzmont
1151cf8667 Backlight brightness tuned down for backlight menu entries #275 2023-12-15 16:54:18 +01:00
Krzysiek Egzmont
af6b542da1 Cleanup 2023-12-15 13:47:07 +01:00
Juan Antonio
cc49a5007c Fix #275 Backlight does not get back to MAX brightness after exiting backlight menu entries
Backlight is set to FULL when interacting with backlight menu entries,
but it is not set back to MAX when exiting from those entries. This
commit corrects that behaviour.
2023-12-15 13:00:08 +01:00
Juan Antonio
a99d2dd1b1 Fix #272: Backlight time doubled 2023-12-15 02:56:25 +01:00
Juan Antonio
9dc79ce868 Fix compilation errors when UART is disabled 2023-12-14 22:03:44 +01:00
Juan Antonio
80fa310646 Fix use of wrong ENABLE guard 2023-12-14 22:03:44 +01:00
Juan Antonio
7f5236c44e Fix compilation errors when FM radio is disabled 2023-12-14 22:03:44 +01:00
Juan Antonio
4b583bf2bd Assign NOP function when the flashlight is disabled 2023-12-14 22:03:44 +01:00
Krzysiek Egzmont
fa5d3c1594 FIX #269: battery indicator always at 4 bars 2023-12-14 15:07:33 +01:00
Juan Antonio
1a53586922 Simplify logic in radio.c 2023-12-14 11:11:06 +01:00
Juan Antonio
687b63abb6 Fix signature 2023-12-14 11:11:06 +01:00
Juan Antonio
06f1c651bc Make LogUart receive a const char* const 2023-12-14 11:11:06 +01:00
Juan Antonio
33e4e3c4e0 Make AUDIO_PlayVoice static as it is only used inside of its module 2023-12-14 11:11:06 +01:00
Krzysiek Egzmont
93b97eff0a FIX #264: compilation error 2023-12-14 11:05:46 +01:00
egzumer
8638d37431 Update README.md 2023-12-13 19:19:29 +01:00
Krzysiek Egzmont
716e9e23b8 README.md - add Github Codespace building manual 2023-12-13 19:04:29 +01:00
Juan Antonio
d0ae34f9b4 Replace memmove by memcpy 2023-12-13 16:07:07 +01:00
Juan Antonio
bd17aea72b Make SETTINGS_InitEEPROM zero struct gEeprom 2023-12-13 16:07:07 +01:00
Juan Antonio
34d688b101 Logic simplification. Replace memmove by memcpy 2023-12-13 16:07:07 +01:00
Juan Antonio
8c7f736797 Simplify come battery logic 2023-12-13 16:07:07 +01:00
Juan Antonio
a19579a888 Make makefile options settable from envars 2023-12-13 16:07:07 +01:00
Krzysiek Egzmont
00a2bc75b8 Tighter constraints for S0, S9 s-meter EEPROM settings #252 2023-12-13 13:48:18 +01:00
Krzysiek Egzmont
268c4dece3 S0 and S9 value settings #174 2023-12-12 18:51:38 +01:00
Krzysiek Egzmont
0c2fc6184c Fix #234: Bring back FM radio status indicator, show dual watch inactive while in FM radio 2023-12-12 00:52:26 +01:00
Krzysiek Egzmont
6bdce2d0e2 Refactor 2023-12-12 00:45:09 +01:00
g4eml
42a2e16e0e Update am_fix.c 2023-12-10 22:15:53 +01:00
Juan Antonio
2e69acbdc4 Fix aircopy bypassing TX restrictions & refactor
And scrapes together a few more bytes.
2023-12-09 19:07:20 +01:00
Krzysiek Egzmont
eb6a3d0867 Fix compile error 2023-12-09 16:21:11 +01:00
Krzysiek Egzmont
e22cc4ccd0 Code comments 2023-12-09 15:51:40 +01:00
Juan Antonio
a153e63be1 Add function to test if serial configuration is in progress
This was formely tested all over using testing for the state of
gSerialConfigCountDown_500ms in a couple of ways. This logic have been
extracted into a function to make the code more readable.
Also testing it with > 0 was a bit misleading as the variable is
unsigned so tesing with == and != is enough.
2023-12-09 15:50:59 +01:00
Juan Antonio
4322a7d8a9 Drop gScreenToDisplay switch and use function table
Saves some bytes
2023-12-09 15:50:59 +01:00
Juan Antonio
1203fdf0ca Use stepping instead of branching using modulus
Modulus operations are very costly and generally should be avoided.
They also take a few bytes.

This version is actually a quite faster.
2023-12-09 15:50:59 +01:00
Juan Antonio
cfc4763dd1 Scrape together a few bytes 2023-12-09 15:50:59 +01:00
Juan Antonio
b6a49db31d FM Radio: Simplify logic 2023-12-08 23:18:19 +01:00
Juan Antonio
82ddbcd375 Refactor stepFruencyTable & drop ARRAY_SIZE for frequencyBandTable 2023-12-08 23:17:33 +01:00
Juan Antonio
335c2ec9cd ACTION_Handle: Drop switch in favour of a function array 2023-12-08 01:43:12 +01:00
Juan Antonio
4249d917f8 Refactor of app/action.c
* Extracted funcionts
* Simplified logic of some functions
* Moved things arround a bit. Conditional code moved to the end
2023-12-08 01:43:12 +01:00
Juan Antonio
2164461449 Use function to check if in RX mode 2023-12-08 01:43:12 +01:00
Juan Antonio
c3906f42f8 Update .gitignore 2023-12-08 01:43:12 +01:00
Juan Antonio
d055fb0024 Reorder audio.c 2023-12-08 01:43:12 +01:00
Juan Antonio
c4ad9c6501 Unguard ACTION_OPT_BLMIN_TMP_OFF like the rest 2023-12-08 01:43:12 +01:00
Juan Antonio
4fd1ab8899 Remove redudant symbol 2023-12-08 01:43:12 +01:00
Krzysiek Egzmont
0793b68971 Write build options to EEPROM for CHIRP to use. 2023-12-07 22:51:48 +01:00
Krzysiek Egzmont
f7061c3195 FIX #206: missing 254.1Hz CTCSS code 2023-12-07 22:03:22 +01:00
Krzysiek Egzmont
5e78916dd3 AM-fix cleanup 2023-12-07 21:08:12 +01:00
Krzysiek Egzmont
13c17ad073 Fix #211: AM reception chopping 2023-12-07 20:48:36 +01:00
Krzysiek Egzmont
c697596806 FIX #194: Spectrum going crazy when AM-fix is active 2023-12-07 17:45:20 +01:00
g4eml
5c1cb4f2fc FIX #180: round frequency to half the step to support half channel offsets 2023-12-07 15:39:24 +01:00
Juan Antonio
754d2ce5fb Make Flashlight optional 2023-12-07 00:46:59 +01:00
Juan Antonio
c76a96c3ad Add enum for TR/TX mode 2023-12-07 00:46:59 +01:00
Juan Antonio
cd032c39d2 Refactor alarm code
- Fixes Alarms bypassing TX restrictions

- Adds enumerations

- Makes use of mode ALARM_STATE_SITE_ALARM (formely ALARM_STATE_ALARM) instead
  checking against ALARM_STATE_TXALARM && ALARM_MODE == ALARM_MODE_TONE
  all over the place
2023-12-07 00:46:59 +01:00
Juan Antonio
103bdf212f Use enum for Flaslight & return early 2023-12-07 00:44:51 +01:00
Juan Antonio
bafe372cbc Simplify backlight logic 2023-12-07 00:44:51 +01:00
Krzysiek Egzmont
88f7b90237 FIX #197: DWCode,UPCode display error 2023-12-07 00:33:05 +01:00
Krzysiek Egzmont
66f1f545c3 Refactor 2023-12-06 23:08:57 +01:00
Krzysiek Egzmont
e5659ad6ab Fix battery save broken in last commits 2023-12-06 20:36:15 +01:00
Krzysiek Egzmont
c1a009cc2f AM fix modification 2023-12-06 17:54:32 +01:00
Krzysiek Egzmont
e95f577074 Real AM fix attempt, messy 2023-12-05 23:14:43 +01:00
Juan Antonio
52bdd408c4 Refactor, merge #186 2023-12-05 02:01:43 +01:00
Krzysiek Egzmont
ed395ab638 FIX #185: Allow manual changing of gain values in spectrum when AM fix is active 2023-12-05 00:45:22 +01:00
Krzysiek Egzmont
86438ef3ce Improve AM-fix 2023-12-05 00:22:30 +01:00
Krzysiek Egzmont
f3297c29cb AGC debugging option 2023-12-04 22:58:27 +01:00
Krzysiek Egzmont
e039e65ee4 Refactoring 2023-12-04 22:53:59 +01:00
Krzysiek Egzmont
e2b81bf9c8 Refactoring 2023-12-03 21:46:17 +01:00
g4eml
9ca3ccd744 AM-Fix for Spectrum 2023-12-02 23:16:14 +01:00
Krzysiek Egzmont
d944ff4a34 Fix #170: ChName saves a name with wrong settings when used in frequency mode 2023-12-02 23:06:22 +01:00
Krzysiek Egzmont
cfa745fda0 Refactor 2023-12-02 22:59:36 +01:00
Krzysiek Egzmont
b505f81958 FIX #166: Switching to AM overwrites channel CTCSS/DCS (and some other) settings 2023-12-02 18:36:00 +01:00
Krzysiek Egzmont
235a1a2f14 Refactor 2023-12-02 18:04:19 +01:00
Krzysiek Egzmont
a4cefe3401 FIX #167: F7+ band accessible even if WIDE_RX = 0 2023-12-02 15:31:19 +01:00
Krzysiek Egzmont
5a2086fcd0 Improve AM-fix #160 2023-12-01 02:14:28 +01:00
Krzysiek Egzmont
c341570838 Refactor cleanup 2023-12-01 02:14:28 +01:00
Krzysiek Egzmont
292e2e7e7e Fix build error 2023-11-30 14:34:04 +01:00
Krzysiek Egzmont
44ff33613a Refactoring 2023-11-29 17:55:47 +01:00
Krzysiek Egzmont
f9e10da9ee FIX #158: Don't allow to enter DTMF input when scan range is active 2023-11-29 17:38:31 +01:00
Joe Matthews
5ad8229d7c chore: cleanup README.md a bit 2023-11-29 17:00:52 +01:00
Joe Matthews
90609ca5c5 fix: cannot compile with docker on m1 mac 2023-11-29 17:00:52 +01:00
90 changed files with 5366 additions and 5615 deletions

5
.gitignore vendored
View File

@@ -4,3 +4,8 @@ firmware
/firmware.packed.bin /firmware.packed.bin
/firmware.bin /firmware.bin
/compiled-firmware /compiled-firmware
.cache
compile_commands.json
.vscode
/docs
k5_eeprom.raw

View File

@@ -1,4 +1,4 @@
FROM archlinux:latest FROM --platform=amd64 archlinux:latest
RUN pacman -Syyu base-devel --noconfirm RUN pacman -Syyu base-devel --noconfirm
RUN pacman -Syyu arm-none-eabi-gcc --noconfirm RUN pacman -Syyu arm-none-eabi-gcc --noconfirm
RUN pacman -Syyu arm-none-eabi-newlib --noconfirm RUN pacman -Syyu arm-none-eabi-newlib --noconfirm

17
Doxyfile Normal file
View File

@@ -0,0 +1,17 @@
OUTPUT_DIRECTORY = docs
GENERATE_LATEX = NO
GENERATE_RTF = NO
GENERATE_MAN = NO
OPTIMIZE_OUTPUT_FOR_C = YES
HAVE_DOT = YES
EXTRACT_ALL = YES
EXTRACT_PRIVATE = YES
EXTRACT_STATIC = YES
CALL_GRAPH = YES
CALLER_GRAPH = YES
DISABLE_INDEX = YES
GENERATE_TREEVIEW = YES
RECURSIVE = YES
COLLABORATION_GRAPH = YES
GRAPHICAL_HIERARCHY = YES
DOT_MULTI_TARGETS = YES

155
Makefile
View File

@@ -2,44 +2,56 @@
# compile options (see README.md for descriptions) # compile options (see README.md for descriptions)
# 0 = disable # 0 = disable
# 1 = enable # 1 = enable
#
ENABLE_CLANG := 0 # ---- STOCK QUANSHENG FERATURES ----
ENABLE_SWD := 0 ENABLE_UART ?= 1
ENABLE_OVERLAY := 0 ENABLE_AIRCOPY ?= 0
ENABLE_LTO := 1 ENABLE_FMRADIO ?= 1
ENABLE_UART := 1 ENABLE_NOAA ?= 0
ENABLE_AIRCOPY := 0 ENABLE_VOICE ?= 0
ENABLE_FMRADIO := 1 ENABLE_VOX ?= 1
ENABLE_NOAA := 0 ENABLE_ALARM ?= 0
ENABLE_VOICE := 0 ENABLE_TX1750 ?= 0
ENABLE_VOX := 1 ENABLE_PWRON_PASSWORD ?= 0
ENABLE_ALARM := 0 ENABLE_DTMF_CALLING ?= 1
ENABLE_TX1750 := 0 ENABLE_FLASHLIGHT ?= 1
ENABLE_PWRON_PASSWORD := 0
ENABLE_BIG_FREQ := 1 # ---- CUSTOM MODS ----
ENABLE_SMALL_BOLD := 1 ENABLE_BIG_FREQ ?= 1
ENABLE_KEEP_MEM_NAME := 1 ENABLE_SMALL_BOLD ?= 1
ENABLE_WIDE_RX := 1 ENABLE_CUSTOM_MENU_LAYOUT ?= 1
ENABLE_TX_WHEN_AM := 0 ENABLE_KEEP_MEM_NAME ?= 1
ENABLE_F_CAL_MENU := 0 ENABLE_WIDE_RX ?= 1
ENABLE_CTCSS_TAIL_PHASE_SHIFT := 0 ENABLE_TX_WHEN_AM ?= 0
ENABLE_BOOT_BEEPS := 0 ENABLE_F_CAL_MENU ?= 0
ENABLE_SHOW_CHARGE_LEVEL := 1 ENABLE_CTCSS_TAIL_PHASE_SHIFT ?= 0
ENABLE_REVERSE_BAT_SYMBOL := 0 ENABLE_BOOT_BEEPS ?= 0
ENABLE_NO_CODE_SCAN_TIMEOUT := 1 ENABLE_SHOW_CHARGE_LEVEL ?= 0
ENABLE_AM_FIX := 1 ENABLE_REVERSE_BAT_SYMBOL ?= 0
ENABLE_AM_FIX_SHOW_DATA := 0 ENABLE_NO_CODE_SCAN_TIMEOUT ?= 1
ENABLE_SQUELCH_MORE_SENSITIVE := 1 ENABLE_AM_FIX ?= 1
ENABLE_FASTER_CHANNEL_SCAN := 1 ENABLE_SQUELCH_MORE_SENSITIVE ?= 1
ENABLE_RSSI_BAR := 1 ENABLE_FASTER_CHANNEL_SCAN ?= 1
ENABLE_AUDIO_BAR := 1 ENABLE_RSSI_BAR ?= 1
ENABLE_COPY_CHAN_TO_VFO := 1 ENABLE_AUDIO_BAR ?= 1
ENABLE_SPECTRUM := 1 ENABLE_COPY_CHAN_TO_VFO ?= 1
ENABLE_REDUCE_LOW_MID_TX_POWER:= 0 ENABLE_SPECTRUM ?= 1
ENABLE_BYP_RAW_DEMODULATORS := 0 ENABLE_REDUCE_LOW_MID_TX_POWER?= 0
ENABLE_BLMIN_TMP_OFF := 0 ENABLE_BYP_RAW_DEMODULATORS ?= 0
ENABLE_SCAN_RANGES := 1 ENABLE_BLMIN_TMP_OFF ?= 0
ENABLE_DTMF_CALLING := 1 ENABLE_SCAN_RANGES ?= 1
# ---- DEBUGGING ----
ENABLE_AM_FIX_SHOW_DATA ?= 0
ENABLE_AGC_SHOW_DATA ?= 0
ENABLE_UART_RW_BK_REGS ?= 0
# ---- COMPILER/LINKER OPTIONS ----
ENABLE_CLANG ?= 0
ENABLE_SWD ?= 0
ENABLE_OVERLAY ?= 0
ENABLE_LTO ?= 1
############################################################# #############################################################
TARGET = firmware TARGET = firmware
@@ -104,6 +116,9 @@ OBJS += app/app.o
OBJS += app/chFrScanner.o OBJS += app/chFrScanner.o
OBJS += app/common.o OBJS += app/common.o
OBJS += app/dtmf.o OBJS += app/dtmf.o
ifeq ($(ENABLE_FLASHLIGHT),1)
OBJS += app/flashlight.o
endif
ifeq ($(ENABLE_FMRADIO),1) ifeq ($(ENABLE_FMRADIO),1)
OBJS += app/fm.o OBJS += app/fm.o
endif endif
@@ -154,38 +169,30 @@ OBJS += ui/welcome.o
OBJS += version.o OBJS += version.o
OBJS += main.o OBJS += main.o
ifeq ($(OS), Windows_NT) ifeq ($(OS), Windows_NT) # windows
TOP := $(dir $(realpath $(lastword $(MAKEFILE_LIST)))) TOP := $(dir $(realpath $(lastword $(MAKEFILE_LIST))))
else
TOP := $(shell pwd)
endif
ifdef OS # windows
RM = del /Q RM = del /Q
FixPath = $(subst /,\,$1) FixPath = $(subst /,\,$1)
WHERE = where WHERE = where
NULL_OUTPUT = nul NULL_OUTPUT = nul
else # unix else # unix
ifeq ($(shell uname), Linux) TOP := $(shell pwd)
RM = rm -f RM = rm -f
FixPath = $1 FixPath = $1
WHERE = which WHERE = which
NULL_OUTPUT = /dev/null NULL_OUTPUT = /dev/null
endif
endif endif
AS = arm-none-eabi-gcc AS = arm-none-eabi-gcc
CC =
LD = arm-none-eabi-gcc LD = arm-none-eabi-gcc
ifeq ($(ENABLE_CLANG),0) ifeq ($(ENABLE_CLANG),0)
CC += arm-none-eabi-gcc CC = arm-none-eabi-gcc
# Use GCC's linker to avoid undefined symbol errors # Use GCC's linker to avoid undefined symbol errors
# LD += arm-none-eabi-gcc # LD += arm-none-eabi-gcc
else else
# May need to adjust this to match your system # May need to adjust this to match your system
CC += clang --sysroot=/usr/arm-none-eabi --target=arm-none-eabi CC = clang --sysroot=/usr/arm-none-eabi --target=arm-none-eabi
# Bloats binaries to 512MB # Bloats binaries to 512MB
# LD = ld.lld # LD = ld.lld
endif endif
@@ -193,15 +200,20 @@ endif
OBJCOPY = arm-none-eabi-objcopy OBJCOPY = arm-none-eabi-objcopy
SIZE = arm-none-eabi-size SIZE = arm-none-eabi-size
AUTHOR_STRING := EGZUMER AUTHOR_STRING ?= EGZUMER
# the user might not have/want git installed # the user might not have/want git installed
# can set own version string here (max 7 chars) # can set own version string here (max 7 chars)
ifneq (, $(shell $(WHERE) git)) ifneq (, $(shell $(WHERE) git))
VERSION_STRING := $(shell git describe --tags --exact-match 2>$(NULL_OUTPUT)) VERSION_STRING ?= $(shell git describe --tags --exact-match 2>$(NULL_OUTPUT))
ifeq (, $(VERSION_STRING)) ifeq (, $(VERSION_STRING))
VERSION_STRING := $(shell git rev-parse --short HEAD) VERSION_STRING := $(shell git rev-parse --short HEAD)
endif endif
endif endif
# If there is still no VERSION_STRING we need to make one.
# It is needed for the firmware packing script
ifeq (, $(VERSION_STRING))
VERSION_STRING := NOGIT
endif
#VERSION_STRING := 230930b #VERSION_STRING := 230930b
@@ -212,17 +224,18 @@ endif
CFLAGS = CFLAGS =
ifeq ($(ENABLE_CLANG),0) ifeq ($(ENABLE_CLANG),0)
CFLAGS += -Os -Wall -Werror -mcpu=cortex-m0 -fno-builtin -fshort-enums -fno-delete-null-pointer-checks -std=c11 -MMD CFLAGS += -Os -Wall -Werror -mcpu=cortex-m0 -fno-builtin -fshort-enums -fno-delete-null-pointer-checks -std=c2x -MMD
#CFLAGS += -Os -Wall -Werror -mcpu=cortex-m0 -fno-builtin -fshort-enums -fno-delete-null-pointer-checks -std=c11 -MMD
#CFLAGS += -Os -Wall -Werror -mcpu=cortex-m0 -fno-builtin -fshort-enums -fno-delete-null-pointer-checks -std=c99 -MMD #CFLAGS += -Os -Wall -Werror -mcpu=cortex-m0 -fno-builtin -fshort-enums -fno-delete-null-pointer-checks -std=c99 -MMD
#CFLAGS += -Os -Wall -Werror -mcpu=cortex-m0 -fno-builtin -fshort-enums -fno-delete-null-pointer-checks -std=gnu99 -MMD #CFLAGS += -Os -Wall -Werror -mcpu=cortex-m0 -fno-builtin -fshort-enums -fno-delete-null-pointer-checks -std=gnu99 -MMD
#CFLAGS += -Os -Wall -Werror -mcpu=cortex-m0 -fno-builtin -fshort-enums -fno-delete-null-pointer-checks -std=gnu11 -MMD #CFLAGS += -Os -Wall -Werror -mcpu=cortex-m0 -fno-builtin -fshort-enums -fno-delete-null-pointer-checks -std=gnu11 -MMD
else else
# Oz needed to make it fit on flash # Oz needed to make it fit on flash
CFLAGS += -Oz -Wall -Werror -mcpu=cortex-m0 -fno-builtin -fshort-enums -fno-delete-null-pointer-checks -std=c11 -MMD CFLAGS += -Oz -Wall -Werror -mcpu=cortex-m0 -fno-builtin -fshort-enums -fno-delete-null-pointer-checks -std=c2x -MMD
endif endif
ifeq ($(ENABLE_LTO),1) ifeq ($(ENABLE_LTO),1)
CFLAGS += -flto=2 CFLAGS += -flto=auto
else else
# We get most of the space savings if LTO creates problems # We get most of the space savings if LTO creates problems
CFLAGS += -ffunction-sections -fdata-sections CFLAGS += -ffunction-sections -fdata-sections
@@ -305,7 +318,7 @@ ifeq ($(ENABLE_REVERSE_BAT_SYMBOL),1)
CFLAGS += -DENABLE_REVERSE_BAT_SYMBOL CFLAGS += -DENABLE_REVERSE_BAT_SYMBOL
endif endif
ifeq ($(ENABLE_NO_CODE_SCAN_TIMEOUT),1) ifeq ($(ENABLE_NO_CODE_SCAN_TIMEOUT),1)
CFLAGS += -DENABLE_CODE_SCAN_TIMEOUT CFLAGS += -DENABLE_NO_CODE_SCAN_TIMEOUT
endif endif
ifeq ($(ENABLE_AM_FIX),1) ifeq ($(ENABLE_AM_FIX),1)
CFLAGS += -DENABLE_AM_FIX CFLAGS += -DENABLE_AM_FIX
@@ -313,9 +326,6 @@ endif
ifeq ($(ENABLE_AM_FIX_SHOW_DATA),1) ifeq ($(ENABLE_AM_FIX_SHOW_DATA),1)
CFLAGS += -DENABLE_AM_FIX_SHOW_DATA CFLAGS += -DENABLE_AM_FIX_SHOW_DATA
endif endif
ifeq ($(ENABLE_AM_FIX_TEST1),1)
CFLAGS += -DENABLE_AM_FIX_TEST1
endif
ifeq ($(ENABLE_SQUELCH_MORE_SENSITIVE),1) ifeq ($(ENABLE_SQUELCH_MORE_SENSITIVE),1)
CFLAGS += -DENABLE_SQUELCH_MORE_SENSITIVE CFLAGS += -DENABLE_SQUELCH_MORE_SENSITIVE
endif endif
@@ -355,23 +365,25 @@ endif
ifeq ($(ENABLE_DTMF_CALLING),1) ifeq ($(ENABLE_DTMF_CALLING),1)
CFLAGS += -DENABLE_DTMF_CALLING CFLAGS += -DENABLE_DTMF_CALLING
endif endif
ifeq ($(ENABLE_AGC_SHOW_DATA),1)
CFLAGS += -DENABLE_AGC_SHOW_DATA
endif
ifeq ($(ENABLE_FLASHLIGHT),1)
CFLAGS += -DENABLE_FLASHLIGHT
endif
ifeq ($(ENABLE_UART_RW_BK_REGS),1)
CFLAGS += -DENABLE_UART_RW_BK_REGS
endif
ifeq ($(ENABLE_CUSTOM_MENU_LAYOUT),1)
CFLAGS += -DENABLE_CUSTOM_MENU_LAYOUT
endif
LDFLAGS = LDFLAGS =
ifeq ($(ENABLE_CLANG),0) LDFLAGS += -z noexecstack -mcpu=cortex-m0 -nostartfiles -Wl,-T,firmware.ld -Wl,--gc-sections
LDFLAGS += -mcpu=cortex-m0 -nostartfiles -Wl,-T,firmware.ld
else
# Fix warning about implied executable stack
LDFLAGS += -z noexecstack -mcpu=cortex-m0 -nostartfiles -Wl,-T,firmware.ld
endif
# Use newlib-nano instead of newlib # Use newlib-nano instead of newlib
LDFLAGS += --specs=nano.specs LDFLAGS += --specs=nano.specs
ifeq ($(ENABLE_LTO),0)
# Throw away unneeded func/data sections like LTO does
LDFLAGS += -Wl,--gc-sections
endif
ifeq ($(DEBUG),1) ifeq ($(DEBUG),1)
ASFLAGS += -g ASFLAGS += -g
CFLAGS += -g CFLAGS += -g
@@ -442,3 +454,6 @@ bsp/dp32g030/%.h: hardware/dp32g030/%.def
clean: clean:
$(RM) $(call FixPath, $(TARGET).bin $(TARGET).packed.bin $(TARGET) $(OBJS) $(DEPS)) $(RM) $(call FixPath, $(TARGET).bin $(TARGET).packed.bin $(TARGET) $(OBJS) $(DEPS))
doxygen:
doxygen

200
README.md
View File

@@ -1,12 +1,37 @@
# Main features: # Open re-implementation of the Quansheng UV-K5/K6/5R v2.1.27 firmware
This repository is a merge of [OneOfEleven custom firmware](https://github.com/OneOfEleven/uv-k5-firmware-custom) with [fagci spectrum analizer](https://github.com/fagci/uv-k5-firmware-fagci-mod/tree/refactor) plus my few changes.<br>
All is a cloned and customized version of DualTachyon's open firmware found [here](https://github.com/DualTachyon/uv-k5-firmware) ... a cool achievement !
> [!TIP]
> There is a work done by others on forks of this repository. I encourage you to take a look at those too. [SEE HERE](https://github.com/egzumer/uv-k5-firmware-custom/discussions/485)
> [!WARNING]
> Use this firmware at your own risk (entirely). There is absolutely no guarantee that it will work in any way shape or form on your radio(s), it may even brick your radio(s), in which case, you'd need to buy another radio.
Anyway, have fun.
## Table of Contents
* [Main Features](#main-features)
* [Manual](#manual)
* [Radio Performance](#radio-performance)
* [User Customization](#user-customization)
* [Compiler](#compiler)
* [Building](#building)
* [Credits](#credits)
* [Other sources of information](#other-sources-of-information)
* [License](#license)
* [Example changes/updates](#example-changesupdates)
## Main features:
* many of OneOfEleven mods: * many of OneOfEleven mods:
* AM fix, huge improvement in reception quality * AM fix, huge improvement in reception quality
* longpress buttons functions replicating F+ action * long press buttons functions replicating F+ action
* fast scanning * fast scanning
* channel name editing in the menu * channel name editing in the menu
* channel name + frequency display option * channel name + frequency display option
* shortcut for scannlist assignment (longpress `5 NOAA`) * shortcut for scan-list assignment (long press `5 NOAA`)
* scannlist toggle (longpress `* Scan` while scanning) * scan-list toggle (long press `* Scan` while scanning)
* configurable button function selectable from menu * configurable button function selectable from menu
* battery percentage/voltage on status bar, selectable from menu * battery percentage/voltage on status bar, selectable from menu
* longer backlight times * longer backlight times
@@ -18,46 +43,22 @@
* some other mods introduced by me: * some other mods introduced by me:
* SSB demodulation (adopted from fagci) * SSB demodulation (adopted from fagci)
* backlight dimming * backlight dimming
* battery voltage callibration from menu * battery voltage calibration from menu
* better battery percentage calculation, selectable for 1600mAh or 2200mAh * better battery percentage calculation, selectable for 1600mAh or 2200mAh
* more configurable button functions * more configurable button functions
* longpress MENU as another configurable button * long press MENU as another configurable button
* better DCS/CTCSS scanning in the menu (`* SCAN` while in RX DCS/CTCSS menu item) * better DCS/CTCSS scanning in the menu (`* SCAN` while in RX DCS/CTCSS menu item)
* Piotr022 s-meter style * Piotr022 style s-meter
* restore initial freq/channel when scanning stopped with EXIT, remember last found transmission with MENU button * restore initial freq/channel when scanning stopped with EXIT, remember last found transmission with MENU button
* reordered and renamed menu entries * reordered and renamed menu entries
* LCD interference crash fix * LCD interference crash fix
* many others...
# Manual ## Manual
* [Radio operation](https://github.com/egzumer/uv-k5-firmware-custom/wiki/Radio-operation) Up to date manual is available in the [Wiki section](https://github.com/egzumer/uv-k5-firmware-custom/wiki)
* [Menu](https://github.com/egzumer/uv-k5-firmware-custom/wiki/Menu) ## Radio performance
* [Button functions](https://github.com/egzumer/uv-k5-firmware-custom/wiki/Button-functions)
* [Spectrum analyzer](https://github.com/egzumer/uv-k5-firmware-custom/wiki/Spectrum-analyzer)
* [Flashing the firmware](https://github.com/egzumer/uv-k5-firmware-custom/wiki/Flashing-the-firmware)
<img src="images/main.jpg" width=300 /><img src="images/spectrum.jpg" width=300 /><img src="images/audiobar.jpg" width=300 /><img src="images/rssibar.jpg" width=300 />
# Open reimplementation of the Quan Sheng UV-K5 v2.1.27 firmware
This repository is a merge of OneOfEleven custom firmware with fagci spectrum analizer plus my few changes.
https://github.com/OneOfEleven/uv-k5-firmware-custom<br>
https://github.com/fagci/uv-k5-firmware-fagci-mod/tree/refactor
All is a cloned and customized version of DualTachyon's open firmware found here ..
https://github.com/DualTachyon/uv-k5-firmware .. a cool achievement !
Use this firmware at your own risk (entirely). There is absolutely no guarantee that it will work in any way shape or form on your radio(s), it may even brick your radio(s), in which case, you'd need to buy another radio.
Anyway, have fun.
# Radio performance
Please note that the Quansheng UV-Kx radios are not professional quality transceivers, their Please note that the Quansheng UV-Kx radios are not professional quality transceivers, their
performance is strictly limited. The RX front end has no track-tuned band pass filtering performance is strictly limited. The RX front end has no track-tuned band pass filtering
@@ -68,57 +69,68 @@ easy (AM mode will suffer far more than FM ever will), the receiver simply doesn
great dynamic range, which results in distorted AM audio with stronger RX'ed signals. great dynamic range, which results in distorted AM audio with stronger RX'ed signals.
There is nothing more anyone can do in firmware/software to improve that, once the RX gain There is nothing more anyone can do in firmware/software to improve that, once the RX gain
adjustment I do (AM fix) reaches the hardwares limit, your AM RX audio will be all but adjustment I do (AM fix) reaches the hardwares limit, your AM RX audio will be all but
non-existant (just like Quansheng's firmware). non-existent (just like Quansheng's firmware).
On the other hand, FM RX audio will/should be fine. On the other hand, FM RX audio will/should be fine.
But, they are nice toys for the price, fun to play with. But, they are nice toys for the price, fun to play with.
# User customization ## User customization
You can customize the firmware by enabling/disabling various compile options, this allows You can customize the firmware by enabling/disabling various compile options, this allows
us to remove certain firmware features in order to make room in the flash for others. us to remove certain firmware features in order to make room in the flash for others.
You'll find the options at the top of "Makefile" ('0' = disable, '1' = enable) .. You'll find the options at the top of "Makefile" ('0' = disable, '1' = enable) ..
```
ENABLE_CLANG := 0 **experimental, builds with clang instead of gcc (LTO will be disabled if you enable this)
ENABLE_SWD := 0 only needed if using CPU's SWD port (debugging/programming)
ENABLE_OVERLAY := 0 cpu FLASH stuff, not needed
ENABLE_LTO := 0 **experimental, reduces size of compiled firmware but might break EEPROM reads (OVERLAY will be disabled if you enable this)
ENABLE_UART := 1 without this you can't configure radio via PC !
ENABLE_AIRCOPY := 0 easier to just enter frequency with butts
ENABLE_FMRADIO := 0 WBFM VHF broadcast band receiver
ENABLE_NOAA := 0 everything NOAA (only of any use in the USA)
ENABLE_VOICE := 0 want to hear voices ?
ENABLE_VOX := 0
ENABLE_ALARM := 0 TX alarms
ENABLE_1750HZ := 0 side key 1750Hz TX tone (older style repeater access)
ENABLE_PWRON_PASSWORD := 1 power-on password stuff
ENABLE_BIG_FREQ := 0 big font frequencies (like original QS firmware)
ENABLE_SMALL_BOLD := 1 bold channel name/no. (when name + freq channel display mode)
ENABLE_KEEP_MEM_NAME := 1 maintain channel name when (re)saving memory channel
ENABLE_WIDE_RX := 1 full 18MHz to 1300MHz RX (though front-end/PA not designed for full range)
ENABLE_TX_WHEN_AM := 0 allow TX (always FM) when RX is set to AM
ENABLE_F_CAL_MENU := 0 enable the radios hidden frequency calibration menu
ENABLE_CTCSS_TAIL_PHASE_SHIFT := 1 standard CTCSS tail phase shift rather than QS's own 55Hz tone method
ENABLE_BOOT_BEEPS := 0 gives user audio feedback on volume knob position at boot-up
ENABLE_SHOW_CHARGE_LEVEL := 0 show the charge level when the radio is on charge
ENABLE_REVERSE_BAT_SYMBOL := 1 mirror the battery symbol on the status bar (+ pole on the right)
ENABLE_NO_CODE_SCAN_TIMEOUT := 1 disable 32-sec CTCSS/DCS scan timeout (press exit butt instead of time-out to end scan)
ENABLE_AM_FIX := 1 dynamically adjust the front end gains when in AM mode to helo prevent AM demodulator saturation, ignore the on-screen RSSI level (for now)
ENABLE_AM_FIX_SHOW_DATA := 1 show debug data for the AM fix (still tweaking it)
ENABLE_SQUELCH_MORE_SENSITIVE := 0 make squelch levels a little bit more sensitive - I plan to let user adjust the values themselves
ENABLE_FASTER_CHANNEL_SCAN := 0 increases the channel scan speed, but the squelch is also made more twitchy
ENABLE_RSSI_BAR := 1 enable a dBm/Sn RSSI bar graph level inplace of the little antenna symbols
ENABLE_AUDIO_BAR := 0 experimental, display an audio bar level when TX'ing
ENABLE_COPY_CHAN_TO_VFO := 1 copy current channel into the other VFO. Long press `1 BAND` when in channel mode
ENABLE_SPECTRUM := 1 fagci spectrum analizer, activated with `F` + `5 NOAA`
ENABLE_REDUCE_LOW_MID_TX_POWER:= 0 makes medium and low power settings even lower
ENABLE_BYP_RAW_DEMODULATORS := 0 additional BYP (bypass?) and RAW demodulation options, prooved not to be very usefull, but it is there if you want to experiment
ENABLE_BLMIN_TMP_OFF := 0 additional function for configurable buttons that toggles `BLMin` on and off wihout saving it to the EEPROM
```
|Build option | Description |
| --- | ---- |
|🧰 **STOCK QUANSHENG FEATURES**||
| ENABLE_UART | without this you can't configure radio via PC ! |
| ENABLE_AIRCOPY | easier to just enter frequency with butts |
| ENABLE_FMRADIO | WBFM VHF broadcast band receiver |
| ENABLE_NOAA | everything NOAA (only of any use in the USA) |
| ENABLE_VOICE | want to hear voices ? |
| ENABLE_VOX | |
| ENABLE_ALARM | TX alarms |
| ENABLE_TX1750 | side key 1750Hz TX tone (older style repeater access)|
| ENABLE_PWRON_PASSWORD | power-on password stuff |
| ENABLE_DTMF_CALLING | DTMF calling fuctionality, sending calls, receiving calls, group calls, contacts list etc. |
| ENABLE_FLASHLIGHT | enable top flashlight LED (on, blink, SOS) |
|🧰 **CUSTOM MODS**||
| ENABLE_BIG_FREQ | big font frequencies (like original QS firmware) |
| ENABLE_SMALL_BOLD | bold channel name/no. (when name + freq channel display mode) |
| ENABLE_CUSTOM_MENU_LAYOUT | changes how the menu looks like |
| ENABLE_KEEP_MEM_NAME | maintain channel name when (re)saving memory channel|
| ENABLE_WIDE_RX | full 18MHz to 1300MHz RX (though front-end/PA not designed for full range)|
| ENABLE_TX_WHEN_AM | allow TX (always FM) when RX is set to AM|
| ENABLE_F_CAL_MENU | enable the radios hidden frequency calibration menu |
| ENABLE_CTCSS_TAIL_PHASE_SHIFT | standard CTCSS tail phase shift rather than QS's own 55Hz tone method|
| ENABLE_BOOT_BEEPS | gives user audio feedback on volume knob position at boot-up |
| ENABLE_SHOW_CHARGE_LEVEL | show the charge level when the radio is on charge |
| ENABLE_REVERSE_BAT_SYMBOL | mirror the battery symbol on the status bar (+ pole on the right) |
| ENABLE_NO_CODE_SCAN_TIMEOUT | disable 32-sec CTCSS/DCS scan timeout (press exit butt instead of time-out to end scan) |
| ENABLE_AM_FIX | dynamically adjust the front end gains when in AM mode to help prevent AM demodulator saturation, ignore the on-screen RSSI level (for now) |
| ENABLE_AM_FIX_SHOW_DATA | show debug data for the AM fix |
| ENABLE_SQUELCH_MORE_SENSITIVE | make squelch levels a little bit more sensitive - I plan to let user adjust the values themselves |
| ENABLE_FASTER_CHANNEL_SCAN | increases the channel scan speed, but the squelch is also made more twitchy |
| ENABLE_RSSI_BAR | enable a dBm/Sn RSSI bar graph level in place of the little antenna symbols |
| ENABLE_AUDIO_BAR | experimental, display an audio bar level when TX'ing |
| ENABLE_COPY_CHAN_TO_VFO | copy current channel settings into frequency mode. Long press `1 BAND` when in channel mode |
| ENABLE_SPECTRUM | fagci spectrum analyzer, activated with `F` + `5 NOAA`|
| ENABLE_REDUCE_LOW_MID_TX_POWER | makes medium and low power settings even lower |
| ENABLE_BYP_RAW_DEMODULATORS | additional BYP (bypass?) and RAW demodulation options, proved not to be very useful, but it is there if you want to experiment |
| ENABLE_BLMIN_TMP_OFF | additional function for configurable buttons that toggles `BLMin` on and off wihout saving it to the EEPROM |
| ENABLE_SCAN_RANGES | scan range mode for frequency scanning, see wiki for instructions (radio operation -> frequency scanning) |
|🧰 **DEBUGGING** ||
| ENABLE_AM_FIX_SHOW_DATA| displays settings used by AM-fix when AM transmission is received |
| ENABLE_AGC_SHOW_DATA | displays AGC settings |
| ENABLE_UART_RW_BK_REGS | adds 2 extra commands that allow to read and write BK4819 registers |
|🧰 **COMPILER/LINKER OPTIONS**||
| ENABLE_CLANG | **experimental, builds with clang instead of gcc (LTO will be disabled if you enable this) |
| ENABLE_SWD | only needed if using CPU's SWD port (debugging/programming) |
| ENABLE_OVERLAY | cpu FLASH stuff, not needed |
| ENABLE_LTO | reduces size of compiled firmware but might break EEPROM reads (OVERLAY will be disabled if you enable this) |
# Compiler ## Compiler
arm-none-eabi GCC version 10.3.1 is recommended, which is the current version on Ubuntu 22.04.03 LTS. arm-none-eabi GCC version 10.3.1 is recommended, which is the current version on Ubuntu 22.04.03 LTS.
Other versions may generate a flash file that is too big. Other versions may generate a flash file that is too big.
@@ -127,12 +139,33 @@ You can get an appropriate version from: https://developer.arm.com/downloads/-/g
clang may be used but isn't fully supported. Resulting binaries may also be bigger. clang may be used but isn't fully supported. Resulting binaries may also be bigger.
You can get it from: https://releases.llvm.org/download.html You can get it from: https://releases.llvm.org/download.html
# Building ## Building
If you have docker installed you can use `compile-with-docker.bat`, the output files are created in `compiled-firmware` folder. This method gives significantly smaller binaries, I've seen differences up to 1kb, so it can fit more functionalities this way. The challange can be (or not) installing the docker itself. ### Github Codespace build method
This is the least demanding option as you don't have to install enything on your computer. All you need is Github account.
To compile directly in windows: 1. Go to https://github.com/egzumer/uv-k5-firmware-custom
1. Click green `Code` button
1. Change tab from `Local` to `Codespace`
1. Click green `Create codespace on main` button
<img src="images/codespace1.png" width=700 />
5. Open `Makefile`
1. Edit build options, save `Makefile` changes
1. Run `./compile-with-docker.sh` in terminal window
1. Open folder `compiled-firmware`
1. Right click `firmware.packed.bin`
1. Click `Download`, now you should have a firmware on your computer that you can proceed to flash on your radio. You can use [online flasher](https://egzumer.github.io/uvtools)
<img src="images/codespace2.png" width=700 />
### Docker build method
If you have docker installed you can use [compile-with-docker.bat](./compile-with-docker.bat) (Windows) or [compile-with-docker.sh](./compile-with-docker.sh) (Linux/Mac), the output files are created in `compiled-firmware` folder. This method gives significantly smaller binaries, I've seen differences up to 1kb, so it can fit more functionalities this way. The challenge can be (or not) installing docker itself.
### Windows environment build method
1. Open windows command line and run: 1. Open windows command line and run:
``` ```
@@ -159,7 +192,7 @@ To compile directly in windows:
I've left some notes in the win_make.bat file to maybe help with stuff. I've left some notes in the win_make.bat file to maybe help with stuff.
# Credits ## Credits
Many thanks to various people on Telegram for putting up with me during this effort and helping: Many thanks to various people on Telegram for putting up with me during this effort and helping:
@@ -177,7 +210,12 @@ Many thanks to various people on Telegram for putting up with me during this eff
* @d1ced95 * @d1ced95
* and others I forget * and others I forget
# License ## Other sources of information
[ludwich66 - Quansheng UV-K5 Wiki](https://github.com/ludwich66/Quansheng_UV-K5_Wiki/wiki)<br>
[amnemonic - tools and sources of information](https://github.com/amnemonic/Quansheng_UV-K5_Firmware)
## License
Copyright 2023 Dual Tachyon Copyright 2023 Dual Tachyon
https://github.com/DualTachyon https://github.com/DualTachyon
@@ -194,7 +232,7 @@ You may obtain a copy of the License at
See the License for the specific language governing permissions and See the License for the specific language governing permissions and
limitations under the License. limitations under the License.
# Example changes/updates ## Example changes/updates
<p float="left"> <p float="left">
<img src="/images/image1.png" width=300 /> <img src="/images/image1.png" width=300 />

580
am_fix.c
View File

@@ -29,319 +29,263 @@
#include "frequencies.h" #include "frequencies.h"
#include "functions.h" #include "functions.h"
#include "misc.h" #include "misc.h"
#include "settings.h"
#ifdef ENABLE_AGC_SHOW_DATA
#include "ui/main.h"
#endif
#ifdef ENABLE_AM_FIX #ifdef ENABLE_AM_FIX
typedef struct typedef struct
{ {
uint16_t reg_val; uint16_t reg_val;
int8_t gain_dB; int8_t gain_dB;
} __attribute__((packed)) t_gain_table; } __attribute__((packed)) t_gain_table;
// REG_10 AGC gain table // REG_10 AGC gain table
// //
// <15:10> ??? // <15:10> ???
// //
// <9:8> = LNA Gain Short // <9:8> = LNA Gain Short
// 3 = 0dB < original value // 3 = 0dB < original value
// 2 = -24dB // was -11 // 2 = -19dB // was -11
// 1 = -30dB // was -16 // 1 = -24dB // was -16
// 0 = -33dB // was -19 // 0 = -28dB // was -19
// //
// <7:5> = LNA Gain // <7:5> = LNA Gain
// 7 = 0dB // 7 = 0dB
// 6 = -2dB // 6 = -2dB
// 5 = -4dB < original value // 5 = -4dB < original value
// 4 = -6dB // 4 = -6dB
// 3 = -9dB // 3 = -9dB
// 2 = -14dB // 2 = -14dB
// 1 = -19dB // 1 = -19dB
// 0 = -24dB // 0 = -24dB
// //
// <4:3> = MIXER Gain // <4:3> = MIXER Gain
// 3 = 0dB < original value // 3 = 0dB < original value
// 2 = -3dB // 2 = -3dB
// 1 = -6dB // 1 = -6dB
// 0 = -8dB // 0 = -8dB
// //
// <2:0> = PGA Gain // <2:0> = PGA Gain
// 7 = 0dB // 7 = 0dB
// 6 = -3dB < original value // 6 = -3dB < original value
// 5 = -6dB // 5 = -6dB
// 4 = -9dB // 4 = -9dB
// 3 = -15dB // 3 = -15dB
// 2 = -21dB // 2 = -21dB
// 1 = -27dB // 1 = -27dB
// 0 = -33dB // 0 = -33dB
// front end register dB values // front end register dB values
// //
// these values need to be accurate for the code to properly/reliably switch // these values need to be accurate for the code to properly/reliably switch
// between table entries when adjusting the front end registers. // between table entries when adjusting the front end registers.
// //
// these 4 tables need a measuring/calibration update // these 4 tables need a measuring/calibration update
// //
//
// QUESTION: why do I have to surround the negative numbers in brackets ???
// if I don't add the brackets, reading the table returns unexpected/different values !!!
//
//
//// static const int16_t lna_short_dB[] = { -19, -16, -11, 0}; // was (but wrong) //// static const int16_t lna_short_dB[] = { -19, -16, -11, 0}; // was (but wrong)
// static const int16_t lna_short_dB[] = { (-33), (-30), (-24), 0}; // corrected'ish // static const int16_t lna_short_dB[] = { (-28), (-24), (-19), 0}; // corrected'ish
// static const int16_t lna_dB[] = { (-24), (-19), (-14), ( -9), (-6), (-4), (-2), 0}; // static const int16_t lna_dB[] = { (-24), (-19), (-14), ( -9), (-6), (-4), (-2), 0};
// static const int16_t mixer_dB[] = { ( -8), ( -6), ( -3), 0}; // static const int16_t mixer_dB[] = { ( -8), ( -6), ( -3), 0};
// static const int16_t pga_dB[] = { (-33), (-27), (-21), (-15), (-9), (-6), (-3), 0}; // static const int16_t pga_dB[] = { (-33), (-27), (-21), (-15), (-9), (-6), (-3), 0};
// lookup table is hugely easier than writing code to do the same // lookup table is hugely easier than writing code to do the same
// //
static const t_gain_table gain_table[] =
{
{0x035E, -17}, // 0 .. 3 2 3 6 .. 0dB -14dB 0dB -3dB .. -17dB original
#ifdef ENABLE_AM_FIX_TEST1 #define LOOKUP_TABLE 1
// test table that lets me manually set the lna-short register #if LOOKUP_TABLE
// to measure it's actual dB change using an RF signal generator static const t_gain_table gain_table[] =
{
{0x03BE, -7}, // 0 .. 3 5 3 6 .. 0dB -4dB 0dB -3dB .. -7dB original
{0x005E, -50}, // 1 .. 0 2 3 6 .. -33dB -14dB 0dB -3dB .. -50dB {0x0000,-93}, // 1 .. 0 0 0 0 .. -28dB -24dB -8dB -33dB .. -93dB
{0x015E, -47}, // 2 .. 1 2 3 6 .. -30dB -14dB 0dB -3dB .. -47dB {0x0008,-91}, // 2 .. 0 0 1 0 .. -28dB -24dB -6dB -33dB .. -91dB
{0x025E, -41}, // 3 .. 2 2 3 6 .. -24dB -14dB 0dB -3dB .. -41dB {0x0010,-88}, // 3 .. 0 0 2 0 .. -28dB -24dB -3dB -33dB .. -88dB
{0x035E, -17} // 4 .. 3 2 3 6 .. 0dB -14dB 0dB -3dB .. -17dB original {0x0001,-87}, // 4 .. 0 0 0 1 .. -28dB -24dB -8dB -27dB .. -87dB
}; {0x0009,-85}, // 5 .. 0 0 1 1 .. -28dB -24dB -6dB -27dB .. -85dB
{0x0011,-82}, // 6 .. 0 0 2 1 .. -28dB -24dB -3dB -27dB .. -82dB
static const unsigned int original_index = 1; {0x0002,-81}, // 7 .. 0 0 0 2 .. -28dB -24dB -8dB -21dB .. -81dB
{0x000A,-79}, // 8 .. 0 0 1 2 .. -28dB -24dB -6dB -21dB .. -79dB
{0x0012,-76}, // 9 .. 0 0 2 2 .. -28dB -24dB -3dB -21dB .. -76dB
{0x0003,-75}, // 10 .. 0 0 0 3 .. -28dB -24dB -8dB -15dB .. -75dB
{0x000B,-73}, // 11 .. 0 0 1 3 .. -28dB -24dB -6dB -15dB .. -73dB
{0x0013,-70}, // 12 .. 0 0 2 3 .. -28dB -24dB -3dB -15dB .. -70dB
{0x0004,-69}, // 13 .. 0 0 0 4 .. -28dB -24dB -8dB -9dB .. -69dB
{0x000C,-67}, // 14 .. 0 0 1 4 .. -28dB -24dB -6dB -9dB .. -67dB
{0x000D,-64}, // 15 .. 0 0 1 5 .. -28dB -24dB -6dB -6dB .. -64dB
{0x001C,-61}, // 16 .. 0 0 3 4 .. -28dB -24dB 0dB - 9dB .. -61dB
{0x001D,-58}, // 17 .. 0 0 3 5 .. -28dB -24dB 0dB -6dB .. -58dB
{0x001E,-55}, // 18 .. 0 0 3 6 .. -28dB -24dB 0dB -3dB .. -55dB
{0x001F,-52}, // 19 .. 0 0 3 7 .. -28dB -24dB 0dB 0dB .. -52dB
{0x003E,-50}, // 20 .. 0 1 3 6 .. -28dB -19dB 0dB -3dB .. -50dB
{0x003F,-47}, // 21 .. 0 1 3 7 .. -28dB -19dB 0dB 0dB .. -47dB
{0x005E,-45}, // 22 .. 0 2 3 6 .. -28dB -14dB 0dB -3dB .. -45dB
{0x005F,-42}, // 23 .. 0 2 3 7 .. -28dB -14dB 0dB 0dB .. -42dB
{0x007E,-40}, // 24 .. 0 3 3 6 .. -28dB -9dB 0dB -3dB .. -40dB
{0x007F,-37}, // 25 .. 0 3 3 7 .. -28dB -9dB 0dB 0dB .. -37dB
{0x009F,-34}, // 26 .. 0 4 3 7 .. -28dB -6dB 0dB 0dB .. -34dB
{0x00BF,-32}, // 27 .. 0 5 3 7 .. -28dB -4dB 0dB 0dB .. -32dB
{0x00DF,-30}, // 28 .. 0 6 3 7 .. -28dB -2dB 0dB 0dB .. -30dB
{0x00FF,-28}, // 29 .. 0 7 3 7 .. -28dB 0dB 0dB 0dB .. -28dB
{0x01DF,-26}, // 30 .. 1 6 3 7 .. -24dB -2dB 0dB 0dB .. -26dB
{0x01FF,-24}, // 31 .. 1 7 3 7 .. -24dB 0dB 0dB 0dB .. -24dB
{0x02BF,-23}, // 32 .. 2 5 3 7 .. -19dB -4dB 0dB 0dB .. -23dB
{0x02DF,-21}, // 33 .. 2 6 3 7 .. -19dB -2dB 0dB -0dB .. -21dB
{0x02FF,-19}, // 34 .. 2 7 3 7 .. -19dB 0dB 0dB 0dB .. -19dB
{0x035E,-17}, // 35 .. 3 2 3 6 .. 0dB -14dB 0dB -3dB .. -17dB
{0x035F,-14}, // 36 .. 3 2 3 7 .. 0dB -14dB 0dB 0dB .. -14dB
{0x037E,-12}, // 37 .. 3 3 3 6 .. 0dB -9dB 0dB -3dB .. -12dB
{0x037F,-9}, // 38 .. 3 3 3 7 .. 0dB -9dB 0dB 0dB .. -9dB
{0x038F,-6}, // 39 .. 3 4 3 7 .. 0dB - 6dB 0dB 0dB .. -6dB
{0x03BF,-4}, // 40 .. 3 5 3 7 .. 0dB -4dB 0dB 0dB .. -4dB
{0x03DF,-2}, // 41 .. 3 6 3 7 .. 0dB - 2dB 0dB 0dB .. -2dB
{0x03FF,0} // 42 .. 3 7 3 7 .. 0dB 0dB 0dB 0dB .. 0dB
};
const uint8_t gain_table_size = ARRAY_SIZE(gain_table);
#else #else
{0x0000, -98}, // 1 .. 0 0 0 0 .. -33dB -24dB -8dB -33dB .. -98dB t_gain_table gain_table[100] = {{0x03BE, -7}}; //original
{0x0008, -96}, // 2 .. 0 0 1 0 .. -33dB -24dB -6dB -33dB .. -96dB uint8_t gain_table_size = 0;
{0x0100, -95}, // 3 .. 1 0 0 0 .. -30dB -24dB -8dB -33dB .. -95dB
{0x0020, -93}, // 4 .. 0 1 0 0 .. -33dB -19dB -8dB -33dB .. -93dB void CreateTable()
{0x0001, -92}, // 5 .. 0 0 0 1 .. -33dB -24dB -8dB -27dB .. -92dB {
{0x0028, -91}, // 6 .. 0 1 1 0 .. -33dB -19dB -6dB -33dB .. -91dB typedef union {
{0x0009, -90}, // 7 .. 0 0 1 1 .. -33dB -24dB -6dB -27dB .. -90dB struct {
{0x0101, -89}, // 8 .. 1 0 0 1 .. -30dB -24dB -8dB -27dB .. -89dB uint8_t pgaIdx:3;
{0x0030, -88}, // 9 .. 0 1 2 0 .. -33dB -19dB -3dB -33dB .. -88dB uint8_t mixerIdx:2;
{0x0118, -87}, // 10 .. 1 0 3 0 .. -30dB -24dB 0dB -33dB .. -87dB uint8_t lnaIdx:3;
{0x0002, -86}, // 11 .. 0 0 0 2 .. -33dB -24dB -8dB -21dB .. -86dB uint8_t lnaSIdx:2;
{0x0130, -85}, // 12 .. 1 1 2 0 .. -30dB -19dB -3dB -33dB .. -85dB
{0x0019, -84}, // 13 .. 0 0 3 1 .. -33dB -24dB 0dB -27dB .. -84dB
{0x0060, -83}, // 14 .. 0 3 0 0 .. -33dB -9dB -8dB -33dB .. -83dB
{0x0138, -82}, // 15 .. 1 1 3 0 .. -30dB -19dB 0dB -33dB .. -82dB
{0x0119, -81}, // 16 .. 1 0 3 1 .. -30dB -24dB 0dB -27dB .. -81dB
{0x0058, -80}, // 17 .. 0 2 3 0 .. -33dB -14dB 0dB -33dB .. -80dB
{0x0141, -79}, // 18 .. 1 2 0 1 .. -30dB -14dB -8dB -27dB .. -79dB
{0x0070, -78}, // 19 .. 0 3 2 0 .. -33dB -9dB -3dB -33dB .. -78dB
{0x0180, -77}, // 20 .. 1 4 0 0 .. -30dB -6dB -8dB -33dB .. -77dB
{0x0139, -76}, // 21 .. 1 1 3 1 .. -30dB -19dB 0dB -27dB .. -76dB
{0x0013, -75}, // 22 .. 0 0 2 3 .. -33dB -24dB -3dB -15dB .. -75dB
{0x0161, -74}, // 23 .. 1 3 0 1 .. -30dB -9dB -8dB -27dB .. -74dB
{0x01C0, -73}, // 24 .. 1 6 0 0 .. -30dB -2dB -8dB -33dB .. -73dB
{0x00E8, -72}, // 25 .. 0 7 1 0 .. -33dB 0dB -6dB -33dB .. -72dB
{0x00D0, -71}, // 26 .. 0 6 2 0 .. -33dB -2dB -3dB -33dB .. -71dB
{0x0239, -70}, // 27 .. 2 1 3 1 .. -24dB -19dB 0dB -27dB .. -70dB
{0x006A, -69}, // 28 .. 0 3 1 2 .. -33dB -9dB -6dB -21dB .. -69dB
{0x0006, -68}, // 29 .. 0 0 0 6 .. -33dB -24dB -8dB -3dB .. -68dB
{0x00B1, -67}, // 30 .. 0 5 2 1 .. -33dB -4dB -3dB -27dB .. -67dB
{0x000E, -66}, // 31 .. 0 0 1 6 .. -33dB -24dB -6dB -3dB .. -66dB
{0x015A, -65}, // 32 .. 1 2 3 2 .. -30dB -14dB 0dB -21dB .. -65dB
{0x022B, -64}, // 33 .. 2 1 1 3 .. -24dB -19dB -6dB -15dB .. -64dB
{0x01F8, -63}, // 34 .. 1 7 3 0 .. -30dB 0dB 0dB -33dB .. -63dB
{0x0163, -62}, // 35 .. 1 3 0 3 .. -30dB -9dB -8dB -15dB .. -62dB
{0x0035, -61}, // 36 .. 0 1 2 5 .. -33dB -19dB -3dB -6dB .. -61dB
{0x0214, -60}, // 37 .. 2 0 2 4 .. -24dB -24dB -3dB -9dB .. -60dB
{0x01D9, -59}, // 38 .. 1 6 3 1 .. -30dB -2dB 0dB -27dB .. -59dB
{0x0145, -58}, // 39 .. 1 2 0 5 .. -30dB -14dB -8dB -6dB .. -58dB
{0x02A2, -57}, // 40 .. 2 5 0 2 .. -24dB -4dB -8dB -21dB .. -57dB
{0x02D1, -56}, // 41 .. 2 6 2 1 .. -24dB -2dB -3dB -27dB .. -56dB
{0x00B3, -55}, // 42 .. 0 5 2 3 .. -33dB -4dB -3dB -15dB .. -55dB
{0x0216, -54}, // 43 .. 2 0 2 6 .. -24dB -24dB -3dB -3dB .. -54dB
{0x0066, -53}, // 44 .. 0 3 0 6 .. -33dB -9dB -8dB -3dB .. -53dB
{0x00C4, -52}, // 45 .. 0 6 0 4 .. -33dB -2dB -8dB -9dB .. -52dB
{0x006E, -51}, // 46 .. 0 3 1 6 .. -33dB -9dB -6dB -3dB .. -51dB
{0x015D, -50}, // 47 .. 1 2 3 5 .. -30dB -14dB 0dB -6dB .. -50dB
{0x00AD, -49}, // 48 .. 0 5 1 5 .. -33dB -4dB -6dB -6dB .. -49dB
{0x007D, -48}, // 49 .. 0 3 3 5 .. -33dB -9dB 0dB -6dB .. -48dB
{0x00D4, -47}, // 50 .. 0 6 2 4 .. -33dB -2dB -3dB -9dB .. -47dB
{0x01B4, -46}, // 51 .. 1 5 2 4 .. -30dB -4dB -3dB -9dB .. -46dB
{0x030B, -45}, // 52 .. 3 0 1 3 .. 0dB -24dB -6dB -15dB .. -45dB
{0x00CE, -44}, // 53 .. 0 6 1 6 .. -33dB -2dB -6dB -3dB .. -44dB
{0x01B5, -43}, // 54 .. 1 5 2 5 .. -30dB -4dB -3dB -6dB .. -43dB
{0x0097, -42}, // 55 .. 0 4 2 7 .. -33dB -6dB -3dB 0dB .. -42dB
{0x0257, -41}, // 56 .. 2 2 2 7 .. -24dB -14dB -3dB 0dB .. -41dB
{0x02B4, -40}, // 57 .. 2 5 2 4 .. -24dB -4dB -3dB -9dB .. -40dB
{0x027D, -39}, // 58 .. 2 3 3 5 .. -24dB -9dB 0dB -6dB .. -39dB
{0x01DD, -38}, // 59 .. 1 6 3 5 .. -30dB -2dB 0dB -6dB .. -38dB
{0x02AE, -37}, // 60 .. 2 5 1 6 .. -24dB -4dB -6dB -3dB .. -37dB
{0x0379, -36}, // 61 .. 3 3 3 1 .. 0dB -9dB 0dB -27dB .. -36dB
{0x035A, -35}, // 62 .. 3 2 3 2 .. 0dB -14dB 0dB -21dB .. -35dB
{0x02B6, -34}, // 63 .. 2 5 2 6 .. -24dB -4dB -3dB -3dB .. -34dB
{0x030E, -33}, // 64 .. 3 0 1 6 .. 0dB -24dB -6dB -3dB .. -33dB
{0x0307, -32}, // 65 .. 3 0 0 7 .. 0dB -24dB -8dB 0dB .. -32dB
{0x02BE, -31}, // 66 .. 2 5 3 6 .. -24dB -4dB 0dB -3dB .. -31dB
{0x037A, -30}, // 67 .. 3 3 3 2 .. 0dB -9dB 0dB -21dB .. -30dB
{0x02DE, -29}, // 68 .. 2 6 3 6 .. -24dB -2dB 0dB -3dB .. -29dB
{0x0345, -28}, // 69 .. 3 2 0 5 .. 0dB -14dB -8dB -6dB .. -28dB
{0x03A3, -27}, // 70 .. 3 5 0 3 .. 0dB -4dB -8dB -15dB .. -27dB
{0x0364, -26}, // 71 .. 3 3 0 4 .. 0dB -9dB -8dB -9dB .. -26dB
{0x032F, -25}, // 72 .. 3 1 1 7 .. 0dB -19dB -6dB 0dB .. -25dB
{0x0393, -24}, // 73 .. 3 4 2 3 .. 0dB -6dB -3dB -15dB .. -24dB
{0x0384, -23}, // 74 .. 3 4 0 4 .. 0dB -6dB -8dB -9dB .. -23dB
{0x0347, -22}, // 75 .. 3 2 0 7 .. 0dB -14dB -8dB 0dB .. -22dB
{0x03EB, -21}, // 76 .. 3 7 1 3 .. 0dB 0dB -6dB -15dB .. -21dB
{0x03D3, -20}, // 77 .. 3 6 2 3 .. 0dB -2dB -3dB -15dB .. -20dB
{0x03BB, -19}, // 78 .. 3 5 3 3 .. 0dB -4dB 0dB -15dB .. -19dB
{0x037C, -18}, // 79 .. 3 3 3 4 .. 0dB -9dB 0dB -9dB .. -18dB
{0x03CC, -17}, // 80 .. 3 6 1 4 .. 0dB -2dB -6dB -9dB .. -17dB
{0x03C5, -16}, // 81 .. 3 6 0 5 .. 0dB -2dB -8dB -6dB .. -16dB
{0x03EC, -15}, // 82 .. 3 7 1 4 .. 0dB 0dB -6dB -9dB .. -15dB
{0x035F, -14}, // 83 .. 3 2 3 7 .. 0dB -14dB 0dB 0dB .. -14dB
{0x03BC, -13}, // 84 .. 3 5 3 4 .. 0dB -4dB 0dB -9dB .. -13dB
{0x038F, -12}, // 85 .. 3 4 1 7 .. 0dB -6dB -6dB 0dB .. -12dB
{0x03E6, -11}, // 86 .. 3 7 0 6 .. 0dB 0dB -8dB -3dB .. -11dB
{0x03AF, -10}, // 87 .. 3 5 1 7 .. 0dB -4dB -6dB 0dB .. -10dB
{0x03F5, -9 }, // 88 .. 3 7 2 5 .. 0dB 0dB -3dB -6dB .. -9dB
{0x03D6, -8 }, // 89 .. 3 6 2 6 .. 0dB -2dB -3dB -3dB .. -8dB
{0x03BE, -7 }, // 90 .. 3 5 3 6 .. 0dB -4dB 0dB -3dB .. -7dB original
{0x03F6, -6 }, // 91 .. 3 7 2 6 .. 0dB 0dB -3dB -3dB .. -6dB
{0x03DE, -5 }, // 92 .. 3 6 3 6 .. 0dB -2dB 0dB -3dB .. -5dB
{0x03BF, -4 }, // 93 .. 3 5 3 7 .. 0dB -4dB 0dB 0dB .. -4dB
{0x03F7, -3 }, // 94 .. 3 7 2 7 .. 0dB 0dB -3dB 0dB .. -3dB
{0x03DF, -2 }, // 95 .. 3 6 3 7 .. 0dB -2dB 0dB 0dB .. -2dB
{0x03FF, 0 }, // 96 .. 3 7 3 7 .. 0dB 0dB 0dB 0dB .. 0dB
}; };
uint16_t __raw;
} GainData;
static const unsigned int original_index = 90; static const int8_t lna_short_dB[] = {-28, -24, -19, 0}; // corrected'ish
static const int8_t lna_dB[] = {-24, -19, -14, -9, -6, -4, -2, 0};
static const int8_t mixer_dB[] = { -8, -6, -3, 0};
static const int8_t pga_dB[] = {-33, -27, -21, -15, -9, -6, -3, 0};
unsigned i;
for (uint8_t lnaSIdx = 0; lnaSIdx < ARRAY_SIZE(lna_short_dB); lnaSIdx++) {
for (uint8_t lnaIdx = 0; lnaIdx < ARRAY_SIZE(lna_dB); lnaIdx++) {
for (uint8_t mixerIdx = 0; mixerIdx < ARRAY_SIZE(mixer_dB); mixerIdx++) {
for (uint8_t pgaIdx = 0; pgaIdx < ARRAY_SIZE(pga_dB); pgaIdx++) {
int16_t db = lna_short_dB[lnaSIdx] + lna_dB[lnaIdx] + mixer_dB[mixerIdx] + pga_dB[pgaIdx];
GainData gainData = {{
pgaIdx,
mixerIdx,
lnaIdx,
lnaSIdx,
}};
for (i = 1; i < ARRAY_SIZE(gain_table); i++) {
t_gain_table * gain = &gain_table[i];
if (db == gain->gain_dB)
break;
if (db > gain->gain_dB)
continue;
if (db < gain->gain_dB) {
if(gain->gain_dB)
memmove(gain + 1, gain, 100 - i);
gain->gain_dB = db;
gain->reg_val = gainData.__raw;
break;
}
gain->gain_dB = db;
gain->reg_val = gainData.__raw;
break;
}
}
}
}
}
gain_table_size = i+1;
}
#endif #endif
#ifdef ENABLE_AM_FIX_SHOW_DATA
#ifdef ENABLE_AM_FIX_SHOW_DATA
// display update rate // display update rate
static const unsigned int display_update_rate = 250 / 10; // max 250ms display update rate static const unsigned int display_update_rate = 250 / 10; // max 250ms display update rate
unsigned int counter = 0; unsigned int counter = 0;
#endif #endif
#ifdef ENABLE_AM_FIX_TEST1 unsigned int gain_table_index[2] = {0, 0};
// user manually sets the table index .. used to calibrate the desired dB gain table // used simply to detect a changed gain setting
unsigned int gain_table_index[2] = {1 + gSetting_AM_fix_test1, 1 + gSetting_AM_fix_test1}; unsigned int gain_table_index_prev[2] = {0, 0};
#else // holds the previous RSSI level .. we do an average of old + new RSSI reading
unsigned int gain_table_index[2] = {original_index, original_index}; int16_t prev_rssi[2] = {0, 0};
#endif // to help reduce gain hunting, peak hold count down tick
unsigned int hold_counter[2] = {0, 0};
// -89dBm, any higher and the AM demodulator starts to saturate/clip/distort
const int16_t desired_rssi = (-89 + 160) * 2;
// used simply to detect a changed gain setting int8_t currentGainDiff;
unsigned int gain_table_index_prev[2] = {0, 0}; bool enabled = true;
// holds the previous RSSI level .. we do an average of old + new RSSI reading void AM_fix_init(void)
int16_t prev_rssi[2] = {0, 0}; { // called at boot-up
for (int i = 0; i < 2; i++) {
// to help reduce gain hunting, peak hold count down tick gain_table_index[i] = 0; // re-start with original QS setting
unsigned int hold_counter[2] = {0, 0};
// used to correct the RSSI readings after our RF gain adjustments
int16_t rssi_gain_diff[2] = {0, 0};
// used to limit the max RF gain
unsigned int max_index = ARRAY_SIZE(gain_table) - 1;
#ifndef ENABLE_AM_FIX_TEST1
// -89dBm, any higher and the AM demodulator starts to saturate/clip/distort
const int16_t desired_rssi = (-89 + 160) * 2;
#endif
void AM_fix_init(void)
{ // called at boot-up
unsigned int i;
for (i = 0; i < 2; i++)
{
#ifdef ENABLE_AM_FIX_TEST1
gain_table_index[i] = 1 + gSetting_AM_fix_test1;
#else
gain_table_index[i] = original_index; // re-start with original QS setting
#endif
} }
#if !LOOKUP_TABLE
CreateTable();
#endif
}
#if 0 void AM_fix_reset(const unsigned vfo)
{ // set a maximum gain to use { // reset the AM fixer upper
// const int16_t max_gain_dB = gain_dB[original_index]; if (vfo > 1)
const int16_t max_gain_dB = -10; return;
max_index = ARRAY_SIZE(gain_table);
while (--max_index > 1)
// if (gain_dB[max_index] <= max_gain_dB)
if (gain_table[max_index].gain_dB <= max_gain_dB)
break;
}
#else
// use the full range of available gains
max_index = ARRAY_SIZE(gain_table) - 1;
#endif
}
void AM_fix_reset(const int vfo)
{ // reset the AM fixer upper
#ifdef ENABLE_AM_FIX_SHOW_DATA #ifdef ENABLE_AM_FIX_SHOW_DATA
counter = 0; counter = 0;
#endif #endif
prev_rssi[vfo] = 0; prev_rssi[vfo] = 0;
hold_counter[vfo] = 0; hold_counter[vfo] = 0;
rssi_gain_diff[vfo] = 0;
#ifdef ENABLE_AM_FIX_TEST1
// gain_table_index[vfo] = 1 + gSetting_AM_fix_test1;
#else
// gain_table_index[vfo] = original_index; // re-start with original QS setting
#endif
gain_table_index_prev[vfo] = 0; gain_table_index_prev[vfo] = 0;
} }
// adjust the RX gain to try and prevent the AM demodulator from // adjust the RX gain to try and prevent the AM demodulator from
// saturating/overloading/clipping (distorted AM audio) // saturating/overloading/clipping (distorted AM audio)
// //
// we're actually doing the BK4819's job for it here, but as the chip // we're actually doing the BK4819's job for it here, but as the chip
// won't/don't do it for itself, we're left to bodging it ourself by // won't/don't do it for itself, we're left to bodging it ourself by
// playing with the RF front end gain setting // playing with the RF front end gain setting
// //
void AM_fix_10ms(const int vfo) void AM_fix_10ms(const unsigned vfo)
{ {
int16_t diff_dB; if(!gSetting_AM_fix || !enabled || vfo > 1 )
int16_t rssi;
switch (gCurrentFunction)
{
case FUNCTION_TRANSMIT:
case FUNCTION_BAND_SCOPE:
case FUNCTION_POWER_SAVE:
#ifdef ENABLE_AM_FIX_SHOW_DATA
counter = display_update_rate; // queue up a display update as soon as we switch to RX mode
#endif
return; return;
// only adjust stuff if we're in one of these modes if (gCurrentFunction != FUNCTION_FOREGROUND && !FUNCTION_IsRx()) {
case FUNCTION_FOREGROUND: #ifdef ENABLE_AM_FIX_SHOW_DATA
case FUNCTION_RECEIVE: counter = display_update_rate; // queue up a display update as soon as we switch to RX mode
case FUNCTION_MONITOR: #endif
case FUNCTION_INCOMING: return;
break;
} }
#ifdef ENABLE_AM_FIX_SHOW_DATA #ifdef ENABLE_AM_FIX_SHOW_DATA
if (counter > 0) if (counter > 0) {
{ if (++counter >= display_update_rate) { // trigger a display update
if (++counter >= display_update_rate)
{ // trigger a display update
counter = 0; counter = 0;
gUpdateDisplay = true; gUpdateDisplay = true;
} }
} }
#endif #endif
static uint32_t lastFreq[2];
if(gEeprom.VfoInfo[vfo].pRX->Frequency != lastFreq[vfo]) {
lastFreq[vfo] = gEeprom.VfoInfo[vfo].pRX->Frequency;
AM_fix_reset(vfo);
}
int16_t rssi;
{ // sample the current RSSI level { // sample the current RSSI level
// average it with the previous rssi (a bit of noise/spike immunity) // average it with the previous rssi (a bit of noise/spike immunity)
const int16_t new_rssi = BK4819_GetRSSI(); const int16_t new_rssi = BK4819_GetRSSI();
@@ -349,39 +293,21 @@
prev_rssi[vfo] = new_rssi; prev_rssi[vfo] = new_rssi;
} }
// save the corrected RSSI level #ifdef ENABLE_AM_FIX_SHOW_DATA
#ifdef ENABLE_AM_FIX_SHOW_DATA
{ {
const int16_t new_rssi = rssi - rssi_gain_diff[vfo]; static int16_t lastRssi;
if (gCurrentRSSI[vfo] != new_rssi)
{
gCurrentRSSI[vfo] = new_rssi;
if (counter == 0) if (lastRssi != rssi) { // rssi changed
{ // trigger a display update lastRssi = rssi;
if (counter == 0) {
counter = 1; counter = 1;
gUpdateDisplay = true; gUpdateDisplay = true; // trigger a display update
} }
} }
} }
#else #endif
gCurrentRSSI[vfo] = rssi - rssi_gain_diff[vfo];
#endif
#ifdef ENABLE_AM_FIX_TEST1
// user is manually adjusting a gain register - don't do anything automatically
{
int i = 1 + (int)gSetting_AM_fix_test1;
i = (i < 1) ? 1 : (i > ((int)ARRAY_SIZE(gain_table) - 1) ? ARRAY_SIZE(gain_table) - 1 : i;
if (gain_table_index[vfo] == i)
return; // no change
gain_table_index[vfo] = i;
}
#else
// automatically adjust the RF RX gain // automatically adjust the RF RX gain
// update the gain hold counter // update the gain hold counter
@@ -389,15 +315,12 @@
hold_counter[vfo]--; hold_counter[vfo]--;
// dB difference between actual and desired RSSI level // dB difference between actual and desired RSSI level
diff_dB = (rssi - desired_rssi) / 2; int16_t diff_dB = (rssi - desired_rssi) / 2;
if (diff_dB > 0)
{ // decrease gain
if (diff_dB > 0) { // decrease gain
unsigned int index = gain_table_index[vfo]; // current position we're at unsigned int index = gain_table_index[vfo]; // current position we're at
if (diff_dB >= 10) if (diff_dB >= 10) { // jump immediately to a new gain setting
{ // jump immediately to a new gain setting
// this greatly speeds up initial gain reduction (but reduces noise/spike immunity) // this greatly speeds up initial gain reduction (but reduces noise/spike immunity)
const int16_t desired_gain_dB = (int16_t)gain_table[index].gain_dB - diff_dB + 8; // get no closer than 8dB (bit of noise/spike immunity) const int16_t desired_gain_dB = (int16_t)gain_table[index].gain_dB - diff_dB + 8; // get no closer than 8dB (bit of noise/spike immunity)
@@ -406,20 +329,14 @@
while (index > 1) while (index > 1)
if (gain_table[--index].gain_dB <= desired_gain_dB) if (gain_table[--index].gain_dB <= desired_gain_dB)
break; break;
//index = (gain_table_index[vfo] + index) / 2; // easy does it
} }
else else
{ // incrementally reduce the gain .. taking it slow improves noise/spike immunity { // incrementally reduce the gain .. taking it slow improves noise/spike immunity
// if (index >= (1 + 3) && diff_dB >= 3)
// index -= 3; // faster gain reduction
// else
if (index > 1) if (index > 1)
index--; // slow step-by-step gain reduction index--; // slow step-by-step gain reduction
} }
index = (index < 1) ? 1 : (index > max_index) ? max_index : index; index = MAX(1u, index);
if (gain_table_index[vfo] != index) if (gain_table_index[vfo] != index)
{ {
@@ -434,56 +351,47 @@
if (hold_counter[vfo] == 0) if (hold_counter[vfo] == 0)
{ // hold has been released, we're free to increase gain { // hold has been released, we're free to increase gain
const unsigned int index = gain_table_index[vfo] + 1; // move up to next gain index const unsigned int index = gain_table_index[vfo] + 1; // move up to next gain index
gain_table_index[vfo] = (index <= max_index) ? index : max_index; // limit the gain index gain_table_index[vfo] = MIN(index, gain_table_size - 1u);
} }
#if 0
if (gain_table_index[vfo] == gain_table_index_prev[vfo])
return; // no gain change - this is to reduce writing to the BK chip on ever call
#endif
#endif
{ // apply the new settings to the front end registers { // apply the new settings to the front end registers
const unsigned int index = gain_table_index[vfo]; const unsigned int index = gain_table_index[vfo];
// remember the new table index // remember the new table index
gain_table_index_prev[vfo] = index; gain_table_index_prev[vfo] = index;
currentGainDiff = gain_table[0].gain_dB - gain_table[index].gain_dB;
BK4819_WriteRegister(BK4819_REG_13, gain_table[index].reg_val); BK4819_WriteRegister(BK4819_REG_13, gain_table[index].reg_val);
#ifdef ENABLE_AGC_SHOW_DATA
// offset the RSSI reading to the rest of the firmware to cancel out the gain adjustments we make UI_MAIN_PrintAGC(true);
#endif
// RF gain difference from original QS setting
rssi_gain_diff[vfo] = ((int16_t)gain_table[index].gain_dB - gain_table[original_index].gain_dB) * 2;
} }
// save the corrected RSSI level #ifdef ENABLE_AM_FIX_SHOW_DATA
gCurrentRSSI[vfo] = rssi - rssi_gain_diff[vfo]; if (counter == 0) {
#ifdef ENABLE_AM_FIX_SHOW_DATA
if (counter == 0)
{
counter = 1; counter = 1;
gUpdateDisplay = true; gUpdateDisplay = true;
} }
#endif #endif
} }
#ifdef ENABLE_AM_FIX_SHOW_DATA #ifdef ENABLE_AM_FIX_SHOW_DATA
void AM_fix_print_data(const unsigned vfo, char *s) {
void AM_fix_print_data(const int vfo, char *s) if (s != NULL && vfo < ARRAY_SIZE(gain_table_index)) {
{
if (s != NULL && vfo >= 0 && vfo < (int)ARRAY_SIZE(gain_table_index))
{
const unsigned int index = gain_table_index[vfo]; const unsigned int index = gain_table_index[vfo];
// sprintf(s, "%2u.%u %4ddB %3u", index, ARRAY_SIZE(gain_table) - 1, gain_table[index].gain_dB, prev_rssi[vfo]);
sprintf(s, "%2u %4ddB %3u", index, gain_table[index].gain_dB, prev_rssi[vfo]); sprintf(s, "%2u %4ddB %3u", index, gain_table[index].gain_dB, prev_rssi[vfo]);
counter = 0; counter = 0;
} }
} }
#endif
#endif
int8_t AM_fix_get_gain_diff()
{
return currentGainDiff;
}
void AM_fix_enable(bool on)
{
enabled = on;
}
#endif #endif

View File

@@ -21,14 +21,14 @@
#include <stdbool.h> #include <stdbool.h>
#ifdef ENABLE_AM_FIX #ifdef ENABLE_AM_FIX
extern int16_t rssi_gain_diff[2];
void AM_fix_init(void); void AM_fix_init(void);
void AM_fix_reset(const int vfo); void AM_fix_reset(const unsigned vfo);
void AM_fix_10ms(const int vfo); void AM_fix_10ms(const unsigned vfo);
#ifdef ENABLE_AM_FIX_SHOW_DATA #ifdef ENABLE_AM_FIX_SHOW_DATA
void AM_fix_print_data(const int vfo, char *s); void AM_fix_print_data(const unsigned vfo, char *s);
#endif #endif
int8_t AM_fix_get_gain_diff();
void AM_fix_enable(bool on);
#endif #endif

View File

@@ -14,6 +14,7 @@
* limitations under the License. * limitations under the License.
*/ */
#include <assert.h>
#include <string.h> #include <string.h>
#include "app/action.h" #include "app/action.h"
@@ -21,6 +22,9 @@
#include "app/chFrScanner.h" #include "app/chFrScanner.h"
#include "app/common.h" #include "app/common.h"
#include "app/dtmf.h" #include "app/dtmf.h"
#ifdef ENABLE_FLASHLIGHT
#include "app/flashlight.h"
#endif
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
#include "app/fm.h" #include "app/fm.h"
#endif #endif
@@ -39,23 +43,76 @@
#include "ui/inputbox.h" #include "ui/inputbox.h"
#include "ui/ui.h" #include "ui/ui.h"
static void ACTION_FlashLight(void) #if defined(ENABLE_FMRADIO)
{ static void ACTION_Scan_FM(bool bRestart);
switch (gFlashLightState) #endif
{
case 0: #if defined(ENABLE_ALARM) || defined(ENABLE_TX1750)
gFlashLightState++; static void ACTION_AlarmOr1750(bool b1750);
GPIO_SetBit(&GPIOC->DATA, GPIOC_PIN_FLASHLIGHT); inline static void ACTION_Alarm() { ACTION_AlarmOr1750(false); }
break; inline static void ACTION_1750() { ACTION_AlarmOr1750(true); };
case 1: #endif
case 2:
gFlashLightState++; #ifdef ENABLE_SPECTRUM
break; #include "app/spectrum.h"
default: #endif
gFlashLightState = 0;
GPIO_ClearBit(&GPIOC->DATA, GPIOC_PIN_FLASHLIGHT); inline static void ACTION_ScanRestart() { ACTION_Scan(true); };
}
} void (*action_opt_table[])(void) = {
[ACTION_OPT_NONE] = &FUNCTION_NOP,
[ACTION_OPT_POWER] = &ACTION_Power,
[ACTION_OPT_MONITOR] = &ACTION_Monitor,
[ACTION_OPT_SCAN] = &ACTION_ScanRestart,
[ACTION_OPT_KEYLOCK] = &COMMON_KeypadLockToggle,
[ACTION_OPT_A_B] = &COMMON_SwitchVFOs,
[ACTION_OPT_VFO_MR] = &COMMON_SwitchVFOMode,
[ACTION_OPT_SWITCH_DEMODUL] = &ACTION_SwitchDemodul,
#ifdef ENABLE_FLASHLIGHT
[ACTION_OPT_FLASHLIGHT] = &ACTION_FlashLight,
#else
[ACTION_OPT_FLASHLIGHT] = &FUNCTION_NOP,
#endif
#ifdef ENABLE_VOX
[ACTION_OPT_VOX] = &ACTION_Vox,
#else
[ACTION_OPT_VOX] = &FUNCTION_NOP,
#endif
#ifdef ENABLE_FMRADIO
[ACTION_OPT_FM] = &ACTION_FM,
#else
[ACTION_OPT_FM] = &FUNCTION_NOP,
#endif
#ifdef ENABLE_ALARM
[ACTION_OPT_ALARM] = &ACTION_Alarm,
#else
[ACTION_OPT_ALARM] = &FUNCTION_NOP,
#endif
#ifdef ENABLE_TX1750
[ACTION_OPT_1750] = &ACTION_1750,
#else
[ACTION_OPT_1750] = &FUNCTION_NOP,
#endif
#ifdef ENABLE_BLMIN_TMP_OFF
[ACTION_OPT_BLMIN_TMP_OFF] = &ACTION_BlminTmpOff,
#else
[ACTION_OPT_BLMIN_TMP_OFF] = &FUNCTION_NOP,
#endif
#ifdef ENABLE_SPECTRUM
[ACTION_OPT_SPECTRUM] = &APP_RunSpectrum,
#else
[ACTION_OPT_SPECTRUM] = &FUNCTION_NOP,
#endif
};
static_assert(ARRAY_SIZE(action_opt_table) == ACTION_OPT_LEN);
void ACTION_Power(void) void ACTION_Power(void)
{ {
@@ -64,11 +121,12 @@ void ACTION_Power(void)
gRequestSaveChannel = 1; gRequestSaveChannel = 1;
gRequestDisplayScreen = gScreenToDisplay;
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_POWER; gAnotherVoiceID = VOICE_ID_POWER;
#endif #endif
gRequestDisplayScreen = gScreenToDisplay;
} }
void ACTION_Monitor(void) void ACTION_Monitor(void)
@@ -76,11 +134,11 @@ void ACTION_Monitor(void)
if (gCurrentFunction != FUNCTION_MONITOR) { // enable the monitor if (gCurrentFunction != FUNCTION_MONITOR) { // enable the monitor
RADIO_SelectVfos(); RADIO_SelectVfos();
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
if (gRxVfo->CHANNEL_SAVE >= NOAA_CHANNEL_FIRST && gIsNoaaMode) if (IS_NOAA_CHANNEL(gRxVfo->CHANNEL_SAVE) && gIsNoaaMode)
gNoaaChannel = gRxVfo->CHANNEL_SAVE - NOAA_CHANNEL_FIRST; gNoaaChannel = gRxVfo->CHANNEL_SAVE - NOAA_CHANNEL_FIRST;
#endif #endif
RADIO_SetupRegisters(true); RADIO_SetupRegisters(true);
APP_StartListening(FUNCTION_MONITOR, false); APP_StartListening(FUNCTION_MONITOR);
return; return;
} }
@@ -114,57 +172,19 @@ void ACTION_Monitor(void)
void ACTION_Scan(bool bRestart) void ACTION_Scan(bool bRestart)
{ {
(void)bRestart; (void)bRestart;
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
if (gFmRadioMode) if (gFmRadioMode) {
{ ACTION_Scan_FM(bRestart);
if (gCurrentFunction != FUNCTION_RECEIVE &&
gCurrentFunction != FUNCTION_MONITOR &&
gCurrentFunction != FUNCTION_TRANSMIT)
{
GUI_SelectNextDisplay(DISPLAY_FM);
gMonitor = false;
if (gFM_ScanState != FM_SCAN_OFF)
{
FM_PlayAndUpdate();
#ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_SCANNING_STOP;
#endif
}
else
{
uint16_t Frequency;
if (bRestart)
{
gFM_AutoScan = true;
gFM_ChannelPosition = 0;
FM_EraseChannels();
Frequency = gEeprom.FM_LowerLimit;
}
else
{
gFM_AutoScan = false;
gFM_ChannelPosition = 0;
Frequency = gEeprom.FM_FrequencyPlaying;
}
BK1080_GetFrequencyDeviation(Frequency);
FM_Tune(Frequency, 1, bRestart);
#ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_SCANNING_BEGIN;
#endif
}
}
return; return;
} }
#endif #endif
if (!SCANNER_IsScanning()) if (SCANNER_IsScanning()) {
{ // not scanning return;
}
// not scanning
gMonitor = false; gMonitor = false;
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
@@ -176,183 +196,95 @@ void ACTION_Scan(bool bRestart)
RADIO_SelectVfos(); RADIO_SelectVfos();
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
if (!IS_NOAA_CHANNEL(gRxVfo->CHANNEL_SAVE)) if (IS_NOAA_CHANNEL(gRxVfo->CHANNEL_SAVE)) {
return;
}
#endif #endif
{
GUI_SelectNextDisplay(DISPLAY_MAIN); GUI_SelectNextDisplay(DISPLAY_MAIN);
if (gScanStateDir != SCAN_OFF) if (gScanStateDir != SCAN_OFF) {
{ // already scanning // already scanning
if (IS_MR_CHANNEL(gNextMrChannel)) if (!IS_MR_CHANNEL(gNextMrChannel)) {
{ // channel mode CHFRSCANNER_Stop();
#ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_SCANNING_STOP;
#endif
return;
}
// keep scanning but toggle between scan lists // channel mode. Keep scanning but toggle between scan lists
gEeprom.SCAN_LIST_DEFAULT = (gEeprom.SCAN_LIST_DEFAULT + 1) % 3; gEeprom.SCAN_LIST_DEFAULT = (gEeprom.SCAN_LIST_DEFAULT + 1) % 3;
// jump to the next channel // jump to the next channel
CHFRSCANNER_Start(false, gScanStateDir); CHFRSCANNER_Start(false, gScanStateDir);
gScanPauseDelayIn_10ms = 1; gScanPauseDelayIn_10ms = 1;
gScheduleScanListen = false; gScheduleScanListen = false;
} else {
gUpdateStatus = true; // start scanning
}
else
{ // stop scanning
CHFRSCANNER_Stop();
#ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_SCANNING_STOP;
#endif
}
}
else
{ // start scanning
CHFRSCANNER_Start(true, SCAN_FWD); CHFRSCANNER_Start(true, SCAN_FWD);
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
AUDIO_SetVoiceID(0, VOICE_ID_SCANNING_BEGIN); AUDIO_SetVoiceID(0, VOICE_ID_SCANNING_BEGIN);
AUDIO_PlaySingleVoice(true); AUDIO_PlaySingleVoice(true);
#endif #endif
// clear the other vfo's rssi level (to hide the antenna symbol) // clear the other vfo's rssi level (to hide the antenna symbol)
gVFO_RSSI_bar_level[(gEeprom.RX_VFO + 1) & 1u] = 0; gVFO_RSSI_bar_level[(gEeprom.RX_VFO + 1) & 1U] = 0;
// let the user see DW is not active // let the user see DW is not active
gDualWatchActive = false; gDualWatchActive = false;
}
gUpdateStatus = true; gUpdateStatus = true;
}
}
}
} }
#ifdef ENABLE_VOX
void ACTION_Vox(void)
{
gEeprom.VOX_SWITCH = !gEeprom.VOX_SWITCH;
gRequestSaveSettings = true;
gFlagReconfigureVfos = true;
#ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_VOX;
#endif
gUpdateStatus = true;
}
#endif
#if defined(ENABLE_ALARM) || defined(ENABLE_TX1750)
static void ACTION_AlarmOr1750(const bool b1750)
{
(void)b1750;
gInputBoxIndex = 0;
#if defined(ENABLE_ALARM) && defined(ENABLE_TX1750)
gAlarmState = b1750 ? ALARM_STATE_TX1750 : ALARM_STATE_TXALARM;
gAlarmRunningCounter = 0;
#elif defined(ENABLE_ALARM)
gAlarmState = ALARM_STATE_TXALARM;
gAlarmRunningCounter = 0;
#else
gAlarmState = ALARM_STATE_TX1750;
#endif
gFlagPrepareTX = true;
if (gScreenToDisplay != DISPLAY_MENU) // 1of11 .. don't close the menu
gRequestDisplayScreen = DISPLAY_MAIN;
}
#endif
#ifdef ENABLE_FMRADIO
void ACTION_FM(void)
{
if (gCurrentFunction != FUNCTION_TRANSMIT && gCurrentFunction != FUNCTION_MONITOR)
{
if (gFmRadioMode)
{
FM_TurnOff();
gInputBoxIndex = 0;
#ifdef ENABLE_VOX
gVoxResumeCountdown = 80;
#endif
gFlagReconfigureVfos = true;
gRequestDisplayScreen = DISPLAY_MAIN;
return;
}
gMonitor = false;
RADIO_SelectVfos();
RADIO_SetupRegisters(true);
FM_Start();
gInputBoxIndex = 0;
gRequestDisplayScreen = DISPLAY_FM;
}
}
#endif
void ACTION_SwitchDemodul(void) void ACTION_SwitchDemodul(void)
{ {
gRequestSaveChannel = 1;
gTxVfo->Modulation++; gTxVfo->Modulation++;
if(gTxVfo->Modulation == MODULATION_UKNOWN) if(gTxVfo->Modulation == MODULATION_UKNOWN)
gTxVfo->Modulation = MODULATION_FM; gTxVfo->Modulation = MODULATION_FM;
gRequestSaveChannel = 1;
} }
#ifdef ENABLE_BLMIN_TMP_OFF
void ACTION_BlminTmpOff(void)
{
if(++gEeprom.BACKLIGHT_MIN_STAT == BLMIN_STAT_UNKNOWN)
{
gEeprom.BACKLIGHT_MIN_STAT = BLMIN_STAT_ON;
BACKLIGHT_SetBrightness(gEeprom.BACKLIGHT_MIN);
} else
{
BACKLIGHT_SetBrightness(0);
}
}
#endif
void ACTION_Handle(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld) void ACTION_Handle(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
{ {
if (gScreenToDisplay == DISPLAY_MAIN && gDTMF_InputMode) // entering DTMF code if (gScreenToDisplay == DISPLAY_MAIN && gDTMF_InputMode){
{ // entering DTMF code
if (Key == KEY_SIDE1 && !bKeyHeld && bKeyPressed) // side1 btn pressed
{ gPttWasReleased = true;
if (Key != KEY_SIDE1 || bKeyHeld || !bKeyPressed){
return;
}
// side1 btn pressed
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
gRequestDisplayScreen = DISPLAY_MAIN;
if (gDTMF_InputBox_Index > 0) // DTMF codes are in the input box if (gDTMF_InputBox_Index <= 0) {
{ // turn off DTMF input box if no codes left
gDTMF_InputMode = false;
return;
}
// DTMF codes are in the input box
gDTMF_InputBox[--gDTMF_InputBox_Index] = '-'; // delete one code gDTMF_InputBox[--gDTMF_InputBox_Index] = '-'; // delete one code
if (gDTMF_InputBox_Index > 0)
{
gPttWasReleased = true;
gRequestDisplayScreen = DISPLAY_MAIN;
return;
}
}
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_CANCEL; gAnotherVoiceID = VOICE_ID_CANCEL;
#endif #endif
gRequestDisplayScreen = DISPLAY_MAIN;
gDTMF_InputMode = false; // turn off DTMF input box if no codes left
}
gPttWasReleased = true;
return; return;
} }
uint8_t funcShort = ACTION_OPT_NONE; enum ACTION_OPT_t funcShort = ACTION_OPT_NONE;
uint8_t funcLong = ACTION_OPT_NONE; enum ACTION_OPT_t funcLong = ACTION_OPT_NONE;
switch(Key) { switch(Key) {
case KEY_SIDE1: case KEY_SIDE1:
funcShort = gEeprom.KEY_1_SHORT_PRESS_ACTION; funcShort = gEeprom.KEY_1_SHORT_PRESS_ACTION;
@@ -389,59 +321,133 @@ void ACTION_Handle(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
// held or released after short press beyond this point // held or released after short press beyond this point
switch (funcShort) action_opt_table[funcShort]();
{ }
default:
case ACTION_OPT_NONE:
break;
case ACTION_OPT_FLASHLIGHT:
ACTION_FlashLight();
break;
case ACTION_OPT_POWER:
ACTION_Power();
break;
case ACTION_OPT_MONITOR:
ACTION_Monitor();
break;
case ACTION_OPT_SCAN:
ACTION_Scan(true);
break;
case ACTION_OPT_VOX:
#ifdef ENABLE_VOX
ACTION_Vox();
#endif
break;
case ACTION_OPT_ALARM:
#ifdef ENABLE_ALARM
ACTION_AlarmOr1750(false);
#endif
break;
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
case ACTION_OPT_FM: void ACTION_FM(void)
ACTION_FM(); {
break; if (gCurrentFunction != FUNCTION_TRANSMIT && gCurrentFunction != FUNCTION_MONITOR)
#endif {
case ACTION_OPT_1750: gInputBoxIndex = 0;
#ifdef ENABLE_TX1750
ACTION_AlarmOr1750(true); if (gFmRadioMode) {
#endif FM_TurnOff();
break; gFlagReconfigureVfos = true;
case ACTION_OPT_KEYLOCK: gRequestDisplayScreen = DISPLAY_MAIN;
COMMON_KeypadLockToggle();
break; #ifdef ENABLE_VOX
case ACTION_OPT_A_B: gVoxResumeCountdown = 80;
COMMON_SwitchVFOs();
break;
case ACTION_OPT_VFO_MR:
COMMON_SwitchVFOMode();
break;
case ACTION_OPT_SWITCH_DEMODUL:
ACTION_SwitchDemodul();
break;
#ifdef ENABLE_BLMIN_TMP_OFF
case ACTION_OPT_BLMIN_TMP_OFF:
ACTION_BlminTmpOff();
break;
#endif #endif
return;
}
gMonitor = false;
RADIO_SelectVfos();
RADIO_SetupRegisters(true);
FM_Start();
gRequestDisplayScreen = DISPLAY_FM;
} }
} }
static void ACTION_Scan_FM(bool bRestart)
{
if (FUNCTION_IsRx())
return;
GUI_SelectNextDisplay(DISPLAY_FM);
gMonitor = false;
if (gFM_ScanState != FM_SCAN_OFF) {
FM_PlayAndUpdate();
#ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_SCANNING_STOP;
#endif
return;
}
uint16_t freq;
if (bRestart) {
gFM_AutoScan = true;
gFM_ChannelPosition = 0;
FM_EraseChannels();
freq = BK1080_GetFreqLoLimit(gEeprom.FM_Band);
} else {
gFM_AutoScan = false;
gFM_ChannelPosition = 0;
freq = gEeprom.FM_FrequencyPlaying;
}
BK1080_GetFrequencyDeviation(freq);
FM_Tune(freq, 1, bRestart);
#ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_SCANNING_BEGIN;
#endif
}
#endif
#if defined(ENABLE_ALARM) || defined(ENABLE_TX1750)
static void ACTION_AlarmOr1750(const bool b1750)
{
#if defined(ENABLE_ALARM)
const AlarmState_t alarm_mode = (gEeprom.ALARM_MODE == ALARM_MODE_TONE) ? ALARM_STATE_TXALARM : ALARM_STATE_SITE_ALARM;
gAlarmRunningCounter = 0;
#endif
#if defined(ENABLE_ALARM) && defined(ENABLE_TX1750)
gAlarmState = b1750 ? ALARM_STATE_TX1750 : alarm_mode;
#elif defined(ENABLE_ALARM)
gAlarmState = alarm_mode;
#else
gAlarmState = ALARM_STATE_TX1750;
#endif
(void)b1750;
gInputBoxIndex = 0;
gFlagPrepareTX = gAlarmState != ALARM_STATE_OFF;
if (gScreenToDisplay != DISPLAY_MENU) // 1of11 .. don't close the menu
gRequestDisplayScreen = DISPLAY_MAIN;
}
#endif
#ifdef ENABLE_VOX
void ACTION_Vox(void)
{
gEeprom.VOX_SWITCH = !gEeprom.VOX_SWITCH;
gRequestSaveSettings = true;
gFlagReconfigureVfos = true;
gUpdateStatus = true;
#ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_VOX;
#endif
}
#endif
#ifdef ENABLE_BLMIN_TMP_OFF
void ACTION_BlminTmpOff(void)
{
if(++gEeprom.BACKLIGHT_MIN_STAT == BLMIN_STAT_UNKNOWN) {
gEeprom.BACKLIGHT_MIN_STAT = BLMIN_STAT_ON;
BACKLIGHT_SetBrightness(gEeprom.BACKLIGHT_MIN);
} else {
BACKLIGHT_SetBrightness(0);
}
}
#endif

View File

@@ -19,16 +19,13 @@
#include "driver/keyboard.h" #include "driver/keyboard.h"
//static void ACTION_FlashLight(void)
void ACTION_Power(void); void ACTION_Power(void);
void ACTION_Monitor(void); void ACTION_Monitor(void);
void ACTION_Scan(bool bRestart); void ACTION_Scan(bool bRestart);
#ifdef ENABLE_VOX #ifdef ENABLE_VOX
void ACTION_Vox(void); void ACTION_Vox(void);
#endif #endif
#ifdef ENABLE_ALARM
//static void ACTION_AlarmOr1750(bool b1750)
#endif
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
void ACTION_FM(void); void ACTION_FM(void);
#endif #endif
@@ -41,4 +38,3 @@ void ACTION_BlminTmpOff(void);
void ACTION_Handle(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld); void ACTION_Handle(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld);
#endif #endif

View File

@@ -28,7 +28,7 @@
#include "ui/inputbox.h" #include "ui/inputbox.h"
#include "ui/ui.h" #include "ui/ui.h"
static const uint16_t Obfuscation[8] = {0x6C16, 0xE614, 0x912E, 0x400D, 0x3521, 0x40D5, 0x0313, 0x80E9}; static const uint16_t Obfuscation[8] = { 0x6C16, 0xE614, 0x912E, 0x400D, 0x3521, 0x40D5, 0x0313, 0x80E9 };
AIRCOPY_State_t gAircopyState; AIRCOPY_State_t gAircopyState;
uint16_t gAirCopyBlockNumber; uint16_t gAirCopyBlockNumber;
@@ -37,9 +37,17 @@ uint8_t gAirCopyIsSendMode;
uint16_t g_FSK_Buffer[36]; uint16_t g_FSK_Buffer[36];
void AIRCOPY_SendMessage(void) bool AIRCOPY_SendMessage(void)
{ {
unsigned int i; static uint8_t gAircopySendCountdown = 1;
if (gAircopyState != AIRCOPY_TRANSFER) {
return 1;
}
if (--gAircopySendCountdown) {
return 1;
}
g_FSK_Buffer[1] = (gAirCopyBlockNumber & 0x3FF) << 6; g_FSK_Buffer[1] = (gAirCopyBlockNumber & 0x3FF) << 6;
@@ -47,11 +55,13 @@ void AIRCOPY_SendMessage(void)
g_FSK_Buffer[34] = CRC_Calculate(&g_FSK_Buffer[1], 2 + 64); g_FSK_Buffer[34] = CRC_Calculate(&g_FSK_Buffer[1], 2 + 64);
for (i = 0; i < 34; i++) for (unsigned int i = 0; i < 34; i++) {
g_FSK_Buffer[i + 1] ^= Obfuscation[i % 8]; g_FSK_Buffer[i + 1] ^= Obfuscation[i % 8];
}
if (++gAirCopyBlockNumber >= 0x78) if (++gAirCopyBlockNumber >= 0x78) {
gAircopyState = AIRCOPY_COMPLETE; gAircopyState = AIRCOPY_COMPLETE;
}
RADIO_SetTxParameters(); RADIO_SetTxParameters();
@@ -60,88 +70,94 @@ void AIRCOPY_SendMessage(void)
BK4819_ToggleGpioOut(BK4819_GPIO1_PIN29_PA_ENABLE, false); BK4819_ToggleGpioOut(BK4819_GPIO1_PIN29_PA_ENABLE, false);
gAircopySendCountdown = 30; gAircopySendCountdown = 30;
return 0;
} }
void AIRCOPY_StorePacket(void) void AIRCOPY_StorePacket(void)
{ {
uint16_t Status; if (gFSKWriteIndex < 36) {
if (gFSKWriteIndex < 36)
return; return;
}
gFSKWriteIndex = 0; gFSKWriteIndex = 0;
gUpdateDisplay = true; gUpdateDisplay = true;
Status = BK4819_ReadRegister(BK4819_REG_0B); uint16_t Status = BK4819_ReadRegister(BK4819_REG_0B);
BK4819_PrepareFSKReceive(); BK4819_PrepareFSKReceive();
// Doc says bit 4 should be 1 = CRC OK, 0 = CRC FAIL, but original firmware checks for FAIL. // Doc says bit 4 should be 1 = CRC OK, 0 = CRC FAIL, but original firmware checks for FAIL.
if ((Status & 0x0010U) == 0 && g_FSK_Buffer[0] == 0xABCD && g_FSK_Buffer[35] == 0xDCBA) if ((Status & 0x0010U) != 0 || g_FSK_Buffer[0] != 0xABCD || g_FSK_Buffer[35] != 0xDCBA) {
{ gErrorsDuringAirCopy++;
uint16_t CRC; return;
unsigned int i; }
for (i = 0; i < 34; i++) for (unsigned int i = 0; i < 34; i++) {
g_FSK_Buffer[i + 1] ^= Obfuscation[i % 8]; g_FSK_Buffer[i + 1] ^= Obfuscation[i % 8];
}
CRC = CRC_Calculate(&g_FSK_Buffer[1], 2 + 64); uint16_t CRC = CRC_Calculate(&g_FSK_Buffer[1], 2 + 64);
if (g_FSK_Buffer[34] == CRC) if (g_FSK_Buffer[34] != CRC) {
{ gErrorsDuringAirCopy++;
const uint16_t *pData; return;
uint16_t Offset; }
Offset = g_FSK_Buffer[1]; uint16_t Offset = g_FSK_Buffer[1];
if (Offset < 0x1E00)
{ if (Offset >= 0x1E00) {
pData = &g_FSK_Buffer[2]; gErrorsDuringAirCopy++;
for (i = 0; i < 8; i++) return;
{ }
const uint16_t *pData = &g_FSK_Buffer[2];
for (unsigned int i = 0; i < 8; i++) {
EEPROM_WriteBuffer(Offset, pData); EEPROM_WriteBuffer(Offset, pData);
pData += 4; pData += 4;
Offset += 8; Offset += 8;
} }
if (Offset == 0x1E00) if (Offset == 0x1E00) {
gAircopyState = AIRCOPY_COMPLETE; gAircopyState = AIRCOPY_COMPLETE;
}
gAirCopyBlockNumber++; gAirCopyBlockNumber++;
return;
}
}
}
gErrorsDuringAirCopy++;
} }
static void AIRCOPY_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld) static void AIRCOPY_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
{ {
if (!bKeyHeld && bKeyPressed) if (bKeyHeld || !bKeyPressed) {
{ return;
uint32_t Frequency; }
unsigned int i;
INPUTBOX_Append(Key); INPUTBOX_Append(Key);
gRequestDisplayScreen = DISPLAY_AIRCOPY; gRequestDisplayScreen = DISPLAY_AIRCOPY;
if (gInputBoxIndex < 6)
{ if (gInputBoxIndex < 6) {
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = (VOICE_ID_t)Key; gAnotherVoiceID = (VOICE_ID_t)Key;
#endif #endif
return; return;
} }
gInputBoxIndex = 0; gInputBoxIndex = 0;
Frequency = StrToUL(INPUTBOX_GetAscii()) * 100; uint32_t Frequency = StrToUL(INPUTBOX_GetAscii()) * 100;
for (i = 0; i < ARRAY_SIZE(frequencyBandTable); i++) for (unsigned int i = 0; i < BAND_N_ELEM; i++) {
{ if (Frequency < frequencyBandTable[i].lower || Frequency >= frequencyBandTable[i].upper) {
if (Frequency >= frequencyBandTable[i].lower && Frequency < frequencyBandTable[i].upper) continue;
{ }
#ifdef ENABLE_VOICE
if (TX_freq_check(Frequency)) {
continue;
}
#ifdef ENABLE_VOICE
gAnotherVoiceID = (VOICE_ID_t)Key; gAnotherVoiceID = (VOICE_ID_t)Key;
#endif #endif
gRxVfo->Band = i;
Frequency = FREQUENCY_RoundToStep(Frequency, gRxVfo->StepFrequency); Frequency = FREQUENCY_RoundToStep(Frequency, gRxVfo->StepFrequency);
gRxVfo->Band = i;
gRxVfo->freq_config_RX.Frequency = Frequency; gRxVfo->freq_config_RX.Frequency = Frequency;
gRxVfo->freq_config_TX.Frequency = Frequency; gRxVfo->freq_config_TX.Frequency = Frequency;
RADIO_ConfigureSquelchAndOutputPower(gRxVfo); RADIO_ConfigureSquelchAndOutputPower(gRxVfo);
@@ -151,39 +167,39 @@ static void AIRCOPY_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
BK4819_ResetFSK(); BK4819_ResetFSK();
return; return;
} }
}
gRequestDisplayScreen = DISPLAY_AIRCOPY; gRequestDisplayScreen = DISPLAY_AIRCOPY;
}
} }
static void AIRCOPY_Key_EXIT(bool bKeyPressed, bool bKeyHeld) static void AIRCOPY_Key_EXIT(bool bKeyPressed, bool bKeyHeld)
{ {
if (!bKeyHeld && bKeyPressed) if (bKeyHeld || !bKeyPressed) {
{ return;
if (gInputBoxIndex == 0) }
{
if (gInputBoxIndex == 0) {
gFSKWriteIndex = 0; gFSKWriteIndex = 0;
gAirCopyBlockNumber = 0; gAirCopyBlockNumber = 0;
gErrorsDuringAirCopy = 0;
gInputBoxIndex = 0; gInputBoxIndex = 0;
gErrorsDuringAirCopy = 0;
gAirCopyIsSendMode = 0; gAirCopyIsSendMode = 0;
BK4819_PrepareFSKReceive(); BK4819_PrepareFSKReceive();
gAircopyState = AIRCOPY_TRANSFER; gAircopyState = AIRCOPY_TRANSFER;
} } else {
else
gInputBox[--gInputBoxIndex] = 10; gInputBox[--gInputBoxIndex] = 10;
}
gRequestDisplayScreen = DISPLAY_AIRCOPY; gRequestDisplayScreen = DISPLAY_AIRCOPY;
}
} }
static void AIRCOPY_Key_MENU(bool bKeyPressed, bool bKeyHeld) static void AIRCOPY_Key_MENU(bool bKeyPressed, bool bKeyHeld)
{ {
if (!bKeyHeld && bKeyPressed) if (bKeyHeld || !bKeyPressed) {
{ return;
}
gFSKWriteIndex = 0; gFSKWriteIndex = 0;
gAirCopyBlockNumber = 0; gAirCopyBlockNumber = 0;
gInputBoxIndex = 0; gInputBoxIndex = 0;
@@ -192,18 +208,14 @@ static void AIRCOPY_Key_MENU(bool bKeyPressed, bool bKeyHeld)
g_FSK_Buffer[1] = 0; g_FSK_Buffer[1] = 0;
g_FSK_Buffer[35] = 0xDCBA; g_FSK_Buffer[35] = 0xDCBA;
AIRCOPY_SendMessage();
GUI_DisplayScreen(); GUI_DisplayScreen();
gAircopyState = AIRCOPY_TRANSFER; gAircopyState = AIRCOPY_TRANSFER;
}
} }
void AIRCOPY_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld) void AIRCOPY_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
{ {
switch (Key) switch (Key) {
{
case KEY_0: case KEY_0:
case KEY_1: case KEY_1:
case KEY_2: case KEY_2:

View File

@@ -37,11 +37,10 @@ extern uint8_t gAirCopyIsSendMode;
extern uint16_t g_FSK_Buffer[36]; extern uint16_t g_FSK_Buffer[36];
void AIRCOPY_SendMessage(void); bool AIRCOPY_SendMessage(void);
void AIRCOPY_StorePacket(void); void AIRCOPY_StorePacket(void);
void AIRCOPY_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld); void AIRCOPY_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld);
#endif #endif
#endif #endif

1051
app/app.c

File diff suppressed because it is too large Load Diff

View File

@@ -24,7 +24,7 @@
#include "radio.h" #include "radio.h"
void APP_EndTransmission(void); void APP_EndTransmission(void);
void APP_StartListening(FUNCTION_Type_t Function, const bool reset_am_fix); void APP_StartListening(FUNCTION_Type_t function);
uint32_t APP_SetFreqByStepAndLimits(VFO_Info_t *pInfo, int8_t direction, uint32_t lower, uint32_t upper); uint32_t APP_SetFreqByStepAndLimits(VFO_Info_t *pInfo, int8_t direction, uint32_t lower, uint32_t upper);
uint32_t APP_SetFrequencyByStep(VFO_Info_t *pInfo, int8_t direction); uint32_t APP_SetFrequencyByStep(VFO_Info_t *pInfo, int8_t direction);
void APP_Update(void); void APP_Update(void);

View File

@@ -11,6 +11,7 @@ bool gScanPauseMode;
#ifdef ENABLE_SCAN_RANGES #ifdef ENABLE_SCAN_RANGES
uint32_t gScanRangeStart; uint32_t gScanRangeStart;
uint32_t gScanRangeStop;
#endif #endif
typedef enum { typedef enum {
@@ -71,14 +72,14 @@ void CHFRSCANNER_ContinueScanning(void)
if (IS_FREQ_CHANNEL(gNextMrChannel)) if (IS_FREQ_CHANNEL(gNextMrChannel))
{ {
if (gCurrentFunction == FUNCTION_INCOMING) if (gCurrentFunction == FUNCTION_INCOMING)
APP_StartListening(gMonitor ? FUNCTION_MONITOR : FUNCTION_RECEIVE, true); APP_StartListening(gMonitor ? FUNCTION_MONITOR : FUNCTION_RECEIVE);
else else
NextFreqChannel(); // switch to next frequency NextFreqChannel(); // switch to next frequency
} }
else else
{ {
if (gCurrentCodeType == CODE_TYPE_OFF && gCurrentFunction == FUNCTION_INCOMING) if (gCurrentCodeType == CODE_TYPE_OFF && gCurrentFunction == FUNCTION_INCOMING)
APP_StartListening(gMonitor ? FUNCTION_MONITOR : FUNCTION_RECEIVE, true); APP_StartListening(gMonitor ? FUNCTION_MONITOR : FUNCTION_RECEIVE);
else else
NextMemChannel(); // switch to next channel NextMemChannel(); // switch to next channel
} }
@@ -157,9 +158,7 @@ static void NextFreqChannel(void)
{ {
#ifdef ENABLE_SCAN_RANGES #ifdef ENABLE_SCAN_RANGES
if(gScanRangeStart) { if(gScanRangeStart) {
uint32_t start = gScanRangeStart; gRxVfo->freq_config_RX.Frequency = APP_SetFreqByStepAndLimits(gRxVfo, gScanStateDir, gScanRangeStart, gScanRangeStop);
uint32_t end = gEeprom.VfoInfo[(gEeprom.TX_VFO+1)%2].freq_config_RX.Frequency;
gRxVfo->freq_config_RX.Frequency = APP_SetFreqByStepAndLimits(gRxVfo, gScanStateDir, MIN(start, end), MAX(start, end));
} }
else else
#endif #endif

View File

@@ -12,6 +12,7 @@ extern bool gScanPauseMode;
#ifdef ENABLE_SCAN_RANGES #ifdef ENABLE_SCAN_RANGES
extern uint32_t gScanRangeStart; extern uint32_t gScanRangeStart;
extern uint32_t gScanRangeStop;
#endif #endif
void CHFRSCANNER_Found(void); void CHFRSCANNER_Found(void);

View File

@@ -78,6 +78,38 @@ void DTMF_clear_RX(void)
} }
#endif #endif
void DTMF_SendEndOfTransmission(void)
{
if (gCurrentVfo->DTMF_PTT_ID_TX_MODE == PTT_ID_APOLLO)
BK4819_PlaySingleTone(2475, 250, 28, gEeprom.DTMF_SIDE_TONE);
else if ((gCurrentVfo->DTMF_PTT_ID_TX_MODE == PTT_ID_TX_DOWN || gCurrentVfo->DTMF_PTT_ID_TX_MODE == PTT_ID_BOTH)
#ifdef ENABLE_DTMF_CALLING
&& gDTMF_CallState == DTMF_CALL_STATE_NONE
#endif
) { // end-of-tx
if (gEeprom.DTMF_SIDE_TONE) {
AUDIO_AudioPathOn();
gEnableSpeaker = true;
SYSTEM_DelayMs(60);
}
BK4819_EnterDTMF_TX(gEeprom.DTMF_SIDE_TONE);
BK4819_PlayDTMFString(
gEeprom.DTMF_DOWN_CODE,
0,
gEeprom.DTMF_FIRST_CODE_PERSIST_TIME,
gEeprom.DTMF_HASH_CODE_PERSIST_TIME,
gEeprom.DTMF_CODE_PERSIST_TIME,
gEeprom.DTMF_CODE_INTERVAL_TIME);
AUDIO_AudioPathOff();
gEnableSpeaker = false;
}
BK4819_ExitDTMF_TX(true);
}
bool DTMF_ValidateCodes(char *pCode, const unsigned int size) bool DTMF_ValidateCodes(char *pCode, const unsigned int size)
{ {
unsigned int i; unsigned int i;
@@ -103,34 +135,28 @@ bool DTMF_ValidateCodes(char *pCode, const unsigned int size)
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
bool DTMF_GetContact(const int Index, char *pContact) bool DTMF_GetContact(const int Index, char *pContact)
{ {
int i = -1; if (Index < 0 || Index >= MAX_DTMF_CONTACTS || pContact == NULL) {
if (Index >= 0 && Index < MAX_DTMF_CONTACTS && pContact != NULL) return false;
{
EEPROM_ReadBuffer(0x1C00 + (Index * 16), pContact, 16);
i = (int)pContact[0] - ' ';
} }
return (i < 0 || i >= 95) ? false : true;
EEPROM_ReadBuffer(0x1C00 + (Index * 16), pContact, 16);
// check whether the first character is printable or not
return (pContact[0] >= ' ' && pContact[0] < 127);
} }
bool DTMF_FindContact(const char *pContact, char *pResult) bool DTMF_FindContact(const char *pContact, char *pResult)
{ {
pResult[0] = 0;
for (unsigned int i = 0; i < MAX_DTMF_CONTACTS; i++) {
char Contact[16]; char Contact[16];
unsigned int i; if (!DTMF_GetContact(i, Contact)) {
for (i = 0; i < MAX_DTMF_CONTACTS; i++)
{
unsigned int j;
if (!DTMF_GetContact(i, Contact))
return false; return false;
}
for (j = 0; j < 3; j++) if (memcmp(pContact, Contact + 8, 3) == 0) {
if (pContact[j] != Contact[j + 8]) memcpy(pResult, Contact, 8);
break;
if (j == 3)
{
memmove(pResult, Contact, 8);
pResult[8] = 0; pResult[8] = 0;
return true; return true;
} }
@@ -183,12 +209,12 @@ static bool CompareMessage(const char *pMsg, const char *pTemplate, const unsign
DTMF_CallMode_t DTMF_CheckGroupCall(const char *pMsg, const unsigned int size) DTMF_CallMode_t DTMF_CheckGroupCall(const char *pMsg, const unsigned int size)
{ {
unsigned int i; for (unsigned int i = 0; i < size; i++)
for (i = 0; i < size; i++) if (pMsg[i] == gEeprom.DTMF_GROUP_CALL_CODE) {
if (pMsg[i] == gEeprom.DTMF_GROUP_CALL_CODE) return DTMF_CALL_MODE_GROUP;
break; }
return (i < size) ? DTMF_CALL_MODE_GROUP : DTMF_CALL_MODE_NOT_GROUP; return DTMF_CALL_MODE_NOT_GROUP;
} }
#endif #endif
@@ -303,13 +329,12 @@ void DTMF_HandleRequest(void)
if (gDTMF_RX_index >= 2) if (gDTMF_RX_index >= 2)
{ // look for ACK reply { // look for ACK reply
char *pPrintStr = "AB";
strcpy(String, "AB"); Offset = gDTMF_RX_index - strlen(pPrintStr);
Offset = gDTMF_RX_index - strlen(String); if (CompareMessage(gDTMF_RX + Offset, pPrintStr, strlen(pPrintStr), true)) {
// ends with "AB"
if (CompareMessage(gDTMF_RX + Offset, String, strlen(String), true))
{ // ends with "AB"
if (gDTMF_ReplyState != DTMF_REPLY_NONE) // 1of11 if (gDTMF_ReplyState != DTMF_REPLY_NONE) // 1of11
// if (gDTMF_CallState != DTMF_CALL_STATE_NONE) // 1of11 // if (gDTMF_CallState != DTMF_CALL_STATE_NONE) // 1of11
@@ -361,8 +386,8 @@ void DTMF_HandleRequest(void)
memset(gDTMF_Callee, 0, sizeof(gDTMF_Callee)); memset(gDTMF_Callee, 0, sizeof(gDTMF_Callee));
memset(gDTMF_Caller, 0, sizeof(gDTMF_Caller)); memset(gDTMF_Caller, 0, sizeof(gDTMF_Caller));
memmove(gDTMF_Callee, gDTMF_RX + Offset + 0, 3); memcpy(gDTMF_Callee, gDTMF_RX + Offset + 0, 3);
memmove(gDTMF_Caller, gDTMF_RX + Offset + 4, 3); memcpy(gDTMF_Caller, gDTMF_RX + Offset + 4, 3);
DTMF_clear_RX(); DTMF_clear_RX();

View File

@@ -78,7 +78,17 @@ extern uint8_t gDTMF_PreviousIndex;
extern char gDTMF_RX_live[20]; extern char gDTMF_RX_live[20];
extern uint8_t gDTMF_RX_live_timeout; extern uint8_t gDTMF_RX_live_timeout;
extern DTMF_ReplyState_t gDTMF_ReplyState;
bool DTMF_ValidateCodes(char *pCode, const unsigned int size);
char DTMF_GetCharacter(const unsigned int code);
void DTMF_clear_input_box(void);
void DTMF_Append(const char code);
void DTMF_Reply(void);
void DTMF_SendEndOfTransmission(void);
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
extern char gDTMF_RX[17]; extern char gDTMF_RX[17];
extern uint8_t gDTMF_RX_index; extern uint8_t gDTMF_RX_index;
extern uint8_t gDTMF_RX_timeout; extern uint8_t gDTMF_RX_timeout;
@@ -97,21 +107,13 @@ extern DTMF_CallState_t gDTMF_CallState;
extern DTMF_CallMode_t gDTMF_CallMode; extern DTMF_CallMode_t gDTMF_CallMode;
extern bool gDTMF_IsTx; extern bool gDTMF_IsTx;
extern uint8_t gDTMF_TxStopCountdown_500ms; extern uint8_t gDTMF_TxStopCountdown_500ms;
#endif
extern DTMF_ReplyState_t gDTMF_ReplyState;
bool DTMF_ValidateCodes(char *pCode, const unsigned int size);
char DTMF_GetCharacter(const unsigned int code);
void DTMF_clear_input_box(void);
void DTMF_Append(const char vode);
void DTMF_Reply(void);
#ifdef ENABLE_DTMF_CALLING
void DTMF_clear_RX(void); void DTMF_clear_RX(void);
DTMF_CallMode_t DTMF_CheckGroupCall(const char *pDTMF, const unsigned int size); DTMF_CallMode_t DTMF_CheckGroupCall(const char *pDTMF, const unsigned int size);
bool DTMF_GetContact(const int Index, char *pContact); bool DTMF_GetContact(const int Index, char *pContact);
bool DTMF_FindContact(const char *pContact, char *pResult); bool DTMF_FindContact(const char *pContact, char *pResult);
void DTMF_HandleRequest(void); void DTMF_HandleRequest(void);
#endif #endif
#endif #endif

66
app/flashlight.c Normal file
View File

@@ -0,0 +1,66 @@
#ifdef ENABLE_FLASHLIGHT
#include "driver/gpio.h"
#include "bsp/dp32g030/gpio.h"
#include "flashlight.h"
enum FlashlightMode_t gFlashLightState;
void FlashlightTimeSlice()
{
if (gFlashLightState == FLASHLIGHT_BLINK && (gFlashLightBlinkCounter & 15u) == 0) {
GPIO_FlipBit(&GPIOC->DATA, GPIOC_PIN_FLASHLIGHT);
return;
}
if (gFlashLightState == FLASHLIGHT_SOS) {
const uint16_t u = 15;
static uint8_t c;
static uint16_t next;
if (gFlashLightBlinkCounter - next > 7 * u) {
c = 0;
next = gFlashLightBlinkCounter + 1;
return;
}
if (gFlashLightBlinkCounter == next) {
if (c==0) {
GPIO_ClearBit(&GPIOC->DATA, GPIOC_PIN_FLASHLIGHT);
} else {
GPIO_FlipBit(&GPIOC->DATA, GPIOC_PIN_FLASHLIGHT);
}
if (c >= 18) {
next = gFlashLightBlinkCounter + 7 * u;
c = 0;
} else if(c==7 || c==9 || c==11) {
next = gFlashLightBlinkCounter + 3 * u;
} else {
next = gFlashLightBlinkCounter + u;
}
c++;
}
}
}
void ACTION_FlashLight(void)
{
switch (gFlashLightState) {
case FLASHLIGHT_OFF:
gFlashLightState++;
GPIO_SetBit(&GPIOC->DATA, GPIOC_PIN_FLASHLIGHT);
break;
case FLASHLIGHT_ON:
case FLASHLIGHT_BLINK:
gFlashLightState++;
break;
case FLASHLIGHT_SOS:
default:
gFlashLightState = 0;
GPIO_ClearBit(&GPIOC->DATA, GPIOC_PIN_FLASHLIGHT);
}
}
#endif

23
app/flashlight.h Normal file
View File

@@ -0,0 +1,23 @@
#ifndef APP_FLASHLIGHT_H
#define APP_FLASHLIGHT_H
#ifdef ENABLE_FLASHLIGHT
#include <stdint.h>
enum FlashlightMode_t {
FLASHLIGHT_OFF = 0,
FLASHLIGHT_ON,
FLASHLIGHT_BLINK,
FLASHLIGHT_SOS
};
extern enum FlashlightMode_t gFlashLightState;
extern volatile uint16_t gFlashLightBlinkCounter;
void FlashlightTimeSlice(void);
void ACTION_FlashLight(void);
#endif
#endif

230
app/fm.c
View File

@@ -62,19 +62,17 @@ static void Key_FUNC(KEY_Code_t Key, uint8_t state);
bool FM_CheckValidChannel(uint8_t Channel) bool FM_CheckValidChannel(uint8_t Channel)
{ {
return (Channel < ARRAY_SIZE(gFM_Channels) && (gFM_Channels[Channel] >= 760 && gFM_Channels[Channel] < 1080)) ? true : false; return Channel < ARRAY_SIZE(gFM_Channels) &&
gFM_Channels[Channel] >= BK1080_GetFreqLoLimit(gEeprom.FM_Band) &&
gFM_Channels[Channel] < BK1080_GetFreqHiLimit(gEeprom.FM_Band);
} }
uint8_t FM_FindNextChannel(uint8_t Channel, uint8_t Direction) uint8_t FM_FindNextChannel(uint8_t Channel, uint8_t Direction)
{ {
unsigned int i; for (unsigned i = 0; i < ARRAY_SIZE(gFM_Channels); i++) {
for (i = 0; i < ARRAY_SIZE(gFM_Channels); i++)
{
if (Channel == 0xFF) if (Channel == 0xFF)
Channel = ARRAY_SIZE(gFM_Channels) - 1; Channel = ARRAY_SIZE(gFM_Channels) - 1;
else else if (Channel >= ARRAY_SIZE(gFM_Channels))
if (Channel >= ARRAY_SIZE(gFM_Channels))
Channel = 0; Channel = 0;
if (FM_CheckValidChannel(Channel)) if (FM_CheckValidChannel(Channel))
return Channel; return Channel;
@@ -88,11 +86,9 @@ int FM_ConfigureChannelState(void)
{ {
gEeprom.FM_FrequencyPlaying = gEeprom.FM_SelectedFrequency; gEeprom.FM_FrequencyPlaying = gEeprom.FM_SelectedFrequency;
if (gEeprom.FM_IsMrMode) if (gEeprom.FM_IsMrMode) {
{
const uint8_t Channel = FM_FindNextChannel(gEeprom.FM_SelectedChannel, FM_CHANNEL_UP); const uint8_t Channel = FM_FindNextChannel(gEeprom.FM_SelectedChannel, FM_CHANNEL_UP);
if (Channel == 0xFF) if (Channel == 0xFF) {
{
gEeprom.FM_IsMrMode = false; gEeprom.FM_IsMrMode = false;
return -1; return -1;
} }
@@ -110,21 +106,19 @@ void FM_TurnOff(void)
gFM_RestoreCountdown_10ms = 0; gFM_RestoreCountdown_10ms = 0;
AUDIO_AudioPathOff(); AUDIO_AudioPathOff();
gEnableSpeaker = false; gEnableSpeaker = false;
BK1080_Init(0, false); BK1080_Init0();
gUpdateStatus = true; gUpdateStatus = true;
} }
void FM_EraseChannels(void) void FM_EraseChannels(void)
{ {
unsigned int i;
uint8_t Template[8]; uint8_t Template[8];
memset(Template, 0xFF, sizeof(Template)); memset(Template, 0xFF, sizeof(Template));
for (i = 0; i < 5; i++)
for (unsigned i = 0; i < 5; i++)
EEPROM_WriteBuffer(0x0E40 + (i * 8), Template); EEPROM_WriteBuffer(0x0E40 + (i * 8), Template);
memset(gFM_Channels, 0xFF, sizeof(gFM_Channels)); memset(gFM_Channels, 0xFF, sizeof(gFM_Channels));
@@ -144,35 +138,32 @@ void FM_Tune(uint16_t Frequency, int8_t Step, bool bFlag)
gAskToDelete = false; gAskToDelete = false;
gEeprom.FM_FrequencyPlaying = Frequency; gEeprom.FM_FrequencyPlaying = Frequency;
if (!bFlag) if (!bFlag) {
{
Frequency += Step; Frequency += Step;
if (Frequency < gEeprom.FM_LowerLimit) if (Frequency < BK1080_GetFreqLoLimit(gEeprom.FM_Band))
Frequency = gEeprom.FM_UpperLimit; Frequency = BK1080_GetFreqHiLimit(gEeprom.FM_Band);
else else if (Frequency > BK1080_GetFreqHiLimit(gEeprom.FM_Band))
if (Frequency > gEeprom.FM_UpperLimit) Frequency = BK1080_GetFreqLoLimit(gEeprom.FM_Band);
Frequency = gEeprom.FM_LowerLimit;
gEeprom.FM_FrequencyPlaying = Frequency; gEeprom.FM_FrequencyPlaying = Frequency;
} }
gFM_ScanState = Step; gFM_ScanState = Step;
BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying); BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying, gEeprom.FM_Band/*, gEeprom.FM_Space*/);
} }
void FM_PlayAndUpdate(void) void FM_PlayAndUpdate(void)
{ {
gFM_ScanState = FM_SCAN_OFF; gFM_ScanState = FM_SCAN_OFF;
if (gFM_AutoScan) if (gFM_AutoScan) {
{
gEeprom.FM_IsMrMode = true; gEeprom.FM_IsMrMode = true;
gEeprom.FM_SelectedChannel = 0; gEeprom.FM_SelectedChannel = 0;
} }
FM_ConfigureChannelState(); FM_ConfigureChannelState();
BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying); BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying, gEeprom.FM_Band/*, gEeprom.FM_Space*/);
SETTINGS_SaveFM(); SETTINGS_SaveFM();
gFmPlayCountdown_10ms = 0; gFmPlayCountdown_10ms = 0;
@@ -193,41 +184,35 @@ int FM_CheckFrequencyLock(uint16_t Frequency, uint16_t LowerLimit)
// This is supposed to be a signed value, but above function is unsigned // This is supposed to be a signed value, but above function is unsigned
const uint16_t Deviation = BK1080_REG_07_GET_FREQD(Test2); const uint16_t Deviation = BK1080_REG_07_GET_FREQD(Test2);
if (BK1080_REG_07_GET_SNR(Test2) >= 2) if (BK1080_REG_07_GET_SNR(Test2) <= 2) {
{
const uint16_t Status = BK1080_ReadRegister(BK1080_REG_10);
if ((Status & BK1080_REG_10_MASK_AFCRL) == BK1080_REG_10_AFCRL_NOT_RAILED && BK1080_REG_10_GET_RSSI(Status) >= 10)
{
//if (Deviation > -281 && Deviation < 280)
if (Deviation < 280 || Deviation > 3815)
{
// not BLE(less than or equal)
if (Frequency > LowerLimit && (Frequency - BK1080_BaseFrequency) == 1)
{
if (BK1080_FrequencyDeviation & 0x800)
goto Bail; goto Bail;
}
if (BK1080_FrequencyDeviation < 20) const uint16_t Status = BK1080_ReadRegister(BK1080_REG_10);
if ((Status & BK1080_REG_10_MASK_AFCRL) != BK1080_REG_10_AFCRL_NOT_RAILED || BK1080_REG_10_GET_RSSI(Status) < 10) {
goto Bail;
}
//if (Deviation > -281 && Deviation < 280)
if (Deviation >= 280 && Deviation <= 3815) {
goto Bail;
}
// not BLE(less than or equal)
if (Frequency > LowerLimit && (Frequency - BK1080_BaseFrequency) == 1) {
if (BK1080_FrequencyDeviation & 0x800 || (BK1080_FrequencyDeviation < 20))
goto Bail; goto Bail;
} }
// not BLT(less than) // not BLT(less than)
if (Frequency >= LowerLimit && (BK1080_BaseFrequency - Frequency) == 1) if (Frequency >= LowerLimit && (BK1080_BaseFrequency - Frequency) == 1) {
{ if ((BK1080_FrequencyDeviation & 0x800) == 0 || (BK1080_FrequencyDeviation > 4075))
if ((BK1080_FrequencyDeviation & 0x800) == 0)
goto Bail;
// if (BK1080_FrequencyDeviation > -21)
if (BK1080_FrequencyDeviation > 4075)
goto Bail; goto Bail;
} }
ret = 0; ret = 0;
}
}
}
Bail: Bail:
BK1080_FrequencyDeviation = Deviation; BK1080_FrequencyDeviation = Deviation;
@@ -278,7 +263,7 @@ static void Key_DIGITS(KEY_Code_t Key, uint8_t state)
gInputBoxIndex = 0; gInputBoxIndex = 0;
Frequency = StrToUL(INPUTBOX_GetAscii()); Frequency = StrToUL(INPUTBOX_GetAscii());
if (Frequency < gEeprom.FM_LowerLimit || gEeprom.FM_UpperLimit < Frequency) { if (Frequency < BK1080_GetFreqLoLimit(gEeprom.FM_Band) || BK1080_GetFreqHiLimit(gEeprom.FM_Band) < Frequency) {
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL; gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
gRequestDisplayScreen = DISPLAY_FM; gRequestDisplayScreen = DISPLAY_FM;
return; return;
@@ -289,7 +274,7 @@ static void Key_DIGITS(KEY_Code_t Key, uint8_t state)
gAnotherVoiceID = (VOICE_ID_t)Key; gAnotherVoiceID = (VOICE_ID_t)Key;
#endif #endif
gEeprom.FM_FrequencyPlaying = gEeprom.FM_SelectedFrequency; gEeprom.FM_FrequencyPlaying = gEeprom.FM_SelectedFrequency;
BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying); BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying, gEeprom.FM_Band/*, gEeprom.FM_Space*/);
gRequestSaveFM = true; gRequestSaveFM = true;
return; return;
} }
@@ -307,7 +292,7 @@ static void Key_DIGITS(KEY_Code_t Key, uint8_t state)
#endif #endif
gEeprom.FM_SelectedChannel = Channel; gEeprom.FM_SelectedChannel = Channel;
gEeprom.FM_FrequencyPlaying = gFM_Channels[Channel]; gEeprom.FM_FrequencyPlaying = gFM_Channels[Channel];
BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying); BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying, gEeprom.FM_Band/*, gEeprom.FM_Space*/);
gRequestSaveFM = true; gRequestSaveFM = true;
return; return;
} }
@@ -336,8 +321,7 @@ static void Key_DIGITS(KEY_Code_t Key, uint8_t state)
static void Key_FUNC(KEY_Code_t Key, uint8_t state) static void Key_FUNC(KEY_Code_t Key, uint8_t state)
{ {
if (state == BUTTON_EVENT_SHORT || state == BUTTON_EVENT_HELD) if (state == BUTTON_EVENT_SHORT || state == BUTTON_EVENT_HELD) {
{
bool autoScan = gWasFKeyPressed || (state == BUTTON_EVENT_HELD); bool autoScan = gWasFKeyPressed || (state == BUTTON_EVENT_HELD);
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
@@ -350,12 +334,21 @@ static void Key_FUNC(KEY_Code_t Key, uint8_t state)
ACTION_FM(); ACTION_FM();
break; break;
case KEY_1:
gEeprom.FM_Band++;
gRequestSaveFM = true;
break;
// case KEY_2:
// gEeprom.FM_Space = (gEeprom.FM_Space + 1) % 3;
// gRequestSaveFM = true;
// break;
case KEY_3: case KEY_3:
gEeprom.FM_IsMrMode = !gEeprom.FM_IsMrMode; gEeprom.FM_IsMrMode = !gEeprom.FM_IsMrMode;
if (!FM_ConfigureChannelState()) if (!FM_ConfigureChannelState()) {
{ BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying, gEeprom.FM_Band/*, gEeprom.FM_Space*/);
BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying);
gRequestSaveFM = true; gRequestSaveFM = true;
} }
else else
@@ -380,12 +373,9 @@ static void Key_EXIT(uint8_t state)
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
if (gFM_ScanState == FM_SCAN_OFF) if (gFM_ScanState == FM_SCAN_OFF) {
{ if (gInputBoxIndex == 0) {
if (gInputBoxIndex == 0) if (!gAskToSave && !gAskToDelete) {
{
if (!gAskToSave && !gAskToDelete)
{
ACTION_FM(); ACTION_FM();
return; return;
} }
@@ -393,38 +383,32 @@ static void Key_EXIT(uint8_t state)
gAskToSave = false; gAskToSave = false;
gAskToDelete = false; gAskToDelete = false;
} }
else else {
{
gInputBox[--gInputBoxIndex] = 10; gInputBox[--gInputBoxIndex] = 10;
if (gInputBoxIndex) if (gInputBoxIndex) {
{ if (gInputBoxIndex != 1) {
if (gInputBoxIndex != 1)
{
gRequestDisplayScreen = DISPLAY_FM; gRequestDisplayScreen = DISPLAY_FM;
return; return;
} }
if (gInputBox[0] != 0) if (gInputBox[0] != 0) {
{
gRequestDisplayScreen = DISPLAY_FM; gRequestDisplayScreen = DISPLAY_FM;
return; return;
} }
} }
gInputBoxIndex = 0; gInputBoxIndex = 0;
} }
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_CANCEL; gAnotherVoiceID = VOICE_ID_CANCEL;
#endif #endif
} }
else else {
{
FM_PlayAndUpdate(); FM_PlayAndUpdate();
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_SCANNING_STOP; gAnotherVoiceID = VOICE_ID_SCANNING_STOP;
#endif #endif
} }
gRequestDisplayScreen = DISPLAY_FM; gRequestDisplayScreen = DISPLAY_FM;
@@ -439,52 +423,38 @@ static void Key_MENU(uint8_t state)
gRequestDisplayScreen = DISPLAY_FM; gRequestDisplayScreen = DISPLAY_FM;
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
if (gFM_ScanState == FM_SCAN_OFF) if (gFM_ScanState == FM_SCAN_OFF) {
{ if (!gEeprom.FM_IsMrMode) {
if (!gEeprom.FM_IsMrMode) if (gAskToSave) {
{
if (gAskToSave)
{
gFM_Channels[gFM_ChannelPosition] = gEeprom.FM_FrequencyPlaying; gFM_Channels[gFM_ChannelPosition] = gEeprom.FM_FrequencyPlaying;
gAskToSave = false;
gRequestSaveFM = true; gRequestSaveFM = true;
} }
else gAskToSave = !gAskToSave;
gAskToSave = true;
} }
else else {
{ if (gAskToDelete) {
if (gAskToDelete)
{
gFM_Channels[gEeprom.FM_SelectedChannel] = 0xFFFF; gFM_Channels[gEeprom.FM_SelectedChannel] = 0xFFFF;
FM_ConfigureChannelState(); FM_ConfigureChannelState();
BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying); BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying, gEeprom.FM_Band/*, gEeprom.FM_Space*/);
gRequestSaveFM = true; gRequestSaveFM = true;
gAskToDelete = false;
} }
else gAskToDelete = !gAskToDelete;
gAskToDelete = true;
} }
} }
else else {
{ if (gFM_AutoScan || !gFM_FoundFrequency) {
if (gFM_AutoScan || !gFM_FoundFrequency)
{
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL; gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
gInputBoxIndex = 0; gInputBoxIndex = 0;
return; return;
} }
if (gAskToSave) if (gAskToSave) {
{
gFM_Channels[gFM_ChannelPosition] = gEeprom.FM_FrequencyPlaying; gFM_Channels[gFM_ChannelPosition] = gEeprom.FM_FrequencyPlaying;
gAskToSave = false;
gRequestSaveFM = true; gRequestSaveFM = true;
} }
else gAskToSave = !gAskToSave;
gAskToSave = true;
} }
} }
@@ -497,9 +467,7 @@ static void Key_UP_DOWN(uint8_t state, int8_t Step)
} }
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
} } else if (gInputBoxIndex || state!=BUTTON_EVENT_HELD) {
else {
if (gInputBoxIndex || state!=BUTTON_EVENT_HELD)
return; return;
} }
@@ -530,11 +498,11 @@ static void Key_UP_DOWN(uint8_t state, int8_t Step)
} }
else { else {
uint16_t Frequency = gEeprom.FM_SelectedFrequency + Step; uint16_t Frequency = gEeprom.FM_SelectedFrequency + Step;
if (Frequency < gEeprom.FM_LowerLimit)
Frequency = gEeprom.FM_UpperLimit; if (Frequency < BK1080_GetFreqLoLimit(gEeprom.FM_Band))
else Frequency = BK1080_GetFreqHiLimit(gEeprom.FM_Band);
if (Frequency > gEeprom.FM_UpperLimit) else if (Frequency > BK1080_GetFreqHiLimit(gEeprom.FM_Band))
Frequency = gEeprom.FM_LowerLimit; Frequency = BK1080_GetFreqLoLimit(gEeprom.FM_Band);
gEeprom.FM_FrequencyPlaying = Frequency; gEeprom.FM_FrequencyPlaying = Frequency;
gEeprom.FM_SelectedFrequency = gEeprom.FM_FrequencyPlaying; gEeprom.FM_SelectedFrequency = gEeprom.FM_FrequencyPlaying;
@@ -543,7 +511,7 @@ static void Key_UP_DOWN(uint8_t state, int8_t Step)
gRequestSaveFM = true; gRequestSaveFM = true;
Bail: Bail:
BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying); BK1080_SetFrequency(gEeprom.FM_FrequencyPlaying, gEeprom.FM_Band/*, gEeprom.FM_Space*/);
gRequestDisplayScreen = DISPLAY_FM; gRequestDisplayScreen = DISPLAY_FM;
} }
@@ -552,20 +520,8 @@ void FM_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
{ {
uint8_t state = bKeyPressed + 2 * bKeyHeld; uint8_t state = bKeyPressed + 2 * bKeyHeld;
switch (Key) {
case KEY_0...KEY_9:
switch (Key)
{
case KEY_0:
case KEY_1:
case KEY_2:
case KEY_3:
case KEY_4:
case KEY_5:
case KEY_6:
case KEY_7:
case KEY_8:
case KEY_9:
Key_DIGITS(Key, state); Key_DIGITS(Key, state);
break; break;
case KEY_STAR: case KEY_STAR:
@@ -573,7 +529,7 @@ void FM_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
break; break;
case KEY_MENU: case KEY_MENU:
Key_MENU(state); Key_MENU(state);
return; break;
case KEY_UP: case KEY_UP:
Key_UP_DOWN(state, 1); Key_UP_DOWN(state, 1);
break; break;
@@ -598,10 +554,8 @@ void FM_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
void FM_Play(void) void FM_Play(void)
{ {
if (!FM_CheckFrequencyLock(gEeprom.FM_FrequencyPlaying, gEeprom.FM_LowerLimit)) if (!FM_CheckFrequencyLock(gEeprom.FM_FrequencyPlaying, BK1080_GetFreqLoLimit(gEeprom.FM_Band))) {
{ if (!gFM_AutoScan) {
if (!gFM_AutoScan)
{
gFmPlayCountdown_10ms = 0; gFmPlayCountdown_10ms = 0;
gFM_FoundFrequency = true; gFM_FoundFrequency = true;
@@ -618,15 +572,14 @@ void FM_Play(void)
if (gFM_ChannelPosition < 20) if (gFM_ChannelPosition < 20)
gFM_Channels[gFM_ChannelPosition++] = gEeprom.FM_FrequencyPlaying; gFM_Channels[gFM_ChannelPosition++] = gEeprom.FM_FrequencyPlaying;
if (gFM_ChannelPosition >= 20) if (gFM_ChannelPosition >= 20) {
{
FM_PlayAndUpdate(); FM_PlayAndUpdate();
GUI_SelectNextDisplay(DISPLAY_FM); GUI_SelectNextDisplay(DISPLAY_FM);
return; return;
} }
} }
if (gFM_AutoScan && gEeprom.FM_FrequencyPlaying >= gEeprom.FM_UpperLimit) if (gFM_AutoScan && gEeprom.FM_FrequencyPlaying >= BK1080_GetFreqHiLimit(1))
FM_PlayAndUpdate(); FM_PlayAndUpdate();
else else
FM_Tune(gEeprom.FM_FrequencyPlaying, gFM_ScanState, false); FM_Tune(gEeprom.FM_FrequencyPlaying, gFM_ScanState, false);
@@ -636,11 +589,12 @@ void FM_Play(void)
void FM_Start(void) void FM_Start(void)
{ {
gDualWatchActive = false;
gFmRadioMode = true; gFmRadioMode = true;
gFM_ScanState = FM_SCAN_OFF; gFM_ScanState = FM_SCAN_OFF;
gFM_RestoreCountdown_10ms = 0; gFM_RestoreCountdown_10ms = 0;
BK1080_Init(gEeprom.FM_FrequencyPlaying, true); BK1080_Init(gEeprom.FM_FrequencyPlaying, gEeprom.FM_Band/*, gEeprom.FM_Space*/);
AUDIO_AudioPathOn(); AUDIO_AudioPathOn();

View File

@@ -38,10 +38,10 @@ extern uint8_t gFM_ChannelPosition;
// Doubts about whether this should be signed or not // Doubts about whether this should be signed or not
extern uint16_t gFM_FrequencyDeviation; extern uint16_t gFM_FrequencyDeviation;
extern bool gFM_FoundFrequency; extern bool gFM_FoundFrequency;
extern bool gFM_AutoScan;
extern uint16_t gFM_RestoreCountdown_10ms; extern uint16_t gFM_RestoreCountdown_10ms;
bool FM_CheckValidChannel(uint8_t Channel); bool FM_CheckValidChannel(uint8_t Channel);
// returns first valid channel starting at Channel
uint8_t FM_FindNextChannel(uint8_t Channel, uint8_t Direction); uint8_t FM_FindNextChannel(uint8_t Channel, uint8_t Direction);
int FM_ConfigureChannelState(void); int FM_ConfigureChannelState(void);
void FM_TurnOff(void); void FM_TurnOff(void);
@@ -59,4 +59,3 @@ void FM_Start(void);
#endif #endif
#endif #endif

View File

@@ -39,17 +39,14 @@
void GENERIC_Key_F(bool bKeyPressed, bool bKeyHeld) void GENERIC_Key_F(bool bKeyPressed, bool bKeyHeld)
{ {
if (gInputBoxIndex > 0) if (gInputBoxIndex > 0) {
{
if (!bKeyHeld && bKeyPressed) // short pressed if (!bKeyHeld && bKeyPressed) // short pressed
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL; gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
return; return;
} }
if (bKeyHeld || !bKeyPressed) // held or released if (bKeyHeld || !bKeyPressed) { // held or released
{ if (bKeyHeld || bKeyPressed) { // held or pressed (cannot be held and not pressed I guess, so it checks only if HELD?)
if (bKeyHeld || bKeyPressed) // held or pressed (cannot be held and not pressed I guess, so it checks only if HELD?)
{
if (!bKeyHeld) // won't ever pass if (!bKeyHeld) // won't ever pass
return; return;
@@ -58,47 +55,43 @@ void GENERIC_Key_F(bool bKeyPressed, bool bKeyHeld)
COMMON_KeypadLockToggle(); COMMON_KeypadLockToggle();
} }
else // released else { // released
{ #ifdef ENABLE_FMRADIO
#ifdef ENABLE_FMRADIO
if ((gFmRadioMode || gScreenToDisplay != DISPLAY_MAIN) && gScreenToDisplay != DISPLAY_FM) if ((gFmRadioMode || gScreenToDisplay != DISPLAY_MAIN) && gScreenToDisplay != DISPLAY_FM)
return; return;
#else #else
if (gScreenToDisplay != DISPLAY_MAIN) if (gScreenToDisplay != DISPLAY_MAIN)
return; return;
#endif #endif
gWasFKeyPressed = !gWasFKeyPressed; // toggle F function gWasFKeyPressed = !gWasFKeyPressed; // toggle F function
if (gWasFKeyPressed) if (gWasFKeyPressed)
gKeyInputCountdown = key_input_timeout_500ms; gKeyInputCountdown = key_input_timeout_500ms;
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
if (!gWasFKeyPressed) if (!gWasFKeyPressed)
gAnotherVoiceID = VOICE_ID_CANCEL; gAnotherVoiceID = VOICE_ID_CANCEL;
#endif #endif
gUpdateStatus = true; gUpdateStatus = true;
} }
} }
else // short pressed else { // short pressed
{ #ifdef ENABLE_FMRADIO
if (gScreenToDisplay != DISPLAY_FM) if (gScreenToDisplay != DISPLAY_FM)
#endif
{ {
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
return; return;
} }
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
if (gFM_ScanState == FM_SCAN_OFF) // not scanning if (gFM_ScanState == FM_SCAN_OFF) { // not scanning
{
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
return; return;
} }
#endif #endif
gBeepToPlay = BEEP_440HZ_500MS; gBeepToPlay = BEEP_440HZ_500MS;
gPttWasReleased = true; gPttWasReleased = true;
} }
} }
@@ -107,31 +100,26 @@ void GENERIC_Key_PTT(bool bKeyPressed)
{ {
gInputBoxIndex = 0; gInputBoxIndex = 0;
if (!bKeyPressed || gSerialConfigCountDown_500ms > 0) if (!bKeyPressed || SerialConfigInProgress())
{ // PTT released { // PTT released
if (gCurrentFunction == FUNCTION_TRANSMIT) if (gCurrentFunction == FUNCTION_TRANSMIT) {
{ // we are transmitting .. stop // we are transmitting .. stop
if (gFlagEndTransmission) {
if (gFlagEndTransmission)
{
FUNCTION_Select(FUNCTION_FOREGROUND); FUNCTION_Select(FUNCTION_FOREGROUND);
} }
else else {
{
APP_EndTransmission(); APP_EndTransmission();
if (gEeprom.REPEATER_TAIL_TONE_ELIMINATION == 0) if (gEeprom.REPEATER_TAIL_TONE_ELIMINATION == 0)
FUNCTION_Select(FUNCTION_FOREGROUND); FUNCTION_Select(FUNCTION_FOREGROUND);
else else
gRTTECountdown = gEeprom.REPEATER_TAIL_TONE_ELIMINATION * 10; gRTTECountdown_10ms = gEeprom.REPEATER_TAIL_TONE_ELIMINATION * 10;
} }
gFlagEndTransmission = false; gFlagEndTransmission = false;
#ifdef ENABLE_VOX
#ifdef ENABLE_VOX
gVOX_NoiseDetected = false; gVOX_NoiseDetected = false;
#endif #endif
RADIO_SetVfoState(VFO_STATE_NORMAL); RADIO_SetVfoState(VFO_STATE_NORMAL);
if (gScreenToDisplay != DISPLAY_MENU) // 1of11 .. don't close the menu if (gScreenToDisplay != DISPLAY_MENU) // 1of11 .. don't close the menu
@@ -144,27 +132,24 @@ void GENERIC_Key_PTT(bool bKeyPressed)
// PTT pressed // PTT pressed
if (SCANNER_IsScanning()) if (SCANNER_IsScanning()) {
{ // CTCSS/CDCSS scanning .. stop SCANNER_Stop(); // CTCSS/CDCSS scanning .. stop
SCANNER_Stop();
goto cancel_tx; goto cancel_tx;
} }
if (gScanStateDir != SCAN_OFF) if (gScanStateDir != SCAN_OFF) {
{ // frequency/channel scanning . .stop CHFRSCANNER_Stop(); // frequency/channel scanning . .stop
CHFRSCANNER_Stop();
goto cancel_tx; goto cancel_tx;
} }
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
if (gFM_ScanState != FM_SCAN_OFF) if (gFM_ScanState != FM_SCAN_OFF) { // FM radio is scanning .. stop
{ // FM radio is scanning .. stop
FM_PlayAndUpdate(); FM_PlayAndUpdate();
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_SCANNING_STOP; gAnotherVoiceID = VOICE_ID_SCANNING_STOP;
#endif #endif
gRequestDisplayScreen = DISPLAY_FM; gRequestDisplayScreen = DISPLAY_FM;
goto cancel_tx; goto cancel_tx;
} }
@@ -175,8 +160,7 @@ void GENERIC_Key_PTT(bool bKeyPressed)
goto start_tx; // listening to the FM radio .. start TX'ing goto start_tx; // listening to the FM radio .. start TX'ing
#endif #endif
if (gCurrentFunction == FUNCTION_TRANSMIT && gRTTECountdown == 0) if (gCurrentFunction == FUNCTION_TRANSMIT && gRTTECountdown_10ms == 0) {// already transmitting
{ // already transmitting
gInputBoxIndex = 0; gInputBoxIndex = 0;
return; return;
} }
@@ -190,9 +174,7 @@ void GENERIC_Key_PTT(bool bKeyPressed)
// was entering a DTMF string // was entering a DTMF string
if (gDTMF_InputBox_Index > 0 || gDTMF_PreviousIndex > 0) if (gDTMF_InputBox_Index > 0 || gDTMF_PreviousIndex > 0) { // going to transmit a DTMF string
{ // going to transmit a DTMF string
if (gDTMF_InputBox_Index == 0 && gDTMF_PreviousIndex > 0) if (gDTMF_InputBox_Index == 0 && gDTMF_PreviousIndex > 0)
gDTMF_InputBox_Index = gDTMF_PreviousIndex; // use the previous DTMF string gDTMF_InputBox_Index = gDTMF_PreviousIndex; // use the previous DTMF string
@@ -223,15 +205,21 @@ start_tx:
goto done; goto done;
cancel_tx: cancel_tx:
if (gPttIsPressed) if (gPttIsPressed) {
{
gPttWasPressed = true; gPttWasPressed = true;
} }
done: done:
gPttDebounceCounter = 0; gPttDebounceCounter = 0;
if (gScreenToDisplay != DISPLAY_MENU && gRequestDisplayScreen != DISPLAY_FM) // 1of11 .. don't close the menu if (gScreenToDisplay != DISPLAY_MENU
#ifdef ENABLE_FMRADIO
&& gRequestDisplayScreen != DISPLAY_FM
#endif
) {
// 1of11 .. don't close the menu
gRequestDisplayScreen = DISPLAY_MAIN; gRequestDisplayScreen = DISPLAY_MAIN;
}
gUpdateStatus = true; gUpdateStatus = true;
gUpdateDisplay = true; gUpdateDisplay = true;
} }

View File

@@ -46,29 +46,23 @@
void toggle_chan_scanlist(void) void toggle_chan_scanlist(void)
{ // toggle the selected channels scanlist setting { // toggle the selected channels scanlist setting
if ( SCANNER_IsScanning()) if (SCANNER_IsScanning())
return; return;
if(!IS_MR_CHANNEL(gTxVfo->CHANNEL_SAVE)) { if(!IS_MR_CHANNEL(gTxVfo->CHANNEL_SAVE)) {
#ifdef ENABLE_SCAN_RANGES #ifdef ENABLE_SCAN_RANGES
gScanRangeStart = gScanRangeStart ? 0 : gTxVfo->pRX->Frequency; gScanRangeStart = gScanRangeStart ? 0 : gTxVfo->pRX->Frequency;
gScanRangeStop = gEeprom.VfoInfo[!gEeprom.TX_VFO].freq_config_RX.Frequency;
if(gScanRangeStart > gScanRangeStop)
SWAP(gScanRangeStart, gScanRangeStop);
#endif #endif
return; return;
} }
if (gTxVfo->SCANLIST1_PARTICIPATION) if (gTxVfo->SCANLIST1_PARTICIPATION ^ gTxVfo->SCANLIST2_PARTICIPATION){
{ gTxVfo->SCANLIST2_PARTICIPATION = gTxVfo->SCANLIST1_PARTICIPATION;
if (gTxVfo->SCANLIST2_PARTICIPATION) } else {
gTxVfo->SCANLIST1_PARTICIPATION = 0; gTxVfo->SCANLIST1_PARTICIPATION = !gTxVfo->SCANLIST1_PARTICIPATION;
else
gTxVfo->SCANLIST2_PARTICIPATION = 1;
}
else
{
if (gTxVfo->SCANLIST2_PARTICIPATION)
gTxVfo->SCANLIST2_PARTICIPATION = 0;
else
gTxVfo->SCANLIST1_PARTICIPATION = 1;
} }
SETTINGS_UpdateChannel(gTxVfo->CHANNEL_SAVE, gTxVfo, true); SETTINGS_UpdateChannel(gTxVfo->CHANNEL_SAVE, gTxVfo, true);
@@ -79,30 +73,19 @@ void toggle_chan_scanlist(void)
static void processFKeyFunction(const KEY_Code_t Key, const bool beep) static void processFKeyFunction(const KEY_Code_t Key, const bool beep)
{ {
uint8_t Band;
uint8_t Vfo = gEeprom.TX_VFO; uint8_t Vfo = gEeprom.TX_VFO;
if (gScreenToDisplay == DISPLAY_MENU) if (gScreenToDisplay == DISPLAY_MENU) {
{
// if (beep)
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL; gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
return; return;
} }
// if (beep)
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
switch (Key) switch (Key) {
{
case KEY_0: case KEY_0:
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
ACTION_FM(); ACTION_FM();
#else
// TODO: make use of this function key
#endif #endif
break; break;
@@ -113,11 +96,12 @@ static void processFKeyFunction(const KEY_Code_t Key, const bool beep)
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
#ifdef ENABLE_COPY_CHAN_TO_VFO #ifdef ENABLE_COPY_CHAN_TO_VFO
if (gEeprom.VFO_OPEN && !gCssBackgroundScan) if (!gEeprom.VFO_OPEN || gCssBackgroundScan) {
{ gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
return;
}
if (gScanStateDir != SCAN_OFF) if (gScanStateDir != SCAN_OFF) {
{
if (gCurrentFunction != FUNCTION_INCOMING || if (gCurrentFunction != FUNCTION_INCOMING ||
gRxReceptionMode == RX_MODE_NONE || gRxReceptionMode == RX_MODE_NONE ||
gScanPauseDelayIn_10ms == 0) gScanPauseDelayIn_10ms == 0)
@@ -131,10 +115,8 @@ static void processFKeyFunction(const KEY_Code_t Key, const bool beep)
if (IS_MR_CHANNEL(gEeprom.ScreenChannel[vfo])) if (IS_MR_CHANNEL(gEeprom.ScreenChannel[vfo]))
{ // copy channel to VFO, then swap to the VFO { // copy channel to VFO, then swap to the VFO
const unsigned int channel = FREQ_CHANNEL_FIRST + gEeprom.VfoInfo[vfo].Band; gEeprom.ScreenChannel[vfo] = FREQ_CHANNEL_FIRST + gEeprom.VfoInfo[vfo].Band;
gEeprom.VfoInfo[vfo].CHANNEL_SAVE = gEeprom.ScreenChannel[vfo];
gEeprom.ScreenChannel[vfo] = channel;
gEeprom.VfoInfo[vfo].CHANNEL_SAVE = channel;
RADIO_SelectVfos(); RADIO_SelectVfos();
RADIO_ApplyOffset(gRxVfo); RADIO_ApplyOffset(gRxVfo);
@@ -145,34 +127,29 @@ static void processFKeyFunction(const KEY_Code_t Key, const bool beep)
gUpdateDisplay = true; gUpdateDisplay = true;
} }
}
else
{
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
}
#endif #endif
return; return;
} }
if(gTxVfo->Band == 6 && gTxVfo->pRX->Frequency < 100000000) { #ifdef ENABLE_WIDE_RX
gTxVfo->pRX->Frequency = 100000000; if(gTxVfo->Band == BAND7_470MHz && gTxVfo->pRX->Frequency < _1GHz_in_KHz) {
gTxVfo->pRX->Frequency = _1GHz_in_KHz;
return; return;
} }
else { #endif
Band = gTxVfo->Band + 1; gTxVfo->Band += 1;
if (gSetting_350EN || Band != BAND5_350MHz) {
if (Band > BAND7_470MHz)
Band = BAND1_50MHz;
}
else
Band = BAND6_400MHz;
gTxVfo->Band = Band; if (gTxVfo->Band == BAND5_350MHz && !gSetting_350EN) {
// skip if not enabled
gEeprom.ScreenChannel[Vfo] = FREQ_CHANNEL_FIRST + Band; gTxVfo->Band += 1;
gEeprom.FreqChannel[Vfo] = FREQ_CHANNEL_FIRST + Band; } else if (gTxVfo->Band >= BAND_N_ELEM){
// go arround if overflowed
gTxVfo->Band = BAND1_50MHz;
} }
gEeprom.ScreenChannel[Vfo] = FREQ_CHANNEL_FIRST + gTxVfo->Band;
gEeprom.FreqChannel[Vfo] = FREQ_CHANNEL_FIRST + gTxVfo->Band;
gRequestSaveVFO = true; gRequestSaveVFO = true;
gVfoConfigureMode = VFO_CONFIGURE_RELOAD; gVfoConfigureMode = VFO_CONFIGURE_RELOAD;
@@ -214,13 +191,10 @@ static void processFKeyFunction(const KEY_Code_t Key, const bool beep)
case KEY_5: case KEY_5:
if(beep) { if(beep) {
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
if (!IS_NOAA_CHANNEL(gTxVfo->CHANNEL_SAVE)) {
if (!IS_NOAA_CHANNEL(gTxVfo->CHANNEL_SAVE))
{
gEeprom.ScreenChannel[Vfo] = gEeprom.NoaaChannel[gEeprom.TX_VFO]; gEeprom.ScreenChannel[Vfo] = gEeprom.NoaaChannel[gEeprom.TX_VFO];
} }
else else {
{
gEeprom.ScreenChannel[Vfo] = gEeprom.FreqChannel[gEeprom.TX_VFO]; gEeprom.ScreenChannel[Vfo] = gEeprom.FreqChannel[gEeprom.TX_VFO];
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_FREQUENCY_MODE; gAnotherVoiceID = VOICE_ID_FREQUENCY_MODE;
@@ -259,8 +233,7 @@ static void processFKeyFunction(const KEY_Code_t Key, const bool beep)
break; break;
case KEY_9: case KEY_9:
if (RADIO_CheckValidChannel(gEeprom.CHAN_1_CALL, false, 0)) if (RADIO_CheckValidChannel(gEeprom.CHAN_1_CALL, false, 0)) {
{
gEeprom.MrChannel[Vfo] = gEeprom.CHAN_1_CALL; gEeprom.MrChannel[Vfo] = gEeprom.CHAN_1_CALL;
gEeprom.ScreenChannel[Vfo] = gEeprom.CHAN_1_CALL; gEeprom.ScreenChannel[Vfo] = gEeprom.CHAN_1_CALL;
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
@@ -289,15 +262,10 @@ static void processFKeyFunction(const KEY_Code_t Key, const bool beep)
static void MAIN_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld) static void MAIN_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
{ {
if (bKeyHeld) if (bKeyHeld) { // key held down
{ // key held down if (bKeyPressed) {
if (gScreenToDisplay == DISPLAY_MAIN) {
if (bKeyPressed) if (gInputBoxIndex > 0) { // delete any inputted chars
{
if (gScreenToDisplay == DISPLAY_MAIN)
{
if (gInputBoxIndex > 0)
{ // delete any inputted chars
gInputBoxIndex = 0; gInputBoxIndex = 0;
gRequestDisplayScreen = DISPLAY_MAIN; gRequestDisplayScreen = DISPLAY_MAIN;
} }
@@ -308,7 +276,6 @@ static void MAIN_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
processFKeyFunction(Key, false); processFKeyFunction(Key, false);
} }
} }
return; return;
} }
@@ -318,24 +285,15 @@ static void MAIN_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
return; // don't use the key till it's released return; // don't use the key till it's released
} }
if (!gWasFKeyPressed) if (!gWasFKeyPressed) { // F-key wasn't pressed
{ // F-key wasn't pressed
const uint8_t Vfo = gEeprom.TX_VFO; const uint8_t Vfo = gEeprom.TX_VFO;
gKeyInputCountdown = key_input_timeout_500ms; gKeyInputCountdown = key_input_timeout_500ms;
INPUTBOX_Append(Key); INPUTBOX_Append(Key);
gRequestDisplayScreen = DISPLAY_MAIN; gRequestDisplayScreen = DISPLAY_MAIN;
if (IS_MR_CHANNEL(gTxVfo->CHANNEL_SAVE)) if (IS_MR_CHANNEL(gTxVfo->CHANNEL_SAVE)) { // user is entering channel number
{ // user is entering channel number
uint16_t Channel; if (gInputBoxIndex != 3) {
if (gInputBoxIndex != 3)
{
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = (VOICE_ID_t)Key; gAnotherVoiceID = (VOICE_ID_t)Key;
#endif #endif
@@ -345,10 +303,9 @@ static void MAIN_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
gInputBoxIndex = 0; gInputBoxIndex = 0;
Channel = ((gInputBox[0] * 100) + (gInputBox[1] * 10) + gInputBox[2]) - 1; const uint16_t Channel = ((gInputBox[0] * 100) + (gInputBox[1] * 10) + gInputBox[2]) - 1;
if (!RADIO_CheckValidChannel(Channel, false, 0)) if (!RADIO_CheckValidChannel(Channel, false, 0)) {
{
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL; gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
return; return;
} }
@@ -371,46 +328,32 @@ static void MAIN_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
if (IS_FREQ_CHANNEL(gTxVfo->CHANNEL_SAVE)) if (IS_FREQ_CHANNEL(gTxVfo->CHANNEL_SAVE))
{ // user is entering a frequency { // user is entering a frequency
uint32_t Frequency; #ifdef ENABLE_VOICE
bool isGigaF = gTxVfo->pRX->Frequency >= 100000000;
if (gInputBoxIndex < 6 + isGigaF)
{
#ifdef ENABLE_VOICE
gAnotherVoiceID = (VOICE_ID_t)Key; gAnotherVoiceID = (VOICE_ID_t)Key;
#endif #endif
bool isGigaF = gTxVfo->pRX->Frequency >= _1GHz_in_KHz;
if (gInputBoxIndex < 6 + isGigaF) {
return; return;
} }
gInputBoxIndex = 0; gInputBoxIndex = 0;
Frequency = StrToUL(INPUTBOX_GetAscii()) * 100; uint32_t Frequency = StrToUL(INPUTBOX_GetAscii()) * 100;
// clamp the frequency entered to some valid value // clamp the frequency entered to some valid value
if (Frequency < frequencyBandTable[0].lower) if (Frequency < frequencyBandTable[0].lower) {
{
Frequency = frequencyBandTable[0].lower; Frequency = frequencyBandTable[0].lower;
} }
else else if (Frequency >= BX4819_band1.upper && Frequency < BX4819_band2.lower) {
if (Frequency >= BX4819_band1.upper && Frequency < BX4819_band2.lower)
{
const uint32_t center = (BX4819_band1.upper + BX4819_band2.lower) / 2; const uint32_t center = (BX4819_band1.upper + BX4819_band2.lower) / 2;
Frequency = (Frequency < center) ? BX4819_band1.upper : BX4819_band2.lower; Frequency = (Frequency < center) ? BX4819_band1.upper : BX4819_band2.lower;
} }
else else if (Frequency > frequencyBandTable[BAND_N_ELEM - 1].upper) {
if (Frequency > frequencyBandTable[ARRAY_SIZE(frequencyBandTable) - 1].upper) Frequency = frequencyBandTable[BAND_N_ELEM - 1].upper;
{
Frequency = frequencyBandTable[ARRAY_SIZE(frequencyBandTable) - 1].upper;
} }
{
const FREQUENCY_Band_t band = FREQUENCY_GetBand(Frequency); const FREQUENCY_Band_t band = FREQUENCY_GetBand(Frequency);
#ifdef ENABLE_VOICE if (gTxVfo->Band != band) {
gAnotherVoiceID = (VOICE_ID_t)Key;
#endif
if (gTxVfo->Band != band)
{
gTxVfo->Band = band; gTxVfo->Band = band;
gEeprom.ScreenChannel[Vfo] = band + FREQ_CHANNEL_FIRST; gEeprom.ScreenChannel[Vfo] = band + FREQ_CHANNEL_FIRST;
gEeprom.FreqChannel[Vfo] = band + FREQ_CHANNEL_FIRST; gEeprom.FreqChannel[Vfo] = band + FREQ_CHANNEL_FIRST;
@@ -432,18 +375,13 @@ static void MAIN_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
gRequestSaveChannel = 1; gRequestSaveChannel = 1;
return; return;
}
} }
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
else else
if (IS_NOAA_CHANNEL(gTxVfo->CHANNEL_SAVE)) if (IS_NOAA_CHANNEL(gTxVfo->CHANNEL_SAVE))
{ // user is entering NOAA channel { // user is entering NOAA channel
if (gInputBoxIndex != 2) {
uint8_t Channel;
if (gInputBoxIndex != 2)
{
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = (VOICE_ID_t)Key; gAnotherVoiceID = (VOICE_ID_t)Key;
#endif #endif
@@ -453,9 +391,8 @@ static void MAIN_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
gInputBoxIndex = 0; gInputBoxIndex = 0;
Channel = (gInputBox[0] * 10) + gInputBox[1]; uint8_t Channel = (gInputBox[0] * 10) + gInputBox[1];
if (Channel >= 1 && Channel <= ARRAY_SIZE(NoaaFrequencyTable)) if (Channel >= 1 && Channel <= ARRAY_SIZE(NoaaFrequencyTable)) {
{
Channel += NOAA_CHANNEL_FIRST; Channel += NOAA_CHANNEL_FIRST;
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = (VOICE_ID_t)Key; gAnotherVoiceID = (VOICE_ID_t)Key;
@@ -482,9 +419,7 @@ static void MAIN_Key_DIGITS(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
static void MAIN_Key_EXIT(bool bKeyPressed, bool bKeyHeld) static void MAIN_Key_EXIT(bool bKeyPressed, bool bKeyHeld)
{ {
if (!bKeyHeld && bKeyPressed) if (!bKeyHeld && bKeyPressed) { // exit key pressed
{ // exit key pressed
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
@@ -496,47 +431,42 @@ static void MAIN_Key_EXIT(bool bKeyPressed, bool bKeyHeld)
} }
#endif #endif
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
if (!gFmRadioMode) if (!gFmRadioMode)
#endif #endif
{
if (gScanStateDir == SCAN_OFF)
{ {
if (gScanStateDir == SCAN_OFF) {
if (gInputBoxIndex == 0) if (gInputBoxIndex == 0)
return; return;
gInputBox[--gInputBoxIndex] = 10; gInputBox[--gInputBoxIndex] = 10;
gKeyInputCountdown = key_input_timeout_500ms; gKeyInputCountdown = key_input_timeout_500ms;
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
if (gInputBoxIndex == 0) if (gInputBoxIndex == 0)
gAnotherVoiceID = VOICE_ID_CANCEL; gAnotherVoiceID = VOICE_ID_CANCEL;
#endif #endif
} }
else else {
{
gScanKeepResult = false; gScanKeepResult = false;
CHFRSCANNER_Stop(); CHFRSCANNER_Stop();
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = VOICE_ID_SCANNING_STOP; gAnotherVoiceID = VOICE_ID_SCANNING_STOP;
#endif #endif
} }
gRequestDisplayScreen = DISPLAY_MAIN; gRequestDisplayScreen = DISPLAY_MAIN;
return; return;
} }
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
ACTION_FM(); ACTION_FM();
#endif #endif
return; return;
} }
if (bKeyHeld && bKeyPressed) if (bKeyHeld && bKeyPressed) { // exit key held down
{ // exit key held down
if (gInputBoxIndex > 0 || gDTMF_InputBox_Index > 0 || gDTMF_InputMode) if (gInputBoxIndex > 0 || gDTMF_InputBox_Index > 0 || gDTMF_InputMode)
{ // cancel key input mode (channel/frequency entry) { // cancel key input mode (channel/frequency entry)
gDTMF_InputMode = false; gDTMF_InputMode = false;
@@ -551,22 +481,16 @@ static void MAIN_Key_EXIT(bool bKeyPressed, bool bKeyHeld)
static void MAIN_Key_MENU(const bool bKeyPressed, const bool bKeyHeld) static void MAIN_Key_MENU(const bool bKeyPressed, const bool bKeyHeld)
{ {
if (bKeyPressed && !bKeyHeld) if (bKeyPressed && !bKeyHeld) // menu key pressed
// menu key pressed
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
if (bKeyHeld) if (bKeyHeld) { // menu key held down (long press)
{ // menu key held down (long press) if (bKeyPressed) { // long press MENU key
if (bKeyPressed)
{ // long press MENU key
gWasFKeyPressed = false; gWasFKeyPressed = false;
if (gScreenToDisplay == DISPLAY_MAIN) if (gScreenToDisplay == DISPLAY_MAIN) {
{ if (gInputBoxIndex > 0) { // delete any inputted chars
if (gInputBoxIndex > 0)
{ // delete any inputted chars
gInputBoxIndex = 0; gInputBoxIndex = 0;
gRequestDisplayScreen = DISPLAY_MAIN; gRequestDisplayScreen = DISPLAY_MAIN;
} }
@@ -581,13 +505,11 @@ static void MAIN_Key_MENU(const bool bKeyPressed, const bool bKeyHeld)
return; return;
} }
if (!bKeyPressed && !gDTMF_InputMode) if (!bKeyPressed && !gDTMF_InputMode) { // menu key released
{ // menu key released const bool bFlag = !gInputBoxIndex;
const bool bFlag = (gInputBoxIndex == 0);
gInputBoxIndex = 0; gInputBoxIndex = 0;
if (bFlag) if (bFlag) {
{
if (gScanStateDir != SCAN_OFF) { if (gScanStateDir != SCAN_OFF) {
CHFRSCANNER_Stop(); CHFRSCANNER_Stop();
return; return;
@@ -599,8 +521,7 @@ static void MAIN_Key_MENU(const bool bKeyPressed, const bool bKeyHeld)
gAnotherVoiceID = VOICE_ID_MENU; gAnotherVoiceID = VOICE_ID_MENU;
#endif #endif
} }
else else {
{
gRequestDisplayScreen = DISPLAY_MAIN; gRequestDisplayScreen = DISPLAY_MAIN;
} }
} }
@@ -611,15 +532,13 @@ static void MAIN_Key_STAR(bool bKeyPressed, bool bKeyHeld)
if (gCurrentFunction == FUNCTION_TRANSMIT) if (gCurrentFunction == FUNCTION_TRANSMIT)
return; return;
if (gInputBoxIndex) if (gInputBoxIndex) {
{
if (!bKeyHeld && bKeyPressed) if (!bKeyHeld && bKeyPressed)
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL; gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
return; return;
} }
if (bKeyHeld && !gWasFKeyPressed) // long press if (bKeyHeld && !gWasFKeyPressed){ // long press
{
if (!bKeyPressed) // released if (!bKeyPressed) // released
return; return;
@@ -629,10 +548,7 @@ static void MAIN_Key_STAR(bool bKeyPressed, bool bKeyHeld)
return; return;
} }
if (bKeyPressed) // just pressed if (bKeyPressed) { // just pressed
{
// gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
gBeepToPlay = BEEP_880HZ_40MS_OPTIONAL;
return; return;
} }
@@ -640,15 +556,17 @@ static void MAIN_Key_STAR(bool bKeyPressed, bool bKeyHeld)
if (!gWasFKeyPressed) // pressed without the F-key if (!gWasFKeyPressed) // pressed without the F-key
{ {
if (gScanStateDir == SCAN_OFF
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
if (gScanStateDir == SCAN_OFF && !IS_NOAA_CHANNEL(gTxVfo->CHANNEL_SAVE)) && !IS_NOAA_CHANNEL(gTxVfo->CHANNEL_SAVE)
#else #endif
if (gScanStateDir == SCAN_OFF) #ifdef ENABLE_SCAN_RANGES
#endif && gScanRangeStart == 0
#endif
)
{ // start entering a DTMF string { // start entering a DTMF string
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
memmove(gDTMF_InputBox, gDTMF_String, MIN(sizeof(gDTMF_InputBox), sizeof(gDTMF_String) - 1)); memcpy(gDTMF_InputBox, gDTMF_String, MIN(sizeof(gDTMF_InputBox), sizeof(gDTMF_String) - 1));
gDTMF_InputBox_Index = 0; gDTMF_InputBox_Index = 0;
gDTMF_InputMode = true; gDTMF_InputMode = true;
@@ -656,6 +574,8 @@ static void MAIN_Key_STAR(bool bKeyPressed, bool bKeyHeld)
gRequestDisplayScreen = DISPLAY_MAIN; gRequestDisplayScreen = DISPLAY_MAIN;
} }
else
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
} }
else else
{ // with the F-key { // with the F-key
@@ -667,7 +587,6 @@ static void MAIN_Key_STAR(bool bKeyPressed, bool bKeyHeld)
return; return;
} }
#endif #endif
// scan the CTCSS/DCS code // scan the CTCSS/DCS code
gBackup_CROSS_BAND_RX_TX = gEeprom.CROSS_BAND_RX_TX; gBackup_CROSS_BAND_RX_TX = gEeprom.CROSS_BAND_RX_TX;
gEeprom.CROSS_BAND_RX_TX = CROSS_BAND_OFF; gEeprom.CROSS_BAND_RX_TX = CROSS_BAND_OFF;
@@ -676,7 +595,6 @@ static void MAIN_Key_STAR(bool bKeyPressed, bool bKeyHeld)
} }
gPttWasReleased = true; gPttWasReleased = true;
gUpdateStatus = true; gUpdateStatus = true;
} }
@@ -684,58 +602,45 @@ static void MAIN_Key_UP_DOWN(bool bKeyPressed, bool bKeyHeld, int8_t Direction)
{ {
uint8_t Channel = gEeprom.ScreenChannel[gEeprom.TX_VFO]; uint8_t Channel = gEeprom.ScreenChannel[gEeprom.TX_VFO];
if (bKeyHeld || !bKeyPressed) if (bKeyHeld || !bKeyPressed) { // key held or released
{
if (gInputBoxIndex > 0) if (gInputBoxIndex > 0)
return; return; // leave if input box active
if (!bKeyPressed) if (!bKeyPressed) {
{ if (!bKeyHeld || IS_FREQ_CHANNEL(Channel))
if (!bKeyHeld)
return; return;
// if released long button press and not in freq mode
if (IS_FREQ_CHANNEL(Channel)) #ifdef ENABLE_VOICE
return; AUDIO_SetDigitVoice(0, gTxVfo->CHANNEL_SAVE + 1); // say channel number
#ifdef ENABLE_VOICE
AUDIO_SetDigitVoice(0, gTxVfo->CHANNEL_SAVE + 1);
gAnotherVoiceID = (VOICE_ID_t)0xFE; gAnotherVoiceID = (VOICE_ID_t)0xFE;
#endif #endif
return; return;
} }
} }
else else { // short pressed
{ if (gInputBoxIndex > 0) {
if (gInputBoxIndex > 0)
{
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL; gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
return; return;
} }
gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL; gBeepToPlay = BEEP_1KHZ_60MS_OPTIONAL;
} }
if (gScanStateDir == SCAN_OFF) if (gScanStateDir == SCAN_OFF) {
{ #ifdef ENABLE_NOAA
#ifdef ENABLE_NOAA
if (!IS_NOAA_CHANNEL(Channel)) if (!IS_NOAA_CHANNEL(Channel))
#endif #endif
{ {
uint8_t Next; uint8_t Next;
if (IS_FREQ_CHANNEL(Channel)) { // step/down in frequency
if (IS_FREQ_CHANNEL(Channel))
{ // step/down in frequency
const uint32_t frequency = APP_SetFrequencyByStep(gTxVfo, Direction); const uint32_t frequency = APP_SetFrequencyByStep(gTxVfo, Direction);
if (RX_freq_check(frequency) < 0) if (RX_freq_check(frequency) < 0) { // frequency not allowed
{ // frequency not allowed
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL; gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
return; return;
} }
gTxVfo->freq_config_RX.Frequency = frequency; gTxVfo->freq_config_RX.Frequency = frequency;
BK4819_SetFrequency(frequency);
BK4819_RX_TurnOn();
gRequestSaveChannel = 1; gRequestSaveChannel = 1;
return; return;
} }
@@ -743,29 +648,25 @@ static void MAIN_Key_UP_DOWN(bool bKeyPressed, bool bKeyHeld, int8_t Direction)
Next = RADIO_FindNextChannel(Channel + Direction, Direction, false, 0); Next = RADIO_FindNextChannel(Channel + Direction, Direction, false, 0);
if (Next == 0xFF) if (Next == 0xFF)
return; return;
if (Channel == Next) if (Channel == Next)
return; return;
gEeprom.MrChannel[gEeprom.TX_VFO] = Next; gEeprom.MrChannel[gEeprom.TX_VFO] = Next;
gEeprom.ScreenChannel[gEeprom.TX_VFO] = Next; gEeprom.ScreenChannel[gEeprom.TX_VFO] = Next;
if (!bKeyHeld) if (!bKeyHeld) {
{ #ifdef ENABLE_VOICE
#ifdef ENABLE_VOICE
AUDIO_SetDigitVoice(0, Next + 1); AUDIO_SetDigitVoice(0, Next + 1);
gAnotherVoiceID = (VOICE_ID_t)0xFE; gAnotherVoiceID = (VOICE_ID_t)0xFE;
#endif #endif
} }
} }
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
else else {
{
Channel = NOAA_CHANNEL_FIRST + NUMBER_AddWithWraparound(gEeprom.ScreenChannel[gEeprom.TX_VFO] - NOAA_CHANNEL_FIRST, Direction, 0, 9); Channel = NOAA_CHANNEL_FIRST + NUMBER_AddWithWraparound(gEeprom.ScreenChannel[gEeprom.TX_VFO] - NOAA_CHANNEL_FIRST, Direction, 0, 9);
gEeprom.NoaaChannel[gEeprom.TX_VFO] = Channel; gEeprom.NoaaChannel[gEeprom.TX_VFO] = Channel;
gEeprom.ScreenChannel[gEeprom.TX_VFO] = Channel; gEeprom.ScreenChannel[gEeprom.TX_VFO] = Channel;
} }
#endif #endif
gRequestSaveVFO = true; gRequestSaveVFO = true;
gVfoConfigureMode = VFO_CONFIGURE_RELOAD; gVfoConfigureMode = VFO_CONFIGURE_RELOAD;
@@ -782,17 +683,15 @@ static void MAIN_Key_UP_DOWN(bool bKeyPressed, bool bKeyHeld, int8_t Direction)
void MAIN_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld) void MAIN_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
{ {
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
if (gFmRadioMode && Key != KEY_PTT && Key != KEY_EXIT) if (gFmRadioMode && Key != KEY_PTT && Key != KEY_EXIT) {
{
if (!bKeyHeld && bKeyPressed) if (!bKeyHeld && bKeyPressed)
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL; gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
return; return;
} }
#endif #endif
if (gDTMF_InputMode && bKeyPressed && !bKeyHeld) if (gDTMF_InputMode && bKeyPressed && !bKeyHeld) {
{
const char Character = DTMF_GetCharacter(Key); const char Character = DTMF_GetCharacter(Key);
if (Character != 0xFF) if (Character != 0xFF)
{ // add key to DTMF string { // add key to DTMF string
@@ -811,18 +710,8 @@ void MAIN_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
// Key = KEY_SIDE2; // what's this doing ??? // Key = KEY_SIDE2; // what's this doing ???
// } // }
switch (Key) switch (Key) {
{ case KEY_0...KEY_9:
case KEY_0:
case KEY_1:
case KEY_2:
case KEY_3:
case KEY_4:
case KEY_5:
case KEY_6:
case KEY_7:
case KEY_8:
case KEY_9:
MAIN_Key_DIGITS(Key, bKeyPressed, bKeyHeld); MAIN_Key_DIGITS(Key, bKeyPressed, bKeyHeld);
break; break;
case KEY_MENU: case KEY_MENU:

View File

@@ -40,7 +40,6 @@
#endif #endif
#include "ui/inputbox.h" #include "ui/inputbox.h"
#include "ui/menu.h" #include "ui/menu.h"
#include "ui/menu.h"
#include "ui/ui.h" #include "ui/ui.h"
#ifndef ARRAY_SIZE #ifndef ARRAY_SIZE
@@ -123,7 +122,7 @@ int MENU_GetLimits(uint8_t menu_id, int32_t *pMin, int32_t *pMax)
case MENU_STEP: case MENU_STEP:
*pMin = 0; *pMin = 0;
*pMax = ARRAY_SIZE(gStepFrequencyTable) - 1; *pMax = STEP_N_ELEM - 1;
break; break;
case MENU_ABR: case MENU_ABR:
@@ -198,7 +197,7 @@ int MENU_GetLimits(uint8_t menu_id, int32_t *pMin, int32_t *pMax)
case MENU_R_CTCS: case MENU_R_CTCS:
case MENU_T_CTCS: case MENU_T_CTCS:
*pMin = 0; *pMin = 0;
*pMax = ARRAY_SIZE(CTCSS_Options) - 1; *pMax = ARRAY_SIZE(CTCSS_Options);
break; break;
case MENU_W_N: case MENU_W_N:
@@ -224,13 +223,6 @@ int MENU_GetLimits(uint8_t menu_id, int32_t *pMin, int32_t *pMax)
*pMax = ARRAY_SIZE(gSubMenu_RX_TX) - 1; *pMax = ARRAY_SIZE(gSubMenu_RX_TX) - 1;
break; break;
#ifdef ENABLE_AM_FIX_TEST1
case MENU_AM_FIX_TEST1:
*pMin = 0;
*pMax = ARRAY_SIZE(gSubMenu_AM_fix_test1) - 1;
break;
#endif
#ifdef ENABLE_AM_FIX #ifdef ENABLE_AM_FIX
case MENU_AM_FIX: case MENU_AM_FIX:
#endif #endif
@@ -382,7 +374,6 @@ void MENU_AcceptSetting(void)
{ {
int32_t Min; int32_t Min;
int32_t Max; int32_t Max;
uint8_t Code;
FREQ_Config_t *pConfig = &gTxVfo->freq_config_RX; FREQ_Config_t *pConfig = &gTxVfo->freq_config_RX;
if (!MENU_GetLimits(UI_MENU_GetCurrentMenuId(), &Min, &Max)) if (!MENU_GetLimits(UI_MENU_GetCurrentMenuId(), &Min, &Max))
@@ -421,62 +412,45 @@ void MENU_AcceptSetting(void)
// Fallthrough // Fallthrough
case MENU_R_DCS: case MENU_R_DCS: {
if (gSubMenuSelection == 0) if (gSubMenuSelection == 0) {
{ if (pConfig->CodeType == CODE_TYPE_CONTINUOUS_TONE) {
if (pConfig->CodeType != CODE_TYPE_DIGITAL && pConfig->CodeType != CODE_TYPE_REVERSE_DIGITAL)
{
gRequestSaveChannel = 1;
return; return;
} }
Code = 0; pConfig->Code = 0;
pConfig->CodeType = CODE_TYPE_OFF; pConfig->CodeType = CODE_TYPE_OFF;
} }
else else if (gSubMenuSelection < 105) {
if (gSubMenuSelection < 105)
{
pConfig->CodeType = CODE_TYPE_DIGITAL; pConfig->CodeType = CODE_TYPE_DIGITAL;
Code = gSubMenuSelection - 1; pConfig->Code = gSubMenuSelection - 1;
} }
else else {
{
pConfig->CodeType = CODE_TYPE_REVERSE_DIGITAL; pConfig->CodeType = CODE_TYPE_REVERSE_DIGITAL;
Code = gSubMenuSelection - 105; pConfig->Code = gSubMenuSelection - 105;
} }
pConfig->Code = Code;
gRequestSaveChannel = 1; gRequestSaveChannel = 1;
return; return;
}
case MENU_T_CTCS: case MENU_T_CTCS:
pConfig = &gTxVfo->freq_config_TX; pConfig = &gTxVfo->freq_config_TX;
[[fallthrough]]; [[fallthrough]];
case MENU_R_CTCS: case MENU_R_CTCS: {
if (gSubMenuSelection == 0) if (gSubMenuSelection == 0) {
{ if (pConfig->CodeType != CODE_TYPE_CONTINUOUS_TONE) {
if (pConfig->CodeType != CODE_TYPE_CONTINUOUS_TONE)
{
gRequestSaveChannel = 1;
return; return;
} }
Code = 0; pConfig->Code = 0;
pConfig->Code = Code;
pConfig->CodeType = CODE_TYPE_OFF; pConfig->CodeType = CODE_TYPE_OFF;
BK4819_ExitSubAu();
} }
else else {
{ pConfig->Code = gSubMenuSelection - 1;
pConfig->CodeType = CODE_TYPE_CONTINUOUS_TONE; pConfig->CodeType = CODE_TYPE_CONTINUOUS_TONE;
Code = gSubMenuSelection - 1;
pConfig->Code = Code;
BK4819_SetCTCSSFrequency(CTCSS_Options[Code]);
} }
gRequestSaveChannel = 1; gRequestSaveChannel = 1;
return; return;
}
case MENU_SFT_D: case MENU_SFT_D:
gTxVfo->TX_OFFSET_FREQUENCY_DIRECTION = gSubMenuSelection; gTxVfo->TX_OFFSET_FREQUENCY_DIRECTION = gSubMenuSelection;
gRequestSaveChannel = 1; gRequestSaveChannel = 1;
@@ -521,20 +495,13 @@ void MENU_AcceptSetting(void)
return; return;
case MENU_MEM_NAME: case MENU_MEM_NAME:
{ // trailing trim for (int i = 9; i >= 0; i--) {
for (int i = 9; i >= 0; i--)
{
if (edit[i] != ' ' && edit[i] != '_' && edit[i] != 0x00 && edit[i] != 0xff) if (edit[i] != ' ' && edit[i] != '_' && edit[i] != 0x00 && edit[i] != 0xff)
break; break;
edit[i] = ' '; edit[i] = ' ';
} }
}
// save the channel name SETTINGS_SaveChannelName(gSubMenuSelection, edit);
memset(gTxVfo->Name, 0, sizeof(gTxVfo->Name));
memmove(gTxVfo->Name, edit, 10);
SETTINGS_SaveChannel(gSubMenuSelection, gEeprom.TX_VFO, gTxVfo, 3);
gFlagReconfigureVfos = true;
return; return;
case MENU_SAVE: case MENU_SAVE:
@@ -546,7 +513,7 @@ void MENU_AcceptSetting(void)
gEeprom.VOX_SWITCH = gSubMenuSelection != 0; gEeprom.VOX_SWITCH = gSubMenuSelection != 0;
if (gEeprom.VOX_SWITCH) if (gEeprom.VOX_SWITCH)
gEeprom.VOX_LEVEL = gSubMenuSelection - 1; gEeprom.VOX_LEVEL = gSubMenuSelection - 1;
BOARD_EEPROM_LoadCalibration(); SETTINGS_LoadCalibration();
gFlagReconfigureVfos = true; gFlagReconfigureVfos = true;
gUpdateStatus = true; gUpdateStatus = true;
break; break;
@@ -630,7 +597,7 @@ void MENU_AcceptSetting(void)
case MENU_MIC: case MENU_MIC:
gEeprom.MIC_SENSITIVITY = gSubMenuSelection; gEeprom.MIC_SENSITIVITY = gSubMenuSelection;
BOARD_EEPROM_LoadCalibration(); SETTINGS_LoadCalibration();
gFlagReconfigureVfos = true; gFlagReconfigureVfos = true;
break; break;
@@ -714,7 +681,7 @@ void MENU_AcceptSetting(void)
GUI_SelectNextDisplay(DISPLAY_MAIN); GUI_SelectNextDisplay(DISPLAY_MAIN);
gDTMF_InputMode = true; gDTMF_InputMode = true;
gDTMF_InputBox_Index = 3; gDTMF_InputBox_Index = 3;
memmove(gDTMF_InputBox, gDTMF_ID, 4); memcpy(gDTMF_InputBox, gDTMF_ID, 4);
gRequestDisplayScreen = DISPLAY_INVALID; gRequestDisplayScreen = DISPLAY_INVALID;
} }
return; return;
@@ -740,14 +707,6 @@ void MENU_AcceptSetting(void)
break; break;
#endif #endif
#ifdef ENABLE_AM_FIX_TEST1
case MENU_AM_FIX_TEST1:
gSetting_AM_fix_test1 = gSubMenuSelection;
gVfoConfigureMode = VFO_CONFIGURE_RELOAD;
gFlagResetVfos = true;
break;
#endif
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
case MENU_NOAA_S: case MENU_NOAA_S:
gEeprom.NOAA_AUTO_SCAN = gSubMenuSelection; gEeprom.NOAA_AUTO_SCAN = gSubMenuSelection;
@@ -762,7 +721,7 @@ void MENU_AcceptSetting(void)
return; return;
case MENU_RESET: case MENU_RESET:
BOARD_FactoryReset(gSubMenuSelection); SETTINGS_FactoryReset(gSubMenuSelection);
return; return;
case MENU_350TX: case MENU_350TX:
@@ -1124,13 +1083,6 @@ void MENU_ShowCurrentSetting(void)
gSubMenuSelection = gSetting_AM_fix; gSubMenuSelection = gSetting_AM_fix;
break; break;
#endif #endif
#ifdef ENABLE_AM_FIX_TEST1
case MENU_AM_FIX_TEST1:
gSubMenuSelection = gSetting_AM_fix_test1;
break;
#endif
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
case MENU_NOAA_S: case MENU_NOAA_S:
gSubMenuSelection = gEeprom.NOAA_AUTO_SCAN; gSubMenuSelection = gEeprom.NOAA_AUTO_SCAN;
@@ -1187,8 +1139,7 @@ void MENU_ShowCurrentSetting(void)
case MENU_F1LONG: case MENU_F1LONG:
case MENU_F2SHRT: case MENU_F2SHRT:
case MENU_F2LONG: case MENU_F2LONG:
case MENU_MLONG: case MENU_MLONG: {
{
uint8_t * fun[]= { uint8_t * fun[]= {
&gEeprom.KEY_1_SHORT_PRESS_ACTION, &gEeprom.KEY_1_SHORT_PRESS_ACTION,
&gEeprom.KEY_1_LONG_PRESS_ACTION, &gEeprom.KEY_1_LONG_PRESS_ACTION,
@@ -1250,17 +1201,14 @@ static void MENU_Key_0_to_9(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
gRequestDisplayScreen = DISPLAY_MENU; gRequestDisplayScreen = DISPLAY_MENU;
if (!gIsInSubMenu) if (!gIsInSubMenu) {
{ switch (gInputBoxIndex) {
switch (gInputBoxIndex)
{
case 2: case 2:
gInputBoxIndex = 0; gInputBoxIndex = 0;
Value = (gInputBox[0] * 10) + gInputBox[1]; Value = (gInputBox[0] * 10) + gInputBox[1];
if (Value > 0 && Value <= gMenuListCount) if (Value > 0 && Value <= gMenuListCount) {
{
gMenuCursor = Value - 1; gMenuCursor = Value - 1;
gFlagRefreshSetting = true; gFlagRefreshSetting = true;
return; return;
@@ -1274,8 +1222,7 @@ static void MENU_Key_0_to_9(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
[[fallthrough]]; [[fallthrough]];
case 1: case 1:
Value = gInputBox[0]; Value = gInputBox[0];
if (Value > 0 && Value <= gMenuListCount) if (Value > 0 && Value <= gMenuListCount) {
{
gMenuCursor = Value - 1; gMenuCursor = Value - 1;
gFlagRefreshSetting = true; gFlagRefreshSetting = true;
return; return;
@@ -1289,21 +1236,19 @@ static void MENU_Key_0_to_9(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
return; return;
} }
if (UI_MENU_GetCurrentMenuId() == MENU_OFFSET) if (UI_MENU_GetCurrentMenuId() == MENU_OFFSET) {
{
uint32_t Frequency; uint32_t Frequency;
if (gInputBoxIndex < 6) if (gInputBoxIndex < 6) { // invalid frequency
{ // invalid frequency #ifdef ENABLE_VOICE
#ifdef ENABLE_VOICE
gAnotherVoiceID = (VOICE_ID_t)Key; gAnotherVoiceID = (VOICE_ID_t)Key;
#endif #endif
return; return;
} }
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
gAnotherVoiceID = (VOICE_ID_t)Key; gAnotherVoiceID = (VOICE_ID_t)Key;
#endif #endif
Frequency = StrToUL(INPUTBOX_GetAscii())*100; Frequency = StrToUL(INPUTBOX_GetAscii())*100;
gSubMenuSelection = FREQUENCY_RoundToStep(Frequency, gTxVfo->StepFrequency); gSubMenuSelection = FREQUENCY_RoundToStep(Frequency, gTxVfo->StepFrequency);
@@ -1318,11 +1263,10 @@ static void MENU_Key_0_to_9(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
UI_MENU_GetCurrentMenuId() == MENU_MEM_NAME) UI_MENU_GetCurrentMenuId() == MENU_MEM_NAME)
{ // enter 3-digit channel number { // enter 3-digit channel number
if (gInputBoxIndex < 3) if (gInputBoxIndex < 3) {
{ #ifdef ENABLE_VOICE
#ifdef ENABLE_VOICE
gAnotherVoiceID = (VOICE_ID_t)Key; gAnotherVoiceID = (VOICE_ID_t)Key;
#endif #endif
gRequestDisplayScreen = DISPLAY_MENU; gRequestDisplayScreen = DISPLAY_MENU;
return; return;
} }
@@ -1331,11 +1275,10 @@ static void MENU_Key_0_to_9(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
Value = ((gInputBox[0] * 100) + (gInputBox[1] * 10) + gInputBox[2]) - 1; Value = ((gInputBox[0] * 100) + (gInputBox[1] * 10) + gInputBox[2]) - 1;
if (IS_MR_CHANNEL(Value)) if (IS_MR_CHANNEL(Value)) {
{ #ifdef ENABLE_VOICE
#ifdef ENABLE_VOICE
gAnotherVoiceID = (VOICE_ID_t)Key; gAnotherVoiceID = (VOICE_ID_t)Key;
#endif #endif
gSubMenuSelection = Value; gSubMenuSelection = Value;
return; return;
} }
@@ -1344,8 +1287,7 @@ static void MENU_Key_0_to_9(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
return; return;
} }
if (MENU_GetLimits(UI_MENU_GetCurrentMenuId(), &Min, &Max)) if (MENU_GetLimits(UI_MENU_GetCurrentMenuId(), &Min, &Max)) {
{
gInputBoxIndex = 0; gInputBoxIndex = 0;
gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL; gBeepToPlay = BEEP_500HZ_60MS_DOUBLE_BEEP_OPTIONAL;
return; return;
@@ -1353,8 +1295,7 @@ static void MENU_Key_0_to_9(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
Offset = (Max >= 100) ? 3 : (Max >= 10) ? 2 : 1; Offset = (Max >= 100) ? 3 : (Max >= 10) ? 2 : 1;
switch (gInputBoxIndex) switch (gInputBoxIndex) {
{
case 1: case 1:
Value = gInputBox[0]; Value = gInputBox[0];
break; break;
@@ -1369,8 +1310,7 @@ static void MENU_Key_0_to_9(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
if (Offset == gInputBoxIndex) if (Offset == gInputBoxIndex)
gInputBoxIndex = 0; gInputBoxIndex = 0;
if (Value <= Max) if (Value <= Max) {
{
gSubMenuSelection = Value; gSubMenuSelection = Value;
return; return;
} }
@@ -1387,6 +1327,10 @@ static void MENU_Key_EXIT(bool bKeyPressed, bool bKeyHeld)
if (!gCssBackgroundScan) if (!gCssBackgroundScan)
{ {
/* Backlight related menus set full brightness. Set it back to the configured value,
just in case we are exiting from one of them. */
BACKLIGHT_TurnOn();
if (gIsInSubMenu) if (gIsInSubMenu)
{ {
if (gInputBoxIndex == 0 || UI_MENU_GetCurrentMenuId() != MENU_OFFSET) if (gInputBoxIndex == 0 || UI_MENU_GetCurrentMenuId() != MENU_OFFSET)
@@ -1448,7 +1392,13 @@ static void MENU_Key_MENU(const bool bKeyPressed, const bool bKeyHeld)
if (UI_MENU_GetCurrentMenuId() != MENU_SCR) if (UI_MENU_GetCurrentMenuId() != MENU_SCR)
gAnotherVoiceID = MenuList[gMenuCursor].voice_id; gAnotherVoiceID = MenuList[gMenuCursor].voice_id;
#endif #endif
if (UI_MENU_GetCurrentMenuId() == MENU_UPCODE
|| UI_MENU_GetCurrentMenuId() == MENU_DWCODE
#ifdef ENABLE_DTMF_CALLING
|| UI_MENU_GetCurrentMenuId() == MENU_ANI_ID
#endif
)
return;
#if 1 #if 1
if (UI_MENU_GetCurrentMenuId() == MENU_DEL_CH || UI_MENU_GetCurrentMenuId() == MENU_MEM_NAME) if (UI_MENU_GetCurrentMenuId() == MENU_DEL_CH || UI_MENU_GetCurrentMenuId() == MENU_MEM_NAME)
if (!RADIO_CheckValidChannel(gSubMenuSelection, false, 0)) if (!RADIO_CheckValidChannel(gSubMenuSelection, false, 0))
@@ -1474,7 +1424,7 @@ static void MENU_Key_MENU(const bool bKeyPressed, const bool bKeyHeld)
if (!RADIO_CheckValidChannel(gSubMenuSelection, false, 0)) if (!RADIO_CheckValidChannel(gSubMenuSelection, false, 0))
return; return;
BOARD_fetchChannelName(edit, gSubMenuSelection); SETTINGS_FetchChannelName(edit, gSubMenuSelection);
// pad the channel name out with '_' // pad the channel name out with '_'
edit_index = strlen(edit); edit_index = strlen(edit);
@@ -1484,7 +1434,7 @@ static void MENU_Key_MENU(const bool bKeyPressed, const bool bKeyHeld)
edit_index = 0; // 'edit_index' is going to be used as the cursor position edit_index = 0; // 'edit_index' is going to be used as the cursor position
// make a copy so we can test for change when exiting the menu item // make a copy so we can test for change when exiting the menu item
memmove(edit_original, edit, sizeof(edit_original)); memcpy(edit_original, edit, sizeof(edit_original));
return; return;
} }
@@ -1496,16 +1446,11 @@ static void MENU_Key_MENU(const bool bKeyPressed, const bool bKeyHeld)
return; // next char return; // next char
// exit // exit
if (memcmp(edit_original, edit, sizeof(edit_original)) == 0)
{ // no change - drop it
gFlagAcceptSetting = false; gFlagAcceptSetting = false;
gAskForConfirmation = 0;
if (memcmp(edit_original, edit, sizeof(edit_original)) == 0) {
// no change - drop it
gIsInSubMenu = false; gIsInSubMenu = false;
gAskForConfirmation = 0;
}
else
{
gFlagAcceptSetting = false;
gAskForConfirmation = 0;
} }
} }
} }
@@ -1656,23 +1601,23 @@ static void MENU_Key_UP_DOWN(bool bKeyPressed, bool bKeyHeld, int8_t Direction)
gInputBoxIndex = 0; gInputBoxIndex = 0;
} }
else else if (!bKeyPressed)
if (!bKeyPressed)
return; return;
if (SCANNER_IsScanning()) { if (SCANNER_IsScanning())
return; return;
}
if (!gIsInSubMenu) if (!gIsInSubMenu) {
{
gMenuCursor = NUMBER_AddWithWraparound(gMenuCursor, -Direction, 0, gMenuListCount - 1); gMenuCursor = NUMBER_AddWithWraparound(gMenuCursor, -Direction, 0, gMenuListCount - 1);
gFlagRefreshSetting = true; gFlagRefreshSetting = true;
gRequestDisplayScreen = DISPLAY_MENU; gRequestDisplayScreen = DISPLAY_MENU;
if (UI_MENU_GetCurrentMenuId() != MENU_ABR && gEeprom.BACKLIGHT_TIME == 0) // backlight always off and not in the backlight menu if (UI_MENU_GetCurrentMenuId() != MENU_ABR
&& UI_MENU_GetCurrentMenuId() != MENU_ABR_MIN
&& UI_MENU_GetCurrentMenuId() != MENU_ABR_MAX
&& gEeprom.BACKLIGHT_TIME == 0) // backlight always off and not in the backlight menu
{ {
BACKLIGHT_TurnOff(); BACKLIGHT_TurnOff();
} }
@@ -1680,11 +1625,9 @@ static void MENU_Key_UP_DOWN(bool bKeyPressed, bool bKeyHeld, int8_t Direction)
return; return;
} }
if (UI_MENU_GetCurrentMenuId() == MENU_OFFSET) if (UI_MENU_GetCurrentMenuId() == MENU_OFFSET) {
{
int32_t Offset = (Direction * gTxVfo->StepFrequency) + gSubMenuSelection; int32_t Offset = (Direction * gTxVfo->StepFrequency) + gSubMenuSelection;
if (Offset < 99999990) if (Offset < 99999990) {
{
if (Offset < 0) if (Offset < 0)
Offset = 99999990; Offset = 99999990;
} }
@@ -1728,18 +1671,8 @@ static void MENU_Key_UP_DOWN(bool bKeyPressed, bool bKeyHeld, int8_t Direction)
void MENU_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld) void MENU_ProcessKeys(KEY_Code_t Key, bool bKeyPressed, bool bKeyHeld)
{ {
switch (Key) switch (Key) {
{ case KEY_0...KEY_9:
case KEY_0:
case KEY_1:
case KEY_2:
case KEY_3:
case KEY_4:
case KEY_5:
case KEY_6:
case KEY_7:
case KEY_8:
case KEY_9:
MENU_Key_0_to_9(Key, bKeyPressed, bKeyHeld); MENU_Key_0_to_9(Key, bKeyPressed, bKeyHeld);
break; break;
case KEY_MENU: case KEY_MENU:

View File

@@ -505,7 +505,7 @@ void SCANNER_TimeSlice500ms(void)
{ {
if (SCANNER_IsScanning() && gScannerSaveState == SCAN_SAVE_NO_PROMPT && gScanCssState < SCAN_CSS_STATE_FOUND) { if (SCANNER_IsScanning() && gScannerSaveState == SCAN_SAVE_NO_PROMPT && gScanCssState < SCAN_CSS_STATE_FOUND) {
gScanProgressIndicator++; gScanProgressIndicator++;
#ifdef ENABLE_NO_CODE_SCAN_TIMEOUT #ifndef ENABLE_NO_CODE_SCAN_TIMEOUT
if (gScanProgressIndicator > 32) { if (gScanProgressIndicator > 32) {
if (gScanCssState == SCAN_CSS_STATE_SCANNING && !gScanSingleFrequency) if (gScanCssState == SCAN_CSS_STATE_SCANNING && !gScanSingleFrequency)
gScanCssState = SCAN_CSS_STATE_FOUND; gScanCssState = SCAN_CSS_STATE_FOUND;

View File

@@ -13,11 +13,19 @@
* See the License for the specific language governing permissions and * See the License for the specific language governing permissions and
* limitations under the License. * limitations under the License.
*/ */
#include "app/spectrum.h" #include "app/spectrum.h"
#include "driver/backlight.h" #include "am_fix.h"
#include "audio.h" #include "audio.h"
#include "misc.h"
#ifdef ENABLE_SCAN_RANGES
#include "chFrScanner.h"
#endif
#include "driver/backlight.h"
#include "frequencies.h"
#include "ui/helper.h" #include "ui/helper.h"
#include "ui/main.h"
struct FrequencyBandInfo { struct FrequencyBandInfo {
uint32_t lower; uint32_t lower;
@@ -26,11 +34,10 @@ struct FrequencyBandInfo {
}; };
#define F_MIN frequencyBandTable[0].lower #define F_MIN frequencyBandTable[0].lower
#define F_MAX frequencyBandTable[ARRAY_SIZE(frequencyBandTable) - 1].upper #define F_MAX frequencyBandTable[BAND_N_ELEM - 1].upper
const uint16_t RSSI_MAX_VALUE = 65535; const uint16_t RSSI_MAX_VALUE = 65535;
static uint16_t R30, R37, R3D, R43, R47, R48, R7E;
static uint32_t initialFreq; static uint32_t initialFreq;
static char String[32]; static char String[32];
@@ -42,6 +49,7 @@ bool redrawScreen = false;
bool newScanStart = true; bool newScanStart = true;
bool preventKeypress = true; bool preventKeypress = true;
bool audioState = true; bool audioState = true;
bool lockAGC = false;
State currentState = SPECTRUM, previousState = SPECTRUM; State currentState = SPECTRUM, previousState = SPECTRUM;
@@ -49,26 +57,31 @@ PeakInfo peak;
ScanInfo scanInfo; ScanInfo scanInfo;
KeyboardState kbd = {KEY_INVALID, KEY_INVALID, 0}; KeyboardState kbd = {KEY_INVALID, KEY_INVALID, 0};
#ifdef ENABLE_SCAN_RANGES
static uint16_t blacklistFreqs[15];
static uint8_t blacklistFreqsIdx;
#endif
const char *bwOptions[] = {" 25k", "12.5k", "6.25k"}; const char *bwOptions[] = {" 25k", "12.5k", "6.25k"};
const uint8_t modulationTypeTuneSteps[] = {100, 50, 10}; const uint8_t modulationTypeTuneSteps[] = {100, 50, 10};
const uint8_t modTypeReg47Values[] = {1, 7, 5}; const uint8_t modTypeReg47Values[] = {1, 7, 5};
SpectrumSettings settings = {stepsCount: STEPS_64, SpectrumSettings settings = {.stepsCount = STEPS_64,
scanStepIndex: S_STEP_25_0kHz, .scanStepIndex = S_STEP_25_0kHz,
frequencyChangeStep: 80000, .frequencyChangeStep = 80000,
scanDelay: 3200, .scanDelay = 3200,
rssiTriggerLevel: 150, .rssiTriggerLevel = 150,
backlightState: true, .backlightState = true,
bw: BK4819_FILTER_BW_WIDE, .bw = BK4819_FILTER_BW_WIDE,
listenBw: BK4819_FILTER_BW_WIDE, .listenBw = BK4819_FILTER_BW_WIDE,
modulationType: false, .modulationType = false,
dbMin: -130, .dbMin = -130,
dbMax: -50}; .dbMax = -50};
uint32_t fMeasure = 0; uint32_t fMeasure = 0;
uint32_t currentFreq, tempFreq; uint32_t currentFreq, tempFreq;
uint16_t rssiHistory[128]; uint16_t rssiHistory[128];
int vfo;
uint8_t freqInputIndex = 0; uint8_t freqInputIndex = 0;
uint8_t freqInputDotIndex = 0; uint8_t freqInputDotIndex = 0;
KEY_Code_t freqInputArr[10]; KEY_Code_t freqInputArr[10];
@@ -99,17 +112,28 @@ static uint8_t DBm2S(int dbm) {
return i; return i;
} }
static int Rssi2DBm(uint16_t rssi) { return (rssi >> 1) - 160; } static int Rssi2DBm(uint16_t rssi) {
return (rssi / 2) - 160 + dBmCorrTable[gRxVfo->Band];
}
static uint16_t GetRegMenuValue(uint8_t st) { static uint16_t GetRegMenuValue(uint8_t st) {
RegisterSpec s = registerSpecs[st]; RegisterSpec s = registerSpecs[st];
return (BK4819_ReadRegister(s.num) >> s.offset) & s.mask; return (BK4819_ReadRegister(s.num) >> s.offset) & s.mask;
} }
void LockAGC()
{
RADIO_SetupAGC(settings.modulationType==MODULATION_AM, lockAGC);
lockAGC = true;
}
static void SetRegMenuValue(uint8_t st, bool add) { static void SetRegMenuValue(uint8_t st, bool add) {
uint16_t v = GetRegMenuValue(st); uint16_t v = GetRegMenuValue(st);
RegisterSpec s = registerSpecs[st]; RegisterSpec s = registerSpecs[st];
if(s.num == BK4819_REG_13)
LockAGC();
uint16_t reg = BK4819_ReadRegister(s.num); uint16_t reg = BK4819_ReadRegister(s.num);
if (add && v <= s.mask - s.inc) { if (add && v <= s.mask - s.inc) {
v += s.inc; v += s.inc;
@@ -197,24 +221,29 @@ static void ToggleAFBit(bool on) {
BK4819_WriteRegister(BK4819_REG_47, reg); BK4819_WriteRegister(BK4819_REG_47, reg);
} }
static const BK4819_REGISTER_t registers_to_save[] ={
BK4819_REG_30,
BK4819_REG_37,
BK4819_REG_3D,
BK4819_REG_43,
BK4819_REG_47,
BK4819_REG_48,
BK4819_REG_7E,
};
static uint16_t registers_stack [sizeof(registers_to_save)];
static void BackupRegisters() { static void BackupRegisters() {
R30 = BK4819_ReadRegister(BK4819_REG_30); for (uint32_t i = 0; i < ARRAY_SIZE(registers_to_save); i++){
R37 = BK4819_ReadRegister(BK4819_REG_37); registers_stack[i] = BK4819_ReadRegister(registers_to_save[i]);
R3D = BK4819_ReadRegister(BK4819_REG_3D); }
R43 = BK4819_ReadRegister(BK4819_REG_43);
R47 = BK4819_ReadRegister(BK4819_REG_47);
R48 = BK4819_ReadRegister(BK4819_REG_48);
R7E = BK4819_ReadRegister(BK4819_REG_7E);
} }
static void RestoreRegisters() { static void RestoreRegisters() {
BK4819_WriteRegister(BK4819_REG_30, R30);
BK4819_WriteRegister(BK4819_REG_37, R37); for (uint32_t i = 0; i < ARRAY_SIZE(registers_to_save); i++){
BK4819_WriteRegister(BK4819_REG_3D, R3D); BK4819_WriteRegister(registers_to_save[i], registers_stack[i]);
BK4819_WriteRegister(BK4819_REG_43, R43); }
BK4819_WriteRegister(BK4819_REG_47, R47);
BK4819_WriteRegister(BK4819_REG_48, R48);
BK4819_WriteRegister(BK4819_REG_7E, R7E);
} }
static void ToggleAFDAC(bool on) { static void ToggleAFDAC(bool on) {
@@ -245,12 +274,24 @@ static void ResetPeak() {
} }
bool IsCenterMode() { return settings.scanStepIndex < S_STEP_2_5kHz; } bool IsCenterMode() { return settings.scanStepIndex < S_STEP_2_5kHz; }
uint8_t GetStepsCount() { return 128 >> settings.stepsCount; } // scan step in 0.01khz
uint16_t GetScanStep() { return scanStepValues[settings.scanStepIndex]; } uint16_t GetScanStep() { return scanStepValues[settings.scanStepIndex]; }
uint16_t GetStepsCount()
{
#ifdef ENABLE_SCAN_RANGES
if(gScanRangeStart) {
return (gScanRangeStop - gScanRangeStart) / GetScanStep();
}
#endif
return 128 >> settings.stepsCount;
}
uint32_t GetBW() { return GetStepsCount() * GetScanStep(); } uint32_t GetBW() { return GetStepsCount() * GetScanStep(); }
uint32_t GetFStart() { uint32_t GetFStart() {
return IsCenterMode() ? currentFreq - (GetBW() >> 1) : currentFreq; return IsCenterMode() ? currentFreq - (GetBW() >> 1) : currentFreq;
} }
uint32_t GetFEnd() { return currentFreq + GetBW(); } uint32_t GetFEnd() { return currentFreq + GetBW(); }
static void TuneToPeak() { static void TuneToPeak() {
@@ -276,7 +317,12 @@ uint16_t GetRssi() {
while ((BK4819_ReadRegister(0x63) & 0b11111111) >= 255) { while ((BK4819_ReadRegister(0x63) & 0b11111111) >= 255) {
SYSTICK_DelayUs(100); SYSTICK_DelayUs(100);
} }
return BK4819_GetRSSI(); uint16_t rssi = BK4819_GetRSSI();
#ifdef ENABLE_AM_FIX
if(settings.modulationType==MODULATION_AM && gSetting_AM_fix)
rssi += AM_fix_get_gain_diff()*2;
#endif
return rssi;
} }
static void ToggleAudio(bool on) { static void ToggleAudio(bool on) {
@@ -294,6 +340,7 @@ static void ToggleAudio(bool on) {
static void ToggleRX(bool on) { static void ToggleRX(bool on) {
isListening = on; isListening = on;
RADIO_SetupAGC(on, lockAGC);
BK4819_ToggleGpioOut(BK4819_GPIO6_PIN2_GREEN, on); BK4819_ToggleGpioOut(BK4819_GPIO6_PIN2_GREEN, on);
ToggleAudio(on); ToggleAudio(on);
@@ -331,6 +378,10 @@ static void ResetBlacklist() {
if (rssiHistory[i] == RSSI_MAX_VALUE) if (rssiHistory[i] == RSSI_MAX_VALUE)
rssiHistory[i] = 0; rssiHistory[i] = 0;
} }
#ifdef ENABLE_SCAN_RANGES
memset(blacklistFreqs, 0, sizeof(blacklistFreqs));
blacklistFreqsIdx = 0;
#endif
} }
static void RelaunchScan() { static void RelaunchScan() {
@@ -377,18 +428,36 @@ static void UpdatePeakInfo() {
UpdatePeakInfoForce(); UpdatePeakInfoForce();
} }
static void Measure() { rssiHistory[scanInfo.i] = scanInfo.rssi = GetRssi(); } static void SetRssiHistory(uint16_t idx, uint16_t rssi)
{
#ifdef ENABLE_SCAN_RANGES
if(scanInfo.measurementsCount > 128) {
uint8_t i = (uint32_t)ARRAY_SIZE(rssiHistory) * 1000 / scanInfo.measurementsCount * idx / 1000;
if(rssiHistory[i] < rssi || isListening)
rssiHistory[i] = rssi;
rssiHistory[(i+1)%128] = 0;
return;
}
#endif
rssiHistory[idx] = rssi;
}
static void Measure()
{
uint16_t rssi = scanInfo.rssi = GetRssi();
SetRssiHistory(scanInfo.i, rssi);
}
// Update things by keypress // Update things by keypress
static uint16_t dbm2rssi(int dBm) static uint16_t dbm2rssi(int dBm) {
{ return (dBm + 160 - dBmCorrTable[gRxVfo->Band]) * 2;
return (dBm + 160)*2;
} }
static void ClampRssiTriggerLevel() static void ClampRssiTriggerLevel() {
{ settings.rssiTriggerLevel =
settings.rssiTriggerLevel = clamp(settings.rssiTriggerLevel, dbm2rssi(settings.dbMin), dbm2rssi(settings.dbMax)); clamp(settings.rssiTriggerLevel, dbm2rssi(settings.dbMin),
dbm2rssi(settings.dbMax));
} }
static void UpdateRssiTriggerLevel(bool inc) { static void UpdateRssiTriggerLevel(bool inc) {
@@ -406,7 +475,7 @@ static void UpdateRssiTriggerLevel(bool inc) {
static void UpdateDBMax(bool inc) { static void UpdateDBMax(bool inc) {
if (inc && settings.dbMax < 10) { if (inc && settings.dbMax < 10) {
settings.dbMax += 1; settings.dbMax += 1;
} else if (!inc && settings.dbMax > settings.dbMin) { } else if (!inc && settings.dbMax > 12+settings.dbMin) {
settings.dbMax -= 1; settings.dbMax -= 1;
} else { } else {
return; return;
@@ -419,13 +488,12 @@ static void UpdateDBMax(bool inc) {
} }
static void UpdateScanStep(bool inc) { static void UpdateScanStep(bool inc) {
if (inc && settings.scanStepIndex < S_STEP_100_0kHz) { if (inc) {
settings.scanStepIndex++; settings.scanStepIndex = settings.scanStepIndex != S_STEP_100_0kHz ? settings.scanStepIndex + 1 : 0;
} else if (!inc && settings.scanStepIndex > 0) {
settings.scanStepIndex--;
} else { } else {
return; settings.scanStepIndex = settings.scanStepIndex != 0 ? settings.scanStepIndex - 1 : S_STEP_100_0kHz;
} }
settings.frequencyChangeStep = GetBW() >> 1; settings.frequencyChangeStep = GetBW() >> 1;
RelaunchScan(); RelaunchScan();
ResetBlacklist(); ResetBlacklist();
@@ -475,6 +543,8 @@ static void ToggleModulation() {
settings.modulationType = MODULATION_FM; settings.modulationType = MODULATION_FM;
} }
RADIO_SetModulation(settings.modulationType); RADIO_SetModulation(settings.modulationType);
RelaunchScan();
redrawScreen = true; redrawScreen = true;
} }
@@ -534,7 +604,7 @@ static void UpdateFreqInput(KEY_Code_t key) {
} }
if (key == KEY_EXIT) { if (key == KEY_EXIT) {
freqInputIndex--; freqInputIndex--;
if(freqInputDotIndex==freqInputIndex) if (freqInputDotIndex == freqInputIndex)
freqInputDotIndex = 0; freqInputDotIndex = 0;
} else { } else {
freqInputArr[freqInputIndex++] = key; freqInputArr[freqInputIndex++] = key;
@@ -549,7 +619,7 @@ static void UpdateFreqInput(KEY_Code_t key) {
for (int i = 0; i < 10; ++i) { for (int i = 0; i < 10; ++i) {
if (i < freqInputIndex) { if (i < freqInputIndex) {
digitKey = freqInputArr[i]; digitKey = freqInputArr[i];
freqInputString[i] = digitKey <= KEY_9 ? '0' + digitKey-KEY_0 : '.'; freqInputString[i] = digitKey <= KEY_9 ? '0' + digitKey - KEY_0 : '.';
} else { } else {
freqInputString[i] = '-'; freqInputString[i] = '-';
} }
@@ -557,14 +627,14 @@ static void UpdateFreqInput(KEY_Code_t key) {
uint32_t base = 100000; // 1MHz in BK units uint32_t base = 100000; // 1MHz in BK units
for (int i = dotIndex - 1; i >= 0; --i) { for (int i = dotIndex - 1; i >= 0; --i) {
tempFreq += (freqInputArr[i]-KEY_0) * base; tempFreq += (freqInputArr[i] - KEY_0) * base;
base *= 10; base *= 10;
} }
base = 10000; // 0.1MHz in BK units base = 10000; // 0.1MHz in BK units
if (dotIndex < freqInputIndex) { if (dotIndex < freqInputIndex) {
for (int i = dotIndex + 1; i < freqInputIndex; ++i) { for (int i = dotIndex + 1; i < freqInputIndex; ++i) {
tempFreq += (freqInputArr[i]-KEY_0) * base; tempFreq += (freqInputArr[i] - KEY_0) * base;
base /= 10; base /= 10;
} }
} }
@@ -572,12 +642,26 @@ static void UpdateFreqInput(KEY_Code_t key) {
} }
static void Blacklist() { static void Blacklist() {
rssiHistory[peak.i] = RSSI_MAX_VALUE; #ifdef ENABLE_SCAN_RANGES
blacklistFreqs[blacklistFreqsIdx++ % ARRAY_SIZE(blacklistFreqs)] = peak.i;
#endif
SetRssiHistory(peak.i, RSSI_MAX_VALUE);
ResetPeak(); ResetPeak();
ToggleRX(false); ToggleRX(false);
newScanStart = true; ResetScanStats();
} }
#ifdef ENABLE_SCAN_RANGES
static bool IsBlacklisted(uint16_t idx)
{
for(uint8_t i = 0; i < ARRAY_SIZE(blacklistFreqs); i++)
if(blacklistFreqs[i] == idx)
return true;
return false;
}
#endif
// Draw things // Draw things
// applied x2 to prevent initial rounding // applied x2 to prevent initial rounding
@@ -588,7 +672,7 @@ uint8_t Rssi2PX(uint16_t rssi, uint8_t pxMin, uint8_t pxMax) {
const uint8_t PX_RANGE = pxMax - pxMin; const uint8_t PX_RANGE = pxMax - pxMin;
int dbm = clamp(rssi - (160 << 1), DB_MIN, DB_MAX); int dbm = clamp(Rssi2DBm(rssi) << 1, DB_MIN, DB_MAX);
return ((dbm - DB_MIN) * PX_RANGE + DB_RANGE / 2) / DB_RANGE + pxMin; return ((dbm - DB_MIN) * PX_RANGE + DB_RANGE / 2) / DB_RANGE + pxMin;
} }
@@ -615,10 +699,11 @@ static void DrawStatus() {
#endif #endif
GUI_DisplaySmallest(String, 0, 1, true, true); GUI_DisplaySmallest(String, 0, 1, true, true);
BOARD_ADC_GetBatteryInfo(&gBatteryVoltages[gBatteryCheckCounter++ % 4], &gBatteryCurrent); BOARD_ADC_GetBatteryInfo(&gBatteryVoltages[gBatteryCheckCounter++ % 4],
&gBatteryCurrent);
uint16_t voltage = (gBatteryVoltages[0] + gBatteryVoltages[1] + gBatteryVoltages[2] + uint16_t voltage = (gBatteryVoltages[0] + gBatteryVoltages[1] +
gBatteryVoltages[3]) / gBatteryVoltages[2] + gBatteryVoltages[3]) /
4 * 760 / gBatteryCalibration[3]; 4 * 760 / gBatteryCalibration[3];
unsigned perc = BATTERY_VoltsToPercent(voltage); unsigned perc = BATTERY_VoltsToPercent(voltage);
@@ -633,7 +718,7 @@ static void DrawStatus() {
} }
for (unsigned i = 127; i >= 118; i--) { for (unsigned i = 127; i >= 118; i--) {
if (127 - i <= (perc+5)*9/100) { if (127 - i <= (perc + 5) * 9 / 100) {
gStatusLine[i] = 0b00111110; gStatusLine[i] = 0b00111110;
} }
} }
@@ -641,7 +726,7 @@ static void DrawStatus() {
static void DrawF(uint32_t f) { static void DrawF(uint32_t f) {
sprintf(String, "%u.%05u", f / 100000, f % 100000); sprintf(String, "%u.%05u", f / 100000, f % 100000);
UI_PrintStringSmall(String, 8, 127, 0); UI_PrintStringSmallNormal(String, 8, 127, 0);
sprintf(String, "%3s", gModulationStr[settings.modulationType]); sprintf(String, "%3s", gModulationStr[settings.modulationType]);
GUI_DisplaySmallest(String, 116, 1, false, true); GUI_DisplaySmallest(String, 116, 1, false, true);
@@ -686,9 +771,11 @@ static void DrawRssiTriggerLevel() {
} }
static void DrawTicks() { static void DrawTicks() {
uint32_t f = GetFStart() % 100000; uint32_t f = GetFStart();
uint32_t step = GetScanStep(); uint32_t span = GetFEnd() - GetFStart();
for (uint8_t i = 0; i < 128; i += (1 << settings.stepsCount), f += step) { uint32_t step = span / 128;
for (uint8_t i = 0; i < 128; i += (1 << settings.stepsCount)) {
f = GetFStart() + span * i / 128;
uint8_t barValue = 0b00000001; uint8_t barValue = 0b00000001;
(f % 10000) < step && (barValue |= 0b00000010); (f % 10000) < step && (barValue |= 0b00000010);
(f % 50000) < step && (barValue |= 0b00000100); (f % 50000) < step && (barValue |= 0b00000100);
@@ -740,9 +827,15 @@ static void OnKeyDown(uint8_t key) {
UpdateFreqChangeStep(false); UpdateFreqChangeStep(false);
break; break;
case KEY_UP: case KEY_UP:
#ifdef ENABLE_SCAN_RANGES
if(!gScanRangeStart)
#endif
UpdateCurrentFreq(true); UpdateCurrentFreq(true);
break; break;
case KEY_DOWN: case KEY_DOWN:
#ifdef ENABLE_SCAN_RANGES
if(!gScanRangeStart)
#endif
UpdateCurrentFreq(false); UpdateCurrentFreq(false);
break; break;
case KEY_SIDE1: case KEY_SIDE1:
@@ -755,6 +848,9 @@ static void OnKeyDown(uint8_t key) {
UpdateRssiTriggerLevel(false); UpdateRssiTriggerLevel(false);
break; break;
case KEY_5: case KEY_5:
#ifdef ENABLE_SCAN_RANGES
if(!gScanRangeStart)
#endif
FreqInput(); FreqInput();
break; break;
case KEY_0: case KEY_0:
@@ -764,6 +860,9 @@ static void OnKeyDown(uint8_t key) {
ToggleListeningBW(); ToggleListeningBW();
break; break;
case KEY_4: case KEY_4:
#ifdef ENABLE_SCAN_RANGES
if(!gScanRangeStart)
#endif
ToggleStepsCount(); ToggleStepsCount();
break; break;
case KEY_SIDE2: case KEY_SIDE2:
@@ -886,6 +985,7 @@ void OnKeyDownStill(KEY_Code_t key) {
case KEY_EXIT: case KEY_EXIT:
if (!menuState) { if (!menuState) {
SetState(SPECTRUM); SetState(SPECTRUM);
lockAGC = false;
monitorMode = false; monitorMode = false;
RelaunchScan(); RelaunchScan();
break; break;
@@ -897,9 +997,7 @@ void OnKeyDownStill(KEY_Code_t key) {
} }
} }
static void RenderFreqInput() { static void RenderFreqInput() { UI_PrintString(freqInputString, 2, 127, 0, 8); }
UI_PrintString(freqInputString, 2, 127, 0, 8);
}
static void RenderStatus() { static void RenderStatus() {
memset(gStatusLine, 0, sizeof(gStatusLine)); memset(gStatusLine, 0, sizeof(gStatusLine));
@@ -909,7 +1007,7 @@ static void RenderStatus() {
static void RenderSpectrum() { static void RenderSpectrum() {
DrawTicks(); DrawTicks();
DrawArrow(peak.i << settings.stepsCount); DrawArrow(128u * peak.i / GetStepsCount());
DrawSpectrum(); DrawSpectrum();
DrawRssiTriggerLevel(); DrawRssiTriggerLevel();
DrawF(peak.f); DrawF(peak.f);
@@ -921,14 +1019,14 @@ static void RenderStill() {
const uint8_t METER_PAD_LEFT = 3; const uint8_t METER_PAD_LEFT = 3;
for (int i = 0; i < 121; i++) { memset(&gFrameBuffer[2][METER_PAD_LEFT], 0b00010000, 121);
if (i % 10 == 0) {
gFrameBuffer[2][i + METER_PAD_LEFT] = 0b01110000; for (int i = 0; i < 121; i+=5) {
} else if (i % 5 == 0) {
gFrameBuffer[2][i + METER_PAD_LEFT] = 0b00110000; gFrameBuffer[2][i + METER_PAD_LEFT] = 0b00110000;
} else {
gFrameBuffer[2][i + METER_PAD_LEFT] = 0b00010000;
} }
for (int i = 0; i < 121; i+=10) {
gFrameBuffer[2][i + METER_PAD_LEFT] = 0b01110000;
} }
uint8_t x = Rssi2PX(scanInfo.rssi, 0, 121); uint8_t x = Rssi2PX(scanInfo.rssi, 0, 121);
@@ -977,7 +1075,7 @@ static void RenderStill() {
} }
static void Render() { static void Render() {
memset(gFrameBuffer, 0, sizeof(gFrameBuffer)); UI_DisplayClear();
switch (currentState) { switch (currentState) {
case SPECTRUM: case SPECTRUM:
@@ -999,13 +1097,12 @@ bool HandleUserInput() {
kbd.current = GetKey(); kbd.current = GetKey();
if (kbd.current != KEY_INVALID && kbd.current == kbd.prev) { if (kbd.current != KEY_INVALID && kbd.current == kbd.prev) {
if(kbd.counter < 16) if (kbd.counter < 16)
kbd.counter++; kbd.counter++;
else else
kbd.counter-=3; kbd.counter -= 3;
SYSTEM_DelayMs(20); SYSTEM_DelayMs(20);
} } else {
else {
kbd.counter = 0; kbd.counter = 0;
} }
@@ -1027,7 +1124,11 @@ bool HandleUserInput() {
} }
static void Scan() { static void Scan() {
if (rssiHistory[scanInfo.i] != RSSI_MAX_VALUE) { if (rssiHistory[scanInfo.i] != RSSI_MAX_VALUE
#ifdef ENABLE_SCAN_RANGES
&& !IsBlacklisted(scanInfo.i)
#endif
) {
SetF(scanInfo.f); SetF(scanInfo.f);
Measure(); Measure();
UpdateScanInfo(); UpdateScanInfo();
@@ -1048,6 +1149,10 @@ static void UpdateScan() {
return; return;
} }
if(scanInfo.measurementsCount < 128)
memset(&rssiHistory[scanInfo.measurementsCount], 0,
sizeof(rssiHistory) - scanInfo.measurementsCount*sizeof(rssiHistory[0]));
redrawScreen = true; redrawScreen = true;
preventKeypress = false; preventKeypress = false;
@@ -1100,10 +1205,39 @@ static void UpdateListening() {
} }
ToggleRX(false); ToggleRX(false);
newScanStart = true; ResetScanStats();
} }
static void Tick() { static void Tick() {
#ifdef ENABLE_AM_FIX
if (gNextTimeslice) {
gNextTimeslice = false;
if(settings.modulationType == MODULATION_AM && !lockAGC) {
AM_fix_10ms(vfo); //allow AM_Fix to apply its AGC action
}
}
#endif
#ifdef ENABLE_SCAN_RANGES
if (gNextTimeslice_500ms) {
gNextTimeslice_500ms = false;
// if a lot of steps then it takes long time
// we don't want to wait for whole scan
// listening has it's own timer
if(GetStepsCount()>128 && !isListening) {
UpdatePeakInfo();
if (IsPeakOverLevel()) {
ToggleRX(true);
TuneToPeak();
return;
}
redrawScreen = true;
preventKeypress = false;
}
}
#endif
if (!preventKeypress) { if (!preventKeypress) {
HandleUserInput(); HandleUserInput();
} }
@@ -1133,25 +1267,40 @@ static void Tick() {
void APP_RunSpectrum() { void APP_RunSpectrum() {
// TX here coz it always? set to active VFO // TX here coz it always? set to active VFO
currentFreq = initialFreq = vfo = gEeprom.TX_VFO;
gEeprom.VfoInfo[gEeprom.TX_VFO].pRX->Frequency; // set the current frequency in the middle of the display
#ifdef ENABLE_SCAN_RANGES
if(gScanRangeStart) {
currentFreq = initialFreq = gScanRangeStart;
for(uint8_t i = 0; i < ARRAY_SIZE(scanStepValues); i++) {
if(scanStepValues[i] >= gTxVfo->StepFrequency) {
settings.scanStepIndex = i;
break;
}
}
settings.stepsCount = STEPS_128;
}
else
#endif
currentFreq = initialFreq = gTxVfo->pRX->Frequency -
((GetStepsCount() / 2) * GetScanStep());
BackupRegisters(); BackupRegisters();
isListening = true; // to turn off RX later isListening = true; // to turn off RX later
redrawStatus = true; redrawStatus = true;
redrawScreen = false; // we will wait until scan done redrawScreen = true;
newScanStart = true; newScanStart = true;
ToggleRX(true), ToggleRX(false); // hack to prevent noise when squelch off ToggleRX(true), ToggleRX(false); // hack to prevent noise when squelch off
RADIO_SetModulation(settings.modulationType = MODULATION_FM); RADIO_SetModulation(settings.modulationType = gTxVfo->Modulation);
BK4819_SetFilterBandwidth(settings.listenBw = BK4819_FILTER_BW_WIDE, false); BK4819_SetFilterBandwidth(settings.listenBw = BK4819_FILTER_BW_WIDE, false);
RelaunchScan(); RelaunchScan();
for (int i = 0; i < 128; ++i) { memset(rssiHistory, 0, sizeof(rssiHistory));
rssiHistory[i] = 0;
}
isInitialized = true; isInitialized = true;

View File

@@ -29,7 +29,6 @@
#include "../driver/systick.h" #include "../driver/systick.h"
#include "../external/printf/printf.h" #include "../external/printf/printf.h"
#include "../font.h" #include "../font.h"
#include "../frequencies.h"
#include "../helper/battery.h" #include "../helper/battery.h"
#include "../misc.h" #include "../misc.h"
#include "../radio.h" #include "../radio.h"
@@ -46,9 +45,8 @@ static const uint8_t U8RssiMap[] = {
}; };
static const uint16_t scanStepValues[] = { static const uint16_t scanStepValues[] = {
1, 10, 50, 100, 1, 10, 50, 100, 250, 500, 625, 833,
1000, 1250, 1500, 2000, 2500, 5000, 10000,
250, 500, 625, 833, 1000, 1250, 2500, 10000,
}; };
static const uint16_t scanStepBWRegValues[] = { static const uint16_t scanStepBWRegValues[] = {
@@ -111,7 +109,10 @@ typedef enum ScanStep {
S_STEP_8_33kHz, S_STEP_8_33kHz,
S_STEP_10_0kHz, S_STEP_10_0kHz,
S_STEP_12_5kHz, S_STEP_12_5kHz,
S_STEP_15_0kHz,
S_STEP_20_0kHz,
S_STEP_25_0kHz, S_STEP_25_0kHz,
S_STEP_50_0kHz,
S_STEP_100_0kHz, S_STEP_100_0kHz,
} ScanStep; } ScanStep;
@@ -137,17 +138,17 @@ typedef struct KeyboardState {
typedef struct ScanInfo { typedef struct ScanInfo {
uint16_t rssi, rssiMin, rssiMax; uint16_t rssi, rssiMin, rssiMax;
uint8_t i, iPeak; uint16_t i, iPeak;
uint32_t f, fPeak; uint32_t f, fPeak;
uint16_t scanStep; uint16_t scanStep;
uint8_t measurementsCount; uint16_t measurementsCount;
} ScanInfo; } ScanInfo;
typedef struct PeakInfo { typedef struct PeakInfo {
uint16_t t; uint16_t t;
uint16_t rssi; uint16_t rssi;
uint32_t f; uint32_t f;
uint8_t i; uint16_t i;
} PeakInfo; } PeakInfo;
void APP_RunSpectrum(void); void APP_RunSpectrum(void);

View File

@@ -36,10 +36,12 @@
#include "functions.h" #include "functions.h"
#include "misc.h" #include "misc.h"
#include "settings.h" #include "settings.h"
#include "version.h"
#if defined(ENABLE_OVERLAY) #if defined(ENABLE_OVERLAY)
#include "sram-overlay.h" #include "sram-overlay.h"
#endif #endif
#include "version.h"
#define DMA_INDEX(x, y) (((x) + (y)) % sizeof(UART_DMA_Buffer)) #define DMA_INDEX(x, y) (((x) + (y)) % sizeof(UART_DMA_Buffer))
@@ -226,6 +228,8 @@ static bool IsBadChallenge(const uint32_t *pKey, const uint32_t *pIn, const uint
return false; return false;
} }
// session init, sends back version info and state
// timestamp is a session id really
static void CMD_0514(const uint8_t *pBuffer) static void CMD_0514(const uint8_t *pBuffer)
{ {
const CMD_0514_t *pCmd = (const CMD_0514_t *)pBuffer; const CMD_0514_t *pCmd = (const CMD_0514_t *)pBuffer;
@@ -244,6 +248,7 @@ static void CMD_0514(const uint8_t *pBuffer)
SendVersion(); SendVersion();
} }
// read eeprom
static void CMD_051B(const uint8_t *pBuffer) static void CMD_051B(const uint8_t *pBuffer)
{ {
const CMD_051B_t *pCmd = (const CMD_051B_t *)pBuffer; const CMD_051B_t *pCmd = (const CMD_051B_t *)pBuffer;
@@ -274,6 +279,7 @@ static void CMD_051B(const uint8_t *pBuffer)
SendReply(&Reply, pCmd->Size + 8); SendReply(&Reply, pCmd->Size + 8);
} }
// write eeprom
static void CMD_051D(const uint8_t *pBuffer) static void CMD_051D(const uint8_t *pBuffer)
{ {
const CMD_051D_t *pCmd = (const CMD_051D_t *)pBuffer; const CMD_051D_t *pCmd = (const CMD_051D_t *)pBuffer;
@@ -314,12 +320,13 @@ static void CMD_051D(const uint8_t *pBuffer)
} }
if (bReloadEeprom) if (bReloadEeprom)
BOARD_EEPROM_Init(); SETTINGS_InitEEPROM();
} }
SendReply(&Reply, sizeof(Reply)); SendReply(&Reply, sizeof(Reply));
} }
// read RSSI
static void CMD_0527(void) static void CMD_0527(void)
{ {
REPLY_0527_t Reply; REPLY_0527_t Reply;
@@ -333,6 +340,7 @@ static void CMD_0527(void)
SendReply(&Reply, sizeof(Reply)); SendReply(&Reply, sizeof(Reply));
} }
// read ADC
static void CMD_0529(void) static void CMD_0529(void)
{ {
REPLY_0529_t Reply; REPLY_0529_t Reply;
@@ -387,6 +395,11 @@ static void CMD_052D(const uint8_t *pBuffer)
SendReply(&Reply, sizeof(Reply)); SendReply(&Reply, sizeof(Reply));
} }
// session init, sends back version info and state
// timestamp is a session id really
// this command also disables dual watch, crossband,
// DTMF side tones, freq reverse, PTT ID, DTMF decoding, frequency offset
// exits power save, sets main VFO to upper,
static void CMD_052F(const uint8_t *pBuffer) static void CMD_052F(const uint8_t *pBuffer)
{ {
const CMD_052F_t *pCmd = (const CMD_052F_t *)pBuffer; const CMD_052F_t *pCmd = (const CMD_052F_t *)pBuffer;
@@ -421,6 +434,44 @@ static void CMD_052F(const uint8_t *pBuffer)
SendVersion(); SendVersion();
} }
#ifdef ENABLE_UART_RW_BK_REGS
static void CMD_0601_ReadBK4819Reg(const uint8_t *pBuffer)
{
typedef struct __attribute__((__packed__)) {
Header_t header;
uint8_t reg;
} CMD_0601_t;
CMD_0601_t *cmd = (CMD_0601_t*) pBuffer;
struct __attribute__((__packed__)) {
Header_t header;
struct __attribute__((__packed__)) {
uint8_t reg;
uint16_t value;
} data;
} reply;
reply.header.ID = 0x0601;
reply.header.Size = sizeof(reply.data);
reply.data.reg = cmd->reg;
reply.data.value = BK4819_ReadRegister(cmd->reg);
SendReply(&reply, sizeof(reply));
}
static void CMD_0602_WriteBK4819Reg(const uint8_t *pBuffer)
{
typedef struct __attribute__((__packed__)) {
Header_t header;
uint8_t reg;
uint16_t value;
} CMD_0602_t;
CMD_0602_t *cmd = (CMD_0602_t*) pBuffer;
BK4819_WriteRegister(cmd->reg, cmd->value);
}
#endif
bool UART_IsCommandAvailable(void) bool UART_IsCommandAvailable(void)
{ {
uint16_t Index; uint16_t Index;
@@ -479,11 +530,11 @@ bool UART_IsCommandAvailable(void)
if (TailIndex < Index) if (TailIndex < Index)
{ {
const uint16_t ChunkSize = sizeof(UART_DMA_Buffer) - Index; const uint16_t ChunkSize = sizeof(UART_DMA_Buffer) - Index;
memmove(UART_Command.Buffer, UART_DMA_Buffer + Index, ChunkSize); memcpy(UART_Command.Buffer, UART_DMA_Buffer + Index, ChunkSize);
memmove(UART_Command.Buffer + ChunkSize, UART_DMA_Buffer, TailIndex); memcpy(UART_Command.Buffer + ChunkSize, UART_DMA_Buffer, TailIndex);
} }
else else
memmove(UART_Command.Buffer, UART_DMA_Buffer + Index, TailIndex - Index); memcpy(UART_Command.Buffer, UART_DMA_Buffer + Index, TailIndex - Index);
TailIndex = DMA_INDEX(TailIndex, 2); TailIndex = DMA_INDEX(TailIndex, 2);
if (TailIndex < gUART_WriteIndex) if (TailIndex < gUART_WriteIndex)
@@ -552,12 +603,22 @@ void UART_HandleCommand(void)
CMD_052F(UART_Command.Buffer); CMD_052F(UART_Command.Buffer);
break; break;
case 0x05DD: case 0x05DD: // reset
#if defined(ENABLE_OVERLAY) #if defined(ENABLE_OVERLAY)
overlay_FLASH_RebootToBootloader(); overlay_FLASH_RebootToBootloader();
#else #else
NVIC_SystemReset(); NVIC_SystemReset();
#endif #endif
break; break;
#ifdef ENABLE_UART_RW_BK_REGS
case 0x0601:
CMD_0601_ReadBK4819Reg(UART_Command.Buffer);
break;
case 0x0602:
CMD_0602_WriteBK4819Reg(UART_Command.Buffer);
break;
#endif
} }
} }

158
audio.c
View File

@@ -31,50 +31,11 @@
#include "settings.h" #include "settings.h"
#include "ui/ui.h" #include "ui/ui.h"
#ifdef ENABLE_VOICE
static const uint8_t VoiceClipLengthChinese[58] =
{
0x32, 0x32, 0x32, 0x37, 0x37, 0x32, 0x32, 0x32,
0x32, 0x37, 0x37, 0x32, 0x64, 0x64, 0x64, 0x64,
0x64, 0x69, 0x64, 0x69, 0x5A, 0x5F, 0x5F, 0x64,
0x64, 0x69, 0x64, 0x64, 0x69, 0x69, 0x69, 0x64,
0x64, 0x6E, 0x69, 0x5F, 0x64, 0x64, 0x64, 0x69,
0x69, 0x69, 0x64, 0x69, 0x64, 0x64, 0x55, 0x5F,
0x5A, 0x4B, 0x4B, 0x46, 0x46, 0x69, 0x64, 0x6E,
0x5A, 0x64,
};
static const uint8_t VoiceClipLengthEnglish[76] =
{
0x50, 0x32, 0x2D, 0x2D, 0x2D, 0x37, 0x37, 0x37,
0x32, 0x32, 0x3C, 0x37, 0x46, 0x46, 0x4B, 0x82,
0x82, 0x6E, 0x82, 0x46, 0x96, 0x64, 0x46, 0x6E,
0x78, 0x6E, 0x87, 0x64, 0x96, 0x96, 0x46, 0x9B,
0x91, 0x82, 0x82, 0x73, 0x78, 0x64, 0x82, 0x6E,
0x78, 0x82, 0x87, 0x6E, 0x55, 0x78, 0x64, 0x69,
0x9B, 0x5A, 0x50, 0x3C, 0x32, 0x55, 0x64, 0x64,
0x50, 0x46, 0x46, 0x46, 0x4B, 0x4B, 0x50, 0x50,
0x55, 0x4B, 0x4B, 0x32, 0x32, 0x32, 0x32, 0x37,
0x41, 0x32, 0x3C, 0x37,
};
VOICE_ID_t gVoiceID[8];
uint8_t gVoiceReadIndex;
uint8_t gVoiceWriteIndex;
volatile uint16_t gCountdownToPlayNextVoice_10ms;
volatile bool gFlagPlayQueuedVoice;
VOICE_ID_t gAnotherVoiceID = VOICE_ID_INVALID;
#endif
BEEP_Type_t gBeepToPlay = BEEP_NONE; BEEP_Type_t gBeepToPlay = BEEP_NONE;
void AUDIO_PlayBeep(BEEP_Type_t Beep) void AUDIO_PlayBeep(BEEP_Type_t Beep)
{ {
uint16_t ToneConfig;
uint16_t ToneFrequency;
uint16_t Duration;
if (Beep != BEEP_880HZ_60MS_TRIPLE_BEEP && if (Beep != BEEP_880HZ_60MS_TRIPLE_BEEP &&
Beep != BEEP_500HZ_60MS_DOUBLE_BEEP && Beep != BEEP_500HZ_60MS_DOUBLE_BEEP &&
@@ -84,10 +45,10 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
!gEeprom.BEEP_CONTROL) !gEeprom.BEEP_CONTROL)
return; return;
#ifdef ENABLE_AIRCOPY #ifdef ENABLE_AIRCOPY
if (gScreenToDisplay == DISPLAY_AIRCOPY) if (gScreenToDisplay == DISPLAY_AIRCOPY)
return; return;
#endif #endif
if (gCurrentFunction == FUNCTION_RECEIVE) if (gCurrentFunction == FUNCTION_RECEIVE)
return; return;
@@ -95,20 +56,21 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
if (gCurrentFunction == FUNCTION_MONITOR) if (gCurrentFunction == FUNCTION_MONITOR)
return; return;
ToneConfig = BK4819_ReadRegister(BK4819_REG_71); #ifdef ENABLE_FMRADIO
if (gFmRadioMode)
BK1080_Mute(true);
#endif
AUDIO_AudioPathOff(); AUDIO_AudioPathOff();
if (gCurrentFunction == FUNCTION_POWER_SAVE && gRxIdleMode) if (gCurrentFunction == FUNCTION_POWER_SAVE && gRxIdleMode)
BK4819_RX_TurnOn(); BK4819_RX_TurnOn();
#ifdef ENABLE_FMRADIO
if (gFmRadioMode)
BK1080_Mute(true);
#endif
SYSTEM_DelayMs(20); SYSTEM_DelayMs(20);
uint16_t ToneConfig = BK4819_ReadRegister(BK4819_REG_71);
uint16_t ToneFrequency;
switch (Beep) switch (Beep)
{ {
default: default:
@@ -142,6 +104,7 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
SYSTEM_DelayMs(60); SYSTEM_DelayMs(60);
uint16_t Duration;
switch (Beep) switch (Beep)
{ {
case BEEP_880HZ_60MS_TRIPLE_BEEP: case BEEP_880HZ_60MS_TRIPLE_BEEP:
@@ -161,18 +124,15 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
BK4819_ExitTxMute(); BK4819_ExitTxMute();
Duration = 60; Duration = 60;
break; break;
case BEEP_880HZ_40MS_OPTIONAL: case BEEP_880HZ_40MS_OPTIONAL:
case BEEP_440HZ_40MS_OPTIONAL: case BEEP_440HZ_40MS_OPTIONAL:
BK4819_ExitTxMute(); BK4819_ExitTxMute();
Duration = 40; Duration = 40;
break; break;
case BEEP_880HZ_200MS: case BEEP_880HZ_200MS:
BK4819_ExitTxMute(); BK4819_ExitTxMute();
Duration = 200; Duration = 200;
break; break;
case BEEP_440HZ_500MS: case BEEP_440HZ_500MS:
case BEEP_880HZ_500MS: case BEEP_880HZ_500MS:
default: default:
@@ -187,10 +147,6 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
AUDIO_AudioPathOff(); AUDIO_AudioPathOff();
#ifdef ENABLE_VOX
gVoxResumeCountdown = 80;
#endif
SYSTEM_DelayMs(5); SYSTEM_DelayMs(5);
BK4819_TurnsOffTones_TurnsOnRX(); BK4819_TurnsOffTones_TurnsOnRX();
SYSTEM_DelayMs(5); SYSTEM_DelayMs(5);
@@ -199,19 +155,58 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
if (gEnableSpeaker) if (gEnableSpeaker)
AUDIO_AudioPathOn(); AUDIO_AudioPathOn();
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
if (gFmRadioMode) if (gFmRadioMode)
BK1080_Mute(false); BK1080_Mute(false);
#endif #endif
if (gCurrentFunction == FUNCTION_POWER_SAVE && gRxIdleMode) if (gCurrentFunction == FUNCTION_POWER_SAVE && gRxIdleMode)
BK4819_Sleep(); BK4819_Sleep();
#ifdef ENABLE_VOX
gVoxResumeCountdown = 80;
#endif
} }
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
void AUDIO_PlayVoice(uint8_t VoiceID) static const uint8_t VoiceClipLengthChinese[58] =
{ {
0x32, 0x32, 0x32, 0x37, 0x37, 0x32, 0x32, 0x32,
0x32, 0x37, 0x37, 0x32, 0x64, 0x64, 0x64, 0x64,
0x64, 0x69, 0x64, 0x69, 0x5A, 0x5F, 0x5F, 0x64,
0x64, 0x69, 0x64, 0x64, 0x69, 0x69, 0x69, 0x64,
0x64, 0x6E, 0x69, 0x5F, 0x64, 0x64, 0x64, 0x69,
0x69, 0x69, 0x64, 0x69, 0x64, 0x64, 0x55, 0x5F,
0x5A, 0x4B, 0x4B, 0x46, 0x46, 0x69, 0x64, 0x6E,
0x5A, 0x64,
};
static const uint8_t VoiceClipLengthEnglish[76] =
{
0x50, 0x32, 0x2D, 0x2D, 0x2D, 0x37, 0x37, 0x37,
0x32, 0x32, 0x3C, 0x37, 0x46, 0x46, 0x4B, 0x82,
0x82, 0x6E, 0x82, 0x46, 0x96, 0x64, 0x46, 0x6E,
0x78, 0x6E, 0x87, 0x64, 0x96, 0x96, 0x46, 0x9B,
0x91, 0x82, 0x82, 0x73, 0x78, 0x64, 0x82, 0x6E,
0x78, 0x82, 0x87, 0x6E, 0x55, 0x78, 0x64, 0x69,
0x9B, 0x5A, 0x50, 0x3C, 0x32, 0x55, 0x64, 0x64,
0x50, 0x46, 0x46, 0x46, 0x4B, 0x4B, 0x50, 0x50,
0x55, 0x4B, 0x4B, 0x32, 0x32, 0x32, 0x32, 0x37,
0x41, 0x32, 0x3C, 0x37,
};
VOICE_ID_t gVoiceID[8];
uint8_t gVoiceReadIndex;
uint8_t gVoiceWriteIndex;
volatile uint16_t gCountdownToPlayNextVoice_10ms;
volatile bool gFlagPlayQueuedVoice;
VOICE_ID_t gAnotherVoiceID = VOICE_ID_INVALID;
static void AUDIO_PlayVoice(uint8_t VoiceID)
{
unsigned int i; unsigned int i;
GPIO_SetBit(&GPIOA->DATA, GPIOA_PIN_VOICE_0); GPIO_SetBit(&GPIOA->DATA, GPIOA_PIN_VOICE_0);
@@ -232,10 +227,10 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
VoiceID <<= 1; VoiceID <<= 1;
SYSTICK_DelayUs(200); SYSTICK_DelayUs(200);
} }
} }
void AUDIO_PlaySingleVoice(bool bFlag) void AUDIO_PlaySingleVoice(bool bFlag)
{ {
uint8_t VoiceID; uint8_t VoiceID;
uint8_t Delay; uint8_t Delay;
@@ -260,9 +255,7 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
VoiceID += VOICE_ID_ENG_BASE; VoiceID += VOICE_ID_ENG_BASE;
} }
if (gCurrentFunction == FUNCTION_RECEIVE || if (FUNCTION_IsRx()) // 1of11
gCurrentFunction == FUNCTION_MONITOR ||
gCurrentFunction == FUNCTION_INCOMING) // 1of11
BK4819_SetAF(BK4819_AF_MUTE); BK4819_SetAF(BK4819_AF_MUTE);
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
@@ -286,9 +279,7 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
{ {
SYSTEM_DelayMs(Delay * 10); SYSTEM_DelayMs(Delay * 10);
if (gCurrentFunction == FUNCTION_RECEIVE || if (FUNCTION_IsRx()) // 1of11
gCurrentFunction == FUNCTION_MONITOR ||
gCurrentFunction == FUNCTION_INCOMING) // 1of11
RADIO_SetModulation(gRxVfo->Modulation); RADIO_SetModulation(gRxVfo->Modulation);
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
@@ -316,13 +307,13 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
return; return;
} }
Bailout: Bailout:
gVoiceReadIndex = 0; gVoiceReadIndex = 0;
gVoiceWriteIndex = 0; gVoiceWriteIndex = 0;
} }
void AUDIO_SetVoiceID(uint8_t Index, VOICE_ID_t VoiceID) void AUDIO_SetVoiceID(uint8_t Index, VOICE_ID_t VoiceID)
{ {
if (Index >= ARRAY_SIZE(gVoiceID)) if (Index >= ARRAY_SIZE(gVoiceID))
return; return;
@@ -335,10 +326,10 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
gVoiceID[Index] = VoiceID; gVoiceID[Index] = VoiceID;
gVoiceWriteIndex++; gVoiceWriteIndex++;
} }
uint8_t AUDIO_SetDigitVoice(uint8_t Index, uint16_t Value) uint8_t AUDIO_SetDigitVoice(uint8_t Index, uint16_t Value)
{ {
uint16_t Remainder; uint16_t Remainder;
uint8_t Result; uint8_t Result;
uint8_t Count; uint8_t Count;
@@ -369,14 +360,14 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
Count++; Count++;
Remainder -= Result * 10U; Remainder -= Result * 10U;
Skip: Skip:
gVoiceID[gVoiceWriteIndex++] = (VOICE_ID_t)Remainder; gVoiceID[gVoiceWriteIndex++] = (VOICE_ID_t)Remainder;
return Count + 1U; return Count + 1U;
} }
void AUDIO_PlayQueuedVoice(void) void AUDIO_PlayQueuedVoice(void)
{ {
uint8_t VoiceID; uint8_t VoiceID;
uint8_t Delay; uint8_t Delay;
bool Skip; bool Skip;
@@ -427,10 +418,10 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
} }
} }
if (gCurrentFunction == FUNCTION_RECEIVE || if (FUNCTION_IsRx())
gCurrentFunction == FUNCTION_MONITOR || {
gCurrentFunction == FUNCTION_INCOMING) // 1of11 RADIO_SetModulation(gRxVfo->Modulation); // 1of11
RADIO_SetModulation(gRxVfo->Modulation); }
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
if (gFmRadioMode) if (gFmRadioMode)
@@ -446,7 +437,6 @@ void AUDIO_PlayBeep(BEEP_Type_t Beep)
gVoiceWriteIndex = 0; gVoiceWriteIndex = 0;
gVoiceReadIndex = 0; gVoiceReadIndex = 0;
} }
#endif #endif

View File

@@ -149,7 +149,6 @@ static inline void AUDIO_AudioPathOff(void) {
extern volatile bool gFlagPlayQueuedVoice; extern volatile bool gFlagPlayQueuedVoice;
extern VOICE_ID_t gAnotherVoiceID; extern VOICE_ID_t gAnotherVoiceID;
void AUDIO_PlayVoice(uint8_t VoiceID);
void AUDIO_PlaySingleVoice(bool bFlag); void AUDIO_PlaySingleVoice(bool bFlag);
void AUDIO_SetVoiceID(uint8_t Index, VOICE_ID_t VoiceID); void AUDIO_SetVoiceID(uint8_t Index, VOICE_ID_t VoiceID);
uint8_t AUDIO_SetDigitVoice(uint8_t Index, uint16_t Value); uint8_t AUDIO_SetDigitVoice(uint8_t Index, uint16_t Value);
@@ -157,4 +156,3 @@ static inline void AUDIO_AudioPathOff(void) {
#endif #endif
#endif #endif

View File

@@ -6,17 +6,6 @@
const uint8_t BITMAP_POWERSAVE[8] = const uint8_t BITMAP_POWERSAVE[8] =
{ {
#if 0
// "S"
0b00000000,
0b00100110,
0b01001001,
0b01001001,
0b01001001,
0b01001001,
0b01001001,
0b00110010
#else
// "PS" // "PS"
0b00000000, 0b00000000,
0b01111111, 0b01111111,
@@ -26,7 +15,7 @@ const uint8_t BITMAP_POWERSAVE[8] =
0b01000110, 0b01000110,
0b01001001, 0b01001001,
0b00110001 0b00110001
#endif
}; };
const uint8_t BITMAP_TX[8] = const uint8_t BITMAP_TX[8] =
@@ -53,6 +42,20 @@ const uint8_t BITMAP_RX[8] =
0b00000000 0b00000000
}; };
const uint8_t BITMAP_FM[10] =
{ // "FM"
0b00000000,
0b01111111,
0b00001001,
0b00000001,
0b00000000,
0b01111111,
0b00000010,
0b00001100,
0b00000010,
0b01111111
};
const uint8_t BITMAP_BatteryLevel[2] = const uint8_t BITMAP_BatteryLevel[2] =
{ {
0b01011101, 0b01011101,
@@ -162,26 +165,10 @@ const uint8_t BITMAP_F_Key[6] =
}; };
#endif #endif
#if 0
const uint8_t BITMAP_WX[12] = // 'XB' (cross-band/cross-VFO)
{ // "WX" const uint8_t BITMAP_XB[12] =
0b00000000, { // "XB"
0b01111111,
0b00100000,
0b00011000,
0b00100000,
0b01111111,
0b00000000,
0b01100011,
0b00010100,
0b00001000,
0b00010100,
0b01100011
};
#else
// 'XB' (cross-band/cross-VFO)
const uint8_t BITMAP_XB[12] =
{ // "XB"
0b00000000, 0b00000000,
0b01100011, 0b01100011,
0b00010100, 0b00010100,
@@ -194,11 +181,12 @@ const uint8_t BITMAP_F_Key[6] =
0b01001001, 0b01001001,
0b01001001, 0b01001001,
0b00110110 0b00110110
}; };
#endif
const uint8_t BITMAP_TDR1[15] =
const uint8_t BITMAP_TDR1[16] =
{ // "DWR" { // "DWR"
0b00000000,
0b01111111, 0b01111111,
0b01000001, 0b01000001,
0b01000001, 0b01000001,
@@ -216,8 +204,9 @@ const uint8_t BITMAP_TDR1[15] =
0b01000110 0b01000110
}; };
const uint8_t BITMAP_TDR2[9] = const uint8_t BITMAP_TDR2[10] =
{ // "><" .. DW on hold { // "><" .. DW on hold
0b00000000,
0b00100010, 0b00100010,
0b00110110, 0b00110110,
0b00011100, 0b00011100,
@@ -270,18 +259,6 @@ const uint8_t BITMAP_Antenna[5] =
0b00000011 0b00000011
}; };
const uint8_t BITMAP_MARKER[8] =
{
0b11111111,
0b11111111,
0b01111110,
0b01111110,
0b00111100,
0b00111100,
0b00011000,
0b00011000
};
const uint8_t BITMAP_VFO_Default[8] = const uint8_t BITMAP_VFO_Default[8] =
{ {
0b00000000, 0b00000000,
@@ -335,3 +312,16 @@ const uint8_t BITMAP_compand[6] =
0b01000010, 0b01000010,
0b00100100 0b00100100
}; };
#ifndef ENABLE_CUSTOM_MENU_LAYOUT
const uint8_t BITMAP_CurrentIndicator[8] = {
0xFF,
0xFF,
0x7E,
0x7E,
0x3C,
0x3C,
0x18,
0x18
};
#endif

View File

@@ -7,7 +7,7 @@
extern const uint8_t BITMAP_POWERSAVE[8]; extern const uint8_t BITMAP_POWERSAVE[8];
extern const uint8_t BITMAP_TX[8]; extern const uint8_t BITMAP_TX[8];
extern const uint8_t BITMAP_RX[8]; extern const uint8_t BITMAP_RX[8];
extern const uint8_t BITMAP_FM[10];
extern const uint8_t BITMAP_BatteryLevel[2]; extern const uint8_t BITMAP_BatteryLevel[2];
extern const uint8_t BITMAP_BatteryLevel1[17]; extern const uint8_t BITMAP_BatteryLevel1[17];
@@ -23,8 +23,8 @@ extern const uint8_t BITMAP_F_Key[6];
extern const uint8_t BITMAP_XB[12]; extern const uint8_t BITMAP_XB[12];
extern const uint8_t BITMAP_TDR1[15]; extern const uint8_t BITMAP_TDR1[16];
extern const uint8_t BITMAP_TDR2[9]; extern const uint8_t BITMAP_TDR2[10];
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
extern const uint8_t BITMAP_VoicePrompt[9]; extern const uint8_t BITMAP_VoicePrompt[9];
@@ -36,8 +36,6 @@ extern const uint8_t BITMAP_TDR2[9];
extern const uint8_t BITMAP_Antenna[5]; extern const uint8_t BITMAP_Antenna[5];
extern const uint8_t BITMAP_MARKER[8];
extern const uint8_t BITMAP_VFO_Default[8]; extern const uint8_t BITMAP_VFO_Default[8];
extern const uint8_t BITMAP_VFO_NotDefault[8]; extern const uint8_t BITMAP_VFO_NotDefault[8];
@@ -46,5 +44,8 @@ extern const uint8_t BITMAP_ScanList2[6];
extern const uint8_t BITMAP_compand[6]; extern const uint8_t BITMAP_compand[6];
#ifndef ENABLE_CUSTOM_MENU_LAYOUT
extern const uint8_t BITMAP_CurrentIndicator[8];
#endif #endif
#endif

405
board.c
View File

@@ -16,7 +16,6 @@
#include <string.h> #include <string.h>
#include "app/dtmf.h"
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
#include "app/fm.h" #include "app/fm.h"
#endif #endif
@@ -30,7 +29,7 @@
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
#include "driver/bk1080.h" #include "driver/bk1080.h"
#endif #endif
#include "driver/bk4819.h"
#include "driver/crc.h" #include "driver/crc.h"
#include "driver/eeprom.h" #include "driver/eeprom.h"
#include "driver/flash.h" #include "driver/flash.h"
@@ -44,16 +43,6 @@
#if defined(ENABLE_OVERLAY) #if defined(ENABLE_OVERLAY)
#include "sram-overlay.h" #include "sram-overlay.h"
#endif #endif
#include "ui/menu.h"
static const uint32_t gDefaultFrequencyTable[] =
{
14500000, //
14550000, //
43300000, //
43320000, //
43350000 //
};
#if defined(ENABLE_OVERLAY) #if defined(ENABLE_OVERLAY)
void BOARD_FLASH_Init(void) void BOARD_FLASH_Init(void)
@@ -504,397 +493,13 @@ void BOARD_Init(void)
BOARD_GPIO_Init(); BOARD_GPIO_Init();
BACKLIGHT_InitHardware(); BACKLIGHT_InitHardware();
BOARD_ADC_Init(); BOARD_ADC_Init();
ST7565_Init(true); ST7565_Init();
#ifdef ENABLE_FMRADIO
BK1080_Init(0, false);
#endif
CRC_Init();
}
void BOARD_EEPROM_Init(void)
{
unsigned int i;
uint8_t Data[16];
memset(Data, 0, sizeof(Data));
// 0E70..0E77
EEPROM_ReadBuffer(0x0E70, Data, 8);
gEeprom.CHAN_1_CALL = IS_MR_CHANNEL(Data[0]) ? Data[0] : MR_CHANNEL_FIRST;
gEeprom.SQUELCH_LEVEL = (Data[1] < 10) ? Data[1] : 1;
gEeprom.TX_TIMEOUT_TIMER = (Data[2] < 11) ? Data[2] : 1;
#ifdef ENABLE_NOAA
gEeprom.NOAA_AUTO_SCAN = (Data[3] < 2) ? Data[3] : false;
#endif
gEeprom.KEY_LOCK = (Data[4] < 2) ? Data[4] : false;
#ifdef ENABLE_VOX
gEeprom.VOX_SWITCH = (Data[5] < 2) ? Data[5] : false;
gEeprom.VOX_LEVEL = (Data[6] < 10) ? Data[6] : 1;
#endif
gEeprom.MIC_SENSITIVITY = (Data[7] < 5) ? Data[7] : 4;
// 0E78..0E7F
EEPROM_ReadBuffer(0x0E78, Data, 8);
gEeprom.BACKLIGHT_MAX = (Data[0] & 0xF) <= 10 ? (Data[0] & 0xF) : 10;
gEeprom.BACKLIGHT_MIN = (Data[0] >> 4) < gEeprom.BACKLIGHT_MAX ? (Data[0] >> 4) : 0;
#ifdef ENABLE_BLMIN_TMP_OFF
gEeprom.BACKLIGHT_MIN_STAT = BLMIN_STAT_ON;
#endif
gEeprom.CHANNEL_DISPLAY_MODE = (Data[1] < 4) ? Data[1] : MDF_FREQUENCY; // 4 instead of 3 - extra display mode
gEeprom.CROSS_BAND_RX_TX = (Data[2] < 3) ? Data[2] : CROSS_BAND_OFF;
gEeprom.BATTERY_SAVE = (Data[3] < 5) ? Data[3] : 4;
gEeprom.DUAL_WATCH = (Data[4] < 3) ? Data[4] : DUAL_WATCH_CHAN_A;
gEeprom.BACKLIGHT_TIME = (Data[5] < ARRAY_SIZE(gSubMenu_BACKLIGHT)) ? Data[5] : 3;
gEeprom.TAIL_TONE_ELIMINATION = (Data[6] < 2) ? Data[6] : false;
gEeprom.VFO_OPEN = (Data[7] < 2) ? Data[7] : true;
// 0E80..0E87
EEPROM_ReadBuffer(0x0E80, Data, 8);
gEeprom.ScreenChannel[0] = IS_VALID_CHANNEL(Data[0]) ? Data[0] : (FREQ_CHANNEL_FIRST + BAND6_400MHz);
gEeprom.ScreenChannel[1] = IS_VALID_CHANNEL(Data[3]) ? Data[3] : (FREQ_CHANNEL_FIRST + BAND6_400MHz);
gEeprom.MrChannel[0] = IS_MR_CHANNEL(Data[1]) ? Data[1] : MR_CHANNEL_FIRST;
gEeprom.MrChannel[1] = IS_MR_CHANNEL(Data[4]) ? Data[4] : MR_CHANNEL_FIRST;
gEeprom.FreqChannel[0] = IS_FREQ_CHANNEL(Data[2]) ? Data[2] : (FREQ_CHANNEL_FIRST + BAND6_400MHz);
gEeprom.FreqChannel[1] = IS_FREQ_CHANNEL(Data[5]) ? Data[5] : (FREQ_CHANNEL_FIRST + BAND6_400MHz);
#ifdef ENABLE_NOAA
gEeprom.NoaaChannel[0] = IS_NOAA_CHANNEL(Data[6]) ? Data[6] : NOAA_CHANNEL_FIRST;
gEeprom.NoaaChannel[1] = IS_NOAA_CHANNEL(Data[7]) ? Data[7] : NOAA_CHANNEL_FIRST;
#endif
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
{ // 0E88..0E8F BK1080_Init0();
struct
{
uint16_t SelectedFrequency;
uint8_t SelectedChannel;
uint8_t IsMrMode;
uint8_t Padding[8];
} __attribute__((packed)) FM;
EEPROM_ReadBuffer(0x0E88, &FM, 8);
gEeprom.FM_LowerLimit = 760;
gEeprom.FM_UpperLimit = 1080;
if (FM.SelectedFrequency < gEeprom.FM_LowerLimit || FM.SelectedFrequency > gEeprom.FM_UpperLimit)
gEeprom.FM_SelectedFrequency = 960;
else
gEeprom.FM_SelectedFrequency = FM.SelectedFrequency;
gEeprom.FM_SelectedChannel = FM.SelectedChannel;
gEeprom.FM_IsMrMode = (FM.IsMrMode < 2) ? FM.IsMrMode : false;
}
// 0E40..0E67
EEPROM_ReadBuffer(0x0E40, gFM_Channels, sizeof(gFM_Channels));
FM_ConfigureChannelState();
#endif #endif
// 0E90..0E97 #if defined(ENABLE_UART) || defined(ENABLED_AIRCOPY)
EEPROM_ReadBuffer(0x0E90, Data, 8); CRC_Init();
gEeprom.BEEP_CONTROL = Data[0] & 1;
gEeprom.KEY_M_LONG_PRESS_ACTION = ((Data[0] >> 1) < ACTION_OPT_LEN) ? (Data[0] >> 1) : ACTION_OPT_NONE;
gEeprom.KEY_1_SHORT_PRESS_ACTION = (Data[1] < ACTION_OPT_LEN) ? Data[1] : ACTION_OPT_MONITOR;
gEeprom.KEY_1_LONG_PRESS_ACTION = (Data[2] < ACTION_OPT_LEN) ? Data[2] : ACTION_OPT_FLASHLIGHT;
gEeprom.KEY_2_SHORT_PRESS_ACTION = (Data[3] < ACTION_OPT_LEN) ? Data[3] : ACTION_OPT_SCAN;
gEeprom.KEY_2_LONG_PRESS_ACTION = (Data[4] < ACTION_OPT_LEN) ? Data[4] : ACTION_OPT_NONE;
gEeprom.SCAN_RESUME_MODE = (Data[5] < 3) ? Data[5] : SCAN_RESUME_CO;
gEeprom.AUTO_KEYPAD_LOCK = (Data[6] < 2) ? Data[6] : false;
gEeprom.POWER_ON_DISPLAY_MODE = (Data[7] < 4) ? Data[7] : POWER_ON_DISPLAY_MODE_VOLTAGE;
// 0E98..0E9F
EEPROM_ReadBuffer(0x0E98, Data, 8);
memmove(&gEeprom.POWER_ON_PASSWORD, Data, 4);
// 0EA0..0EA7
#ifdef ENABLE_VOICE
EEPROM_ReadBuffer(0x0EA0, Data, 8);
gEeprom.VOICE_PROMPT = (Data[0] < 3) ? Data[0] : VOICE_PROMPT_ENGLISH;
#endif
// 0EA8..0EAF
EEPROM_ReadBuffer(0x0EA8, Data, 8);
#ifdef ENABLE_ALARM
gEeprom.ALARM_MODE = (Data[0] < 2) ? Data[0] : true;
#endif
gEeprom.ROGER = (Data[1] < 3) ? Data[1] : ROGER_MODE_OFF;
gEeprom.REPEATER_TAIL_TONE_ELIMINATION = (Data[2] < 11) ? Data[2] : 0;
gEeprom.TX_VFO = (Data[3] < 2) ? Data[3] : 0;
gEeprom.BATTERY_TYPE = (Data[4] < BATTERY_TYPE_UNKNOWN) ? Data[4] : BATTERY_TYPE_1600_MAH;
// 0ED0..0ED7
EEPROM_ReadBuffer(0x0ED0, Data, 8);
gEeprom.DTMF_SIDE_TONE = (Data[0] < 2) ? Data[0] : true;
#ifdef ENABLE_DTMF_CALLING
gEeprom.DTMF_SEPARATE_CODE = DTMF_ValidateCodes((char *)(Data + 1), 1) ? Data[1] : '*';
gEeprom.DTMF_GROUP_CALL_CODE = DTMF_ValidateCodes((char *)(Data + 2), 1) ? Data[2] : '#';
gEeprom.DTMF_DECODE_RESPONSE = (Data[3] < 4) ? Data[3] : 0;
gEeprom.DTMF_auto_reset_time = (Data[4] < 61) ? Data[4] : (Data[4] >= 5) ? Data[4] : 10;
#endif
gEeprom.DTMF_PRELOAD_TIME = (Data[5] < 101) ? Data[5] * 10 : 300;
gEeprom.DTMF_FIRST_CODE_PERSIST_TIME = (Data[6] < 101) ? Data[6] * 10 : 100;
gEeprom.DTMF_HASH_CODE_PERSIST_TIME = (Data[7] < 101) ? Data[7] * 10 : 100;
// 0ED8..0EDF
EEPROM_ReadBuffer(0x0ED8, Data, 8);
gEeprom.DTMF_CODE_PERSIST_TIME = (Data[0] < 101) ? Data[0] * 10 : 100;
gEeprom.DTMF_CODE_INTERVAL_TIME = (Data[1] < 101) ? Data[1] * 10 : 100;
#ifdef ENABLE_DTMF_CALLING
gEeprom.PERMIT_REMOTE_KILL = (Data[2] < 2) ? Data[2] : true;
// 0EE0..0EE7
EEPROM_ReadBuffer(0x0EE0, Data, 8);
if (DTMF_ValidateCodes((char *)Data, 8))
memmove(gEeprom.ANI_DTMF_ID, Data, 8);
else
{
memset(gEeprom.ANI_DTMF_ID, 0, sizeof(gEeprom.ANI_DTMF_ID));
strcpy(gEeprom.ANI_DTMF_ID, "123");
}
// 0EE8..0EEF
EEPROM_ReadBuffer(0x0EE8, Data, 8);
if (DTMF_ValidateCodes((char *)Data, 8))
memmove(gEeprom.KILL_CODE, Data, 8);
else
{
memset(gEeprom.KILL_CODE, 0, sizeof(gEeprom.KILL_CODE));
strcpy(gEeprom.KILL_CODE, "ABCD9");
}
// 0EF0..0EF7
EEPROM_ReadBuffer(0x0EF0, Data, 8);
if (DTMF_ValidateCodes((char *)Data, 8))
memmove(gEeprom.REVIVE_CODE, Data, 8);
else
{
memset(gEeprom.REVIVE_CODE, 0, sizeof(gEeprom.REVIVE_CODE));
strcpy(gEeprom.REVIVE_CODE, "9DCBA");
}
#endif #endif
// 0EF8..0F07
EEPROM_ReadBuffer(0x0EF8, Data, 16);
if (DTMF_ValidateCodes((char *)Data, 16))
memmove(gEeprom.DTMF_UP_CODE, Data, 16);
else
{
memset(gEeprom.DTMF_UP_CODE, 0, sizeof(gEeprom.DTMF_UP_CODE));
strcpy(gEeprom.DTMF_UP_CODE, "12345");
}
// 0F08..0F17
EEPROM_ReadBuffer(0x0F08, Data, 16);
if (DTMF_ValidateCodes((char *)Data, 16))
memmove(gEeprom.DTMF_DOWN_CODE, Data, 16);
else
{
memset(gEeprom.DTMF_DOWN_CODE, 0, sizeof(gEeprom.DTMF_DOWN_CODE));
strcpy(gEeprom.DTMF_DOWN_CODE, "54321");
}
// 0F18..0F1F
EEPROM_ReadBuffer(0x0F18, Data, 8);
// gEeprom.SCAN_LIST_DEFAULT = (Data[0] < 2) ? Data[0] : false;
gEeprom.SCAN_LIST_DEFAULT = (Data[0] < 3) ? Data[0] : false; // we now have 'all' channel scan option
for (i = 0; i < 2; i++)
{
const unsigned int j = 1 + (i * 3);
gEeprom.SCAN_LIST_ENABLED[i] = (Data[j + 0] < 2) ? Data[j] : false;
gEeprom.SCANLIST_PRIORITY_CH1[i] = Data[j + 1];
gEeprom.SCANLIST_PRIORITY_CH2[i] = Data[j + 2];
}
// 0F40..0F47
EEPROM_ReadBuffer(0x0F40, Data, 8);
gSetting_F_LOCK = (Data[0] < F_LOCK_LEN) ? Data[0] : F_LOCK_DEF;
gSetting_350TX = (Data[1] < 2) ? Data[1] : false; // was true
#ifdef ENABLE_DTMF_CALLING
gSetting_KILLED = (Data[2] < 2) ? Data[2] : false;
#endif
gSetting_200TX = (Data[3] < 2) ? Data[3] : false;
gSetting_500TX = (Data[4] < 2) ? Data[4] : false;
gSetting_350EN = (Data[5] < 2) ? Data[5] : true;
gSetting_ScrambleEnable = (Data[6] < 2) ? Data[6] : true;
//gSetting_TX_EN = (Data[7] & (1u << 0)) ? true : false;
gSetting_live_DTMF_decoder = (Data[7] & (1u << 1)) ? true : false;
gSetting_battery_text = (((Data[7] >> 2) & 3u) <= 2) ? (Data[7] >> 2) & 3 : 2;
#ifdef ENABLE_AUDIO_BAR
gSetting_mic_bar = (Data[7] & (1u << 4)) ? true : false;
#endif
#ifdef ENABLE_AM_FIX
gSetting_AM_fix = (Data[7] & (1u << 5)) ? true : false;
#endif
gSetting_backlight_on_tx_rx = (Data[7] >> 6) & 3u;
if (!gEeprom.VFO_OPEN)
{
gEeprom.ScreenChannel[0] = gEeprom.MrChannel[0];
gEeprom.ScreenChannel[1] = gEeprom.MrChannel[1];
}
// 0D60..0E27
EEPROM_ReadBuffer(0x0D60, gMR_ChannelAttributes, sizeof(gMR_ChannelAttributes));
for(uint16_t i = 0; i < sizeof(gMR_ChannelAttributes); i++) {
ChannelAttributes_t *att = &gMR_ChannelAttributes[i];
if(att->__val == 0xff){
att->__val = 0;
att->band = 0xf;
}
}
// 0F30..0F3F
EEPROM_ReadBuffer(0x0F30, gCustomAesKey, sizeof(gCustomAesKey));
bHasCustomAesKey = false;
for (i = 0; i < ARRAY_SIZE(gCustomAesKey); i++)
{
if (gCustomAesKey[i] != 0xFFFFFFFFu)
{
bHasCustomAesKey = true;
return;
}
}
}
void BOARD_EEPROM_LoadCalibration(void)
{
// uint8_t Mic;
EEPROM_ReadBuffer(0x1EC0, gEEPROM_RSSI_CALIB[3], 8);
memcpy(gEEPROM_RSSI_CALIB[4], gEEPROM_RSSI_CALIB[3], 8);
memcpy(gEEPROM_RSSI_CALIB[5], gEEPROM_RSSI_CALIB[3], 8);
memcpy(gEEPROM_RSSI_CALIB[6], gEEPROM_RSSI_CALIB[3], 8);
EEPROM_ReadBuffer(0x1EC8, gEEPROM_RSSI_CALIB[0], 8);
memcpy(gEEPROM_RSSI_CALIB[1], gEEPROM_RSSI_CALIB[0], 8);
memcpy(gEEPROM_RSSI_CALIB[2], gEEPROM_RSSI_CALIB[0], 8);
EEPROM_ReadBuffer(0x1F40, gBatteryCalibration, 12);
if (gBatteryCalibration[0] >= 5000)
{
gBatteryCalibration[0] = 1900;
gBatteryCalibration[1] = 2000;
}
gBatteryCalibration[5] = 2300;
#ifdef ENABLE_VOX
EEPROM_ReadBuffer(0x1F50 + (gEeprom.VOX_LEVEL * 2), &gEeprom.VOX1_THRESHOLD, 2);
EEPROM_ReadBuffer(0x1F68 + (gEeprom.VOX_LEVEL * 2), &gEeprom.VOX0_THRESHOLD, 2);
#endif
//EEPROM_ReadBuffer(0x1F80 + gEeprom.MIC_SENSITIVITY, &Mic, 1);
//gEeprom.MIC_SENSITIVITY_TUNING = (Mic < 32) ? Mic : 15;
gEeprom.MIC_SENSITIVITY_TUNING = gMicGain_dB2[gEeprom.MIC_SENSITIVITY];
{
struct
{
int16_t BK4819_XtalFreqLow;
uint16_t EEPROM_1F8A;
uint16_t EEPROM_1F8C;
uint8_t VOLUME_GAIN;
uint8_t DAC_GAIN;
} __attribute__((packed)) Misc;
// radio 1 .. 04 00 46 00 50 00 2C 0E
// radio 2 .. 05 00 46 00 50 00 2C 0E
EEPROM_ReadBuffer(0x1F88, &Misc, 8);
gEeprom.BK4819_XTAL_FREQ_LOW = (Misc.BK4819_XtalFreqLow >= -1000 && Misc.BK4819_XtalFreqLow <= 1000) ? Misc.BK4819_XtalFreqLow : 0;
gEEPROM_1F8A = Misc.EEPROM_1F8A & 0x01FF;
gEEPROM_1F8C = Misc.EEPROM_1F8C & 0x01FF;
gEeprom.VOLUME_GAIN = (Misc.VOLUME_GAIN < 64) ? Misc.VOLUME_GAIN : 58;
gEeprom.DAC_GAIN = (Misc.DAC_GAIN < 16) ? Misc.DAC_GAIN : 8;
BK4819_WriteRegister(BK4819_REG_3B, 22656 + gEeprom.BK4819_XTAL_FREQ_LOW);
// BK4819_WriteRegister(BK4819_REG_3C, gEeprom.BK4819_XTAL_FREQ_HIGH);
}
}
uint32_t BOARD_fetchChannelFrequency(const int channel)
{
struct
{
uint32_t frequency;
uint32_t offset;
} __attribute__((packed)) info;
EEPROM_ReadBuffer(channel * 16, &info, sizeof(info));
return info.frequency;
}
void BOARD_fetchChannelName(char *s, const int channel)
{
int i;
if (s == NULL)
return;
memset(s, 0, 11); // 's' had better be large enough !
if (channel < 0)
return;
if (!RADIO_CheckValidChannel(channel, false, 0))
return;
EEPROM_ReadBuffer(0x0F50 + (channel * 16), s + 0, 8);
EEPROM_ReadBuffer(0x0F58 + (channel * 16), s + 8, 2);
for (i = 0; i < 10; i++)
if (s[i] < 32 || s[i] > 127)
break; // invalid char
s[i--] = 0; // null term
while (i >= 0 && s[i] == 32) // trim trailing spaces
s[i--] = 0; // null term
}
void BOARD_FactoryReset(bool bIsAll)
{
uint16_t i;
uint8_t Template[8];
memset(Template, 0xFF, sizeof(Template));
for (i = 0x0C80; i < 0x1E00; i += 8)
{
if (
!(i >= 0x0EE0 && i < 0x0F18) && // ANI ID + DTMF codes
!(i >= 0x0F30 && i < 0x0F50) && // AES KEY + F LOCK + Scramble Enable
!(i >= 0x1C00 && i < 0x1E00) && // DTMF contacts
!(i >= 0x0EB0 && i < 0x0ED0) && // Welcome strings
!(i >= 0x0EA0 && i < 0x0EA8) && // Voice Prompt
(bIsAll ||
(
!(i >= 0x0D60 && i < 0x0E28) && // MR Channel Attributes
!(i >= 0x0F18 && i < 0x0F30) && // Scan List
!(i >= 0x0F50 && i < 0x1C00) && // MR Channel Names
!(i >= 0x0E40 && i < 0x0E70) && // FM Channels
!(i >= 0x0E88 && i < 0x0E90) // FM settings
))
)
{
EEPROM_WriteBuffer(i, Template);
}
}
if (bIsAll)
{
RADIO_InitInfo(gRxVfo, FREQ_CHANNEL_FIRST + BAND6_400MHz, 43350000);
// set the first few memory channels
for (i = 0; i < ARRAY_SIZE(gDefaultFrequencyTable); i++)
{
const uint32_t Frequency = gDefaultFrequencyTable[i];
gRxVfo->freq_config_RX.Frequency = Frequency;
gRxVfo->freq_config_TX.Frequency = Frequency;
gRxVfo->Band = FREQUENCY_GetBand(Frequency);
SETTINGS_SaveChannel(MR_CHANNEL_FIRST + i, 0, gRxVfo, 2);
}
}
} }

View File

@@ -26,11 +26,6 @@ void BOARD_PORTCON_Init(void);
void BOARD_ADC_Init(void); void BOARD_ADC_Init(void);
void BOARD_ADC_GetBatteryInfo(uint16_t *pVoltage, uint16_t *pCurrent); void BOARD_ADC_GetBatteryInfo(uint16_t *pVoltage, uint16_t *pCurrent);
void BOARD_Init(void); void BOARD_Init(void);
void BOARD_EEPROM_Init(void);
void BOARD_EEPROM_LoadCalibration(void);
uint32_t BOARD_fetchChannelFrequency(const int channel);
void BOARD_fetchChannelName(char *s, const int channel);
void BOARD_FactoryReset(bool bIsAll);
#endif #endif

View File

@@ -1,18 +1,48 @@
#ifndef DEBUGGING_H #ifndef DEBUGGING_H
#define DEBUGGING_H #define DEBUGGING_H
#ifdef ENABLE_UART
#include "driver/uart.h" #include "driver/uart.h"
#include "driver/bk4819.h"
#include "string.h" #include "string.h"
#include "external/printf/printf.h" #include "external/printf/printf.h"
#include "am_fix.h"
static inline void LogUart(const char *const str)
static inline void LogUart(char * str)
{ {
UART_Send(str, strlen(str)); UART_Send(str, strlen(str));
} }
static inline void LogUartf(const char* format, ...)
{
char buffer[128];
va_list va;
va_start(va, format);
vsnprintf(buffer, (size_t)-1, format, va);
va_end(va);
UART_Send(buffer, strlen(buffer));
}
static inline void LogRegUart(uint16_t reg)
{
uint16_t regVal = BK4819_ReadRegister(reg);
char buf[32];
sprintf(buf, "reg%02X: %04X\n", reg, regVal);
LogUart(buf);
}
static inline void LogPrint()
{
uint16_t rssi = BK4819_GetRSSI();
uint16_t reg7e = BK4819_ReadRegister(0x7E);
char buf[32];
sprintf(buf, "reg7E: %d %2d %6d %2d %d rssi: %d\n", (reg7e >> 15),
(reg7e >> 12) & 0b111, (reg7e >> 5) & 0b1111111,
(reg7e >> 2) & 0b111, (reg7e >> 0) & 0b11, rssi);
LogUart(buf);
}
#endif
#endif #endif

View File

@@ -22,7 +22,7 @@
#include "settings.h" #include "settings.h"
// this is decremented once every 500ms // this is decremented once every 500ms
uint16_t gBacklightCountdown = 0; uint16_t gBacklightCountdown_500ms = 0;
bool backlightOn; bool backlightOn;
void BACKLIGHT_InitHardware() void BACKLIGHT_InitHardware()
@@ -54,42 +54,30 @@ void BACKLIGHT_InitHardware()
void BACKLIGHT_TurnOn(void) void BACKLIGHT_TurnOn(void)
{ {
if (gEeprom.BACKLIGHT_TIME != 0) { if (gEeprom.BACKLIGHT_TIME == 0) {
backlightOn = true;
BACKLIGHT_SetBrightness(gEeprom.BACKLIGHT_MAX);
}
else {
BACKLIGHT_TurnOff(); BACKLIGHT_TurnOff();
return; return;
} }
switch (gEeprom.BACKLIGHT_TIME) backlightOn = true;
{ BACKLIGHT_SetBrightness(gEeprom.BACKLIGHT_MAX);
switch (gEeprom.BACKLIGHT_TIME) {
default: default:
case 1: // 5 sec case 1: // 5 sec
gBacklightCountdown = 5;
break;
case 2: // 10 sec case 2: // 10 sec
gBacklightCountdown = 10;
break;
case 3: // 20 sec case 3: // 20 sec
gBacklightCountdown = 20; gBacklightCountdown_500ms = 1 + (2 << (gEeprom.BACKLIGHT_TIME - 1)) * 5;
break; break;
case 4: // 1 min case 4: // 1 min
gBacklightCountdown = 60;
break;
case 5: // 2 min case 5: // 2 min
gBacklightCountdown = 60 * 2;
break;
case 6: // 4 min case 6: // 4 min
gBacklightCountdown = 60 * 4; gBacklightCountdown_500ms = 1 + (2 << (gEeprom.BACKLIGHT_TIME - 4)) * 60;
break; break;
case 7: // always on case 7: // always on
gBacklightCountdown = 0; gBacklightCountdown_500ms = 0;
break; break;
} }
gBacklightCountdown *= 2;
} }
void BACKLIGHT_TurnOff() void BACKLIGHT_TurnOff()
@@ -106,7 +94,7 @@ void BACKLIGHT_TurnOff()
#else #else
BACKLIGHT_SetBrightness(gEeprom.BACKLIGHT_MIN); BACKLIGHT_SetBrightness(gEeprom.BACKLIGHT_MIN);
#endif #endif
gBacklightCountdown = 0; gBacklightCountdown_500ms = 0;
backlightOn = false; backlightOn = false;
} }
@@ -115,8 +103,16 @@ bool BACKLIGHT_IsOn()
return backlightOn; return backlightOn;
} }
static uint8_t currentBrightness;
void BACKLIGHT_SetBrightness(uint8_t brigtness) void BACKLIGHT_SetBrightness(uint8_t brigtness)
{ {
currentBrightness = brigtness;
PWM_PLUS0_CH0_COMP = (1 << brigtness) - 1; PWM_PLUS0_CH0_COMP = (1 << brigtness) - 1;
//PWM_PLUS0_SWLOAD = 1; //PWM_PLUS0_SWLOAD = 1;
} }
uint8_t BACKLIGHT_GetBrightness(void)
{
return currentBrightness;
}

View File

@@ -20,7 +20,7 @@
#include <stdint.h> #include <stdint.h>
#include <stdbool.h> #include <stdbool.h>
extern uint16_t gBacklightCountdown; extern uint16_t gBacklightCountdown_500ms;
extern uint8_t gBacklightBrightness; extern uint8_t gBacklightBrightness;
#ifdef ENABLE_BLMIN_TMP_OFF #ifdef ENABLE_BLMIN_TMP_OFF
@@ -36,6 +36,6 @@ void BACKLIGHT_TurnOn();
void BACKLIGHT_TurnOff(); void BACKLIGHT_TurnOff();
bool BACKLIGHT_IsOn(); bool BACKLIGHT_IsOn();
void BACKLIGHT_SetBrightness(uint8_t brigtness); void BACKLIGHT_SetBrightness(uint8_t brigtness);
uint8_t BACKLIGHT_GetBrightness(void);
#endif #endif

View File

@@ -39,16 +39,19 @@ static bool gIsInitBK1080;
uint16_t BK1080_BaseFrequency; uint16_t BK1080_BaseFrequency;
uint16_t BK1080_FrequencyDeviation; uint16_t BK1080_FrequencyDeviation;
void BK1080_Init(uint16_t Frequency, bool bDoScan) void BK1080_Init0(void)
{
BK1080_Init(0,0/*,0*/);
}
void BK1080_Init(uint16_t freq, uint8_t band/*, uint8_t space*/)
{ {
unsigned int i; unsigned int i;
if (bDoScan) if (freq) {
{
GPIO_ClearBit(&GPIOB->DATA, GPIOB_PIN_BK1080); GPIO_ClearBit(&GPIOB->DATA, GPIOB_PIN_BK1080);
if (!gIsInitBK1080) if (!gIsInitBK1080) {
{
for (i = 0; i < ARRAY_SIZE(BK1080_RegisterTable); i++) for (i = 0; i < ARRAY_SIZE(BK1080_RegisterTable); i++)
BK1080_WriteRegister(i, BK1080_RegisterTable[i]); BK1080_WriteRegister(i, BK1080_RegisterTable[i]);
@@ -61,20 +64,14 @@ void BK1080_Init(uint16_t Frequency, bool bDoScan)
gIsInitBK1080 = true; gIsInitBK1080 = true;
} }
else else {
{
BK1080_WriteRegister(BK1080_REG_02_POWER_CONFIGURATION, 0x0201); BK1080_WriteRegister(BK1080_REG_02_POWER_CONFIGURATION, 0x0201);
} }
BK1080_WriteRegister(BK1080_REG_05_SYSTEM_CONFIGURATION2, 0x0A5F); BK1080_WriteRegister(BK1080_REG_05_SYSTEM_CONFIGURATION2, 0x0A1F);
BK1080_WriteRegister(BK1080_REG_03_CHANNEL, Frequency - 760); BK1080_SetFrequency(freq, band/*, space*/);
SYSTEM_DelayMs(10);
BK1080_WriteRegister(BK1080_REG_03_CHANNEL, (Frequency - 760) | 0x8000);
} }
else else {
{
BK1080_WriteRegister(BK1080_REG_02_POWER_CONFIGURATION, 0x0241); BK1080_WriteRegister(BK1080_REG_02_POWER_CONFIGURATION, 0x0241);
GPIO_SetBit(&GPIOB->DATA, GPIOB_PIN_BK1080); GPIO_SetBit(&GPIOB->DATA, GPIOB_PIN_BK1080);
} }
@@ -108,11 +105,22 @@ void BK1080_Mute(bool Mute)
BK1080_WriteRegister(BK1080_REG_02_POWER_CONFIGURATION, Mute ? 0x4201 : 0x0201); BK1080_WriteRegister(BK1080_REG_02_POWER_CONFIGURATION, Mute ? 0x4201 : 0x0201);
} }
void BK1080_SetFrequency(uint16_t Frequency) void BK1080_SetFrequency(uint16_t frequency, uint8_t band/*, uint8_t space*/)
{ {
BK1080_WriteRegister(BK1080_REG_03_CHANNEL, Frequency - 760); //uint8_t spacings[] = {20,10,5};
//space %= 3;
uint16_t channel = (frequency - BK1080_GetFreqLoLimit(band))/* * 10 / spacings[space]*/;
uint16_t regval = BK1080_ReadRegister(BK1080_REG_05_SYSTEM_CONFIGURATION2);
regval = (regval & ~(0b11 << 6)) | ((band & 0b11) << 6);
//regval = (regval & ~(0b11 << 4)) | ((space & 0b11) << 4);
BK1080_WriteRegister(BK1080_REG_05_SYSTEM_CONFIGURATION2, regval);
BK1080_WriteRegister(BK1080_REG_03_CHANNEL, channel);
SYSTEM_DelayMs(10); SYSTEM_DelayMs(10);
BK1080_WriteRegister(BK1080_REG_03_CHANNEL, (Frequency - 760) | 0x8000); BK1080_WriteRegister(BK1080_REG_03_CHANNEL, channel | 0x8000);
} }
void BK1080_GetFrequencyDeviation(uint16_t Frequency) void BK1080_GetFrequencyDeviation(uint16_t Frequency)
@@ -120,3 +128,17 @@ void BK1080_GetFrequencyDeviation(uint16_t Frequency)
BK1080_BaseFrequency = Frequency; BK1080_BaseFrequency = Frequency;
BK1080_FrequencyDeviation = BK1080_ReadRegister(BK1080_REG_07) / 16; BK1080_FrequencyDeviation = BK1080_ReadRegister(BK1080_REG_07) / 16;
} }
uint16_t BK1080_GetFreqLoLimit(uint8_t band)
{
uint16_t lim[] = {875, 760, 760, 640};
return lim[band % 4];
}
uint16_t BK1080_GetFreqHiLimit(uint8_t band)
{
band %= 4;
uint16_t lim[] = {1080, 1080, 900, 760};
return lim[band % 4];
}

View File

@@ -24,11 +24,14 @@
extern uint16_t BK1080_BaseFrequency; extern uint16_t BK1080_BaseFrequency;
extern uint16_t BK1080_FrequencyDeviation; extern uint16_t BK1080_FrequencyDeviation;
void BK1080_Init(uint16_t Frequency, bool bDoScan); void BK1080_Init0(void);
void BK1080_Init(uint16_t Frequency, uint8_t band/*, uint8_t space*/);
uint16_t BK1080_ReadRegister(BK1080_Register_t Register); uint16_t BK1080_ReadRegister(BK1080_Register_t Register);
void BK1080_WriteRegister(BK1080_Register_t Register, uint16_t Value); void BK1080_WriteRegister(BK1080_Register_t Register, uint16_t Value);
void BK1080_Mute(bool Mute); void BK1080_Mute(bool Mute);
void BK1080_SetFrequency(uint16_t Frequency); uint16_t BK1080_GetFreqLoLimit(uint8_t band);
uint16_t BK1080_GetFreqHiLimit(uint8_t band);
void BK1080_SetFrequency(uint16_t frequency, uint8_t band/*, uint8_t space*/);
void BK1080_GetFrequencyDeviation(uint16_t Frequency); void BK1080_GetFrequencyDeviation(uint16_t Frequency);
#endif #endif

View File

@@ -17,6 +17,7 @@
#ifndef BK4819_REGS_H #ifndef BK4819_REGS_H
#define BK4819_REGS_H #define BK4819_REGS_H
#include <stdint.h>
typedef struct { typedef struct {
const char *name; const char *name;
@@ -41,10 +42,15 @@ enum BK4819_REGISTER_t {
BK4819_REG_0C = 0x0CU, BK4819_REG_0C = 0x0CU,
BK4819_REG_0D = 0x0DU, BK4819_REG_0D = 0x0DU,
BK4819_REG_0E = 0x0EU, BK4819_REG_0E = 0x0EU,
// RX AGC Gain Table[0]
BK4819_REG_10 = 0x10U, BK4819_REG_10 = 0x10U,
// RX AGC Gain Table[1]
BK4819_REG_11 = 0x11U, BK4819_REG_11 = 0x11U,
// RX AGC Gain Table[2]
BK4819_REG_12 = 0x12U, BK4819_REG_12 = 0x12U,
// RX AGC Gain Table[3]
BK4819_REG_13 = 0x13U, BK4819_REG_13 = 0x13U,
// RX AGC Gain Table[-1]
BK4819_REG_14 = 0x14U, BK4819_REG_14 = 0x14U,
BK4819_REG_19 = 0x19U, BK4819_REG_19 = 0x19U,
BK4819_REG_1F = 0x1FU, BK4819_REG_1F = 0x1FU,
@@ -72,6 +78,12 @@ enum BK4819_REGISTER_t {
BK4819_REG_46 = 0x46U, BK4819_REG_46 = 0x46U,
BK4819_REG_47 = 0x47U, BK4819_REG_47 = 0x47U,
BK4819_REG_48 = 0x48U, BK4819_REG_48 = 0x48U,
// REG_49<15:14> 0b00; High/Low Lo selection:
// 0X: Auto High/Low Lo
// 10: Low Lo
// 11: High Lo
// REG_49<13:7> 0x50; RF AGC high threshold, 1 dB/LSB
// REG_49<6:0> 0x30; RF AGC low threshold, 1 dB/LSB
BK4819_REG_49 = 0x49U, BK4819_REG_49 = 0x49U,
BK4819_REG_4D = 0x4DU, BK4819_REG_4D = 0x4DU,
BK4819_REG_4E = 0x4EU, BK4819_REG_4E = 0x4EU,
@@ -100,9 +112,22 @@ enum BK4819_REGISTER_t {
BK4819_REG_78 = 0x78U, BK4819_REG_78 = 0x78U,
BK4819_REG_79 = 0x79U, BK4819_REG_79 = 0x79U,
BK4819_REG_7A = 0x7AU, BK4819_REG_7A = 0x7AU,
// REG_7B<15:0> 0xae34 RSSI table
BK4819_REG_7B = 0x7BU, BK4819_REG_7B = 0x7BU,
// REG_7C<15:0> 0x8000 RSSI table
BK4819_REG_7C = 0x7CU, BK4819_REG_7C = 0x7CU,
BK4819_REG_7D = 0x7DU, BK4819_REG_7D = 0x7DU,
// REG_7E<15> 0; AGC fix mode:
// 1: Fix
// 0: Auto
// REG_7E<14:12> 0b011; AGC fix index:
// 011: Max.
// …
// 100: Min.
// REG_7E<5:3> 0b101; DC filter bandwidth for TX (MIC in):
// 000: Bypass DC filter
// REG_7E<2:0> 0b110; DC filter bandwidth for RX (IF in):
// 000: Bypass DC filter
BK4819_REG_7E = 0x7EU, BK4819_REG_7E = 0x7EU,
}; };
@@ -363,4 +388,3 @@ enum {
}; };
#endif #endif

View File

@@ -14,15 +14,20 @@
* limitations under the License. * limitations under the License.
*/ */
#include <stdio.h> // NULL #include <stdint.h>
#include <stdio.h>
#include "settings.h"
#include "../audio.h"
#include "../bsp/dp32g030/gpio.h"
#include "../bsp/dp32g030/portcon.h"
#include "audio.h"
#include "bk4819.h" #include "bk4819.h"
#include "bsp/dp32g030/gpio.h" #include "gpio.h"
#include "bsp/dp32g030/portcon.h" #include "system.h"
#include "driver/gpio.h" #include "systick.h"
#include "driver/system.h"
#include "driver/systick.h"
#ifndef ARRAY_SIZE #ifndef ARRAY_SIZE
#define ARRAY_SIZE(x) (sizeof(x) / sizeof(x[0])) #define ARRAY_SIZE(x) (sizeof(x) / sizeof(x[0]))
@@ -55,8 +60,8 @@ void BK4819_Init(void)
BK4819_WriteRegister(BK4819_REG_37, 0x1D0F); BK4819_WriteRegister(BK4819_REG_37, 0x1D0F);
BK4819_WriteRegister(BK4819_REG_36, 0x0022); BK4819_WriteRegister(BK4819_REG_36, 0x0022);
BK4819_DisableAGC(); BK4819_InitAGC(false);
// BK4819_EnableAGC(); BK4819_SetAGC(true);
BK4819_WriteRegister(BK4819_REG_19, 0b0001000001000001); // <15> MIC AGC 1 = disable 0 = enable BK4819_WriteRegister(BK4819_REG_19, 0b0001000001000001); // <15> MIC AGC 1 = disable 0 = enable
@@ -127,7 +132,6 @@ static uint16_t BK4819_ReadU16(void)
PORTCON_PORTC_IE = (PORTCON_PORTC_IE & ~PORTCON_PORTC_IE_C2_MASK) | PORTCON_PORTC_IE_C2_BITS_ENABLE; PORTCON_PORTC_IE = (PORTCON_PORTC_IE & ~PORTCON_PORTC_IE_C2_MASK) | PORTCON_PORTC_IE_C2_BITS_ENABLE;
GPIOC->DIR = (GPIOC->DIR & ~GPIO_DIR_2_MASK) | GPIO_DIR_2_BITS_INPUT; GPIOC->DIR = (GPIOC->DIR & ~GPIO_DIR_2_MASK) | GPIO_DIR_2_BITS_INPUT;
SYSTICK_DelayUs(1); SYSTICK_DelayUs(1);
Value = 0; Value = 0;
for (i = 0; i < 16; i++) for (i = 0; i < 16; i++)
{ {
@@ -236,19 +240,46 @@ void BK4819_WriteU16(uint16_t Data)
} }
} }
void BK4819_DisableAGC() void BK4819_SetAGC(bool enable)
{ {
// REG_10 uint16_t regVal = BK4819_ReadRegister(BK4819_REG_7E);
if(!(regVal & (1 << 15)) == enable)
return;
BK4819_WriteRegister(BK4819_REG_7E, (regVal & ~(1 << 15) & ~(0b111 << 12))
| (!enable << 15) // 0 AGC fix mode
| (3u << 12) // 3 AGC fix index
);
// if(enable) {
// BK4819_WriteRegister(BK4819_REG_7B, 0x8420);
// }
// else {
// BK4819_WriteRegister(BK4819_REG_7B, 0x318C);
// BK4819_WriteRegister(BK4819_REG_7C, 0x595E);
// BK4819_WriteRegister(BK4819_REG_20, 0x8DEF);
// for (uint8_t i = 0; i < 8; i++) {
// //BK4819_WriteRegister(BK4819_REG_06, ((i << 13) | 0x2500u) + 0x036u);
// BK4819_WriteRegister(BK4819_REG_06, (i & 7) << 13 | 0x4A << 7 | 0x36);
// }
// }
}
void BK4819_InitAGC(bool amModulation)
{
// REG_10, REG_11, REG_12 REG_13, REG_14
// //
// 0x0038 Rx AGC Gain Table[0]. (Index Max->Min is 3,2,1,0,-1) // Rx AGC Gain Table[]. (Index Max->Min is 3,2,1,0,-1)
// //
// <15:10> ??? // <15:10> ???
// //
// <9:8> LNA Gain Short // <9:8> LNA Gain Short
// 3 = 0dB <<< // 3 = 0dB <<< 1o11 read from spectrum reference manual
// 2 = -24dB // was -11 // 2 = -24dB -19 -11
// 1 = -30dB // was -16 // 1 = -30dB -24 -16
// 0 = -33dB // was -19 // 0 = -33dB -28 -19
// //
// <7:5> LNA Gain // <7:5> LNA Gain
// 7 = 0dB // 7 = 0dB
@@ -276,74 +307,60 @@ void BK4819_DisableAGC()
// 1 = -27dB // 1 = -27dB
// 0 = -33dB // 0 = -33dB
// //
BK4819_WriteRegister(BK4819_REG_13, (3u << 8) | (5u << 5) | (3u << 3) | (6u << 0)); // 000000 11 101 11 110
BK4819_WriteRegister(BK4819_REG_12, 0x037B); // 000000 11 011 11 011 BK4819_WriteRegister(BK4819_REG_13, 0x03BE); // 0x03BE / 000000 11 101 11 110 / -7dB
BK4819_WriteRegister(BK4819_REG_11, 0x027B); // 000000 10 011 11 011 BK4819_WriteRegister(BK4819_REG_12, 0x037B); // 0x037B / 000000 11 011 11 011 / -24dB
BK4819_WriteRegister(BK4819_REG_10, 0x007A); // 000000 00 011 11 010 BK4819_WriteRegister(BK4819_REG_11, 0x027B); // 0x027B / 000000 10 011 11 011 / -43dB
BK4819_WriteRegister(BK4819_REG_14, 0x0019); // 000000 00 000 11 001 BK4819_WriteRegister(BK4819_REG_10, 0x007A); // 0x007A / 000000 00 011 11 010 / -58dB
if(amModulation) {
BK4819_WriteRegister(BK4819_REG_14, 0x0000);
BK4819_WriteRegister(BK4819_REG_49, (0 << 14) | (50 << 7) | (32 << 0));
}
else{
BK4819_WriteRegister(BK4819_REG_14, 0x0019); // 0x0019 / 000000 00 000 11 001 / -79dB
BK4819_WriteRegister(BK4819_REG_49, (0 << 14) | (84 << 7) | (56 << 0)); //0x2A38 / 00 1010100 0111000 / 84, 56
}
BK4819_WriteRegister(BK4819_REG_49, 0x2A38);
BK4819_WriteRegister(BK4819_REG_7B, 0x8420); BK4819_WriteRegister(BK4819_REG_7B, 0x8420);
} }
void BK4819_EnableAGC() int8_t BK4819_GetRxGain_dB(void)
{ {
// REG_10 union {
// struct {
// 0x0038 Rx AGC Gain Table[0]. (Index Max->Min is 3,2,1,0,-1) uint16_t pga:3;
// uint16_t mixer:2;
// (15:10> ??? uint16_t lna:3;
// uint16_t lnaS:2;
// <9:8> LNA Gain Short };
// 3 = 0dB << original uint16_t __raw;
// 2 = -24dB // was -11 } agcGainReg;
// 1 = -30dB // was -16
// 0 = -33dB // was -19
//
// <7:5> LNA Gain
// 7 = 0dB
// 6 = -2dB
// 5 = -4dB
// 4 = -6dB
// 3 = -9dB
// 2 = -14dB << original
// 1 = -19dB
// 0 = -24dB
//
// <4:3> MIXER Gain
// 3 = 0dB << original
// 2 = -3dB
// 1 = -6dB
// 0 = -8dB
//
// <2:0> PGA Gain
// 7 = 0dB
// 6 = -3dB << original
// 5 = -6dB
// 4 = -9dB
// 3 = -15dB
// 2 = -21dB
// 1 = -27dB
// 0 = -33dB
//
BK4819_WriteRegister(BK4819_REG_13, (3u << 8) | (5u << 5) | (3u << 3) | (6u << 0));
BK4819_WriteRegister(BK4819_REG_12, 0x037C); // 000000 11 011 11 100 union {
BK4819_WriteRegister(BK4819_REG_11, 0x027B); // 000000 10 011 11 011 struct {
BK4819_WriteRegister(BK4819_REG_10, 0x007A); // 000000 00 011 11 010 uint16_t _ : 5;
BK4819_WriteRegister(BK4819_REG_14, 0x0018); // 000000 00 000 11 000 uint16_t agcSigStrength : 7;
int16_t gainIdx : 3;
uint16_t agcEnab : 1;
};
uint16_t __raw;
} reg7e;
BK4819_WriteRegister(BK4819_REG_49, 0x2A38); reg7e.__raw = BK4819_ReadRegister(BK4819_REG_7E);
BK4819_WriteRegister(BK4819_REG_7B, 0x318C); uint8_t gainAddr = reg7e.gainIdx < 0 ? BK4819_REG_14 : BK4819_REG_10 + reg7e.gainIdx;
agcGainReg.__raw = BK4819_ReadRegister(gainAddr);
int8_t lnaShortTab[] = {-28, -24, -19, 0};
int8_t lnaTab[] = {-24, -19, -14, -9, -6, -4, -2, 0};
int8_t mixerTab[] = {-8, -6, -3, 0};
int8_t pgaTab[] = {-33, -27, -21, -15, -9, -6, -3, 0};
return lnaShortTab[agcGainReg.lnaS] + lnaTab[agcGainReg.lna] + mixerTab[agcGainReg.mixer] + pgaTab[agcGainReg.pga];
}
BK4819_WriteRegister(BK4819_REG_7C, 0x595E); int16_t BK4819_GetRSSI_dBm(void)
BK4819_WriteRegister(BK4819_REG_20, 0x8DEF); {
uint16_t rssi = BK4819_GetRSSI();
for (uint8_t i = 0; i < 8; i++) { return (rssi / 2) - 160;// - BK4819_GetRxGain_dB();
//BK4819_WriteRegister(BK4819_REG_06, ((i << 13) | 0x2500u) + 0x036u);
BK4819_WriteRegister(BK4819_REG_06, (i & 7) << 13 | 0x4A << 7 | 0x36);
}
} }
void BK4819_ToggleGpioOut(BK4819_GPIO_PIN_t Pin, bool bSet) void BK4819_ToggleGpioOut(BK4819_GPIO_PIN_t Pin, bool bSet)
@@ -591,89 +608,54 @@ void BK4819_SetFilterBandwidth(const BK4819_FilterBandwidth_t Bandwidth, const b
// //
// <1:0> 0 ??? // <1:0> 0 ???
uint16_t val; uint16_t val = 0;
switch (Bandwidth) switch (Bandwidth)
{ {
default: default:
case BK4819_FILTER_BW_WIDE: // 25kHz case BK4819_FILTER_BW_WIDE: // 25kHz
if (weak_no_different) val = (4u << 12) | // *3 RF filter bandwidth
{ // make the RX bandwidth the same with weak signals
val =
(0u << 15) | // 0
(4u << 12) | // *3 RF filter bandwidth
(4u << 9) | // *0 RF filter bandwidth when signal is weak
(6u << 6) | // *0 AFTxLPF2 filter Band Width (6u << 6) | // *0 AFTxLPF2 filter Band Width
(2u << 4) | // 2 BW Mode Selection (2u << 4) | // 2 BW Mode Selection
(1u << 3) | // 1 (1u << 3) | // 1
(0u << 2) | // 0 Gain after FM Demodulation (0u << 2); // 0 Gain after FM Demodulation
(0u << 0); // 0
} if (weak_no_different) {
else // make the RX bandwidth the same with weak signals
{ // with weak RX signals the RX bandwidth is reduced val |= (4u << 9); // *0 RF filter bandwidth when signal is weak
val = // 0x3028); // 0 011 000 000 10 1 0 00 } else {
(0u << 15) | // 0 /// with weak RX signals the RX bandwidth is reduced
(4u << 12) | // *3 RF filter bandwidth val |= (2u << 9); // *0 RF filter bandwidth when signal is weak
(2u << 9) | // *0 RF filter bandwidth when signal is weak
(6u << 6) | // *0 AFTxLPF2 filter Band Width
(2u << 4) | // 2 BW Mode Selection
(1u << 3) | // 1
(0u << 2) | // 0 Gain after FM Demodulation
(0u << 0); // 0
} }
break; break;
case BK4819_FILTER_BW_NARROW: // 12.5kHz case BK4819_FILTER_BW_NARROW: // 12.5kHz
if (weak_no_different) val = (4u << 12) | // *4 RF filter bandwidth
{
val =
(0u << 15) | // 0
(4u << 12) | // *4 RF filter bandwidth
(4u << 9) | // *0 RF filter bandwidth when signal is weak
(0u << 6) | // *1 AFTxLPF2 filter Band Width (0u << 6) | // *1 AFTxLPF2 filter Band Width
(0u << 4) | // 0 BW Mode Selection (0u << 4) | // 0 BW Mode Selection
(1u << 3) | // 1 (1u << 3) | // 1
(0u << 2) | // 0 Gain after FM Demodulation (0u << 2); // 0 Gain after FM Demodulation
(0u << 0); // 0
} if (weak_no_different) {
else val |= (4u << 9); // *0 RF filter bandwidth when signal is weak
{ } else {
val = // 0x4048); // 0 100 000 001 00 1 0 00 val |= (2u << 9);
(0u << 15) | // 0
(4u << 12) | // *4 RF filter bandwidth
(2u << 9) | // *0 RF filter bandwidth when signal is weak
(0u << 6) | // *1 AFTxLPF2 filter Band Width
(0u << 4) | // 0 BW Mode Selection
(1u << 3) | // 1
(0u << 2) | // 0 Gain after FM Demodulation
(0u << 0); // 0
} }
break; break;
case BK4819_FILTER_BW_NARROWER: // 6.25kHz case BK4819_FILTER_BW_NARROWER: // 6.25kHz
if (weak_no_different) val = (3u << 12) | // 3 RF filter bandwidth
{
val =
(0u << 15) | // 0
(3u << 12) | // 3 RF filter bandwidth
(3u << 9) | // *0 RF filter bandwidth when signal is weak (3u << 9) | // *0 RF filter bandwidth when signal is weak
(1u << 6) | // 1 AFTxLPF2 filter Band Width (1u << 6) | // 1 AFTxLPF2 filter Band Width
(1u << 4) | // 1 BW Mode Selection (1u << 4) | // 1 BW Mode Selection
(1u << 3) | // 1 (1u << 3) | // 1
(0u << 2) | // 0 Gain after FM Demodulation (0u << 2); // 0 Gain after FM Demodulation
(0u << 0); // 0
} if (weak_no_different) {
else val |= (3u << 9);
{ } else {
val = val |= (0u << 9); // 0 RF filter bandwidth when signal is weak
(0u << 15) | // 0
(3u << 12) | // 3 RF filter bandwidth
(0u << 9) | // 0 RF filter bandwidth when signal is weak
(1u << 6) | // 1 AFTxLPF2 filter Band Width
(1u << 4) | // 1 BW Mode Selection
(1u << 3) | // 1
(0u << 2) | // 1 Gain after FM Demodulation
(0u << 0); // 0
} }
break; break;
} }
@@ -699,7 +681,7 @@ void BK4819_SetupPowerAmplifier(const uint8_t bias, const uint32_t frequency)
// 7 = max // 7 = max
// 0 = min // 0 = min
// //
// 280MHz gain 1 = 1 gain 2 = 0 gain 1 = 4 gain 2 = 2 // 280MHz g1=1 g2=0 (-14.9dBm), g1=4 g2=2 (0.13dBm)
const uint8_t gain = (frequency < 28000000) ? (1u << 3) | (0u << 0) : (4u << 3) | (2u << 0); const uint8_t gain = (frequency < 28000000) ? (1u << 3) | (0u << 0) : (4u << 3) | (2u << 0);
const uint8_t enable = 1; const uint8_t enable = 1;
BK4819_WriteRegister(BK4819_REG_36, (bias << 8) | (enable << 7) | (gain << 0)); BK4819_WriteRegister(BK4819_REG_36, (bias << 8) | (enable << 7) | (gain << 0));
@@ -828,16 +810,18 @@ void BK4819_RX_TurnOn(void)
// Turn off everything // Turn off everything
BK4819_WriteRegister(BK4819_REG_30, 0); BK4819_WriteRegister(BK4819_REG_30, 0);
// Enable VCO Calibration
// Enable RX Link BK4819_WriteRegister(BK4819_REG_30,
// Enable AF DAC BK4819_REG_30_ENABLE_VCO_CALIB |
// Enable PLL/VCO BK4819_REG_30_DISABLE_UNKNOWN |
// Disable PA Gain BK4819_REG_30_ENABLE_RX_LINK |
// Disable MIC ADC BK4819_REG_30_ENABLE_AF_DAC |
// Disable TX DSP BK4819_REG_30_ENABLE_DISC_MODE |
// Enable RX DSP BK4819_REG_30_ENABLE_PLL_VCO |
// BK4819_REG_30_DISABLE_PA_GAIN |
BK4819_WriteRegister(BK4819_REG_30, 0b1011111111110001); // 1 0 1111 1 1 1111 0 0 0 1 BK4819_REG_30_DISABLE_MIC_ADC |
BK4819_REG_30_DISABLE_TX_DSP |
BK4819_REG_30_ENABLE_RX_DSP );
} }
void BK4819_PickRXFilterPathBasedOnFrequency(uint32_t Frequency) void BK4819_PickRXFilterPathBasedOnFrequency(uint32_t Frequency)
@@ -1130,11 +1114,15 @@ void BK4819_ExitBypass(void)
// 0 ~ 7 // 0 ~ 7
// 0 = bypass DC filter // 0 = bypass DC filter
// //
BK4819_WriteRegister(BK4819_REG_7E, // 0x302E); // 0 011 000000 101 110
(0u << 15) | // 0 AGC fix mode uint16_t regVal = BK4819_ReadRegister(BK4819_REG_7E);
(3u << 12) | // 3 AGC fix index
(5u << 3) | // 5 DC Filter band width for Tx (MIC In) // 0x302E / 0 011 000000 101 110
(6u << 0)); // 6 DC Filter band width for Rx (I.F In) BK4819_WriteRegister(BK4819_REG_7E, (regVal & ~(0b111 << 3))
| (5u << 3) // 5 DC Filter band width for Tx (MIC In)
);
} }
void BK4819_PrepareTransmit(void) void BK4819_PrepareTransmit(void)
@@ -1246,33 +1234,46 @@ void BK4819_EnableTXLink(void)
void BK4819_PlayDTMF(char Code) void BK4819_PlayDTMF(char Code)
{ {
uint16_t tone1 = 0;
uint16_t tone2 = 0;
struct DTMF_TonePair {
uint16_t tone1;
uint16_t tone2;
};
const struct DTMF_TonePair tones[] = {
{941, 1336},
{697, 1209},
{697, 1336},
{697, 1477},
{770, 1209},
{770, 1336},
{770, 1477},
{852, 1209},
{852, 1336},
{852, 1477},
{697, 1633},
{770, 1633},
{852, 1633},
{941, 1633},
{941, 1209},
{941, 1477},
};
const struct DTMF_TonePair *pSelectedTone = NULL;
switch (Code) switch (Code)
{ {
case '0': tone1 = 941; tone2 = 1336; break; case '0'...'9': pSelectedTone = &tones[0 + Code - '0']; break;
case '1': tone1 = 697; tone2 = 1209; break; case 'A'...'D': pSelectedTone = &tones[10 + Code - 'A']; break;
case '2': tone1 = 697; tone2 = 1336; break; case '*': pSelectedTone = &tones[14]; break;
case '3': tone1 = 697; tone2 = 1477; break; case '#': pSelectedTone = &tones[15]; break;
case '4': tone1 = 770; tone2 = 1209; break; default: pSelectedTone = NULL;
case '5': tone1 = 770; tone2 = 1336; break;
case '6': tone1 = 770; tone2 = 1477; break;
case '7': tone1 = 852; tone2 = 1209; break;
case '8': tone1 = 852; tone2 = 1336; break;
case '9': tone1 = 852; tone2 = 1477; break;
case 'A': tone1 = 697; tone2 = 1633; break;
case 'B': tone1 = 770; tone2 = 1633; break;
case 'C': tone1 = 852; tone2 = 1633; break;
case 'D': tone1 = 941; tone2 = 1633; break;
case '*': tone1 = 941; tone2 = 1209; break;
case '#': tone1 = 941; tone2 = 1477; break;
} }
if (tone1 > 0) if (pSelectedTone) {
BK4819_WriteRegister(BK4819_REG_71, (((uint32_t)tone1 * 103244) + 5000) / 10000); // with rounding BK4819_WriteRegister(BK4819_REG_71, (((uint32_t)pSelectedTone->tone1 * 103244) + 5000) / 10000); // with rounding
if (tone2 > 0) BK4819_WriteRegister(BK4819_REG_72, (((uint32_t)pSelectedTone->tone2 * 103244) + 5000) / 10000); // with rounding
BK4819_WriteRegister(BK4819_REG_72, (((uint32_t)tone2 * 103244) + 5000) / 10000); // with rounding }
} }
void BK4819_PlayDTMFString(const char *pString, bool bDelayFirst, uint16_t FirstCodePersistTime, uint16_t HashCodePersistTime, uint16_t CodePersistTime, uint16_t CodeInternalTime) void BK4819_PlayDTMFString(const char *pString, bool bDelayFirst, uint16_t FirstCodePersistTime, uint16_t HashCodePersistTime, uint16_t CodePersistTime, uint16_t CodeInternalTime)
@@ -1394,18 +1395,16 @@ void BK4819_GenTail(uint8_t Tail)
} }
} }
void BK4819_EnableCDCSS(void) void BK4819_PlayCDCSSTail(void)
{ {
BK4819_GenTail(0); // CTC134 BK4819_GenTail(0); // CTC134
BK4819_WriteRegister(BK4819_REG_51, 0x804A); BK4819_WriteRegister(BK4819_REG_51, 0x804A); // 1 0 0 0 0 0 0 0 0 1001010
} }
void BK4819_EnableCTCSS(void) void BK4819_PlayCTCSSTail(void)
{ {
#ifdef ENABLE_CTCSS_TAIL_PHASE_SHIFT #ifdef ENABLE_CTCSS_TAIL_PHASE_SHIFT
//BK4819_GenTail(1); // 120° phase shift
BK4819_GenTail(2); // 180° phase shift BK4819_GenTail(2); // 180° phase shift
//BK4819_GenTail(3); // 240° phase shift
#else #else
BK4819_GenTail(4); // 55Hz tone freq BK4819_GenTail(4); // 55Hz tone freq
#endif #endif
@@ -1687,7 +1686,7 @@ void BK4819_PrepareFSKReceive(void)
BK4819_WriteRegister(BK4819_REG_59, 0x3068); BK4819_WriteRegister(BK4819_REG_59, 0x3068);
} }
void BK4819_PlayRoger(void) static void BK4819_PlayRogerNormal(void)
{ {
#if 0 #if 0
const uint32_t tone1_Hz = 500; const uint32_t tone1_Hz = 500;
@@ -1698,6 +1697,7 @@ void BK4819_PlayRoger(void)
const uint32_t tone2_Hz = 1310; const uint32_t tone2_Hz = 1310;
#endif #endif
BK4819_EnterTxMute(); BK4819_EnterTxMute();
BK4819_SetAF(BK4819_AF_MUTE); BK4819_SetAF(BK4819_AF_MUTE);
@@ -1722,30 +1722,41 @@ void BK4819_PlayRoger(void)
BK4819_WriteRegister(BK4819_REG_30, 0xC1FE); // 1 1 0000 0 1 1111 1 1 1 0 BK4819_WriteRegister(BK4819_REG_30, 0xC1FE); // 1 1 0000 0 1 1111 1 1 1 0
} }
void BK4819_PlayRogerMDC(void) void BK4819_PlayRogerMDC(void)
{ {
unsigned int i; struct reg_value {
BK4819_REGISTER_t reg;
uint16_t value;
};
BK4819_SetAF(BK4819_AF_MUTE); struct reg_value RogerMDC_Configuration [] = {
{ BK4819_REG_58, 0x37C3 }, // FSK Enable,
BK4819_WriteRegister(BK4819_REG_58, 0x37C3); // FSK Enable,
// RX Bandwidth FFSK 1200/1800 // RX Bandwidth FFSK 1200/1800
// 0xAA or 0x55 Preamble // 0xAA or 0x55 Preamble
// 11 RX Gain, // 11 RX Gain,
// 101 RX Mode // 101 RX Mode
// TX FFSK 1200/1800 // TX FFSK 1200/1800
BK4819_WriteRegister(BK4819_REG_72, 0x3065); // Set Tone-2 to 1200Hz { BK4819_REG_72, 0x3065 }, // Set Tone-2 to 1200Hz
BK4819_WriteRegister(BK4819_REG_70, 0x00E0); // Enable Tone-2 and Set Tone2 Gain { BK4819_REG_70, 0x00E0 }, // Enable Tone-2 and Set Tone2 Gain
BK4819_WriteRegister(BK4819_REG_5D, 0x0D00); // Set FSK data length to 13 bytes { BK4819_REG_5D, 0x0D00 }, // Set FSK data length to 13 bytes
BK4819_WriteRegister(BK4819_REG_59, 0x8068); // 4 byte sync length, 6 byte preamble, clear TX FIFO { BK4819_REG_59, 0x8068 }, // 4 byte sync length, 6 byte preamble, clear TX FIFO
BK4819_WriteRegister(BK4819_REG_59, 0x0068); // Same, but clear TX FIFO is now unset (clearing done) { BK4819_REG_59, 0x0068 }, // Same, but clear TX FIFO is now unset (clearing done)
BK4819_WriteRegister(BK4819_REG_5A, 0x5555); // First two sync bytes { BK4819_REG_5A, 0x5555 }, // First two sync bytes
BK4819_WriteRegister(BK4819_REG_5B, 0x55AA); // End of sync bytes. Total 4 bytes: 555555aa { BK4819_REG_5B, 0x55AA }, // End of sync bytes. Total 4 bytes: 555555aa
BK4819_WriteRegister(BK4819_REG_5C, 0xAA30); // Disable CRC { BK4819_REG_5C, 0xAA30 }, // Disable CRC
};
BK4819_SetAF(BK4819_AF_MUTE);
for (unsigned int i = 0; i < ARRAY_SIZE(RogerMDC_Configuration); i++) {
BK4819_WriteRegister(RogerMDC_Configuration[i].reg, RogerMDC_Configuration[i].value);
}
// Send the data from the roger table // Send the data from the roger table
for (i = 0; i < 7; i++) for (unsigned int i = 0; i < ARRAY_SIZE(FSK_RogerTable); i++) {
BK4819_WriteRegister(BK4819_REG_5F, FSK_RogerTable[i]); BK4819_WriteRegister(BK4819_REG_5F, FSK_RogerTable[i]);
}
SYSTEM_DelayMs(20); SYSTEM_DelayMs(20);
@@ -1760,6 +1771,15 @@ void BK4819_PlayRogerMDC(void)
BK4819_WriteRegister(BK4819_REG_58, 0x0000); BK4819_WriteRegister(BK4819_REG_58, 0x0000);
} }
void BK4819_PlayRoger(void)
{
if (gEeprom.ROGER == ROGER_MODE_ROGER) {
BK4819_PlayRogerNormal();
} else if (gEeprom.ROGER == ROGER_MODE_MDC) {
BK4819_PlayRogerMDC();
}
}
void BK4819_Enable_AfDac_DiscMode_TxDsp(void) void BK4819_Enable_AfDac_DiscMode_TxDsp(void)
{ {
BK4819_WriteRegister(BK4819_REG_30, 0x0000); BK4819_WriteRegister(BK4819_REG_30, 0x0000);

View File

@@ -72,8 +72,8 @@ void BK4819_SetRegValue(RegisterSpec s, uint16_t v);
void BK4819_WriteU8(uint8_t Data); void BK4819_WriteU8(uint8_t Data);
void BK4819_WriteU16(uint16_t Data); void BK4819_WriteU16(uint16_t Data);
void BK4819_EnableAGC(); void BK4819_SetAGC(bool enable);
void BK4819_DisableAGC(); void BK4819_InitAGC(bool amModulation);
void BK4819_ToggleGpioOut(BK4819_GPIO_PIN_t Pin, bool bSet); void BK4819_ToggleGpioOut(BK4819_GPIO_PIN_t Pin, bool bSet);
@@ -132,10 +132,12 @@ void BK4819_PlayDTMFString(const char *pString, bool bDelayFirst, uint16_t F
void BK4819_TransmitTone(bool bLocalLoopback, uint32_t Frequency); void BK4819_TransmitTone(bool bLocalLoopback, uint32_t Frequency);
void BK4819_GenTail(uint8_t Tail); void BK4819_GenTail(uint8_t Tail);
void BK4819_EnableCDCSS(void); void BK4819_PlayCDCSSTail(void);
void BK4819_EnableCTCSS(void); void BK4819_PlayCTCSSTail(void);
uint16_t BK4819_GetRSSI(void); uint16_t BK4819_GetRSSI(void);
int8_t BK4819_GetRxGain_dB(void);
int16_t BK4819_GetRSSI_dBm(void);
uint8_t BK4819_GetGlitchIndicator(void); uint8_t BK4819_GetGlitchIndicator(void);
uint8_t BK4819_GetExNoiceIndicator(void); uint8_t BK4819_GetExNoiceIndicator(void);
uint16_t BK4819_GetVoiceAmplitudeOut(void); uint16_t BK4819_GetVoiceAmplitudeOut(void);
@@ -161,7 +163,6 @@ void BK4819_SendFSKData(uint16_t *pData);
void BK4819_PrepareFSKReceive(void); void BK4819_PrepareFSKReceive(void);
void BK4819_PlayRoger(void); void BK4819_PlayRoger(void);
void BK4819_PlayRogerMDC(void);
void BK4819_Enable_AfDac_DiscMode_TxDsp(void); void BK4819_Enable_AfDac_DiscMode_TxDsp(void);
@@ -170,4 +171,3 @@ void BK4819_SetScrambleFrequencyControlWord(uint32_t Frequency);
void BK4819_PlayDTMFEx(bool bLocalLoopback, char Code); void BK4819_PlayDTMFEx(bool bLocalLoopback, char Code);
#endif #endif

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@@ -14,8 +14,8 @@
* limitations under the License. * limitations under the License.
*/ */
#include "bsp/dp32g030/crc.h" #include "../bsp/dp32g030/crc.h"
#include "driver/crc.h" #include "crc.h"
void CRC_Init(void) void CRC_Init(void)
{ {
@@ -47,4 +47,3 @@ uint16_t CRC_Calculate(const void *pBuffer, uint16_t Size)
return Crc; return Crc;
} }

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@@ -47,15 +47,16 @@ void EEPROM_WriteBuffer(uint16_t Address, const void *pBuffer)
uint8_t buffer[8]; uint8_t buffer[8];
EEPROM_ReadBuffer(Address, buffer, 8); EEPROM_ReadBuffer(Address, buffer, 8);
if (memcmp(pBuffer, buffer, 8) != 0) if (memcmp(pBuffer, buffer, 8) == 0) {
{ return;
}
I2C_Start(); I2C_Start();
I2C_Write(0xA0); I2C_Write(0xA0);
I2C_Write((Address >> 8) & 0xFF); I2C_Write((Address >> 8) & 0xFF);
I2C_Write((Address >> 0) & 0xFF); I2C_Write((Address >> 0) & 0xFF);
I2C_WriteBuffer(pBuffer, 8); I2C_WriteBuffer(pBuffer, 8);
I2C_Stop(); I2C_Stop();
}
// give the EEPROM time to burn the data in (apparently takes 5ms) // give the EEPROM time to burn the data in (apparently takes 5ms)
SYSTEM_DelayMs(8); SYSTEM_DelayMs(8);

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@@ -137,18 +137,13 @@ int I2C_ReadBuffer(void *pBuffer, uint8_t Size)
uint8_t *pData = (uint8_t *)pBuffer; uint8_t *pData = (uint8_t *)pBuffer;
uint8_t i; uint8_t i;
if (Size == 1) {
*pData = I2C_Read(true);
return 1;
}
for (i = 0; i < Size - 1; i++) { for (i = 0; i < Size - 1; i++) {
SYSTICK_DelayUs(1); SYSTICK_DelayUs(1);
pData[i] = I2C_Read(false); pData[i] = I2C_Read(false);
} }
SYSTICK_DelayUs(1); SYSTICK_DelayUs(1);
pData[i++] = I2C_Read(true); pData[i] = I2C_Read(true);
return Size; return Size;
} }

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@@ -117,19 +117,13 @@ KEY_Code_t KEYBOARD_Poll(void)
GPIOA->DATA &= keyboard[j].set_to_zero_mask; GPIOA->DATA &= keyboard[j].set_to_zero_mask;
// Read all 4 GPIO pins at once .. with de-noise, max of 8 sample loops // Read all 4 GPIO pins at once .. with de-noise, max of 8 sample loops
for (i = 0, k = 0, reg = 0; i < 3 && k < 8; i++, k++) for (i = 0, k = 0, reg = 0; i < 3 && k < 8; i++, k++) {
{
uint16_t reg2;
SYSTICK_DelayUs(1); SYSTICK_DelayUs(1);
uint16_t reg2 = GPIOA->DATA;
reg2 = GPIOA->DATA; i *= reg == reg2;
if (reg != reg2)
{ // noise
reg = reg2; reg = reg2;
i = 0;
}
} }
if (i < 3) if (i < 3)
break; // noise is too bad break; // noise is too bad

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@@ -25,118 +25,59 @@
#include "driver/system.h" #include "driver/system.h"
#include "misc.h" #include "misc.h"
uint8_t gStatusLine[128]; uint8_t gStatusLine[LCD_WIDTH];
uint8_t gFrameBuffer[7][128]; uint8_t gFrameBuffer[FRAME_LINES][LCD_WIDTH];
void ST7565_DrawLine(const unsigned int Column, const unsigned int Line, const unsigned int Size, const uint8_t *pBitmap) static void DrawLine(uint8_t column, uint8_t line, const uint8_t * lineBuffer, unsigned size_defVal)
{ {
unsigned int i; ST7565_SelectColumnAndLine(column + 4, line);
SPI_ToggleMasterMode(&SPI0->CR, false);
ST7565_SelectColumnAndLine(Column + 4U, Line);
GPIO_SetBit(&GPIOB->DATA, GPIOB_PIN_ST7565_A0); GPIO_SetBit(&GPIOB->DATA, GPIOB_PIN_ST7565_A0);
for (unsigned i = 0; i < size_defVal; i++) {
if (pBitmap != NULL)
{
for (i = 0; i < Size; i++)
{
while ((SPI0->FIFOST & SPI_FIFOST_TFF_MASK) != SPI_FIFOST_TFF_BITS_NOT_FULL) {} while ((SPI0->FIFOST & SPI_FIFOST_TFF_MASK) != SPI_FIFOST_TFF_BITS_NOT_FULL) {}
SPI0->WDR = pBitmap[i]; SPI0->WDR = lineBuffer ? lineBuffer[i] : size_defVal;
} }
}
else
{
for (i = 0; i < Size; i++)
{
while ((SPI0->FIFOST & SPI_FIFOST_TFF_MASK) != SPI_FIFOST_TFF_BITS_NOT_FULL) {}
SPI0->WDR = 0;
}
}
SPI_WaitForUndocumentedTxFifoStatusBit(); SPI_WaitForUndocumentedTxFifoStatusBit();
}
void ST7565_DrawLine(const unsigned int Column, const unsigned int Line, const uint8_t *pBitmap, const unsigned int Size)
{
SPI_ToggleMasterMode(&SPI0->CR, false);
DrawLine(Column, Line, pBitmap, Size);
SPI_ToggleMasterMode(&SPI0->CR, true); SPI_ToggleMasterMode(&SPI0->CR, true);
} }
void ST7565_BlitFullScreen(void) void ST7565_BlitFullScreen(void)
{ {
unsigned int Line;
SPI_ToggleMasterMode(&SPI0->CR, false); SPI_ToggleMasterMode(&SPI0->CR, false);
ST7565_WriteByte(0x40); ST7565_WriteByte(0x40);
for (unsigned line = 0; line < FRAME_LINES; line++) {
for (Line = 0; Line < ARRAY_SIZE(gFrameBuffer); Line++) DrawLine(0, line+1, gFrameBuffer[line], LCD_WIDTH);
{
unsigned int Column;
ST7565_SelectColumnAndLine(4, Line + 1);
GPIO_SetBit(&GPIOB->DATA, GPIOB_PIN_ST7565_A0);
for (Column = 0; Column < ARRAY_SIZE(gFrameBuffer[0]); Column++)
{
while ((SPI0->FIFOST & SPI_FIFOST_TFF_MASK) != SPI_FIFOST_TFF_BITS_NOT_FULL) {}
SPI0->WDR = gFrameBuffer[Line][Column];
}
SPI_WaitForUndocumentedTxFifoStatusBit();
} }
SPI_ToggleMasterMode(&SPI0->CR, true);
}
#if 0 void ST7565_BlitLine(unsigned line)
// whats the delay for I wonder, it holds things up :( {
SYSTEM_DelayMs(20); SPI_ToggleMasterMode(&SPI0->CR, false);
#else ST7565_WriteByte(0x40); // start line ?
// SYSTEM_DelayMs(1); DrawLine(0, line+1, gFrameBuffer[line], LCD_WIDTH);
#endif
SPI_ToggleMasterMode(&SPI0->CR, true); SPI_ToggleMasterMode(&SPI0->CR, true);
} }
void ST7565_BlitStatusLine(void) void ST7565_BlitStatusLine(void)
{ // the top small text line on the display { // the top small text line on the display
unsigned int i;
SPI_ToggleMasterMode(&SPI0->CR, false); SPI_ToggleMasterMode(&SPI0->CR, false);
ST7565_WriteByte(0x40); // start line ? ST7565_WriteByte(0x40); // start line ?
DrawLine(0, 0, gStatusLine, LCD_WIDTH);
ST7565_SelectColumnAndLine(4, 0);
GPIO_SetBit(&GPIOB->DATA, GPIOB_PIN_ST7565_A0);
for (i = 0; i < ARRAY_SIZE(gStatusLine); i++)
{
while ((SPI0->FIFOST & SPI_FIFOST_TFF_MASK) != SPI_FIFOST_TFF_BITS_NOT_FULL) {}
SPI0->WDR = gStatusLine[i];
}
SPI_WaitForUndocumentedTxFifoStatusBit();
SPI_ToggleMasterMode(&SPI0->CR, true); SPI_ToggleMasterMode(&SPI0->CR, true);
} }
void ST7565_FillScreen(uint8_t Value) void ST7565_FillScreen(uint8_t value)
{ {
unsigned int i;
// reset some of the displays settings to try and overcome the radios hardware problem - RF corrupting the display
ST7565_Init(false);
SPI_ToggleMasterMode(&SPI0->CR, false); SPI_ToggleMasterMode(&SPI0->CR, false);
for (unsigned i = 0; i < 8; i++) {
for (i = 0; i < 8; i++) DrawLine(0, i, NULL, value);
{
unsigned int j;
ST7565_SelectColumnAndLine(0, i);
GPIO_SetBit(&GPIOB->DATA, GPIOB_PIN_ST7565_A0);
for (j = 0; j < 132; j++)
{
while ((SPI0->FIFOST & SPI_FIFOST_TFF_MASK) != SPI_FIFOST_TFF_BITS_NOT_FULL) {}
SPI0->WDR = Value;
} }
SPI_WaitForUndocumentedTxFifoStatusBit();
}
SPI_ToggleMasterMode(&SPI0->CR, true); SPI_ToggleMasterMode(&SPI0->CR, true);
} }
@@ -205,22 +146,17 @@ uint8_t cmds[] = {
ST7565_CMD_DISPLAY_ON_OFF | 1, // Display ON/OFF: ON ST7565_CMD_DISPLAY_ON_OFF | 1, // Display ON/OFF: ON
}; };
void ST7565_Init(const bool full) void ST7565_Init(void)
{ {
if (full) {
SPI0_Init(); SPI0_Init();
ST7565_HardwareReset(); ST7565_HardwareReset();
SPI_ToggleMasterMode(&SPI0->CR, false); SPI_ToggleMasterMode(&SPI0->CR, false);
ST7565_WriteByte(ST7565_CMD_SOFTWARE_RESET); // software reset ST7565_WriteByte(ST7565_CMD_SOFTWARE_RESET); // software reset
SYSTEM_DelayMs(120); SYSTEM_DelayMs(120);
}
else
SPI_ToggleMasterMode(&SPI0->CR, false);
for(uint8_t i = 0; i < 8; i++) for(uint8_t i = 0; i < 8; i++)
ST7565_WriteByte(cmds[i]); ST7565_WriteByte(cmds[i]);
if (full) {
ST7565_WriteByte(ST7565_CMD_POWER_CIRCUIT | 0b011); // VB=0 VR=1 VF=1 ST7565_WriteByte(ST7565_CMD_POWER_CIRCUIT | 0b011); // VB=0 VR=1 VF=1
SYSTEM_DelayMs(1); SYSTEM_DelayMs(1);
ST7565_WriteByte(ST7565_CMD_POWER_CIRCUIT | 0b110); // VB=1 VR=1 VF=0 ST7565_WriteByte(ST7565_CMD_POWER_CIRCUIT | 0b110); // VB=1 VR=1 VF=0
@@ -230,14 +166,12 @@ void ST7565_Init(const bool full)
ST7565_WriteByte(ST7565_CMD_POWER_CIRCUIT | 0b111); // VB=1 VR=1 VF=1 ST7565_WriteByte(ST7565_CMD_POWER_CIRCUIT | 0b111); // VB=1 VR=1 VF=1
SYSTEM_DelayMs(40); SYSTEM_DelayMs(40);
}
ST7565_WriteByte(ST7565_CMD_SET_START_LINE | 0); // line 0 ST7565_WriteByte(ST7565_CMD_SET_START_LINE | 0); // line 0
ST7565_WriteByte(ST7565_CMD_DISPLAY_ON_OFF | 1); // D=1 ST7565_WriteByte(ST7565_CMD_DISPLAY_ON_OFF | 1); // D=1
SPI_WaitForUndocumentedTxFifoStatusBit(); SPI_WaitForUndocumentedTxFifoStatusBit();
SPI_ToggleMasterMode(&SPI0->CR, true); SPI_ToggleMasterMode(&SPI0->CR, true);
if (full)
ST7565_FillScreen(0x00); ST7565_FillScreen(0x00);
} }

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@@ -22,15 +22,17 @@
#define LCD_WIDTH 128 #define LCD_WIDTH 128
#define LCD_HEIGHT 64 #define LCD_HEIGHT 64
#define FRAME_LINES 7
extern uint8_t gStatusLine[128]; extern uint8_t gStatusLine[LCD_WIDTH];
extern uint8_t gFrameBuffer[7][128]; extern uint8_t gFrameBuffer[FRAME_LINES][LCD_WIDTH];
void ST7565_DrawLine(const unsigned int Column, const unsigned int Line, const unsigned int Size, const uint8_t *pBitmap); void ST7565_DrawLine(const unsigned int Column, const unsigned int Line, const uint8_t *pBitmap, const unsigned int Size);
void ST7565_BlitFullScreen(void); void ST7565_BlitFullScreen(void);
void ST7565_BlitLine(unsigned line);
void ST7565_BlitStatusLine(void); void ST7565_BlitStatusLine(void);
void ST7565_FillScreen(uint8_t Value); void ST7565_FillScreen(uint8_t Value);
void ST7565_Init(const bool full); void ST7565_Init(void);
void ST7565_FixInterfGlitch(void); void ST7565_FixInterfGlitch(void);
void ST7565_HardwareReset(void); void ST7565_HardwareReset(void);
void ST7565_SelectColumnAndLine(uint8_t Column, uint8_t Line); void ST7565_SelectColumnAndLine(uint8_t Column, uint8_t Line);

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@@ -14,10 +14,10 @@
* limitations under the License. * limitations under the License.
*/ */
#include "bsp/dp32g030/pmu.h" #include "../bsp/dp32g030/pmu.h"
#include "bsp/dp32g030/syscon.h" #include "../bsp/dp32g030/syscon.h"
#include "driver/system.h" #include "system.h"
#include "driver/systick.h" #include "systick.h"
void SYSTEM_DelayMs(uint32_t Delay) void SYSTEM_DelayMs(uint32_t Delay)
{ {

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@@ -15,8 +15,8 @@
*/ */
#include "ARMCM0.h" #include "ARMCM0.h"
#include "driver/systick.h" #include "systick.h"
#include "misc.h" #include "../misc.h"
// 0x20000324 // 0x20000324
static uint32_t gTickMultiplier; static uint32_t gTickMultiplier;
@@ -30,16 +30,20 @@ void SYSTICK_Init(void)
void SYSTICK_DelayUs(uint32_t Delay) void SYSTICK_DelayUs(uint32_t Delay)
{ {
const uint32_t ticks = Delay * gTickMultiplier; const uint32_t ticks = Delay * gTickMultiplier;
uint32_t i = 0; uint32_t elapsed_ticks = 0;
uint32_t Start = SysTick->LOAD; uint32_t Start = SysTick->LOAD;
uint32_t Previous = SysTick->VAL; uint32_t Previous = SysTick->VAL;
do { do {
uint32_t Current; uint32_t Current;
uint32_t Delta;
while ((Current = SysTick->VAL) == Previous) {}
Delta = (Current < Previous) ? -Current : Start - Current;
i += Delta + Previous;
Previous = Current;
} while (i < ticks);
}
do {
Current = SysTick->VAL;
} while (Current == Previous);
uint32_t Delta = ((Current < Previous) ? - Current : Start - Current);
elapsed_ticks += Delta + Previous;
Previous = Current;
} while (elapsed_ticks < ticks);
}

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@@ -17,32 +17,32 @@
#include "frequencies.h" #include "frequencies.h"
#include "misc.h" #include "misc.h"
#include "settings.h" #include "settings.h"
#include <assert.h>
// the BK4819 has 2 bands it covers, 18MHz ~ 630MHz and 760MHz ~ 1300MHz // the BK4819 has 2 bands it covers, 18MHz ~ 630MHz and 760MHz ~ 1300MHz
const freq_band_table_t BX4819_band1 = { 1800000, 63000000};
const freq_band_table_t BX4819_band2 = {84000000, 130000000};
const freq_band_table_t frequencyBandTable[7] = #define BX4819_band1_lower 1800000
#define BX4819_band2_upper 130000000
const freq_band_table_t BX4819_band1 = {BX4819_band1_lower, 63000000};
const freq_band_table_t BX4819_band2 = {84000000, BX4819_band2_upper};
const freq_band_table_t frequencyBandTable[] =
{ {
#ifndef ENABLE_WIDE_RX #ifndef ENABLE_WIDE_RX
// QS original // QS original
{.lower = 5000000, .upper = 7600000}, [BAND1_50MHz ]={.lower = 5000000, .upper = 7600000},
{.lower = 10800000, .upper = 13700000}, [BAND7_470MHz]={.lower = 47000000, .upper = 60000000},
{.lower = 13700000, .upper = 17400000},
{.lower = 17400000, .upper = 35000000},
{.lower = 35000000, .upper = 40000000},
{.lower = 40000000, .upper = 47000000},
{.lower = 47000000, .upper = 60000000}
#else #else
// extended range // extended range
{.lower = BX4819_band1.lower, .upper = 10800000}, [BAND1_50MHz ]={.lower = BX4819_band1_lower, .upper = 10800000},
{.lower = 10800000, .upper = 13700000}, [BAND7_470MHz]={.lower = 47000000, .upper = BX4819_band2_upper},
{.lower = 13700000, .upper = 17400000},
{.lower = 17400000, .upper = 35000000},
{.lower = 35000000, .upper = 40000000},
{.lower = 40000000, .upper = 47000000},
{.lower = 47000000, .upper = BX4819_band2.upper}
#endif #endif
[BAND2_108MHz]={.lower = 10800000, .upper = 13700000},
[BAND3_137MHz]={.lower = 13700000, .upper = 17400000},
[BAND4_174MHz]={.lower = 17400000, .upper = 35000000},
[BAND5_350MHz]={.lower = 35000000, .upper = 40000000},
[BAND6_400MHz]={.lower = 40000000, .upper = 47000000}
}; };
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
@@ -62,22 +62,49 @@ const freq_band_table_t frequencyBandTable[7] =
#endif #endif
// this order of steps has to be preserved for backwards compatibility with other/stock firmwares
const uint16_t gStepFrequencyTable[] = { const uint16_t gStepFrequencyTable[] = {
250, 500, 625, 1000, 1250, 2500, 833, // standard steps
1, 5, 10, 25, 50, 100, 125, 1500, 3000, 5000, 10000, 12500, 25000, 50000 [STEP_2_5kHz] = 250,
}; [STEP_5kHz] = 500,
[STEP_6_25kHz] = 625,
[STEP_10kHz] = 1000,
const uint8_t StepSortedIndexes[] = { [STEP_12_5kHz] = 1250,
STEP_0_01kHz, STEP_0_05kHz, STEP_0_1kHz, STEP_0_25kHz, STEP_0_5kHz, STEP_1kHz, STEP_1_25kHz, STEP_2_5kHz, STEP_5kHz, STEP_6_25kHz, [STEP_25kHz] = 2500,
STEP_8_33kHz, STEP_10kHz, STEP_12_5kHz, STEP_15kHz, STEP_25kHz, STEP_30kHz, STEP_50kHz, STEP_100kHz, [STEP_8_33kHz] = 833,
STEP_125kHz, STEP_250kHz, STEP_500kHz // custom steps
[STEP_0_01kHz] = 1,
[STEP_0_05kHz] = 5,
[STEP_0_1kHz] = 10,
[STEP_0_25kHz] = 25,
[STEP_0_5kHz] = 50,
[STEP_1kHz] = 100,
[STEP_1_25kHz] = 125,
[STEP_9kHz] = 900,
[STEP_15kHz] = 1500,
[STEP_20kHz] = 2000,
[STEP_30kHz] = 3000,
[STEP_50kHz] = 5000,
[STEP_100kHz] = 10000,
[STEP_125kHz] = 12500,
[STEP_200kHz] = 20000,
[STEP_250kHz] = 25000,
[STEP_500kHz] = 50000
}; };
uint8_t FREQUENCY_GetStepIdxFromSortedIdx(uint8_t sortedIdx)
const STEP_Setting_t StepSortedIndexes[] = {
STEP_0_01kHz, STEP_0_05kHz, STEP_0_1kHz, STEP_0_25kHz, STEP_0_5kHz, STEP_1kHz, STEP_1_25kHz, STEP_2_5kHz, STEP_5kHz, STEP_6_25kHz,
STEP_8_33kHz, STEP_9kHz, STEP_10kHz, STEP_12_5kHz, STEP_15kHz, STEP_20kHz, STEP_25kHz, STEP_30kHz, STEP_50kHz, STEP_100kHz,
STEP_125kHz, STEP_200kHz, STEP_250kHz, STEP_500kHz
};
STEP_Setting_t FREQUENCY_GetStepIdxFromSortedIdx(uint8_t sortedIdx)
{ {
return StepSortedIndexes[sortedIdx]; return StepSortedIndexes[sortedIdx];
} }
uint8_t FREQUENCY_GetSortedIdxFromStepIdx(uint8_t stepIdx)
uint32_t FREQUENCY_GetSortedIdxFromStepIdx(uint8_t stepIdx)
{ {
for(uint8_t i = 0; i < ARRAY_SIZE(gStepFrequencyTable); i++) for(uint8_t i = 0; i < ARRAY_SIZE(gStepFrequencyTable); i++)
if(StepSortedIndexes[i] == stepIdx) if(StepSortedIndexes[i] == stepIdx)
@@ -85,16 +112,16 @@ uint8_t FREQUENCY_GetSortedIdxFromStepIdx(uint8_t stepIdx)
return 0; return 0;
} }
static_assert(ARRAY_SIZE(gStepFrequencyTable) == STEP_N_ELEM);
FREQUENCY_Band_t FREQUENCY_GetBand(uint32_t Frequency) FREQUENCY_Band_t FREQUENCY_GetBand(uint32_t Frequency)
{ {
int band; for (int32_t band = BAND_N_ELEM - 1; band >= 0; band--)
for (band = ARRAY_SIZE(frequencyBandTable) - 1; band >= 0; band--)
if (Frequency >= frequencyBandTable[band].lower) if (Frequency >= frequencyBandTable[band].lower)
// if (Frequency < frequencyBandTable[band].upper)
return (FREQUENCY_Band_t)band; return (FREQUENCY_Band_t)band;
return BAND1_50MHz; return BAND1_50MHz;
// return BAND_NONE;
} }
uint8_t FREQUENCY_CalculateOutputPower(uint8_t TxpLow, uint8_t TxpMid, uint8_t TxpHigh, int32_t LowerLimit, int32_t Middle, int32_t UpperLimit, int32_t Frequency) uint8_t FREQUENCY_CalculateOutputPower(uint8_t TxpLow, uint8_t TxpMid, uint8_t TxpHigh, int32_t LowerLimit, int32_t Middle, int32_t UpperLimit, int32_t Frequency)
@@ -124,17 +151,20 @@ uint32_t FREQUENCY_RoundToStep(uint32_t freq, uint16_t step)
int chno = (freq - base) / 700; // convert entered aviation 8.33Khz channel number scheme to actual frequency. int chno = (freq - base) / 700; // convert entered aviation 8.33Khz channel number scheme to actual frequency.
return base + (chno * 833) + (chno == 3); return base + (chno * 833) + (chno == 3);
} }
if(step == 1) if(step == 1)
return freq; return freq;
if(step >= 1000)
step = step/2;
return (freq + (step + 1) / 2) / step * step; return (freq + (step + 1) / 2) / step * step;
} }
int TX_freq_check(const uint32_t Frequency) int32_t TX_freq_check(const uint32_t Frequency)
{ // return '0' if TX frequency is allowed { // return '0' if TX frequency is allowed
// otherwise return '-1' // otherwise return '-1'
if (Frequency < frequencyBandTable[0].lower || Frequency > frequencyBandTable[ARRAY_SIZE(frequencyBandTable) - 1].upper) if (Frequency < frequencyBandTable[0].lower || Frequency > frequencyBandTable[BAND_N_ELEM - 1].upper)
return -1; // not allowed outside this range return 1; // not allowed outside this range
if (Frequency >= BX4819_band1.upper && Frequency < BX4819_band2.lower) if (Frequency >= BX4819_band1.upper && Frequency < BX4819_band2.lower)
return -1; // BX chip does not work in this range return -1; // BX chip does not work in this range
@@ -196,7 +226,7 @@ int TX_freq_check(const uint32_t Frequency)
break; break;
case F_LOCK_NONE: case F_LOCK_NONE:
for (uint8_t i = 0; i < ARRAY_SIZE(frequencyBandTable); i++) for (uint32_t i = 0; i < ARRAY_SIZE(frequencyBandTable); i++)
if (Frequency >= frequencyBandTable[i].lower && Frequency < frequencyBandTable[i].upper) if (Frequency >= frequencyBandTable[i].lower && Frequency < frequencyBandTable[i].upper)
return 0; return 0;
break; break;
@@ -206,11 +236,11 @@ int TX_freq_check(const uint32_t Frequency)
return -1; return -1;
} }
int RX_freq_check(const uint32_t Frequency) int32_t RX_freq_check(const uint32_t Frequency)
{ // return '0' if RX frequency is allowed { // return '0' if RX frequency is allowed
// otherwise return '-1' // otherwise return '-1'
if (Frequency < frequencyBandTable[0].lower || Frequency > frequencyBandTable[ARRAY_SIZE(frequencyBandTable) - 1].upper) if (Frequency < frequencyBandTable[0].lower || Frequency > frequencyBandTable[BAND_N_ELEM - 1].upper)
return -1; return -1;
if (Frequency >= BX4819_band1.upper && Frequency < BX4819_band2.lower) if (Frequency >= BX4819_band1.upper && Frequency < BX4819_band2.lower)

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@@ -19,6 +19,8 @@
#include <stdint.h> #include <stdint.h>
#define _1GHz_in_KHz 100000000
typedef struct { typedef struct {
const uint32_t lower; const uint32_t lower;
const uint32_t upper; const uint32_t upper;
@@ -27,8 +29,6 @@ typedef struct {
extern const freq_band_table_t BX4819_band1; extern const freq_band_table_t BX4819_band1;
extern const freq_band_table_t BX4819_band2; extern const freq_band_table_t BX4819_band2;
extern const freq_band_table_t frequencyBandTable[7];
typedef enum { typedef enum {
BAND_NONE = -1, BAND_NONE = -1,
BAND1_50MHz = 0, BAND1_50MHz = 0,
@@ -37,11 +37,14 @@ typedef enum {
BAND4_174MHz, BAND4_174MHz,
BAND5_350MHz, BAND5_350MHz,
BAND6_400MHz, BAND6_400MHz,
BAND7_470MHz BAND7_470MHz,
BAND_N_ELEM
} FREQUENCY_Band_t; } FREQUENCY_Band_t;
extern const freq_band_table_t frequencyBandTable[];
typedef enum { typedef enum {
// standard steps
STEP_2_5kHz, STEP_2_5kHz,
STEP_5kHz, STEP_5kHz,
STEP_6_25kHz, STEP_6_25kHz,
@@ -49,6 +52,7 @@ typedef enum {
STEP_12_5kHz, STEP_12_5kHz,
STEP_25kHz, STEP_25kHz,
STEP_8_33kHz, STEP_8_33kHz,
// custom steps
STEP_0_01kHz, STEP_0_01kHz,
STEP_0_05kHz, STEP_0_05kHz,
STEP_0_1kHz, STEP_0_1kHz,
@@ -56,17 +60,21 @@ typedef enum {
STEP_0_5kHz, STEP_0_5kHz,
STEP_1kHz, STEP_1kHz,
STEP_1_25kHz, STEP_1_25kHz,
STEP_9kHz,
STEP_15kHz, STEP_15kHz,
STEP_20kHz,
STEP_30kHz, STEP_30kHz,
STEP_50kHz, STEP_50kHz,
STEP_100kHz, STEP_100kHz,
STEP_125kHz, STEP_125kHz,
STEP_200kHz,
STEP_250kHz, STEP_250kHz,
STEP_500kHz, STEP_500kHz,
STEP_N_ELEM
} STEP_Setting_t; } STEP_Setting_t;
extern const uint16_t gStepFrequencyTable[21]; extern const uint16_t gStepFrequencyTable[];
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
extern const uint32_t NoaaFrequencyTable[10]; extern const uint32_t NoaaFrequencyTable[10];
@@ -76,10 +84,10 @@ FREQUENCY_Band_t FREQUENCY_GetBand(uint32_t Frequency);
uint8_t FREQUENCY_CalculateOutputPower(uint8_t TxpLow, uint8_t TxpMid, uint8_t TxpHigh, int32_t LowerLimit, int32_t Middle, int32_t UpperLimit, int32_t Frequency); uint8_t FREQUENCY_CalculateOutputPower(uint8_t TxpLow, uint8_t TxpMid, uint8_t TxpHigh, int32_t LowerLimit, int32_t Middle, int32_t UpperLimit, int32_t Frequency);
uint32_t FREQUENCY_RoundToStep(uint32_t freq, uint16_t step); uint32_t FREQUENCY_RoundToStep(uint32_t freq, uint16_t step);
uint8_t FREQUENCY_GetStepIdxFromSortedIdx(uint8_t sortedIdx); STEP_Setting_t FREQUENCY_GetStepIdxFromSortedIdx(uint8_t sortedIdx);
uint8_t FREQUENCY_GetSortedIdxFromStepIdx(uint8_t step); uint32_t FREQUENCY_GetSortedIdxFromStepIdx(uint8_t step);
int TX_freq_check(const uint32_t Frequency); int32_t TX_freq_check(uint32_t Frequency);
int RX_freq_check(const uint32_t Frequency); int32_t RX_freq_check(uint32_t Frequency);
#endif #endif

View File

@@ -42,83 +42,69 @@
FUNCTION_Type_t gCurrentFunction; FUNCTION_Type_t gCurrentFunction;
bool FUNCTION_IsRx()
{
return gCurrentFunction == FUNCTION_MONITOR ||
gCurrentFunction == FUNCTION_INCOMING ||
gCurrentFunction == FUNCTION_RECEIVE;
}
void FUNCTION_Init(void) void FUNCTION_Init(void)
{ {
#ifdef ENABLE_NOAA
if (!IS_NOAA_CHANNEL(gRxVfo->CHANNEL_SAVE))
#endif
{
gCurrentCodeType = (gRxVfo->Modulation != MODULATION_FM) ? CODE_TYPE_OFF : gRxVfo->pRX->CodeType;
}
#ifdef ENABLE_NOAA
else
gCurrentCodeType = CODE_TYPE_CONTINUOUS_TONE;
#endif
#ifdef ENABLE_DTMF_CALLING
DTMF_clear_RX();
#endif
g_CxCSS_TAIL_Found = false; g_CxCSS_TAIL_Found = false;
g_CDCSS_Lost = false; g_CDCSS_Lost = false;
g_CTCSS_Lost = false; g_CTCSS_Lost = false;
#ifdef ENABLE_VOX
g_VOX_Lost = false;
#endif
g_SquelchLost = false; g_SquelchLost = false;
gFlagTailNoteEliminationComplete = false; gFlagTailToneEliminationComplete = false;
gTailNoteEliminationCountdown_10ms = 0; gTailToneEliminationCountdown_10ms = 0;
gFoundCTCSS = false; gFoundCTCSS = false;
gFoundCDCSS = false; gFoundCDCSS = false;
gFoundCTCSSCountdown_10ms = 0; gFoundCTCSSCountdown_10ms = 0;
gFoundCDCSSCountdown_10ms = 0; gFoundCDCSSCountdown_10ms = 0;
gEndOfRxDetectedMaybe = false; gEndOfRxDetectedMaybe = false;
#ifdef ENABLE_NOAA gCurrentCodeType = (gRxVfo->Modulation != MODULATION_FM) ? CODE_TYPE_OFF : gRxVfo->pRX->CodeType;
#ifdef ENABLE_VOX
g_VOX_Lost = false;
#endif
#ifdef ENABLE_DTMF_CALLING
DTMF_clear_RX();
#endif
#ifdef ENABLE_NOAA
gNOAACountdown_10ms = 0; gNOAACountdown_10ms = 0;
#endif
if (IS_NOAA_CHANNEL(gRxVfo->CHANNEL_SAVE)) {
gCurrentCodeType = CODE_TYPE_CONTINUOUS_TONE;
}
#endif
gUpdateStatus = true; gUpdateStatus = true;
} }
void FUNCTION_Select(FUNCTION_Type_t Function) void FUNCTION_Foreground(const FUNCTION_Type_t PreviousFunction)
{ {
const FUNCTION_Type_t PreviousFunction = gCurrentFunction;
const bool bWasPowerSave = (PreviousFunction == FUNCTION_POWER_SAVE);
gCurrentFunction = Function;
if (bWasPowerSave && Function != FUNCTION_POWER_SAVE)
{
BK4819_Conditional_RX_TurnOn_and_GPIO6_Enable();
gRxIdleMode = false;
UI_DisplayStatus();
}
switch (Function)
{
case FUNCTION_FOREGROUND:
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
if (gDTMF_ReplyState != DTMF_REPLY_NONE) if (gDTMF_ReplyState != DTMF_REPLY_NONE)
RADIO_PrepareCssTX(); RADIO_PrepareCssTX();
#endif #endif
if (PreviousFunction == FUNCTION_TRANSMIT)
{ if (PreviousFunction == FUNCTION_TRANSMIT) {
ST7565_FixInterfGlitch(); ST7565_FixInterfGlitch();
gVFO_RSSI_bar_level[0] = 0; gVFO_RSSI_bar_level[0] = 0;
gVFO_RSSI_bar_level[1] = 0; gVFO_RSSI_bar_level[1] = 0;
} else if (PreviousFunction != FUNCTION_RECEIVE) {
return;
} }
else
if (PreviousFunction != FUNCTION_RECEIVE)
break;
#if defined(ENABLE_FMRADIO) #if defined(ENABLE_FMRADIO)
if (gFmRadioMode) if (gFmRadioMode)
gFM_RestoreCountdown_10ms = fm_restore_countdown_10ms; gFM_RestoreCountdown_10ms = fm_restore_countdown_10ms;
#endif #endif
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
if (gDTMF_CallState == DTMF_CALL_STATE_CALL_OUT || if (gDTMF_CallState == DTMF_CALL_STATE_CALL_OUT ||
@@ -129,17 +115,9 @@ void FUNCTION_Select(FUNCTION_Type_t Function)
} }
#endif #endif
gUpdateStatus = true; gUpdateStatus = true;
return; }
case FUNCTION_MONITOR: void FUNCTION_PowerSave() {
gMonitor = true;
break;
case FUNCTION_INCOMING:
case FUNCTION_RECEIVE:
break;
case FUNCTION_POWER_SAVE:
gPowerSave_10ms = gEeprom.BATTERY_SAVE * 10; gPowerSave_10ms = gEeprom.BATTERY_SAVE * 10;
gPowerSaveCountdownExpired = false; gPowerSaveCountdownExpired = false;
@@ -156,11 +134,10 @@ void FUNCTION_Select(FUNCTION_Type_t Function)
if (gScreenToDisplay != DISPLAY_MENU) // 1of11 .. don't close the menu if (gScreenToDisplay != DISPLAY_MENU) // 1of11 .. don't close the menu
GUI_SelectNextDisplay(DISPLAY_MAIN); GUI_SelectNextDisplay(DISPLAY_MAIN);
}
return; void FUNCTION_Transmit()
{
case FUNCTION_TRANSMIT:
// if DTMF is enabled when TX'ing, it changes the TX audio filtering !! .. 1of11 // if DTMF is enabled when TX'ing, it changes the TX audio filtering !! .. 1of11
BK4819_DisableDTMF(); BK4819_DisableDTMF();
@@ -171,19 +148,16 @@ void FUNCTION_Select(FUNCTION_Type_t Function)
// clear the DTMF RX live decoder buffer // clear the DTMF RX live decoder buffer
gDTMF_RX_live_timeout = 0; gDTMF_RX_live_timeout = 0;
gDTMF_RX_live_timeout = 0;
memset(gDTMF_RX_live, 0, sizeof(gDTMF_RX_live)); memset(gDTMF_RX_live, 0, sizeof(gDTMF_RX_live));
#if defined(ENABLE_FMRADIO) #if defined(ENABLE_FMRADIO)
if (gFmRadioMode) if (gFmRadioMode)
BK1080_Init(0, false); BK1080_Init0();
#endif #endif
#ifdef ENABLE_ALARM #ifdef ENABLE_ALARM
if (gAlarmState == ALARM_STATE_TXALARM && gEeprom.ALARM_MODE != ALARM_MODE_TONE) if (gAlarmState == ALARM_STATE_SITE_ALARM)
{ {
gAlarmState = ALARM_STATE_ALARM;
GUI_DisplayScreen(); GUI_DisplayScreen();
AUDIO_AudioPathOff(); AUDIO_AudioPathOff();
@@ -200,9 +174,9 @@ void FUNCTION_Select(FUNCTION_Type_t Function)
BK4819_ExitTxMute(); BK4819_ExitTxMute();
gAlarmToneCounter = 0; gAlarmToneCounter = 0;
break; return;
} }
#endif #endif
gUpdateStatus = true; gUpdateStatus = true;
@@ -218,46 +192,82 @@ void FUNCTION_Select(FUNCTION_Type_t Function)
if (gCurrentVfo->DTMF_PTT_ID_TX_MODE == PTT_ID_APOLLO) if (gCurrentVfo->DTMF_PTT_ID_TX_MODE == PTT_ID_APOLLO)
BK4819_PlaySingleTone(2525, 250, 0, gEeprom.DTMF_SIDE_TONE); BK4819_PlaySingleTone(2525, 250, 0, gEeprom.DTMF_SIDE_TONE);
#if defined(ENABLE_ALARM) || defined(ENABLE_TX1750) #if defined(ENABLE_ALARM) || defined(ENABLE_TX1750)
if (gAlarmState != ALARM_STATE_OFF) if (gAlarmState != ALARM_STATE_OFF) {
{
#ifdef ENABLE_TX1750 #ifdef ENABLE_TX1750
if (gAlarmState == ALARM_STATE_TX1750) if (gAlarmState == ALARM_STATE_TX1750)
BK4819_TransmitTone(true, 1750); BK4819_TransmitTone(true, 1750);
#endif #endif
#ifdef ENABLE_ALARM #ifdef ENABLE_ALARM
if (gAlarmState == ALARM_STATE_TXALARM) if (gAlarmState == ALARM_STATE_TXALARM)
BK4819_TransmitTone(true, 500); BK4819_TransmitTone(true, 500);
#endif
SYSTEM_DelayMs(2);
AUDIO_AudioPathOn();
#ifdef ENABLE_ALARM
gAlarmToneCounter = 0; gAlarmToneCounter = 0;
#endif #endif
SYSTEM_DelayMs(2);
AUDIO_AudioPathOn();
gEnableSpeaker = true; gEnableSpeaker = true;
break;
return;
} }
#endif #endif
if (gCurrentVfo->SCRAMBLING_TYPE > 0 && gSetting_ScrambleEnable) if (gCurrentVfo->SCRAMBLING_TYPE > 0 && gSetting_ScrambleEnable)
BK4819_EnableScramble(gCurrentVfo->SCRAMBLING_TYPE - 1); BK4819_EnableScramble(gCurrentVfo->SCRAMBLING_TYPE - 1);
else else
BK4819_DisableScramble(); BK4819_DisableScramble();
if (gSetting_backlight_on_tx_rx == BACKLIGHT_ON_TR_TX || if (gSetting_backlight_on_tx_rx & BACKLIGHT_ON_TR_TX) {
gSetting_backlight_on_tx_rx == BACKLIGHT_ON_TR_TXRX)
BACKLIGHT_TurnOn(); BACKLIGHT_TurnOn();
}
}
void FUNCTION_Select(FUNCTION_Type_t Function)
{
const FUNCTION_Type_t PreviousFunction = gCurrentFunction;
const bool bWasPowerSave = PreviousFunction == FUNCTION_POWER_SAVE;
gCurrentFunction = Function;
if (bWasPowerSave && Function != FUNCTION_POWER_SAVE) {
BK4819_Conditional_RX_TurnOn_and_GPIO6_Enable();
gRxIdleMode = false;
UI_DisplayStatus();
}
switch (Function) {
case FUNCTION_FOREGROUND:
FUNCTION_Foreground(PreviousFunction);
return;
case FUNCTION_POWER_SAVE:
FUNCTION_PowerSave();
return;
case FUNCTION_TRANSMIT:
FUNCTION_Transmit();
break; break;
case FUNCTION_MONITOR:
gMonitor = true;
break;
case FUNCTION_INCOMING:
case FUNCTION_RECEIVE:
case FUNCTION_BAND_SCOPE: case FUNCTION_BAND_SCOPE:
default:
break; break;
} }
gBatterySaveCountdown_10ms = battery_save_count_10ms; gBatterySaveCountdown_10ms = battery_save_count_10ms;
gSchedulePowerSave = false; gSchedulePowerSave = false;
#if defined(ENABLE_FMRADIO) #if defined(ENABLE_FMRADIO)
if(Function != FUNCTION_INCOMING)
gFM_RestoreCountdown_10ms = 0; gFM_RestoreCountdown_10ms = 0;
#endif #endif
} }

View File

@@ -27,7 +27,8 @@ enum FUNCTION_Type_t
FUNCTION_INCOMING, // receiving a signal (squelch is open) FUNCTION_INCOMING, // receiving a signal (squelch is open)
FUNCTION_RECEIVE, // RX mode, squelch closed FUNCTION_RECEIVE, // RX mode, squelch closed
FUNCTION_POWER_SAVE, // sleeping FUNCTION_POWER_SAVE, // sleeping
FUNCTION_BAND_SCOPE // bandscope mode (panadpter/spectrum) .. not yet implemented FUNCTION_BAND_SCOPE, // bandscope mode (panadpter/spectrum) .. not yet implemented
FUNCTION_N_ELEM
}; };
typedef enum FUNCTION_Type_t FUNCTION_Type_t; typedef enum FUNCTION_Type_t FUNCTION_Type_t;
@@ -36,6 +37,6 @@ extern FUNCTION_Type_t gCurrentFunction;
void FUNCTION_Init(void); void FUNCTION_Init(void);
void FUNCTION_Select(FUNCTION_Type_t Function); void FUNCTION_Select(FUNCTION_Type_t Function);
bool FUNCTION_IsRx();
#endif #endif

View File

@@ -14,6 +14,8 @@
* limitations under the License. * limitations under the License.
*/ */
#include <assert.h>
#include "battery.h" #include "battery.h"
#include "driver/backlight.h" #include "driver/backlight.h"
#include "driver/st7565.h" #include "driver/st7565.h"
@@ -49,48 +51,45 @@ const uint16_t lowBatteryPeriod = 30;
volatile uint16_t gPowerSave_10ms; volatile uint16_t gPowerSave_10ms;
unsigned int BATTERY_VoltsToPercent(const unsigned int voltage_10mV) const uint16_t Voltage2PercentageTable[][7][2] = {
{ [BATTERY_TYPE_1600_MAH] = {
const uint16_t crv1600[][2] = {
{828, 100}, {828, 100},
{814, 97 }, {814, 97 },
{760, 25 }, {760, 25 },
{729, 6 }, {729, 6 },
{630, 0 }, {630, 0 },
{0, 0 } {0, 0 },
}; {0, 0 },
},
const uint16_t crv2200[][2] = { [BATTERY_TYPE_2200_MAH] = {
{832, 100}, {832, 100},
{813, 95 }, {813, 95 },
{740, 60 }, {740, 60 },
{707, 21 }, {707, 21 },
{682, 5 }, {682, 5 },
{630, 0 }, {630, 0 },
{0, 0 } {0, 0 },
}; },
};
const BATTERY_Type_t type = gEeprom.BATTERY_TYPE; static_assert(ARRAY_SIZE(Voltage2PercentageTable[BATTERY_TYPE_1600_MAH]) ==
const uint16_t(*crv)[2]; ARRAY_SIZE(Voltage2PercentageTable[BATTERY_TYPE_2200_MAH]));
uint8_t size;
if (type == BATTERY_TYPE_2200_MAH) {
crv = crv2200;
size = ARRAY_SIZE(crv2200);
}
else {
crv = crv1600;
size = ARRAY_SIZE(crv1600);
}
unsigned int BATTERY_VoltsToPercent(const unsigned int voltage_10mV)
{
const uint16_t (*crv)[2] = Voltage2PercentageTable[gEeprom.BATTERY_TYPE];
const int mulipl = 1000; const int mulipl = 1000;
for (int i = 1; i < size; i++) { for (unsigned int i = 1; i < ARRAY_SIZE(Voltage2PercentageTable[BATTERY_TYPE_2200_MAH]); i++) {
if (voltage_10mV > crv[i][0]) { if (voltage_10mV > crv[i][0]) {
int a = (crv[i - 1][1] - crv[i][1]) * mulipl / (crv[i - 1][0] - crv[i][0]); const int a = (crv[i - 1][1] - crv[i][1]) * mulipl / (crv[i - 1][0] - crv[i][0]);
int b = crv[i][1] - a * crv[i][0] / mulipl; const int b = crv[i][1] - a * crv[i][0] / mulipl;
int p = a * voltage_10mV / mulipl + b; const int p = a * voltage_10mV / mulipl + b;
return MIN(p, 100); return MIN(p, 100);
} }
} }
return 0; return 0;
} }
@@ -99,8 +98,6 @@ void BATTERY_GetReadings(const bool bDisplayBatteryLevel)
const uint8_t PreviousBatteryLevel = gBatteryDisplayLevel; const uint8_t PreviousBatteryLevel = gBatteryDisplayLevel;
const uint16_t Voltage = (gBatteryVoltages[0] + gBatteryVoltages[1] + gBatteryVoltages[2] + gBatteryVoltages[3]) / 4; const uint16_t Voltage = (gBatteryVoltages[0] + gBatteryVoltages[1] + gBatteryVoltages[2] + gBatteryVoltages[3]) / 4;
gBatteryVoltageAverage = (Voltage * 760) / gBatteryCalibration[3]; gBatteryVoltageAverage = (Voltage * 760) / gBatteryCalibration[3];
if(gBatteryVoltageAverage > 890) if(gBatteryVoltageAverage > 890)
@@ -170,54 +167,59 @@ void BATTERY_GetReadings(const bool bDisplayBatteryLevel)
void BATTERY_TimeSlice500ms(void) void BATTERY_TimeSlice500ms(void)
{ {
if (gLowBattery) if (!gLowBattery) {
{ return;
}
gLowBatteryBlink = ++lowBatteryCountdown & 1; gLowBatteryBlink = ++lowBatteryCountdown & 1;
UI_DisplayBattery(0, gLowBatteryBlink); UI_DisplayBattery(0, gLowBatteryBlink);
if (gCurrentFunction != FUNCTION_TRANSMIT) if (gCurrentFunction == FUNCTION_TRANSMIT) {
{ // not transmitting return;
}
if (lowBatteryCountdown < lowBatteryPeriod) // not transmitting
{
if (lowBatteryCountdown == lowBatteryPeriod-1 && !gChargingWithTypeC && !gLowBatteryConfirmed) if (lowBatteryCountdown < lowBatteryPeriod) {
if (lowBatteryCountdown == lowBatteryPeriod-1 && !gChargingWithTypeC && !gLowBatteryConfirmed) {
AUDIO_PlayBeep(BEEP_500HZ_60MS_DOUBLE_BEEP); AUDIO_PlayBeep(BEEP_500HZ_60MS_DOUBLE_BEEP);
} }
else return;
{ }
lowBatteryCountdown = 0; lowBatteryCountdown = 0;
if (!gChargingWithTypeC) if (gChargingWithTypeC) {
{ // not on charge return;
if(!gLowBatteryConfirmed) { }
// not on charge
if (!gLowBatteryConfirmed) {
AUDIO_PlayBeep(BEEP_500HZ_60MS_DOUBLE_BEEP); AUDIO_PlayBeep(BEEP_500HZ_60MS_DOUBLE_BEEP);
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
AUDIO_SetVoiceID(0, VOICE_ID_LOW_VOLTAGE); AUDIO_SetVoiceID(0, VOICE_ID_LOW_VOLTAGE);
#endif #endif
} }
if (gBatteryDisplayLevel == 0)
{ if (gBatteryDisplayLevel != 0) {
#ifdef ENABLE_VOICE
AUDIO_PlaySingleVoice(false);
#endif
return;
}
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
AUDIO_PlaySingleVoice(true); AUDIO_PlaySingleVoice(true);
#endif #endif
gReducedService = true; gReducedService = true;
//if (gCurrentFunction != FUNCTION_POWER_SAVE)
FUNCTION_Select(FUNCTION_POWER_SAVE); FUNCTION_Select(FUNCTION_POWER_SAVE);
ST7565_HardwareReset(); ST7565_HardwareReset();
if (gEeprom.BACKLIGHT_TIME < (ARRAY_SIZE(gSubMenu_BACKLIGHT) - 1)) if (gEeprom.BACKLIGHT_TIME < (ARRAY_SIZE(gSubMenu_BACKLIGHT) - 1)) {
BACKLIGHT_TurnOff(); // turn the backlight off BACKLIGHT_TurnOff();
}
#ifdef ENABLE_VOICE
else
AUDIO_PlaySingleVoice(false);
#endif
}
}
}
} }
} }

View File

@@ -40,9 +40,9 @@ typedef enum {
BATTERY_TYPE_UNKNOWN BATTERY_TYPE_UNKNOWN
} BATTERY_Type_t; } BATTERY_Type_t;
unsigned int BATTERY_VoltsToPercent(const unsigned int voltage_10mV);
void BATTERY_GetReadings(const bool bDisplayBatteryLevel); unsigned int BATTERY_VoltsToPercent(unsigned int voltage_10mV);
void BATTERY_GetReadings(bool bDisplayBatteryLevel);
void BATTERY_TimeSlice500ms(void); void BATTERY_TimeSlice500ms(void);
#endif #endif

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9
init.c
View File

@@ -17,6 +17,7 @@
*/ */
#include <stdint.h> #include <stdint.h>
#include <string.h>
extern uint32_t __bss_start__[]; extern uint32_t __bss_start__[];
extern uint32_t __bss_end__[]; extern uint32_t __bss_end__[];
@@ -29,9 +30,9 @@ void DATA_Init(void);
void BSS_Init(void) void BSS_Init(void)
{ {
uint32_t *pBss; for (uint32_t *pBss = __bss_start__; pBss < __bss_end__; pBss++) {
for (pBss = __bss_start__; pBss < __bss_end__; pBss++)
*pBss = 0; *pBss = 0;
}
} }
void DATA_Init(void) void DATA_Init(void)
@@ -39,8 +40,8 @@ void DATA_Init(void)
volatile uint32_t *pDataRam = (volatile uint32_t *)sram_data_start; volatile uint32_t *pDataRam = (volatile uint32_t *)sram_data_start;
volatile uint32_t *pDataFlash = (volatile uint32_t *)flash_data_start; volatile uint32_t *pDataFlash = (volatile uint32_t *)flash_data_start;
uint32_t Size = (uint32_t)sram_data_end - (uint32_t)sram_data_start; uint32_t Size = (uint32_t)sram_data_end - (uint32_t)sram_data_start;
unsigned int i;
for (i = 0; i < (Size / 4); i++) for (unsigned int i = 0; i < (Size / 4); i++) {
*pDataRam++ = *pDataFlash++; *pDataRam++ = *pDataFlash++;
}
} }

76
main.c
View File

@@ -14,44 +14,52 @@
* limitations under the License. * limitations under the License.
*/ */
#include <stdint.h>
#include <string.h> #include <string.h>
#include <stdio.h> // NULL #include <stdio.h> // NULL
#ifdef ENABLE_AM_FIX #ifdef ENABLE_AM_FIX
#include "am_fix.h" #include "am_fix.h"
#endif #endif
#include "audio.h"
#include "board.h"
#include "misc.h"
#include "radio.h"
#include "settings.h"
#include "version.h"
#include "app/app.h" #include "app/app.h"
#include "app/dtmf.h" #include "app/dtmf.h"
#include "audio.h"
#include "bsp/dp32g030/gpio.h" #include "bsp/dp32g030/gpio.h"
#include "bsp/dp32g030/syscon.h" #include "bsp/dp32g030/syscon.h"
#include "board.h"
#include "driver/backlight.h" #include "driver/backlight.h"
#include "driver/bk4819.h" #include "driver/bk4819.h"
#include "driver/gpio.h" #include "driver/gpio.h"
#include "driver/system.h" #include "driver/system.h"
#include "driver/systick.h" #include "driver/systick.h"
#include "driver/uart.h" #ifdef ENABLE_UART
#include "driver/uart.h"
#endif
#include "helper/battery.h" #include "helper/battery.h"
#include "helper/boot.h" #include "helper/boot.h"
#include "misc.h"
#include "radio.h"
#include "settings.h"
#include "ui/lock.h" #include "ui/lock.h"
#include "ui/welcome.h" #include "ui/welcome.h"
#include "ui/menu.h" #include "ui/menu.h"
#include "version.h" void _putchar(__attribute__((unused)) char c)
void _putchar(char c)
{ {
#ifdef ENABLE_UART
UART_Send((uint8_t *)&c, 1); UART_Send((uint8_t *)&c, 1);
#endif
} }
void Main(void) void Main(void)
{ {
unsigned int i;
BOOT_Mode_t BootMode;
// Enable clock gating of blocks we need // Enable clock gating of blocks we need
SYSCON_DEV_CLK_GATE = 0 SYSCON_DEV_CLK_GATE = 0
| SYSCON_DEV_CLK_GATE_GPIOA_BITS_ENABLE | SYSCON_DEV_CLK_GATE_GPIOA_BITS_ENABLE
@@ -64,18 +72,19 @@ void Main(void)
| SYSCON_DEV_CLK_GATE_AES_BITS_ENABLE | SYSCON_DEV_CLK_GATE_AES_BITS_ENABLE
| SYSCON_DEV_CLK_GATE_PWM_PLUS0_BITS_ENABLE; | SYSCON_DEV_CLK_GATE_PWM_PLUS0_BITS_ENABLE;
SYSTICK_Init(); SYSTICK_Init();
BOARD_Init(); BOARD_Init();
UART_Init();
boot_counter_10ms = 250; // 2.5 sec boot_counter_10ms = 250; // 2.5 sec
#ifdef ENABLE_UART
UART_Init();
UART_Send(UART_Version, strlen(UART_Version)); UART_Send(UART_Version, strlen(UART_Version));
#endif
// Not implementing authentic device checks // Not implementing authentic device checks
memset(&gEeprom, 0, sizeof(gEeprom));
memset(gDTMF_String, '-', sizeof(gDTMF_String)); memset(gDTMF_String, '-', sizeof(gDTMF_String));
gDTMF_String[sizeof(gDTMF_String) - 1] = 0; gDTMF_String[sizeof(gDTMF_String) - 1] = 0;
@@ -83,9 +92,9 @@ void Main(void)
BOARD_ADC_GetBatteryInfo(&gBatteryCurrentVoltage, &gBatteryCurrent); BOARD_ADC_GetBatteryInfo(&gBatteryCurrentVoltage, &gBatteryCurrent);
BOARD_EEPROM_Init(); SETTINGS_InitEEPROM();
SETTINGS_WriteBuildOptions();
BOARD_EEPROM_LoadCalibration(); SETTINGS_LoadCalibration();
RADIO_ConfigureChannel(0, VFO_CONFIGURE_RELOAD); RADIO_ConfigureChannel(0, VFO_CONFIGURE_RELOAD);
RADIO_ConfigureChannel(1, VFO_CONFIGURE_RELOAD); RADIO_ConfigureChannel(1, VFO_CONFIGURE_RELOAD);
@@ -94,16 +103,16 @@ void Main(void)
RADIO_SetupRegisters(true); RADIO_SetupRegisters(true);
for (i = 0; i < ARRAY_SIZE(gBatteryVoltages); i++) for (unsigned int i = 0; i < ARRAY_SIZE(gBatteryVoltages); i++)
BOARD_ADC_GetBatteryInfo(&gBatteryVoltages[i], &gBatteryCurrent); BOARD_ADC_GetBatteryInfo(&gBatteryVoltages[i], &gBatteryCurrent);
BATTERY_GetReadings(false); BATTERY_GetReadings(false);
#ifdef ENABLE_AM_FIX #ifdef ENABLE_AM_FIX
AM_fix_init(); AM_fix_init();
#endif #endif
BootMode = BOOT_GetMode(); const BOOT_Mode_t BootMode = BOOT_GetMode();
if (BootMode == BOOT_MODE_F_LOCK) if (BootMode == BOOT_MODE_F_LOCK)
{ {
@@ -126,8 +135,9 @@ void Main(void)
{ // keys are pressed { // keys are pressed
UI_DisplayReleaseKeys(); UI_DisplayReleaseKeys();
BACKLIGHT_TurnOn(); BACKLIGHT_TurnOn();
i = 0;
while (i < 50) // 500ms // 500ms
for (int i = 0; i < 50;)
{ {
i = (GPIO_CheckBit(&GPIOC->DATA, GPIOC_PIN_PTT) && KEYBOARD_Poll() == KEY_INVALID) ? i + 1 : 0; i = (GPIO_CheckBit(&GPIOC->DATA, GPIOC_PIN_PTT) && KEYBOARD_Poll() == KEY_INVALID) ? i + 1 : 0;
SYSTEM_DelayMs(10); SYSTEM_DelayMs(10);
@@ -207,24 +217,18 @@ void Main(void)
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
RADIO_ConfigureNOAA(); RADIO_ConfigureNOAA();
#endif #endif
// ******************
} }
while (1) while (true) {
{
APP_Update(); APP_Update();
if (gNextTimeslice) if (gNextTimeslice) {
{
APP_TimeSlice10ms();
gNextTimeslice = false;
}
if (gNextTimeslice_500ms) APP_TimeSlice10ms();
{
if (gNextTimeslice_500ms) {
APP_TimeSlice500ms(); APP_TimeSlice500ms();
gNextTimeslice_500ms = false; }
} }
} }
} }

26
misc.c
View File

@@ -89,14 +89,12 @@ bool gSetting_350EN;
uint8_t gSetting_F_LOCK; uint8_t gSetting_F_LOCK;
bool gSetting_ScrambleEnable; bool gSetting_ScrambleEnable;
uint8_t gSetting_backlight_on_tx_rx; enum BacklightOnRxTx_t gSetting_backlight_on_tx_rx;
#ifdef ENABLE_AM_FIX #ifdef ENABLE_AM_FIX
bool gSetting_AM_fix; bool gSetting_AM_fix;
#endif #endif
#ifdef ENABLE_AM_FIX_TEST1
uint8_t gSetting_AM_fix_test1 = 0;
#endif
#ifdef ENABLE_AUDIO_BAR #ifdef ENABLE_AUDIO_BAR
bool gSetting_mic_bar; bool gSetting_mic_bar;
#endif #endif
@@ -134,7 +132,7 @@ volatile bool gNextTimeslice_500ms;
volatile uint16_t gTxTimerCountdown_500ms; volatile uint16_t gTxTimerCountdown_500ms;
volatile bool gTxTimeoutReached; volatile bool gTxTimeoutReached;
volatile uint16_t gTailNoteEliminationCountdown_10ms; volatile uint16_t gTailToneEliminationCountdown_10ms;
volatile uint8_t gVFOStateResumeCountdown_500ms; volatile uint8_t gVFOStateResumeCountdown_500ms;
@@ -145,7 +143,7 @@ volatile uint8_t gVFOStateResumeCountdown_500ms;
bool gEnableSpeaker; bool gEnableSpeaker;
uint8_t gKeyInputCountdown = 0; uint8_t gKeyInputCountdown = 0;
uint8_t gKeyLockCountdown; uint8_t gKeyLockCountdown;
uint8_t gRTTECountdown; uint8_t gRTTECountdown_10ms;
bool bIsInLockScreen; bool bIsInLockScreen;
uint8_t gUpdateStatus; uint8_t gUpdateStatus;
uint8_t gFoundCTCSS; uint8_t gFoundCTCSS;
@@ -162,7 +160,6 @@ bool gCssBackgroundScan;
volatile bool gScheduleScanListen = true; volatile bool gScheduleScanListen = true;
volatile uint16_t gScanPauseDelayIn_10ms; volatile uint16_t gScanPauseDelayIn_10ms;
bool gUpdateRSSI;
#if defined(ENABLE_ALARM) || defined(ENABLE_TX1750) #if defined(ENABLE_ALARM) || defined(ENABLE_TX1750)
AlarmState_t gAlarmState; AlarmState_t gAlarmState;
#endif #endif
@@ -184,9 +181,6 @@ bool gFlagPrepareTX;
bool gFlagAcceptSetting; bool gFlagAcceptSetting;
bool gFlagRefreshSetting; bool gFlagRefreshSetting;
bool gFlagSaveVfo;
bool gFlagSaveSettings;
bool gFlagSaveChannel;
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
bool gFlagSaveFM; bool gFlagSaveFM;
#endif #endif
@@ -201,8 +195,9 @@ bool g_CxCSS_TAIL_Found;
uint16_t gVoxPauseCountdown; uint16_t gVoxPauseCountdown;
#endif #endif
bool g_SquelchLost; bool g_SquelchLost;
uint8_t gFlashLightState;
volatile uint16_t gFlashLightBlinkCounter; volatile uint16_t gFlashLightBlinkCounter;
bool gFlagEndTransmission; bool gFlagEndTransmission;
uint8_t gNextMrChannel; uint8_t gNextMrChannel;
ReceptionMode_t gRxReceptionMode; ReceptionMode_t gRxReceptionMode;
@@ -218,9 +213,6 @@ uint8_t gPttDebounceCounter;
uint8_t gMenuListCount; uint8_t gMenuListCount;
uint8_t gBackup_CROSS_BAND_RX_TX; uint8_t gBackup_CROSS_BAND_RX_TX;
uint8_t gScanDelay_10ms; uint8_t gScanDelay_10ms;
#ifdef ENABLE_AIRCOPY
uint8_t gAircopySendCountdown;
#endif
uint8_t gFSKWriteIndex; uint8_t gFSKWriteIndex;
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
@@ -245,18 +237,18 @@ volatile bool gNextTimeslice40ms;
volatile uint16_t gNOAACountdown_10ms = 0; volatile uint16_t gNOAACountdown_10ms = 0;
volatile bool gScheduleNOAA = true; volatile bool gScheduleNOAA = true;
#endif #endif
volatile bool gFlagTailNoteEliminationComplete; volatile bool gFlagTailToneEliminationComplete;
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
volatile bool gScheduleFM; volatile bool gScheduleFM;
#endif #endif
volatile uint8_t boot_counter_10ms; volatile uint8_t boot_counter_10ms;
int16_t gCurrentRSSI[2] = {0, 0}; // now one per VFO
uint8_t gIsLocked = 0xFF; uint8_t gIsLocked = 0xFF;
inline void FUNCTION_NOP() { ; }
int32_t NUMBER_AddWithWraparound(int32_t Base, int32_t Add, int32_t LowerLimit, int32_t UpperLimit) int32_t NUMBER_AddWithWraparound(int32_t Base, int32_t Add, int32_t LowerLimit, int32_t UpperLimit)
{ {

44
misc.h
View File

@@ -32,6 +32,10 @@
#define MIN(a, b) ({ __typeof__ (a) _a = (a); __typeof__ (b) _b = (b); _a < _b ? _a : _b; }) #define MIN(a, b) ({ __typeof__ (a) _a = (a); __typeof__ (b) _b = (b); _a < _b ? _a : _b; })
#endif #endif
#ifndef SWAP
#define SWAP(a, b) ({ __typeof__ (a) _c = (a); a = b; b = _c; })
#endif
#define IS_MR_CHANNEL(x) ((x) <= MR_CHANNEL_LAST) #define IS_MR_CHANNEL(x) ((x) <= MR_CHANNEL_LAST)
#define IS_FREQ_CHANNEL(x) ((x) >= FREQ_CHANNEL_FIRST && (x) <= FREQ_CHANNEL_LAST) #define IS_FREQ_CHANNEL(x) ((x) >= FREQ_CHANNEL_FIRST && (x) <= FREQ_CHANNEL_LAST)
#define IS_VALID_CHANNEL(x) ((x) < LAST_CHANNEL) #define IS_VALID_CHANNEL(x) ((x) < LAST_CHANNEL)
@@ -47,13 +51,6 @@ enum {
LAST_CHANNEL LAST_CHANNEL
}; };
enum {
FLASHLIGHT_OFF = 0,
FLASHLIGHT_ON,
FLASHLIGHT_BLINK,
FLASHLIGHT_SOS
};
enum { enum {
VFO_CONFIGURE_NONE = 0, VFO_CONFIGURE_NONE = 0,
VFO_CONFIGURE, VFO_CONFIGURE,
@@ -63,7 +60,7 @@ enum {
enum AlarmState_t { enum AlarmState_t {
ALARM_STATE_OFF = 0, ALARM_STATE_OFF = 0,
ALARM_STATE_TXALARM, ALARM_STATE_TXALARM,
ALARM_STATE_ALARM, ALARM_STATE_SITE_ALARM,
ALARM_STATE_TX1750 ALARM_STATE_TX1750
}; };
typedef enum AlarmState_t AlarmState_t; typedef enum AlarmState_t AlarmState_t;
@@ -153,14 +150,12 @@ extern bool gSetting_350EN;
extern uint8_t gSetting_F_LOCK; extern uint8_t gSetting_F_LOCK;
extern bool gSetting_ScrambleEnable; extern bool gSetting_ScrambleEnable;
extern uint8_t gSetting_backlight_on_tx_rx; extern enum BacklightOnRxTx_t gSetting_backlight_on_tx_rx;
#ifdef ENABLE_AM_FIX #ifdef ENABLE_AM_FIX
extern bool gSetting_AM_fix; extern bool gSetting_AM_fix;
#endif #endif
#ifdef ENABLE_AM_FIX_TEST1
extern uint8_t gSetting_AM_fix_test1;
#endif
#ifdef ENABLE_AUDIO_BAR #ifdef ENABLE_AUDIO_BAR
extern bool gSetting_mic_bar; extern bool gSetting_mic_bar;
#endif #endif
@@ -210,18 +205,15 @@ extern volatile bool gNextTimeslice_500ms;
extern volatile uint16_t gTxTimerCountdown_500ms; extern volatile uint16_t gTxTimerCountdown_500ms;
extern volatile bool gTxTimeoutReached; extern volatile bool gTxTimeoutReached;
extern volatile uint16_t gTailNoteEliminationCountdown_10ms; extern volatile uint16_t gTailToneEliminationCountdown_10ms;
#ifdef ENABLE_FMRADIO
extern volatile uint16_t gFmPlayCountdown_10ms;
#endif
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
extern volatile uint16_t gNOAA_Countdown_10ms; extern volatile uint16_t gNOAA_Countdown_10ms;
#endif #endif
extern bool gEnableSpeaker; extern bool gEnableSpeaker;
extern uint8_t gKeyInputCountdown; extern uint8_t gKeyInputCountdown;
extern uint8_t gKeyLockCountdown; extern uint8_t gKeyLockCountdown;
extern uint8_t gRTTECountdown; extern uint8_t gRTTECountdown_10ms;
extern bool bIsInLockScreen; extern bool bIsInLockScreen;
extern uint8_t gUpdateStatus; extern uint8_t gUpdateStatus;
extern uint8_t gFoundCTCSS; extern uint8_t gFoundCTCSS;
@@ -249,7 +241,6 @@ enum
extern volatile bool gScheduleScanListen; extern volatile bool gScheduleScanListen;
extern volatile uint16_t gScanPauseDelayIn_10ms; extern volatile uint16_t gScanPauseDelayIn_10ms;
extern bool gUpdateRSSI;
extern AlarmState_t gAlarmState; extern AlarmState_t gAlarmState;
extern uint16_t gMenuCountdown; extern uint16_t gMenuCountdown;
extern bool gPttWasReleased; extern bool gPttWasReleased;
@@ -269,9 +260,6 @@ extern bool gFlagPrepareTX;
extern bool gFlagAcceptSetting; // accept menu setting extern bool gFlagAcceptSetting; // accept menu setting
extern bool gFlagRefreshSetting; // refresh menu display extern bool gFlagRefreshSetting; // refresh menu display
extern bool gFlagSaveVfo;
extern bool gFlagSaveSettings;
extern bool gFlagSaveChannel;
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
extern bool gFlagSaveFM; extern bool gFlagSaveFM;
#endif #endif
@@ -288,8 +276,9 @@ extern bool g_CxCSS_TAIL_Found;
// true means we are receiving signal // true means we are receiving signal
extern bool g_SquelchLost; extern bool g_SquelchLost;
extern uint8_t gFlashLightState;
extern volatile uint16_t gFlashLightBlinkCounter; extern volatile uint16_t gFlashLightBlinkCounter;
extern bool gFlagEndTransmission; extern bool gFlagEndTransmission;
extern uint8_t gNextMrChannel; extern uint8_t gNextMrChannel;
extern ReceptionMode_t gRxReceptionMode; extern ReceptionMode_t gRxReceptionMode;
@@ -304,9 +293,6 @@ extern uint8_t gPttDebounceCounter;
extern uint8_t gMenuListCount; extern uint8_t gMenuListCount;
extern uint8_t gBackup_CROSS_BAND_RX_TX; extern uint8_t gBackup_CROSS_BAND_RX_TX;
extern uint8_t gScanDelay_10ms; extern uint8_t gScanDelay_10ms;
#ifdef ENABLE_AIRCOPY
extern uint8_t gAircopySendCountdown;
#endif
extern uint8_t gFSKWriteIndex; extern uint8_t gFSKWriteIndex;
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
extern bool gIsNoaaMode; extern bool gIsNoaaMode;
@@ -329,17 +315,19 @@ extern volatile bool gNextTimeslice40ms;
extern volatile uint16_t gNOAACountdown_10ms; extern volatile uint16_t gNOAACountdown_10ms;
extern volatile bool gScheduleNOAA; extern volatile bool gScheduleNOAA;
#endif #endif
extern volatile bool gFlagTailNoteEliminationComplete; extern volatile bool gFlagTailToneEliminationComplete;
extern volatile uint8_t gVFOStateResumeCountdown_500ms; extern volatile uint8_t gVFOStateResumeCountdown_500ms;
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
extern volatile bool gScheduleFM; extern volatile bool gScheduleFM;
#endif #endif
extern int16_t gCurrentRSSI[2]; // now one per VFO
extern uint8_t gIsLocked; extern uint8_t gIsLocked;
extern volatile uint8_t boot_counter_10ms; extern volatile uint8_t boot_counter_10ms;
int32_t NUMBER_AddWithWraparound(int32_t Base, int32_t Add, int32_t LowerLimit, int32_t UpperLimit); int32_t NUMBER_AddWithWraparound(int32_t Base, int32_t Add, int32_t LowerLimit, int32_t UpperLimit);
unsigned long StrToUL(const char * str); unsigned long StrToUL(const char * str);
#endif void FUNCTION_NOP();
inline bool SerialConfigInProgress() { return gSerialConfigCountDown_500ms != 0; }
#endif

409
radio.c
View File

@@ -14,8 +14,10 @@
* limitations under the License. * limitations under the License.
*/ */
#include "driver/bk4819-regs.h"
#include <string.h> #include <string.h>
#include "am_fix.h"
#include "app/dtmf.h" #include "app/dtmf.h"
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
#include "app/fm.h" #include "app/fm.h"
@@ -41,81 +43,54 @@ VFO_Info_t *gCurrentVfo;
DCS_CodeType_t gCurrentCodeType; DCS_CodeType_t gCurrentCodeType;
VfoState_t VfoState[2]; VfoState_t VfoState[2];
const char gModulationStr[][4] = const char gModulationStr[MODULATION_UKNOWN][4] = {
{ [MODULATION_FM]="FM",
"FM", [MODULATION_AM]="AM",
"AM", [MODULATION_USB]="USB",
"USB",
#ifdef ENABLE_BYP_RAW_DEMODULATORS #ifdef ENABLE_BYP_RAW_DEMODULATORS
"BYP", [MODULATION_BYP]="BYP",
"RAW" [MODULATION_RAW]="RAW"
#endif #endif
}; };
bool RADIO_CheckValidChannel(uint16_t Channel, bool bCheckScanList, uint8_t VFO)
{ // return true if the channel appears valid
ChannelAttributes_t att;
uint8_t PriorityCh1;
uint8_t PriorityCh2;
if (!IS_MR_CHANNEL(Channel)) bool RADIO_CheckValidChannel(uint16_t channel, bool checkScanList, uint8_t scanList)
{
// return true if the channel appears valid
if (!IS_MR_CHANNEL(channel))
return false; return false;
att = gMR_ChannelAttributes[Channel]; const ChannelAttributes_t att = gMR_ChannelAttributes[channel];
if (att.band > BAND7_470MHz) if (att.band > BAND7_470MHz)
return false; return false;
if (bCheckScanList) { if (!checkScanList || scanList > 1)
switch (VFO) {
case 0:
if (!att.scanlist1)
return false;
PriorityCh1 = gEeprom.SCANLIST_PRIORITY_CH1[0];
PriorityCh2 = gEeprom.SCANLIST_PRIORITY_CH2[0];
break;
case 1:
if (!att.scanlist2)
return false;
PriorityCh1 = gEeprom.SCANLIST_PRIORITY_CH1[1];
PriorityCh2 = gEeprom.SCANLIST_PRIORITY_CH2[1];
break;
default:
return true; return true;
}
if (PriorityCh1 == Channel) if (scanList ? !att.scanlist2 : !att.scanlist1)
return false; return false;
if (PriorityCh2 == Channel) const uint8_t PriorityCh1 = gEeprom.SCANLIST_PRIORITY_CH1[scanList];
return false; const uint8_t PriorityCh2 = gEeprom.SCANLIST_PRIORITY_CH2[scanList];
}
return true; return PriorityCh1 != channel && PriorityCh2 != channel;
} }
uint8_t RADIO_FindNextChannel(uint8_t Channel, int8_t Direction, bool bCheckScanList, uint8_t VFO) uint8_t RADIO_FindNextChannel(uint8_t Channel, int8_t Direction, bool bCheckScanList, uint8_t VFO)
{ {
unsigned int i; for (unsigned int i = 0; IS_MR_CHANNEL(i); i++, Channel += Direction) {
if (Channel == 0xFF) {
for (i = 0; IS_MR_CHANNEL(i); i++)
{
if (Channel == 0xFF)
Channel = MR_CHANNEL_LAST; Channel = MR_CHANNEL_LAST;
else } else if (!IS_MR_CHANNEL(Channel)) {
if (!IS_MR_CHANNEL(Channel))
Channel = MR_CHANNEL_FIRST; Channel = MR_CHANNEL_FIRST;
}
if (RADIO_CheckValidChannel(Channel, bCheckScanList, VFO)) if (RADIO_CheckValidChannel(Channel, bCheckScanList, VFO)) {
return Channel; return Channel;
}
Channel += Direction;
} }
return 0xFF; return 0xFF;
@@ -163,7 +138,7 @@ void RADIO_ConfigureChannel(const unsigned int VFO, const unsigned int configure
if (IS_VALID_CHANNEL(channel)) { if (IS_VALID_CHANNEL(channel)) {
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
if (channel >= NOAA_CHANNEL_FIRST) if (IS_NOAA_CHANNEL(channel))
{ {
RADIO_InitInfo(pVfo, gEeprom.ScreenChannel[VFO], NoaaFrequencyTable[channel - NOAA_CHANNEL_FIRST]); RADIO_InitInfo(pVfo, gEeprom.ScreenChannel[VFO], NoaaFrequencyTable[channel - NOAA_CHANNEL_FIRST]);
@@ -251,7 +226,7 @@ void RADIO_ConfigureChannel(const unsigned int VFO, const unsigned int configure
pVfo->Modulation = tmp; pVfo->Modulation = tmp;
tmp = data[6]; tmp = data[6];
if (tmp >= ARRAY_SIZE(gStepFrequencyTable)) if (tmp >= STEP_N_ELEM)
tmp = STEP_12_5kHz; tmp = STEP_12_5kHz;
pVfo->STEP_SETTING = tmp; pVfo->STEP_SETTING = tmp;
pVfo->StepFrequency = gStepFrequencyTable[tmp]; pVfo->StepFrequency = gStepFrequencyTable[tmp];
@@ -336,7 +311,8 @@ void RADIO_ConfigureChannel(const unsigned int VFO, const unsigned int configure
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
pVfo->DTMF_DECODING_ENABLE = ((data[5] >> 0) & 1u) ? true : false; pVfo->DTMF_DECODING_ENABLE = ((data[5] >> 0) & 1u) ? true : false;
#endif #endif
pVfo->DTMF_PTT_ID_TX_MODE = ((data[5] >> 1) & 7u); uint8_t pttId = ((data[5] >> 1) & 7u);
pVfo->DTMF_PTT_ID_TX_MODE = pttId < ARRAY_SIZE(gSubMenu_PTT_ID) ? pttId : PTT_ID_OFF;
} }
// *************** // ***************
@@ -351,8 +327,9 @@ void RADIO_ConfigureChannel(const unsigned int VFO, const unsigned int configure
else else
pVfo->freq_config_RX.Frequency = info.Frequency; pVfo->freq_config_RX.Frequency = info.Frequency;
if (info.Offset >= 100000000) if (info.Offset >= _1GHz_in_KHz)
info.Offset = 1000000; info.Offset = _1GHz_in_KHz / 100;
pVfo->TX_OFFSET_FREQUENCY = info.Offset; pVfo->TX_OFFSET_FREQUENCY = info.Offset;
// *************** // ***************
@@ -379,11 +356,9 @@ void RADIO_ConfigureChannel(const unsigned int VFO, const unsigned int configure
RADIO_ApplyOffset(pVfo); RADIO_ApplyOffset(pVfo);
memset(pVfo->Name, 0, sizeof(pVfo->Name));
if (IS_MR_CHANNEL(channel)) if (IS_MR_CHANNEL(channel))
{ // 16 bytes allocated to the channel name but only 10 used, the rest are 0's { // 16 bytes allocated to the channel name but only 10 used, the rest are 0's
EEPROM_ReadBuffer(0x0F50 + (channel * 16), pVfo->Name + 0, 8); SETTINGS_FetchChannelName(pVfo->Name, channel);
EEPROM_ReadBuffer(0x0F58 + (channel * 16), pVfo->Name + 8, 2);
} }
if (!pVfo->FrequencyReverse) if (!pVfo->FrequencyReverse)
@@ -404,14 +379,6 @@ void RADIO_ConfigureChannel(const unsigned int VFO, const unsigned int configure
pConfig->Frequency = 43300000; pConfig->Frequency = 43300000;
} }
if (pVfo->Modulation != MODULATION_FM)
{ // freq/chan is in AM mode
pVfo->SCRAMBLING_TYPE = 0;
// pVfo->DTMF_DECODING_ENABLE = false; // no reason to disable DTMF decoding, aircraft use it on SSB
pVfo->freq_config_RX.CodeType = CODE_TYPE_OFF;
pVfo->freq_config_TX.CodeType = CODE_TYPE_OFF;
}
pVfo->Compander = att.compander; pVfo->Compander = att.compander;
RADIO_ConfigureSquelchAndOutputPower(pVfo); RADIO_ConfigureSquelchAndOutputPower(pVfo);
@@ -419,13 +386,12 @@ void RADIO_ConfigureChannel(const unsigned int VFO, const unsigned int configure
void RADIO_ConfigureSquelchAndOutputPower(VFO_Info_t *pInfo) void RADIO_ConfigureSquelchAndOutputPower(VFO_Info_t *pInfo)
{ {
uint8_t Txp[3];
FREQUENCY_Band_t Band;
// ******************************* // *******************************
// squelch // squelch
Band = FREQUENCY_GetBand(pInfo->pRX->Frequency); FREQUENCY_Band_t Band = FREQUENCY_GetBand(pInfo->pRX->Frequency);
uint16_t Base = (Band < BAND4_174MHz) ? 0x1E60 : 0x1E00; uint16_t Base = (Band < BAND4_174MHz) ? 0x1E60 : 0x1E00;
if (gEeprom.SQUELCH_LEVEL == 0) if (gEeprom.SQUELCH_LEVEL == 0)
@@ -451,41 +417,20 @@ void RADIO_ConfigureSquelchAndOutputPower(VFO_Info_t *pInfo)
EEPROM_ReadBuffer(Base + 0x40, &pInfo->SquelchCloseGlitchThresh, 1); // 90 90 EEPROM_ReadBuffer(Base + 0x40, &pInfo->SquelchCloseGlitchThresh, 1); // 90 90
EEPROM_ReadBuffer(Base + 0x50, &pInfo->SquelchOpenGlitchThresh, 1); // 100 100 EEPROM_ReadBuffer(Base + 0x50, &pInfo->SquelchOpenGlitchThresh, 1); // 100 100
uint16_t rssi_open = pInfo->SquelchOpenRSSIThresh;
uint16_t rssi_close = pInfo->SquelchCloseRSSIThresh;
uint16_t noise_open = pInfo->SquelchOpenNoiseThresh; uint16_t noise_open = pInfo->SquelchOpenNoiseThresh;
uint16_t noise_close = pInfo->SquelchCloseNoiseThresh; uint16_t noise_close = pInfo->SquelchCloseNoiseThresh;
#if ENABLE_SQUELCH_MORE_SENSITIVE
uint16_t rssi_open = pInfo->SquelchOpenRSSIThresh;
uint16_t rssi_close = pInfo->SquelchCloseRSSIThresh;
uint16_t glitch_open = pInfo->SquelchOpenGlitchThresh; uint16_t glitch_open = pInfo->SquelchOpenGlitchThresh;
uint16_t glitch_close = pInfo->SquelchCloseGlitchThresh; uint16_t glitch_close = pInfo->SquelchCloseGlitchThresh;
// make squelch more sensitive
#if ENABLE_SQUELCH_MORE_SENSITIVE
// make squelch a little more sensitive
//
// getting the best setting here is still experimental, bare with me
//
// note that 'noise' and 'glitch' values are inverted compared to 'rssi' values // note that 'noise' and 'glitch' values are inverted compared to 'rssi' values
#if 0
rssi_open = (rssi_open * 8) / 9;
noise_open = (noise_open * 9) / 8;
glitch_open = (glitch_open * 9) / 8;
#else
// even more sensitive .. use when RX bandwidths are fixed (no weak signal auto adjust)
rssi_open = (rssi_open * 1) / 2; rssi_open = (rssi_open * 1) / 2;
noise_open = (noise_open * 2) / 1; noise_open = (noise_open * 2) / 1;
glitch_open = (glitch_open * 2) / 1; glitch_open = (glitch_open * 2) / 1;
#endif
#else
// more sensitive .. use when RX bandwidths are fixed (no weak signal auto adjust)
rssi_open = (rssi_open * 3) / 4;
noise_open = (noise_open * 4) / 3;
glitch_open = (glitch_open * 4) / 3;
#endif
rssi_close = (rssi_open * 9) / 10;
noise_close = (noise_open * 10) / 9;
glitch_close = (glitch_open * 10) / 9;
// ensure the 'close' threshold is lower than the 'open' threshold // ensure the 'close' threshold is lower than the 'open' threshold
if (rssi_close == rssi_open && rssi_close >= 2) if (rssi_close == rssi_open && rssi_close >= 2)
@@ -497,10 +442,12 @@ void RADIO_ConfigureSquelchAndOutputPower(VFO_Info_t *pInfo)
pInfo->SquelchOpenRSSIThresh = (rssi_open > 255) ? 255 : rssi_open; pInfo->SquelchOpenRSSIThresh = (rssi_open > 255) ? 255 : rssi_open;
pInfo->SquelchCloseRSSIThresh = (rssi_close > 255) ? 255 : rssi_close; pInfo->SquelchCloseRSSIThresh = (rssi_close > 255) ? 255 : rssi_close;
pInfo->SquelchOpenNoiseThresh = (noise_open > 127) ? 127 : noise_open;
pInfo->SquelchCloseNoiseThresh = (noise_close > 127) ? 127 : noise_close;
pInfo->SquelchOpenGlitchThresh = (glitch_open > 255) ? 255 : glitch_open; pInfo->SquelchOpenGlitchThresh = (glitch_open > 255) ? 255 : glitch_open;
pInfo->SquelchCloseGlitchThresh = (glitch_close > 255) ? 255 : glitch_close; pInfo->SquelchCloseGlitchThresh = (glitch_close > 255) ? 255 : glitch_close;
#endif
pInfo->SquelchOpenNoiseThresh = (noise_open > 127) ? 127 : noise_open;
pInfo->SquelchCloseNoiseThresh = (noise_close > 127) ? 127 : noise_close;
} }
// ******************************* // *******************************
@@ -508,9 +455,9 @@ void RADIO_ConfigureSquelchAndOutputPower(VFO_Info_t *pInfo)
Band = FREQUENCY_GetBand(pInfo->pTX->Frequency); Band = FREQUENCY_GetBand(pInfo->pTX->Frequency);
uint8_t Txp[3];
EEPROM_ReadBuffer(0x1ED0 + (Band * 16) + (pInfo->OUTPUT_POWER * 3), Txp, 3); EEPROM_ReadBuffer(0x1ED0 + (Band * 16) + (pInfo->OUTPUT_POWER * 3), Txp, 3);
#ifdef ENABLE_REDUCE_LOW_MID_TX_POWER #ifdef ENABLE_REDUCE_LOW_MID_TX_POWER
// make low and mid even lower // make low and mid even lower
if (pInfo->OUTPUT_POWER == OUTPUT_POWER_LOW) { if (pInfo->OUTPUT_POWER == OUTPUT_POWER_LOW) {
@@ -553,12 +500,6 @@ void RADIO_ApplyOffset(VFO_Info_t *pInfo)
break; break;
} }
if (Frequency < frequencyBandTable[0].lower)
Frequency = frequencyBandTable[0].lower;
else
if (Frequency > frequencyBandTable[ARRAY_SIZE(frequencyBandTable) - 1].upper)
Frequency = frequencyBandTable[ARRAY_SIZE(frequencyBandTable) - 1].upper;
pInfo->freq_config_TX.Frequency = Frequency; pInfo->freq_config_TX.Frequency = Frequency;
} }
@@ -585,8 +526,6 @@ void RADIO_SelectVfos(void)
void RADIO_SetupRegisters(bool switchToForeground) void RADIO_SetupRegisters(bool switchToForeground)
{ {
BK4819_FilterBandwidth_t Bandwidth = gRxVfo->CHANNEL_BANDWIDTH; BK4819_FilterBandwidth_t Bandwidth = gRxVfo->CHANNEL_BANDWIDTH;
uint16_t InterruptMask;
uint32_t Frequency;
AUDIO_AudioPathOff(); AUDIO_AudioPathOff();
@@ -630,6 +569,7 @@ void RADIO_SetupRegisters(bool switchToForeground)
// mic gain 0.5dB/step 0 to 31 // mic gain 0.5dB/step 0 to 31
BK4819_WriteRegister(BK4819_REG_7D, 0xE940 | (gEeprom.MIC_SENSITIVITY_TUNING & 0x1f)); BK4819_WriteRegister(BK4819_REG_7D, 0xE940 | (gEeprom.MIC_SENSITIVITY_TUNING & 0x1f));
uint32_t Frequency;
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
if (!IS_NOAA_CHANNEL(gRxVfo->CHANNEL_SAVE) || !gIsNoaaMode) if (!IS_NOAA_CHANNEL(gRxVfo->CHANNEL_SAVE) || !gIsNoaaMode)
Frequency = gRxVfo->pRX->Frequency; Frequency = gRxVfo->pRX->Frequency;
@@ -659,7 +599,7 @@ void RADIO_SetupRegisters(bool switchToForeground)
(gEeprom.DAC_GAIN << 0)); // AF DAC Gain (after Gain-1 and Gain-2) (gEeprom.DAC_GAIN << 0)); // AF DAC Gain (after Gain-1 and Gain-2)
InterruptMask = BK4819_REG_3F_SQUELCH_FOUND | BK4819_REG_3F_SQUELCH_LOST; uint16_t InterruptMask = BK4819_REG_3F_SQUELCH_FOUND | BK4819_REG_3F_SQUELCH_LOST;
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
if (!IS_NOAA_CHANNEL(gRxVfo->CHANNEL_SAVE)) if (!IS_NOAA_CHANNEL(gRxVfo->CHANNEL_SAVE))
@@ -733,53 +673,31 @@ void RADIO_SetupRegisters(bool switchToForeground)
} }
#endif #endif
#ifdef ENABLE_VOX #ifdef ENABLE_VOX
#ifdef ENABLE_NOAA if (gEeprom.VOX_SWITCH && gCurrentVfo->Modulation == MODULATION_FM
#ifdef ENABLE_FMRADIO #ifdef ENABLE_NOAA
if (gEeprom.VOX_SWITCH && !gFmRadioMode && !IS_NOAA_CHANNEL(gCurrentVfo->CHANNEL_SAVE) && gCurrentVfo->Modulation == MODULATION_FM) && !IS_NOAA_CHANNEL(gCurrentVfo->CHANNEL_SAVE)
#else #endif
if (gEeprom.VOX_SWITCH && !IS_NOAA_CHANNEL(gCurrentVfo->CHANNEL_SAVE) && gCurrentVfo->Modulation == MODULATION_FM) #ifdef ENABLE_FMRADIO
#endif && !gFmRadioMode
#else #endif
#ifdef ENABLE_FMRADIO ){
if (gEeprom.VOX_SWITCH && !gFmRadioMode && gCurrentVfo->Modulation == MODULATION_FM)
#else
if (gEeprom.VOX_SWITCH && gCurrentVfo->Modulation == MODULATION_FM)
#endif
#endif
{
BK4819_EnableVox(gEeprom.VOX1_THRESHOLD, gEeprom.VOX0_THRESHOLD); BK4819_EnableVox(gEeprom.VOX1_THRESHOLD, gEeprom.VOX0_THRESHOLD);
InterruptMask |= BK4819_REG_3F_VOX_FOUND | BK4819_REG_3F_VOX_LOST; InterruptMask |= BK4819_REG_3F_VOX_FOUND | BK4819_REG_3F_VOX_LOST;
} }
else else
#endif #endif
{
BK4819_DisableVox(); BK4819_DisableVox();
}
// RX expander // RX expander
BK4819_SetCompander((gRxVfo->Modulation == MODULATION_FM && gRxVfo->Compander >= 2) ? gRxVfo->Compander : 0); BK4819_SetCompander((gRxVfo->Modulation == MODULATION_FM && gRxVfo->Compander >= 2) ? gRxVfo->Compander : 0);
#if 0
if (!gRxVfo->DTMF_DECODING_ENABLE && !gSetting_KILLED)
{
BK4819_DisableDTMF();
}
else
{
BK4819_EnableDTMF(); BK4819_EnableDTMF();
InterruptMask |= BK4819_REG_3F_DTMF_5TONE_FOUND; InterruptMask |= BK4819_REG_3F_DTMF_5TONE_FOUND;
}
#else RADIO_SetupAGC(gRxVfo->Modulation == MODULATION_AM, false);
if (gCurrentFunction != FUNCTION_TRANSMIT)
{
BK4819_DisableDTMF();
BK4819_EnableDTMF();
InterruptMask |= BK4819_REG_3F_DTMF_5TONE_FOUND;
}
else
{
BK4819_DisableDTMF();
}
#endif
// enable/disable BK4819 selected interrupts // enable/disable BK4819 selected interrupts
BK4819_WriteRegister(BK4819_REG_3F, InterruptMask); BK4819_WriteRegister(BK4819_REG_3F, InterruptMask);
@@ -820,7 +738,7 @@ void RADIO_SetupRegisters(bool switchToForeground)
return; return;
} }
if (gRxVfo->CHANNEL_SAVE >= NOAA_CHANNEL_FIRST) if (IS_NOAA_CHANNEL(gRxVfo->CHANNEL_SAVE))
{ {
gIsNoaaMode = true; gIsNoaaMode = true;
gNoaaChannel = gRxVfo->CHANNEL_SAVE - NOAA_CHANNEL_FIRST; gNoaaChannel = gRxVfo->CHANNEL_SAVE - NOAA_CHANNEL_FIRST;
@@ -924,38 +842,61 @@ void RADIO_SetModulation(ModulationMode_t modulation)
} }
BK4819_SetAF(mod); BK4819_SetAF(mod);
BK4819_SetRegValue(afDacGainRegSpec, 0xF); BK4819_SetRegValue(afDacGainRegSpec, 0xF);
BK4819_WriteRegister(BK4819_REG_3D, modulation == MODULATION_USB ? 0 : 0x2AAB); BK4819_WriteRegister(BK4819_REG_3D, modulation == MODULATION_USB ? 0 : 0x2AAB);
BK4819_SetRegValue(afcDisableRegSpec, modulation != MODULATION_FM); BK4819_SetRegValue(afcDisableRegSpec, modulation != MODULATION_FM);
RADIO_SetupAGC(modulation == MODULATION_AM, false);
}
void RADIO_SetupAGC(bool listeningAM, bool disable)
{
static uint8_t lastSettings;
uint8_t newSettings = (listeningAM << 1) | (disable << 1);
if(lastSettings == newSettings)
return;
lastSettings = newSettings;
if(!listeningAM) { // if not actively listening AM we don't need any AM specific regulation
BK4819_SetAGC(!disable);
BK4819_InitAGC(false);
}
else {
#ifdef ENABLE_AM_FIX
if(gSetting_AM_fix) { // if AM fix active lock AGC so AM-fix can do it's job
BK4819_SetAGC(0);
AM_fix_enable(!disable);
}
else
#endif
{
BK4819_SetAGC(!disable);
BK4819_InitAGC(true);
}
}
} }
void RADIO_SetVfoState(VfoState_t State) void RADIO_SetVfoState(VfoState_t State)
{ {
if (State == VFO_STATE_NORMAL) if (State == VFO_STATE_NORMAL) {
{
VfoState[0] = VFO_STATE_NORMAL; VfoState[0] = VFO_STATE_NORMAL;
VfoState[1] = VFO_STATE_NORMAL; VfoState[1] = VFO_STATE_NORMAL;
gVFOStateResumeCountdown_500ms = 0; } else if (State == VFO_STATE_VOLTAGE_HIGH) {
}
else
{
if (State == VFO_STATE_VOLTAGE_HIGH)
{
VfoState[0] = VFO_STATE_VOLTAGE_HIGH; VfoState[0] = VFO_STATE_VOLTAGE_HIGH;
VfoState[1] = VFO_STATE_TX_DISABLE; VfoState[1] = VFO_STATE_TX_DISABLE;
} } else {
else // 1of11
{ // 1of11
const unsigned int vfo = (gEeprom.CROSS_BAND_RX_TX == CROSS_BAND_OFF) ? gEeprom.RX_VFO : gEeprom.TX_VFO; const unsigned int vfo = (gEeprom.CROSS_BAND_RX_TX == CROSS_BAND_OFF) ? gEeprom.RX_VFO : gEeprom.TX_VFO;
VfoState[vfo] = State; VfoState[vfo] = State;
} }
gVFOStateResumeCountdown_500ms = vfo_state_resume_countdown_500ms; gVFOStateResumeCountdown_500ms = (State == VFO_STATE_NORMAL) ? 0 : vfo_state_resume_countdown_500ms;
}
gUpdateDisplay = true; gUpdateDisplay = true;
} }
void RADIO_PrepareTX(void) void RADIO_PrepareTX(void)
{ {
VfoState_t State = VFO_STATE_NORMAL; // default to OK to TX VfoState_t State = VFO_STATE_NORMAL; // default to OK to TX
@@ -980,52 +921,40 @@ void RADIO_PrepareTX(void)
RADIO_SelectCurrentVfo(); RADIO_SelectCurrentVfo();
#if defined(ENABLE_ALARM) && defined(ENABLE_TX1750) if(TX_freq_check(gCurrentVfo->pTX->Frequency) != 0
if (gAlarmState == ALARM_STATE_OFF || #if defined(ENABLE_ALARM) || defined(ENABLE_TX1750)
gAlarmState == ALARM_STATE_TX1750 || && gAlarmState != ALARM_STATE_SITE_ALARM
(gAlarmState == ALARM_STATE_ALARM && gEeprom.ALARM_MODE == ALARM_MODE_TONE)) #endif
#elif defined(ENABLE_ALARM) ){
if (gAlarmState == ALARM_STATE_OFF || // TX frequency not allowed
(gAlarmState == ALARM_STATE_ALARM && gEeprom.ALARM_MODE == ALARM_MODE_TONE)) State = VFO_STATE_TX_DISABLE;
#elif defined(ENABLE_TX1750) } else if (SerialConfigInProgress()) {
if (gAlarmState == ALARM_STATE_OFF || // TX is disabled or config upload/download in progress
gAlarmState == ALARM_STATE_TX1750) State = VFO_STATE_TX_DISABLE;
#endif } else if (gCurrentVfo->BUSY_CHANNEL_LOCK && gCurrentFunction == FUNCTION_RECEIVE) {
{ // busy RX'ing a station
#ifndef ENABLE_TX_WHEN_AM State = VFO_STATE_BUSY;
if (gCurrentVfo->Modulation != MODULATION_FM) } else if (gBatteryDisplayLevel == 0) {
{ // not allowed to TX if in AM mode // charge your battery !git co
State = VFO_STATE_BAT_LOW;
} else if (gBatteryDisplayLevel > 6) {
// over voltage .. this is being a pain
State = VFO_STATE_VOLTAGE_HIGH;
}
#ifndef ENABLE_TX_WHEN_AM
else if (gCurrentVfo->Modulation != MODULATION_FM) {
// not allowed to TX if in AM mode
State = VFO_STATE_TX_DISABLE; State = VFO_STATE_TX_DISABLE;
} }
else #endif
#endif
if (gSerialConfigCountDown_500ms > 0)
{ // TX is disabled or config upload/download in progress
State = VFO_STATE_TX_DISABLE;
}
else
if (TX_freq_check(gCurrentVfo->pTX->Frequency) == 0)
{ // TX frequency is allowed
if (gCurrentVfo->BUSY_CHANNEL_LOCK && gCurrentFunction == FUNCTION_RECEIVE)
State = VFO_STATE_BUSY; // busy RX'ing a station
else
if (gBatteryDisplayLevel == 0)
State = VFO_STATE_BAT_LOW; // charge your battery !
else
if (gBatteryDisplayLevel > 6)
State = VFO_STATE_VOLTAGE_HIGH; // over voltage .. this is being a pain
}
else
State = VFO_STATE_TX_DISABLE; // TX frequency not allowed
}
if (State != VFO_STATE_NORMAL) if (State != VFO_STATE_NORMAL) {
{ // TX not allowed // TX not allowed
RADIO_SetVfoState(State); RADIO_SetVfoState(State);
#if defined(ENABLE_ALARM) || defined(ENABLE_TX1750) #if defined(ENABLE_ALARM) || defined(ENABLE_TX1750)
gAlarmState = ALARM_STATE_OFF; gAlarmState = ALARM_STATE_OFF;
#endif #endif
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
gDTMF_ReplyState = DTMF_REPLY_NONE; gDTMF_ReplyState = DTMF_REPLY_NONE;
@@ -1039,16 +968,13 @@ void RADIO_PrepareTX(void)
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
if (gDTMF_ReplyState == DTMF_REPLY_ANI) if (gDTMF_ReplyState == DTMF_REPLY_ANI)
{ {
if (gDTMF_CallMode == DTMF_CALL_MODE_DTMF) gDTMF_IsTx = gDTMF_CallMode == DTMF_CALL_MODE_DTMF;
{
gDTMF_IsTx = true; if (gDTMF_IsTx) {
gDTMF_CallState = DTMF_CALL_STATE_NONE; gDTMF_CallState = DTMF_CALL_STATE_NONE;
gDTMF_TxStopCountdown_500ms = DTMF_txstop_countdown_500ms; gDTMF_TxStopCountdown_500ms = DTMF_txstop_countdown_500ms;
} } else {
else
{
gDTMF_CallState = DTMF_CALL_STATE_CALL_OUT; gDTMF_CallState = DTMF_CALL_STATE_CALL_OUT;
gDTMF_IsTx = false;
} }
} }
#endif #endif
@@ -1057,91 +983,60 @@ void RADIO_PrepareTX(void)
gTxTimerCountdown_500ms = 0; // no timeout gTxTimerCountdown_500ms = 0; // no timeout
#if defined(ENABLE_ALARM) || defined(ENABLE_TX1750) #if defined(ENABLE_ALARM) || defined(ENABLE_TX1750)
if (gAlarmState == ALARM_STATE_OFF) if (gAlarmState == ALARM_STATE_OFF)
#endif #endif
{ {
if (gEeprom.TX_TIMEOUT_TIMER == 0) if (gEeprom.TX_TIMEOUT_TIMER == 0)
gTxTimerCountdown_500ms = 60; // 30 sec gTxTimerCountdown_500ms = 60; // 30 sec
else else if (gEeprom.TX_TIMEOUT_TIMER < (ARRAY_SIZE(gSubMenu_TOT) - 1))
if (gEeprom.TX_TIMEOUT_TIMER < (ARRAY_SIZE(gSubMenu_TOT) - 1))
gTxTimerCountdown_500ms = 120 * gEeprom.TX_TIMEOUT_TIMER; // minutes gTxTimerCountdown_500ms = 120 * gEeprom.TX_TIMEOUT_TIMER; // minutes
else else
gTxTimerCountdown_500ms = 120 * 15; // 15 minutes gTxTimerCountdown_500ms = 120 * 15; // 15 minutes
} }
gTxTimeoutReached = false;
gTxTimeoutReached = false;
gFlagEndTransmission = false; gFlagEndTransmission = false;
gRTTECountdown = 0; gRTTECountdown_10ms = 0;
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
gDTMF_ReplyState = DTMF_REPLY_NONE; gDTMF_ReplyState = DTMF_REPLY_NONE;
#endif #endif
} }
void RADIO_EnableCxCSS(void) void RADIO_SendCssTail(void)
{ {
switch (gCurrentVfo->pTX->CodeType) { switch (gCurrentVfo->pTX->CodeType) {
case CODE_TYPE_DIGITAL: case CODE_TYPE_DIGITAL:
case CODE_TYPE_REVERSE_DIGITAL: case CODE_TYPE_REVERSE_DIGITAL:
BK4819_EnableCDCSS(); BK4819_PlayCDCSSTail();
break; break;
default: default:
BK4819_EnableCTCSS(); BK4819_PlayCTCSSTail();
break; break;
} }
SYSTEM_DelayMs(200); SYSTEM_DelayMs(200);
} }
void RADIO_SendEndOfTransmission(void)
{
BK4819_PlayRoger();
DTMF_SendEndOfTransmission();
// send the CTCSS/DCS tail tone - allows the receivers to mute the usual FM squelch tail/crash
if(gEeprom.TAIL_TONE_ELIMINATION)
RADIO_SendCssTail();
RADIO_SetupRegisters(false);
}
void RADIO_PrepareCssTX(void) void RADIO_PrepareCssTX(void)
{ {
RADIO_PrepareTX(); RADIO_PrepareTX();
SYSTEM_DelayMs(200); SYSTEM_DelayMs(200);
RADIO_EnableCxCSS(); if(gEeprom.TAIL_TONE_ELIMINATION)
RADIO_SendCssTail();
RADIO_SetupRegisters(true); RADIO_SetupRegisters(true);
} }
void RADIO_SendEndOfTransmission(void)
{
if (gEeprom.ROGER == ROGER_MODE_ROGER)
BK4819_PlayRoger();
else
if (gEeprom.ROGER == ROGER_MODE_MDC)
BK4819_PlayRogerMDC();
if (gCurrentVfo->DTMF_PTT_ID_TX_MODE == PTT_ID_APOLLO)
BK4819_PlaySingleTone(2475, 250, 28, gEeprom.DTMF_SIDE_TONE);
if (
#ifdef ENABLE_DTMF_CALLING
gDTMF_CallState == DTMF_CALL_STATE_NONE &&
#endif
(gCurrentVfo->DTMF_PTT_ID_TX_MODE == PTT_ID_TX_DOWN ||
gCurrentVfo->DTMF_PTT_ID_TX_MODE == PTT_ID_BOTH))
{ // end-of-tx
if (gEeprom.DTMF_SIDE_TONE)
{
AUDIO_AudioPathOn();
gEnableSpeaker = true;
SYSTEM_DelayMs(60);
}
BK4819_EnterDTMF_TX(gEeprom.DTMF_SIDE_TONE);
BK4819_PlayDTMFString(
gEeprom.DTMF_DOWN_CODE,
0,
gEeprom.DTMF_FIRST_CODE_PERSIST_TIME,
gEeprom.DTMF_HASH_CODE_PERSIST_TIME,
gEeprom.DTMF_CODE_PERSIST_TIME,
gEeprom.DTMF_CODE_INTERVAL_TIME);
AUDIO_AudioPathOff();
gEnableSpeaker = false;
}
BK4819_ExitDTMF_TX(true);
}

11
radio.h
View File

@@ -50,7 +50,8 @@ enum VfoState_t
VFO_STATE_TX_DISABLE, VFO_STATE_TX_DISABLE,
VFO_STATE_TIMEOUT, VFO_STATE_TIMEOUT,
VFO_STATE_ALARM, VFO_STATE_ALARM,
VFO_STATE_VOLTAGE_HIGH VFO_STATE_VOLTAGE_HIGH,
_VFO_STATE_LAST_ELEMENT
}; };
typedef enum VfoState_t VfoState_t; typedef enum VfoState_t VfoState_t;
@@ -147,24 +148,24 @@ extern DCS_CodeType_t gCurrentCodeType;
extern VfoState_t VfoState[2]; extern VfoState_t VfoState[2];
bool RADIO_CheckValidChannel(uint16_t ChNum, bool bCheckScanList, uint8_t RadioNum); bool RADIO_CheckValidChannel(uint16_t channel, bool checkScanList, uint8_t scanList);
uint8_t RADIO_FindNextChannel(uint8_t ChNum, int8_t Direction, bool bCheckScanList, uint8_t RadioNum); uint8_t RADIO_FindNextChannel(uint8_t ChNum, int8_t Direction, bool bCheckScanList, uint8_t RadioNum);
void RADIO_InitInfo(VFO_Info_t *pInfo, const uint8_t ChannelSave, const uint32_t Frequency); void RADIO_InitInfo(VFO_Info_t *pInfo, const uint8_t ChannelSave, const uint32_t Frequency);
void RADIO_ConfigureChannel(const unsigned int VFO, const unsigned int configure); void RADIO_ConfigureChannel(const unsigned int VFO, const unsigned int configure);
void RADIO_ConfigureSquelchAndOutputPower(VFO_Info_t *pInfo); void RADIO_ConfigureSquelchAndOutputPower(VFO_Info_t *pInfo);
void RADIO_ApplyOffset(VFO_Info_t *pInfo); void RADIO_ApplyOffset(VFO_Info_t *pInfo);
void RADIO_SelectVfos(void); void RADIO_SelectVfos(void);
void RADIO_SetupRegisters(bool bSwitchToFunction0); void RADIO_SetupRegisters(bool switchToForeground);
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
void RADIO_ConfigureNOAA(void); void RADIO_ConfigureNOAA(void);
#endif #endif
void RADIO_SetTxParameters(void); void RADIO_SetTxParameters(void);
void RADIO_SetupAGC(bool listeningAM, bool disable);
void RADIO_SetModulation(ModulationMode_t modulation); void RADIO_SetModulation(ModulationMode_t modulation);
void RADIO_SetVfoState(VfoState_t State); void RADIO_SetVfoState(VfoState_t State);
void RADIO_PrepareTX(void); void RADIO_PrepareTX(void);
void RADIO_EnableCxCSS(void); void RADIO_SendCssTail(void);
void RADIO_PrepareCssTX(void); void RADIO_PrepareCssTX(void);
void RADIO_SendEndOfTransmission(void); void RADIO_SendEndOfTransmission(void);
#endif #endif

View File

@@ -53,8 +53,7 @@ void SystickHandler(void)
gNextTimeslice = true; gNextTimeslice = true;
if ((gGlobalSysTickCounter % 50) == 0) if ((gGlobalSysTickCounter % 50) == 0) {
{
gNextTimeslice_500ms = true; gNextTimeslice_500ms = true;
DECREMENT_AND_TRIGGER(gTxTimerCountdown_500ms, gTxTimeoutReached); DECREMENT_AND_TRIGGER(gTxTimerCountdown_500ms, gTxTimeoutReached);
@@ -64,9 +63,9 @@ void SystickHandler(void)
if ((gGlobalSysTickCounter & 3) == 0) if ((gGlobalSysTickCounter & 3) == 0)
gNextTimeslice40ms = true; gNextTimeslice40ms = true;
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
DECREMENT(gNOAACountdown_10ms); DECREMENT(gNOAACountdown_10ms);
#endif #endif
DECREMENT(gFoundCDCSSCountdown_10ms); DECREMENT(gFoundCDCSSCountdown_10ms);
@@ -82,32 +81,32 @@ void SystickHandler(void)
if (gCurrentFunction != FUNCTION_MONITOR && gCurrentFunction != FUNCTION_TRANSMIT && gCurrentFunction != FUNCTION_RECEIVE) if (gCurrentFunction != FUNCTION_MONITOR && gCurrentFunction != FUNCTION_TRANSMIT && gCurrentFunction != FUNCTION_RECEIVE)
DECREMENT_AND_TRIGGER(gDualWatchCountdown_10ms, gScheduleDualWatch); DECREMENT_AND_TRIGGER(gDualWatchCountdown_10ms, gScheduleDualWatch);
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
if (gScanStateDir == SCAN_OFF && !gCssBackgroundScan && gEeprom.DUAL_WATCH == DUAL_WATCH_OFF) if (gScanStateDir == SCAN_OFF && !gCssBackgroundScan && gEeprom.DUAL_WATCH == DUAL_WATCH_OFF)
if (gIsNoaaMode && gCurrentFunction != FUNCTION_MONITOR && gCurrentFunction != FUNCTION_TRANSMIT) if (gIsNoaaMode && gCurrentFunction != FUNCTION_MONITOR && gCurrentFunction != FUNCTION_TRANSMIT)
if (gCurrentFunction != FUNCTION_RECEIVE) if (gCurrentFunction != FUNCTION_RECEIVE)
DECREMENT_AND_TRIGGER(gNOAA_Countdown_10ms, gScheduleNOAA); DECREMENT_AND_TRIGGER(gNOAA_Countdown_10ms, gScheduleNOAA);
#endif #endif
if (gScanStateDir != SCAN_OFF) if (gScanStateDir != SCAN_OFF)
if (gCurrentFunction != FUNCTION_MONITOR && gCurrentFunction != FUNCTION_TRANSMIT) if (gCurrentFunction != FUNCTION_MONITOR && gCurrentFunction != FUNCTION_TRANSMIT)
DECREMENT_AND_TRIGGER(gScanPauseDelayIn_10ms, gScheduleScanListen); DECREMENT_AND_TRIGGER(gScanPauseDelayIn_10ms, gScheduleScanListen);
DECREMENT_AND_TRIGGER(gTailNoteEliminationCountdown_10ms, gFlagTailNoteEliminationComplete); DECREMENT_AND_TRIGGER(gTailToneEliminationCountdown_10ms, gFlagTailToneEliminationComplete);
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
DECREMENT_AND_TRIGGER(gCountdownToPlayNextVoice_10ms, gFlagPlayQueuedVoice); DECREMENT_AND_TRIGGER(gCountdownToPlayNextVoice_10ms, gFlagPlayQueuedVoice);
#endif #endif
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
if (gFM_ScanState != FM_SCAN_OFF && gCurrentFunction != FUNCTION_MONITOR) if (gFM_ScanState != FM_SCAN_OFF && gCurrentFunction != FUNCTION_MONITOR)
if (gCurrentFunction != FUNCTION_TRANSMIT && gCurrentFunction != FUNCTION_RECEIVE) if (gCurrentFunction != FUNCTION_TRANSMIT && gCurrentFunction != FUNCTION_RECEIVE)
DECREMENT_AND_TRIGGER(gFmPlayCountdown_10ms, gScheduleFM); DECREMENT_AND_TRIGGER(gFmPlayCountdown_10ms, gScheduleFM);
#endif #endif
#ifdef ENABLE_VOX #ifdef ENABLE_VOX
DECREMENT(gVoxStopCountdown_10ms); DECREMENT(gVoxStopCountdown_10ms);
#endif #endif
DECREMENT(boot_counter_10ms); DECREMENT(boot_counter_10ms);
} }

View File

@@ -16,36 +16,431 @@
#include <string.h> #include <string.h>
#include "app/dtmf.h"
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
#include "app/fm.h" #include "app/fm.h"
#endif #endif
#include "driver/bk1080.h"
#include "driver/bk4819.h"
#include "driver/eeprom.h" #include "driver/eeprom.h"
#include "driver/uart.h"
#include "misc.h" #include "misc.h"
#include "settings.h" #include "settings.h"
#include "ui/menu.h"
EEPROM_Config_t gEeprom; static const uint32_t gDefaultFrequencyTable[] =
{
14500000, //
14550000, //
43300000, //
43320000, //
43350000 //
};
EEPROM_Config_t gEeprom = { 0 };
void SETTINGS_InitEEPROM(void)
{
uint8_t Data[16] = {0};
// 0E70..0E77
EEPROM_ReadBuffer(0x0E70, Data, 8);
gEeprom.CHAN_1_CALL = IS_MR_CHANNEL(Data[0]) ? Data[0] : MR_CHANNEL_FIRST;
gEeprom.SQUELCH_LEVEL = (Data[1] < 10) ? Data[1] : 1;
gEeprom.TX_TIMEOUT_TIMER = (Data[2] < 11) ? Data[2] : 1;
#ifdef ENABLE_NOAA
gEeprom.NOAA_AUTO_SCAN = (Data[3] < 2) ? Data[3] : false;
#endif
gEeprom.KEY_LOCK = (Data[4] < 2) ? Data[4] : false;
#ifdef ENABLE_VOX
gEeprom.VOX_SWITCH = (Data[5] < 2) ? Data[5] : false;
gEeprom.VOX_LEVEL = (Data[6] < 10) ? Data[6] : 1;
#endif
gEeprom.MIC_SENSITIVITY = (Data[7] < 5) ? Data[7] : 4;
// 0E78..0E7F
EEPROM_ReadBuffer(0x0E78, Data, 8);
gEeprom.BACKLIGHT_MAX = (Data[0] & 0xF) <= 10 ? (Data[0] & 0xF) : 10;
gEeprom.BACKLIGHT_MIN = (Data[0] >> 4) < gEeprom.BACKLIGHT_MAX ? (Data[0] >> 4) : 0;
#ifdef ENABLE_BLMIN_TMP_OFF
gEeprom.BACKLIGHT_MIN_STAT = BLMIN_STAT_ON;
#endif
gEeprom.CHANNEL_DISPLAY_MODE = (Data[1] < 4) ? Data[1] : MDF_FREQUENCY; // 4 instead of 3 - extra display mode
gEeprom.CROSS_BAND_RX_TX = (Data[2] < 3) ? Data[2] : CROSS_BAND_OFF;
gEeprom.BATTERY_SAVE = (Data[3] < 5) ? Data[3] : 4;
gEeprom.DUAL_WATCH = (Data[4] < 3) ? Data[4] : DUAL_WATCH_CHAN_A;
gEeprom.BACKLIGHT_TIME = (Data[5] < ARRAY_SIZE(gSubMenu_BACKLIGHT)) ? Data[5] : 3;
gEeprom.TAIL_TONE_ELIMINATION = (Data[6] < 2) ? Data[6] : false;
gEeprom.VFO_OPEN = (Data[7] < 2) ? Data[7] : true;
// 0E80..0E87
EEPROM_ReadBuffer(0x0E80, Data, 8);
gEeprom.ScreenChannel[0] = IS_VALID_CHANNEL(Data[0]) ? Data[0] : (FREQ_CHANNEL_FIRST + BAND6_400MHz);
gEeprom.ScreenChannel[1] = IS_VALID_CHANNEL(Data[3]) ? Data[3] : (FREQ_CHANNEL_FIRST + BAND6_400MHz);
gEeprom.MrChannel[0] = IS_MR_CHANNEL(Data[1]) ? Data[1] : MR_CHANNEL_FIRST;
gEeprom.MrChannel[1] = IS_MR_CHANNEL(Data[4]) ? Data[4] : MR_CHANNEL_FIRST;
gEeprom.FreqChannel[0] = IS_FREQ_CHANNEL(Data[2]) ? Data[2] : (FREQ_CHANNEL_FIRST + BAND6_400MHz);
gEeprom.FreqChannel[1] = IS_FREQ_CHANNEL(Data[5]) ? Data[5] : (FREQ_CHANNEL_FIRST + BAND6_400MHz);
#ifdef ENABLE_NOAA
gEeprom.NoaaChannel[0] = IS_NOAA_CHANNEL(Data[6]) ? Data[6] : NOAA_CHANNEL_FIRST;
gEeprom.NoaaChannel[1] = IS_NOAA_CHANNEL(Data[7]) ? Data[7] : NOAA_CHANNEL_FIRST;
#endif
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
void SETTINGS_SaveFM(void) { // 0E88..0E8F
{
unsigned int i;
struct struct
{ {
uint16_t Frequency; uint16_t selFreq;
uint8_t Channel; uint8_t selChn;
bool IsChannelSelected; uint8_t isMrMode:1;
uint8_t Padding[4]; uint8_t band:2;
} State; //uint8_t space:2;
} __attribute__((packed)) fmCfg;
EEPROM_ReadBuffer(0x0E88, &fmCfg, 4);
memset(&State, 0xFF, sizeof(State)); gEeprom.FM_Band = fmCfg.band;
State.Channel = gEeprom.FM_SelectedChannel; //gEeprom.FM_Space = fmCfg.space;
State.Frequency = gEeprom.FM_SelectedFrequency; gEeprom.FM_SelectedFrequency =
State.IsChannelSelected = gEeprom.FM_IsMrMode; (fmCfg.selFreq >= BK1080_GetFreqLoLimit(gEeprom.FM_Band) && fmCfg.selFreq <= BK1080_GetFreqHiLimit(gEeprom.FM_Band)) ?
fmCfg.selFreq : BK1080_GetFreqLoLimit(gEeprom.FM_Band);
EEPROM_WriteBuffer(0x0E88, &State); gEeprom.FM_SelectedChannel = fmCfg.selChn;
for (i = 0; i < 5; i++) gEeprom.FM_IsMrMode = fmCfg.isMrMode;
}
// 0E40..0E67
EEPROM_ReadBuffer(0x0E40, gFM_Channels, sizeof(gFM_Channels));
FM_ConfigureChannelState();
#endif
// 0E90..0E97
EEPROM_ReadBuffer(0x0E90, Data, 8);
gEeprom.BEEP_CONTROL = Data[0] & 1;
gEeprom.KEY_M_LONG_PRESS_ACTION = ((Data[0] >> 1) < ACTION_OPT_LEN) ? (Data[0] >> 1) : ACTION_OPT_NONE;
gEeprom.KEY_1_SHORT_PRESS_ACTION = (Data[1] < ACTION_OPT_LEN) ? Data[1] : ACTION_OPT_MONITOR;
gEeprom.KEY_1_LONG_PRESS_ACTION = (Data[2] < ACTION_OPT_LEN) ? Data[2] : ACTION_OPT_NONE;
gEeprom.KEY_2_SHORT_PRESS_ACTION = (Data[3] < ACTION_OPT_LEN) ? Data[3] : ACTION_OPT_SCAN;
gEeprom.KEY_2_LONG_PRESS_ACTION = (Data[4] < ACTION_OPT_LEN) ? Data[4] : ACTION_OPT_NONE;
gEeprom.SCAN_RESUME_MODE = (Data[5] < 3) ? Data[5] : SCAN_RESUME_CO;
gEeprom.AUTO_KEYPAD_LOCK = (Data[6] < 2) ? Data[6] : false;
gEeprom.POWER_ON_DISPLAY_MODE = (Data[7] < 4) ? Data[7] : POWER_ON_DISPLAY_MODE_VOLTAGE;
// 0E98..0E9F
EEPROM_ReadBuffer(0x0E98, Data, 8);
memcpy(&gEeprom.POWER_ON_PASSWORD, Data, 4);
// 0EA0..0EA7
EEPROM_ReadBuffer(0x0EA0, Data, 8);
#ifdef ENABLE_VOICE
gEeprom.VOICE_PROMPT = (Data[0] < 3) ? Data[0] : VOICE_PROMPT_ENGLISH;
#endif
#ifdef ENABLE_RSSI_BAR
if((Data[1] < 200 && Data[1] > 90) && (Data[2] < Data[1]-9 && Data[1] < 160 && Data[2] > 50)) {
gEeprom.S0_LEVEL = Data[1];
gEeprom.S9_LEVEL = Data[2];
}
else {
gEeprom.S0_LEVEL = 130;
gEeprom.S9_LEVEL = 76;
}
#endif
// 0EA8..0EAF
EEPROM_ReadBuffer(0x0EA8, Data, 8);
#ifdef ENABLE_ALARM
gEeprom.ALARM_MODE = (Data[0] < 2) ? Data[0] : true;
#endif
gEeprom.ROGER = (Data[1] < 3) ? Data[1] : ROGER_MODE_OFF;
gEeprom.REPEATER_TAIL_TONE_ELIMINATION = (Data[2] < 11) ? Data[2] : 0;
gEeprom.TX_VFO = (Data[3] < 2) ? Data[3] : 0;
gEeprom.BATTERY_TYPE = (Data[4] < BATTERY_TYPE_UNKNOWN) ? Data[4] : BATTERY_TYPE_1600_MAH;
// 0ED0..0ED7
EEPROM_ReadBuffer(0x0ED0, Data, 8);
gEeprom.DTMF_SIDE_TONE = (Data[0] < 2) ? Data[0] : true;
#ifdef ENABLE_DTMF_CALLING
gEeprom.DTMF_SEPARATE_CODE = DTMF_ValidateCodes((char *)(Data + 1), 1) ? Data[1] : '*';
gEeprom.DTMF_GROUP_CALL_CODE = DTMF_ValidateCodes((char *)(Data + 2), 1) ? Data[2] : '#';
gEeprom.DTMF_DECODE_RESPONSE = (Data[3] < 4) ? Data[3] : 0;
gEeprom.DTMF_auto_reset_time = (Data[4] < 61 && Data[4] >= 5) ? Data[4] : 10;
#endif
gEeprom.DTMF_PRELOAD_TIME = (Data[5] < 101) ? Data[5] * 10 : 300;
gEeprom.DTMF_FIRST_CODE_PERSIST_TIME = (Data[6] < 101) ? Data[6] * 10 : 100;
gEeprom.DTMF_HASH_CODE_PERSIST_TIME = (Data[7] < 101) ? Data[7] * 10 : 100;
// 0ED8..0EDF
EEPROM_ReadBuffer(0x0ED8, Data, 8);
gEeprom.DTMF_CODE_PERSIST_TIME = (Data[0] < 101) ? Data[0] * 10 : 100;
gEeprom.DTMF_CODE_INTERVAL_TIME = (Data[1] < 101) ? Data[1] * 10 : 100;
#ifdef ENABLE_DTMF_CALLING
gEeprom.PERMIT_REMOTE_KILL = (Data[2] < 2) ? Data[2] : true;
// 0EE0..0EE7
EEPROM_ReadBuffer(0x0EE0, Data, sizeof(gEeprom.ANI_DTMF_ID));
if (DTMF_ValidateCodes((char *)Data, sizeof(gEeprom.ANI_DTMF_ID))) {
memcpy(gEeprom.ANI_DTMF_ID, Data, sizeof(gEeprom.ANI_DTMF_ID));
} else {
strcpy(gEeprom.ANI_DTMF_ID, "123");
}
// 0EE8..0EEF
EEPROM_ReadBuffer(0x0EE8, Data, sizeof(gEeprom.KILL_CODE));
if (DTMF_ValidateCodes((char *)Data, sizeof(gEeprom.KILL_CODE))) {
memcpy(gEeprom.KILL_CODE, Data, sizeof(gEeprom.KILL_CODE));
} else {
strcpy(gEeprom.KILL_CODE, "ABCD9");
}
// 0EF0..0EF7
EEPROM_ReadBuffer(0x0EF0, Data, sizeof(gEeprom.REVIVE_CODE));
if (DTMF_ValidateCodes((char *)Data, sizeof(gEeprom.REVIVE_CODE))) {
memcpy(gEeprom.REVIVE_CODE, Data, sizeof(gEeprom.REVIVE_CODE));
} else {
strcpy(gEeprom.REVIVE_CODE, "9DCBA");
}
#endif
// 0EF8..0F07
EEPROM_ReadBuffer(0x0EF8, Data, sizeof(gEeprom.DTMF_UP_CODE));
if (DTMF_ValidateCodes((char *)Data, sizeof(gEeprom.DTMF_UP_CODE))) {
memcpy(gEeprom.DTMF_UP_CODE, Data, sizeof(gEeprom.DTMF_UP_CODE));
} else {
strcpy(gEeprom.DTMF_UP_CODE, "12345");
}
// 0F08..0F17
EEPROM_ReadBuffer(0x0F08, Data, sizeof(gEeprom.DTMF_DOWN_CODE));
if (DTMF_ValidateCodes((char *)Data, sizeof(gEeprom.DTMF_DOWN_CODE))) {
memcpy(gEeprom.DTMF_DOWN_CODE, Data, sizeof(gEeprom.DTMF_DOWN_CODE));
} else {
strcpy(gEeprom.DTMF_DOWN_CODE, "54321");
}
// 0F18..0F1F
EEPROM_ReadBuffer(0x0F18, Data, 8);
gEeprom.SCAN_LIST_DEFAULT = (Data[0] < 3) ? Data[0] : 0; // we now have 'all' channel scan option
for (unsigned int i = 0; i < 2; i++)
{
const unsigned int j = 1 + (i * 3);
gEeprom.SCAN_LIST_ENABLED[i] = (Data[j + 0] < 2) ? Data[j] : false;
gEeprom.SCANLIST_PRIORITY_CH1[i] = Data[j + 1];
gEeprom.SCANLIST_PRIORITY_CH2[i] = Data[j + 2];
}
// 0F40..0F47
EEPROM_ReadBuffer(0x0F40, Data, 8);
gSetting_F_LOCK = (Data[0] < F_LOCK_LEN) ? Data[0] : F_LOCK_DEF;
gSetting_350TX = (Data[1] < 2) ? Data[1] : false; // was true
#ifdef ENABLE_DTMF_CALLING
gSetting_KILLED = (Data[2] < 2) ? Data[2] : false;
#endif
gSetting_200TX = (Data[3] < 2) ? Data[3] : false;
gSetting_500TX = (Data[4] < 2) ? Data[4] : false;
gSetting_350EN = (Data[5] < 2) ? Data[5] : true;
gSetting_ScrambleEnable = (Data[6] < 2) ? Data[6] : true;
//gSetting_TX_EN = (Data[7] & (1u << 0)) ? true : false;
gSetting_live_DTMF_decoder = !!(Data[7] & (1u << 1));
gSetting_battery_text = (((Data[7] >> 2) & 3u) <= 2) ? (Data[7] >> 2) & 3 : 2;
#ifdef ENABLE_AUDIO_BAR
gSetting_mic_bar = !!(Data[7] & (1u << 4));
#endif
#ifdef ENABLE_AM_FIX
gSetting_AM_fix = !!(Data[7] & (1u << 5));
#endif
gSetting_backlight_on_tx_rx = (Data[7] >> 6) & 3u;
if (!gEeprom.VFO_OPEN)
{
gEeprom.ScreenChannel[0] = gEeprom.MrChannel[0];
gEeprom.ScreenChannel[1] = gEeprom.MrChannel[1];
}
// 0D60..0E27
EEPROM_ReadBuffer(0x0D60, gMR_ChannelAttributes, sizeof(gMR_ChannelAttributes));
for(uint16_t i = 0; i < sizeof(gMR_ChannelAttributes); i++) {
ChannelAttributes_t *att = &gMR_ChannelAttributes[i];
if(att->__val == 0xff){
att->__val = 0;
att->band = 0xf;
}
}
// 0F30..0F3F
EEPROM_ReadBuffer(0x0F30, gCustomAesKey, sizeof(gCustomAesKey));
bHasCustomAesKey = false;
for (unsigned int i = 0; i < ARRAY_SIZE(gCustomAesKey); i++)
{
if (gCustomAesKey[i] != 0xFFFFFFFFu)
{
bHasCustomAesKey = true;
return;
}
}
}
void SETTINGS_LoadCalibration(void)
{
// uint8_t Mic;
EEPROM_ReadBuffer(0x1EC0, gEEPROM_RSSI_CALIB[3], 8);
memcpy(gEEPROM_RSSI_CALIB[4], gEEPROM_RSSI_CALIB[3], 8);
memcpy(gEEPROM_RSSI_CALIB[5], gEEPROM_RSSI_CALIB[3], 8);
memcpy(gEEPROM_RSSI_CALIB[6], gEEPROM_RSSI_CALIB[3], 8);
EEPROM_ReadBuffer(0x1EC8, gEEPROM_RSSI_CALIB[0], 8);
memcpy(gEEPROM_RSSI_CALIB[1], gEEPROM_RSSI_CALIB[0], 8);
memcpy(gEEPROM_RSSI_CALIB[2], gEEPROM_RSSI_CALIB[0], 8);
EEPROM_ReadBuffer(0x1F40, gBatteryCalibration, 12);
if (gBatteryCalibration[0] >= 5000)
{
gBatteryCalibration[0] = 1900;
gBatteryCalibration[1] = 2000;
}
gBatteryCalibration[5] = 2300;
#ifdef ENABLE_VOX
EEPROM_ReadBuffer(0x1F50 + (gEeprom.VOX_LEVEL * 2), &gEeprom.VOX1_THRESHOLD, 2);
EEPROM_ReadBuffer(0x1F68 + (gEeprom.VOX_LEVEL * 2), &gEeprom.VOX0_THRESHOLD, 2);
#endif
//EEPROM_ReadBuffer(0x1F80 + gEeprom.MIC_SENSITIVITY, &Mic, 1);
//gEeprom.MIC_SENSITIVITY_TUNING = (Mic < 32) ? Mic : 15;
gEeprom.MIC_SENSITIVITY_TUNING = gMicGain_dB2[gEeprom.MIC_SENSITIVITY];
{
struct
{
int16_t BK4819_XtalFreqLow;
uint16_t EEPROM_1F8A;
uint16_t EEPROM_1F8C;
uint8_t VOLUME_GAIN;
uint8_t DAC_GAIN;
} __attribute__((packed)) Misc;
// radio 1 .. 04 00 46 00 50 00 2C 0E
// radio 2 .. 05 00 46 00 50 00 2C 0E
EEPROM_ReadBuffer(0x1F88, &Misc, 8);
gEeprom.BK4819_XTAL_FREQ_LOW = (Misc.BK4819_XtalFreqLow >= -1000 && Misc.BK4819_XtalFreqLow <= 1000) ? Misc.BK4819_XtalFreqLow : 0;
gEEPROM_1F8A = Misc.EEPROM_1F8A & 0x01FF;
gEEPROM_1F8C = Misc.EEPROM_1F8C & 0x01FF;
gEeprom.VOLUME_GAIN = (Misc.VOLUME_GAIN < 64) ? Misc.VOLUME_GAIN : 58;
gEeprom.DAC_GAIN = (Misc.DAC_GAIN < 16) ? Misc.DAC_GAIN : 8;
BK4819_WriteRegister(BK4819_REG_3B, 22656 + gEeprom.BK4819_XTAL_FREQ_LOW);
// BK4819_WriteRegister(BK4819_REG_3C, gEeprom.BK4819_XTAL_FREQ_HIGH);
}
}
uint32_t SETTINGS_FetchChannelFrequency(const int channel)
{
struct
{
uint32_t frequency;
uint32_t offset;
} __attribute__((packed)) info;
EEPROM_ReadBuffer(channel * 16, &info, sizeof(info));
return info.frequency;
}
void SETTINGS_FetchChannelName(char *s, const int channel)
{
if (s == NULL)
return;
s[0] = 0;
if (channel < 0)
return;
if (!RADIO_CheckValidChannel(channel, false, 0))
return;
EEPROM_ReadBuffer(0x0F50 + (channel * 16), s, 10);
int i;
for (i = 0; i < 10; i++)
if (s[i] < 32 || s[i] > 127)
break; // invalid char
s[i--] = 0; // null term
while (i >= 0 && s[i] == 32) // trim trailing spaces
s[i--] = 0; // null term
}
void SETTINGS_FactoryReset(bool bIsAll)
{
uint16_t i;
uint8_t Template[8];
memset(Template, 0xFF, sizeof(Template));
for (i = 0x0C80; i < 0x1E00; i += 8)
{
if (
!(i >= 0x0EE0 && i < 0x0F18) && // ANI ID + DTMF codes
!(i >= 0x0F30 && i < 0x0F50) && // AES KEY + F LOCK + Scramble Enable
!(i >= 0x1C00 && i < 0x1E00) && // DTMF contacts
!(i >= 0x0EB0 && i < 0x0ED0) && // Welcome strings
!(i >= 0x0EA0 && i < 0x0EA8) && // Voice Prompt
(bIsAll ||
(
!(i >= 0x0D60 && i < 0x0E28) && // MR Channel Attributes
!(i >= 0x0F18 && i < 0x0F30) && // Scan List
!(i >= 0x0F50 && i < 0x1C00) && // MR Channel Names
!(i >= 0x0E40 && i < 0x0E70) && // FM Channels
!(i >= 0x0E88 && i < 0x0E90) // FM settings
))
)
{
EEPROM_WriteBuffer(i, Template);
}
}
if (bIsAll)
{
RADIO_InitInfo(gRxVfo, FREQ_CHANNEL_FIRST + BAND6_400MHz, 43350000);
// set the first few memory channels
for (i = 0; i < ARRAY_SIZE(gDefaultFrequencyTable); i++)
{
const uint32_t Frequency = gDefaultFrequencyTable[i];
gRxVfo->freq_config_RX.Frequency = Frequency;
gRxVfo->freq_config_TX.Frequency = Frequency;
gRxVfo->Band = FREQUENCY_GetBand(Frequency);
SETTINGS_SaveChannel(MR_CHANNEL_FIRST + i, 0, gRxVfo, 2);
}
}
}
#ifdef ENABLE_FMRADIO
void SETTINGS_SaveFM(void)
{
union {
struct {
uint16_t selFreq;
uint8_t selChn;
uint8_t isMrMode:1;
uint8_t band:2;
//uint8_t space:2;
};
uint8_t __raw[8];
} __attribute__((packed)) fmCfg;
memset(fmCfg.__raw, 0xFF, sizeof(fmCfg.__raw));
fmCfg.selChn = gEeprom.FM_SelectedChannel;
fmCfg.selFreq = gEeprom.FM_SelectedFrequency;
fmCfg.isMrMode = gEeprom.FM_IsMrMode;
fmCfg.band = gEeprom.FM_Band;
//fmCfg.space = gEeprom.FM_Space;
EEPROM_WriteBuffer(0x0E88, fmCfg.__raw);
for (unsigned i = 0; i < 5; i++)
EEPROM_WriteBuffer(0x0E40 + (i * 8), &gFM_Channels[i * 4]); EEPROM_WriteBuffer(0x0E40 + (i * 8), &gFM_Channels[i * 4]);
} }
#endif #endif
@@ -126,8 +521,13 @@ void SETTINGS_SaveSettings(void)
memset(State, 0xFF, sizeof(State)); memset(State, 0xFF, sizeof(State));
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
State[0] = gEeprom.VOICE_PROMPT; State[0] = gEeprom.VOICE_PROMPT;
EEPROM_WriteBuffer(0x0EA0, State);
#endif #endif
#ifdef ENABLE_RSSI_BAR
State[1] = gEeprom.S0_LEVEL;
State[2] = gEeprom.S9_LEVEL;
#endif
EEPROM_WriteBuffer(0x0EA0, State);
#if defined(ENABLE_ALARM) || defined(ENABLE_TX1750) #if defined(ENABLE_ALARM) || defined(ENABLE_TX1750)
State[0] = gEeprom.ALARM_MODE; State[0] = gEeprom.ALARM_MODE;
@@ -196,71 +596,60 @@ void SETTINGS_SaveSettings(void)
void SETTINGS_SaveChannel(uint8_t Channel, uint8_t VFO, const VFO_Info_t *pVFO, uint8_t Mode) void SETTINGS_SaveChannel(uint8_t Channel, uint8_t VFO, const VFO_Info_t *pVFO, uint8_t Mode)
{ {
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
if (!IS_NOAA_CHANNEL(Channel)) if (IS_NOAA_CHANNEL(Channel))
#endif return;
{ #endif
const uint16_t OffsetMR = Channel * 16;
uint16_t OffsetVFO = OffsetMR;
if (!IS_MR_CHANNEL(Channel)) uint16_t OffsetVFO = Channel * 16;
{ // it's a VFO, not a channel
if (IS_FREQ_CHANNEL(Channel)) { // it's a VFO, not a channel
OffsetVFO = (VFO == 0) ? 0x0C80 : 0x0C90; OffsetVFO = (VFO == 0) ? 0x0C80 : 0x0C90;
OffsetVFO += (Channel - FREQ_CHANNEL_FIRST) * 32; OffsetVFO += (Channel - FREQ_CHANNEL_FIRST) * 32;
} }
if (Mode >= 2 || !IS_MR_CHANNEL(Channel)) if (Mode >= 2 || IS_FREQ_CHANNEL(Channel)) { // copy VFO to a channel
{ // copy VFO to a channel union {
uint8_t _8[8];
uint32_t _32[2];
} State;
uint8_t State[8]; State._32[0] = pVFO->freq_config_RX.Frequency;
State._32[1] = pVFO->TX_OFFSET_FREQUENCY;
EEPROM_WriteBuffer(OffsetVFO + 0, State._32);
((uint32_t *)State)[0] = pVFO->freq_config_RX.Frequency; State._8[0] = pVFO->freq_config_RX.Code;
((uint32_t *)State)[1] = pVFO->TX_OFFSET_FREQUENCY; State._8[1] = pVFO->freq_config_TX.Code;
EEPROM_WriteBuffer(OffsetVFO + 0, State); State._8[2] = (pVFO->freq_config_TX.CodeType << 4) | pVFO->freq_config_RX.CodeType;
State._8[3] = (pVFO->Modulation << 4) | pVFO->TX_OFFSET_FREQUENCY_DIRECTION;
State[0] = pVFO->freq_config_RX.Code; State._8[4] = 0
State[1] = pVFO->freq_config_TX.Code;
State[2] = (pVFO->freq_config_TX.CodeType << 4) | pVFO->freq_config_RX.CodeType;
State[3] = (pVFO->Modulation << 4) | pVFO->TX_OFFSET_FREQUENCY_DIRECTION;
State[4] = 0
| (pVFO->BUSY_CHANNEL_LOCK << 4) | (pVFO->BUSY_CHANNEL_LOCK << 4)
| (pVFO->OUTPUT_POWER << 2) | (pVFO->OUTPUT_POWER << 2)
| (pVFO->CHANNEL_BANDWIDTH << 1) | (pVFO->CHANNEL_BANDWIDTH << 1)
| (pVFO->FrequencyReverse << 0); | (pVFO->FrequencyReverse << 0);
State[5] = ((pVFO->DTMF_PTT_ID_TX_MODE & 7u) << 1) State._8[5] = ((pVFO->DTMF_PTT_ID_TX_MODE & 7u) << 1)
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
| ((pVFO->DTMF_DECODING_ENABLE & 1u) << 0) | ((pVFO->DTMF_DECODING_ENABLE & 1u) << 0)
#endif #endif
; ;
State[6] = pVFO->STEP_SETTING; State._8[6] = pVFO->STEP_SETTING;
State[7] = pVFO->SCRAMBLING_TYPE; State._8[7] = pVFO->SCRAMBLING_TYPE;
EEPROM_WriteBuffer(OffsetVFO + 8, State); EEPROM_WriteBuffer(OffsetVFO + 8, State._8);
SETTINGS_UpdateChannel(Channel, pVFO, true); SETTINGS_UpdateChannel(Channel, pVFO, true);
if (IS_MR_CHANNEL(Channel)) if (IS_MR_CHANNEL(Channel)) {
{ // it's a memory channel #ifndef ENABLE_KEEP_MEM_NAME
#ifndef ENABLE_KEEP_MEM_NAME
// clear/reset the channel name // clear/reset the channel name
//memset(&State, 0xFF, sizeof(State)); SETTINGS_SaveChannelName(Channel, "");
memset(&State, 0x00, sizeof(State)); // follow the QS way #else
EEPROM_WriteBuffer(0x0F50 + OffsetMR, State); if (Mode >= 3) {
EEPROM_WriteBuffer(0x0F58 + OffsetMR, State); SETTINGS_SaveChannelName(Channel, pVFO->Name);
#else
if (Mode >= 3)
{ // save the channel name
memmove(State, pVFO->Name + 0, 8);
EEPROM_WriteBuffer(0x0F50 + OffsetMR, State);
//memset(State, 0xFF, sizeof(State));
memset(State, 0x00, sizeof(State)); // follow the QS way
memmove(State, pVFO->Name + 8, 2);
EEPROM_WriteBuffer(0x0F58 + OffsetMR, State);
}
#endif
} }
#endif
} }
} }
} }
void SETTINGS_SaveBatteryCalibration(const uint16_t * batteryCalibration) void SETTINGS_SaveBatteryCalibration(const uint16_t * batteryCalibration)
@@ -273,6 +662,15 @@ void SETTINGS_SaveBatteryCalibration(const uint16_t * batteryCalibration)
EEPROM_WriteBuffer(0x1F48, buf); EEPROM_WriteBuffer(0x1F48, buf);
} }
void SETTINGS_SaveChannelName(uint8_t channel, const char * name)
{
uint16_t offset = channel * 16;
uint8_t buf[16] = {0};
memcpy(buf, name, MIN(strlen(name), 10u));
EEPROM_WriteBuffer(0x0F50 + offset, buf);
EEPROM_WriteBuffer(0x0F58 + offset, buf + 8);
}
void SETTINGS_UpdateChannel(uint8_t channel, const VFO_Info_t *pVFO, bool keep) void SETTINGS_UpdateChannel(uint8_t channel, const VFO_Info_t *pVFO, bool keep)
{ {
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
@@ -305,13 +703,63 @@ void SETTINGS_UpdateChannel(uint8_t channel, const VFO_Info_t *pVFO, bool keep)
gMR_ChannelAttributes[channel] = att; gMR_ChannelAttributes[channel] = att;
if (IS_MR_CHANNEL(channel)) { // it's a memory channel if (IS_MR_CHANNEL(channel)) { // it's a memory channel
const uint16_t OffsetMR = channel * 16;
if (!keep) { if (!keep) {
// clear/reset the channel name // clear/reset the channel name
memset(&state, 0x00, sizeof(state)); SETTINGS_SaveChannelName(channel, "");
EEPROM_WriteBuffer(0x0F50 + OffsetMR, state);
EEPROM_WriteBuffer(0x0F58 + OffsetMR, state);
} }
} }
} }
} }
void SETTINGS_WriteBuildOptions(void)
{
uint8_t buf[8] = {0};
buf[0] = 0
#ifdef ENABLE_FMRADIO
| (1 << 0)
#endif
#ifdef ENABLE_NOAA
| (1 << 1)
#endif
#ifdef ENABLE_VOICE
| (1 << 2)
#endif
#ifdef ENABLE_VOX
| (1 << 3)
#endif
#ifdef ENABLE_ALARM
| (1 << 4)
#endif
#ifdef ENABLE_TX1750
| (1 << 5)
#endif
#ifdef ENABLE_PWRON_PASSWORD
| (1 << 6)
#endif
#ifdef ENABLE_DTMF_CALLING
| (1 << 7)
#endif
;
buf[1] = 0
#ifdef ENABLE_FLASHLIGHT
| (1 << 0)
#endif
#ifdef ENABLE_WIDE_RX
| (1 << 1)
#endif
#ifdef ENABLE_BYP_RAW_DEMODULATORS
| (1 << 2)
#endif
#ifdef ENABLE_BLMIN_TMP_OFF
| (1 << 3)
#endif
#ifdef ENABLE_AM_FIX
| (1 << 4)
#endif
#ifdef ENABLE_SPECTRUM
| (1 << 5)
#endif
;
EEPROM_WriteBuffer(0x1FF0, buf);
}

View File

@@ -33,7 +33,7 @@ enum POWER_OnDisplayMode_t {
}; };
typedef enum POWER_OnDisplayMode_t POWER_OnDisplayMode_t; typedef enum POWER_OnDisplayMode_t POWER_OnDisplayMode_t;
enum { enum TxLockModes_t {
F_LOCK_DEF, //all default frequencies + configurable F_LOCK_DEF, //all default frequencies + configurable
F_LOCK_FCC, F_LOCK_FCC,
F_LOCK_CE, F_LOCK_CE,
@@ -75,7 +75,7 @@ enum {
OUTPUT_POWER_HIGH OUTPUT_POWER_HIGH
}; };
enum { enum ACTION_OPT_t {
ACTION_OPT_NONE = 0, ACTION_OPT_NONE = 0,
ACTION_OPT_FLASHLIGHT, ACTION_OPT_FLASHLIGHT,
ACTION_OPT_POWER, ACTION_OPT_POWER,
@@ -89,9 +89,8 @@ enum {
ACTION_OPT_A_B, ACTION_OPT_A_B,
ACTION_OPT_VFO_MR, ACTION_OPT_VFO_MR,
ACTION_OPT_SWITCH_DEMODUL, ACTION_OPT_SWITCH_DEMODUL,
#ifdef ENABLE_BLMIN_TMP_OFF
ACTION_OPT_BLMIN_TMP_OFF, //BackLight Minimum Temporay OFF ACTION_OPT_BLMIN_TMP_OFF, //BackLight Minimum Temporay OFF
#endif ACTION_OPT_SPECTRUM,
ACTION_OPT_LEN ACTION_OPT_LEN
}; };
@@ -130,9 +129,9 @@ typedef struct {
uint8_t ScreenChannel[2]; // current channels set in the radio (memory or frequency channels) uint8_t ScreenChannel[2]; // current channels set in the radio (memory or frequency channels)
uint8_t FreqChannel[2]; // last frequency channels used uint8_t FreqChannel[2]; // last frequency channels used
uint8_t MrChannel[2]; // last memory channels used uint8_t MrChannel[2]; // last memory channels used
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
uint8_t NoaaChannel[2]; uint8_t NoaaChannel[2];
#endif #endif
// The actual VFO index (0-upper/1-lower) that is now used for RX, // The actual VFO index (0-upper/1-lower) that is now used for RX,
// It is being alternated by dual watch, and flipped by crossband // It is being alternated by dual watch, and flipped by crossband
@@ -145,23 +144,23 @@ typedef struct {
uint8_t field7_0xa; uint8_t field7_0xa;
uint8_t field8_0xb; uint8_t field8_0xb;
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
uint16_t FM_SelectedFrequency; uint16_t FM_SelectedFrequency;
uint8_t FM_SelectedChannel; uint8_t FM_SelectedChannel;
bool FM_IsMrMode; bool FM_IsMrMode;
uint16_t FM_FrequencyPlaying; uint16_t FM_FrequencyPlaying;
uint16_t FM_LowerLimit; uint8_t FM_Band : 2;
uint16_t FM_UpperLimit; //uint8_t FM_Space : 2;
#endif #endif
uint8_t SQUELCH_LEVEL; uint8_t SQUELCH_LEVEL;
uint8_t TX_TIMEOUT_TIMER; uint8_t TX_TIMEOUT_TIMER;
bool KEY_LOCK; bool KEY_LOCK;
bool VOX_SWITCH; bool VOX_SWITCH;
uint8_t VOX_LEVEL; uint8_t VOX_LEVEL;
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
VOICE_Prompt_t VOICE_PROMPT; VOICE_Prompt_t VOICE_PROMPT;
#endif #endif
bool BEEP_CONTROL; bool BEEP_CONTROL;
uint8_t CHANNEL_DISPLAY_MODE; uint8_t CHANNEL_DISPLAY_MODE;
bool TAIL_TONE_ELIMINATION; bool TAIL_TONE_ELIMINATION;
@@ -183,9 +182,9 @@ typedef struct {
uint8_t field38_0x33; uint8_t field38_0x33;
bool AUTO_KEYPAD_LOCK; bool AUTO_KEYPAD_LOCK;
#if defined(ENABLE_ALARM) || defined(ENABLE_TX1750) #if defined(ENABLE_ALARM) || defined(ENABLE_TX1750)
ALARM_Mode_t ALARM_MODE; ALARM_Mode_t ALARM_MODE;
#endif #endif
POWER_OnDisplayMode_t POWER_ON_DISPLAY_MODE; POWER_OnDisplayMode_t POWER_ON_DISPLAY_MODE;
ROGER_Mode_t ROGER; ROGER_Mode_t ROGER;
uint8_t REPEATER_TAIL_TONE_ELIMINATION; uint8_t REPEATER_TAIL_TONE_ELIMINATION;
@@ -227,9 +226,9 @@ typedef struct {
bool PERMIT_REMOTE_KILL; bool PERMIT_REMOTE_KILL;
#endif #endif
int16_t BK4819_XTAL_FREQ_LOW; int16_t BK4819_XTAL_FREQ_LOW;
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
bool NOAA_AUTO_SCAN; bool NOAA_AUTO_SCAN;
#endif #endif
uint8_t VOLUME_GAIN; uint8_t VOLUME_GAIN;
uint8_t DAC_GAIN; uint8_t DAC_GAIN;
@@ -249,17 +248,28 @@ typedef struct {
#endif #endif
uint8_t BACKLIGHT_MAX; uint8_t BACKLIGHT_MAX;
BATTERY_Type_t BATTERY_TYPE; BATTERY_Type_t BATTERY_TYPE;
#ifdef ENABLE_RSSI_BAR
uint8_t S0_LEVEL;
uint8_t S9_LEVEL;
#endif
} EEPROM_Config_t; } EEPROM_Config_t;
extern EEPROM_Config_t gEeprom; extern EEPROM_Config_t gEeprom;
void SETTINGS_InitEEPROM(void);
void SETTINGS_LoadCalibration(void);
uint32_t SETTINGS_FetchChannelFrequency(const int channel);
void SETTINGS_FetchChannelName(char *s, const int channel);
void SETTINGS_FactoryReset(bool bIsAll);
#ifdef ENABLE_FMRADIO #ifdef ENABLE_FMRADIO
void SETTINGS_SaveFM(void); void SETTINGS_SaveFM(void);
#endif #endif
void SETTINGS_SaveVfoIndices(void); void SETTINGS_SaveVfoIndices(void);
void SETTINGS_SaveSettings(void); void SETTINGS_SaveSettings(void);
void SETTINGS_SaveChannelName(uint8_t channel, const char * name);
void SETTINGS_SaveChannel(uint8_t Channel, uint8_t VFO, const VFO_Info_t *pVFO, uint8_t Mode); void SETTINGS_SaveChannel(uint8_t Channel, uint8_t VFO, const VFO_Info_t *pVFO, uint8_t Mode);
void SETTINGS_SaveBatteryCalibration(const uint16_t * batteryCalibration); void SETTINGS_SaveBatteryCalibration(const uint16_t * batteryCalibration);
void SETTINGS_UpdateChannel(uint8_t channel, const VFO_Info_t *pVFO, bool keep); void SETTINGS_UpdateChannel(uint8_t channel, const VFO_Info_t *pVFO, bool keep);
void SETTINGS_WriteBuildOptions(void);
#endif #endif

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@@ -29,41 +29,41 @@
void UI_DisplayAircopy(void) void UI_DisplayAircopy(void)
{ {
char String[16]; char String[16] = { 0 };
char *pPrintStr = { 0 };
memset(gFrameBuffer, 0, sizeof(gFrameBuffer)); UI_DisplayClear();
if (gAircopyState == AIRCOPY_READY) if (gAircopyState == AIRCOPY_READY) {
strcpy(String, "AIR COPY(RDY)"); pPrintStr = "AIR COPY(RDY)";
else } else if (gAircopyState == AIRCOPY_TRANSFER) {
if (gAircopyState == AIRCOPY_TRANSFER) pPrintStr = "AIR COPY";
strcpy(String, "AIR COPY"); } else {
else pPrintStr = "AIR COPY(CMP)";
strcpy(String, "AIR COPY(CMP)"); }
UI_PrintString(String, 2, 127, 0, 8);
if (gInputBoxIndex == 0) UI_PrintString(pPrintStr, 2, 127, 0, 8);
{
if (gInputBoxIndex == 0) {
uint32_t frequency = gRxVfo->freq_config_RX.Frequency; uint32_t frequency = gRxVfo->freq_config_RX.Frequency;
sprintf(String, "%3u.%05u", frequency / 100000, frequency % 100000); sprintf(String, "%3u.%05u", frequency / 100000, frequency % 100000);
// show the remaining 2 small frequency digits // show the remaining 2 small frequency digits
UI_PrintStringSmall(String + 7, 97, 0, 3); UI_PrintStringSmallNormal(String + 7, 97, 0, 3);
String[7] = 0; String[7] = 0;
// show the main large frequency digits // show the main large frequency digits
UI_DisplayFrequency(String, 16, 2, false); UI_DisplayFrequency(String, 16, 2, false);
} } else {
else { const char *ascii = INPUTBOX_GetAscii();
const char * ascii = INPUTBOX_GetAscii(); sprintf(String, "%.3s.%.3s", ascii, ascii + 3);
sprintf(String, "%.3s.%.3s",ascii, ascii + 3);
UI_DisplayFrequency(String, 16, 2, false); UI_DisplayFrequency(String, 16, 2, false);
} }
memset(String, 0, sizeof(String)); memset(String, 0, sizeof(String));
if (gAirCopyIsSendMode == 0) if (gAirCopyIsSendMode == 0) {
sprintf(String, "RCV:%u E:%u", gAirCopyBlockNumber, gErrorsDuringAirCopy); sprintf(String, "RCV:%u E:%u", gAirCopyBlockNumber, gErrorsDuringAirCopy);
else } else if (gAirCopyIsSendMode == 1) {
if (gAirCopyIsSendMode == 1)
sprintf(String, "SND:%u", gAirCopyBlockNumber); sprintf(String, "SND:%u", gAirCopyBlockNumber);
}
UI_PrintString(String, 2, 127, 4, 8); UI_PrintString(String, 2, 127, 4, 8);
ST7565_BlitFullScreen(); ST7565_BlitFullScreen();

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@@ -21,30 +21,29 @@
#include "driver/st7565.h" #include "driver/st7565.h"
#include "functions.h" #include "functions.h"
#include "ui/battery.h" #include "ui/battery.h"
#include "../misc.h"
void UI_DrawBattery(uint8_t* bitmap, uint8_t level, uint8_t blink) void UI_DrawBattery(uint8_t* bitmap, uint8_t level, uint8_t blink)
{ {
if (level < 2 && blink == 1) { if (level < 2 && blink == 1) {
memset(bitmap, 0, sizeof(BITMAP_BatteryLevel1)); memset(bitmap, 0, sizeof(BITMAP_BatteryLevel1));
return;
} }
else
{ memcpy(bitmap, BITMAP_BatteryLevel1, sizeof(BITMAP_BatteryLevel1));
memmove(bitmap, BITMAP_BatteryLevel1, sizeof(BITMAP_BatteryLevel1));
if (level > 2) if (level <= 2) {
{ return;
unsigned int i; }
uint8_t bars = level - 2;
if (bars > 4) const uint8_t bars = MIN(4, level - 2);
bars = 4;
for (i = 0; i < bars; i++) for (int i = 0; i < bars; i++) {
{ #ifndef ENABLE_REVERSE_BAT_SYMBOL
#ifndef ENABLE_REVERSE_BAT_SYMBOL
memcpy(bitmap + sizeof(BITMAP_BatteryLevel1) - 4 - (i * 3), BITMAP_BatteryLevel, 2); memcpy(bitmap + sizeof(BITMAP_BatteryLevel1) - 4 - (i * 3), BITMAP_BatteryLevel, 2);
#else #else
memcpy(bitmap + 3 + (i * 3) + 0, BITMAP_BatteryLevel, 2); memcpy(bitmap + 3 + (i * 3) + 0, BITMAP_BatteryLevel, 2);
#endif #endif
}
}
} }
} }
@@ -52,5 +51,5 @@ void UI_DisplayBattery(uint8_t level, uint8_t blink)
{ {
uint8_t bitmap[sizeof(BITMAP_BatteryLevel1)]; uint8_t bitmap[sizeof(BITMAP_BatteryLevel1)];
UI_DrawBattery(bitmap, level, blink); UI_DrawBattery(bitmap, level, blink);
ST7565_DrawLine(LCD_WIDTH - sizeof(bitmap), 0, sizeof(bitmap), bitmap); ST7565_DrawLine(LCD_WIDTH - sizeof(bitmap), 0, bitmap, sizeof(bitmap));
} }

View File

@@ -19,6 +19,7 @@
#include <string.h> #include <string.h>
#include "app/fm.h" #include "app/fm.h"
#include "driver/bk1080.h"
#include "driver/st7565.h" #include "driver/st7565.h"
#include "external/printf/printf.h" #include "external/printf/printf.h"
#include "misc.h" #include "misc.h"
@@ -30,83 +31,70 @@
void UI_DisplayFM(void) void UI_DisplayFM(void)
{ {
unsigned int i; char String[16] = {0};
char String[16]; char *pPrintStr = String;
UI_DisplayClear();
memset(gFrameBuffer, 0, sizeof(gFrameBuffer)); UI_PrintString("FM", 2, 0, 0, 8);
memset(String, 0, sizeof(String)); sprintf(String, "%d%s-%dM",
strcpy(String, "FM"); BK1080_GetFreqLoLimit(gEeprom.FM_Band)/10,
UI_PrintString(String, 0, 127, 0, 12); gEeprom.FM_Band == 0 ? ".5" : "",
BK1080_GetFreqHiLimit(gEeprom.FM_Band)/10
);
memset(String, 0, sizeof(String)); UI_PrintStringSmallNormal(String, 1, 0, 6);
if (gAskToSave)
{ //uint8_t spacings[] = {20,10,5};
strcpy(String, "SAVE?"); //sprintf(String, "%d0k", spacings[gEeprom.FM_Space % 3]);
} //UI_PrintStringSmallNormal(String, 127 - 4*7, 0, 6);
else
if (gAskToDelete) if (gAskToSave) {
{ pPrintStr = "SAVE?";
strcpy(String, "DEL?"); } else if (gAskToDelete) {
} pPrintStr = "DEL?";
else } else if (gFM_ScanState == FM_SCAN_OFF) {
{ if (gEeprom.FM_IsMrMode) {
if (gFM_ScanState == FM_SCAN_OFF) sprintf(String, "MR(CH%02u)", gEeprom.FM_SelectedChannel + 1);
{ pPrintStr = String;
if (!gEeprom.FM_IsMrMode) } else {
{ pPrintStr = "VFO";
for (i = 0; i < 20; i++) for (unsigned int i = 0; i < 20; i++) {
{ if (gEeprom.FM_FrequencyPlaying == gFM_Channels[i]) {
if (gEeprom.FM_FrequencyPlaying == gFM_Channels[i])
{
sprintf(String, "VFO(CH%02u)", i + 1); sprintf(String, "VFO(CH%02u)", i + 1);
pPrintStr = String;
break; break;
} }
} }
if (i == 20)
strcpy(String, "VFO");
} }
else } else if (gFM_AutoScan) {
sprintf(String, "MR(CH%02u)", gEeprom.FM_SelectedChannel + 1);
}
else
{
if (!gFM_AutoScan)
strcpy(String, "M-SCAN");
else
sprintf(String, "A-SCAN(%u)", gFM_ChannelPosition + 1); sprintf(String, "A-SCAN(%u)", gFM_ChannelPosition + 1);
pPrintStr = String;
} else {
pPrintStr = "M-SCAN";
} }
}
UI_PrintString(String, 0, 127, 2, 10); UI_PrintString(pPrintStr, 0, 127, 3, 10); // memory, vfo, scan
memset(String, 0, sizeof(String)); memset(String, 0, sizeof(String));
if (gAskToSave || (gEeprom.FM_IsMrMode && gInputBoxIndex > 0)) if (gAskToSave || (gEeprom.FM_IsMrMode && gInputBoxIndex > 0)) {
{
UI_GenerateChannelString(String, gFM_ChannelPosition); UI_GenerateChannelString(String, gFM_ChannelPosition);
} } else if (gAskToDelete) {
else sprintf(String, "CH-%02u", gEeprom.FM_SelectedChannel + 1);
if (!gAskToDelete) } else {
{ if (gInputBoxIndex == 0) {
if (gInputBoxIndex == 0)
{
sprintf(String, "%3d.%d", gEeprom.FM_FrequencyPlaying / 10, gEeprom.FM_FrequencyPlaying % 10); sprintf(String, "%3d.%d", gEeprom.FM_FrequencyPlaying / 10, gEeprom.FM_FrequencyPlaying % 10);
UI_DisplayFrequency(String, 32, 4, true); } else {
}
else {
const char * ascii = INPUTBOX_GetAscii(); const char * ascii = INPUTBOX_GetAscii();
sprintf(String, "%.3s.%.1s",ascii, ascii + 3); sprintf(String, "%.3s.%.1s",ascii, ascii + 3);
UI_DisplayFrequency(String, 32, 4, false);
} }
UI_DisplayFrequency(String, 36, 1, gInputBoxIndex == 0); // frequency
ST7565_BlitFullScreen(); ST7565_BlitFullScreen();
return; return;
} }
else
{ UI_PrintString(String, 0, 127, 1, 10);
sprintf(String, "CH-%02u", gEeprom.FM_SelectedChannel + 1);
}
UI_PrintString(String, 0, 127, 4, 10);
ST7565_BlitFullScreen(); ST7565_BlitFullScreen();
} }

View File

@@ -46,21 +46,36 @@ void UI_GenerateChannelString(char *pString, const uint8_t Channel)
void UI_GenerateChannelStringEx(char *pString, const bool bShowPrefix, const uint8_t ChannelNumber) void UI_GenerateChannelStringEx(char *pString, const bool bShowPrefix, const uint8_t ChannelNumber)
{ {
if (gInputBoxIndex > 0) if (gInputBoxIndex > 0) {
{ for (unsigned int i = 0; i < 3; i++) {
unsigned int i;
for (i = 0; i < 3; i++)
pString[i] = (gInputBox[i] == 10) ? '-' : gInputBox[i] + '0'; pString[i] = (gInputBox[i] == 10) ? '-' : gInputBox[i] + '0';
}
pString[3] = 0;
return; return;
} }
if (bShowPrefix) if (bShowPrefix) {
// BUG here? Prefixed NULLs are allowed
sprintf(pString, "CH-%03u", ChannelNumber + 1); sprintf(pString, "CH-%03u", ChannelNumber + 1);
else } else if (ChannelNumber == 0xFF) {
if (ChannelNumber == 0xFF)
strcpy(pString, "NULL"); strcpy(pString, "NULL");
else } else {
sprintf(pString, "%03u", ChannelNumber + 1); sprintf(pString, "%03u", ChannelNumber + 1);
}
}
void UI_PrintStringBuffer(const char *pString, uint8_t * buffer, uint32_t char_width, const uint8_t *font)
{
const size_t Length = strlen(pString);
const unsigned int char_spacing = char_width + 1;
for (size_t i = 0; i < Length; i++) {
const unsigned int index = pString[i] - ' ' - 1;
if (pString[i] > ' ' && pString[i] < 127) {
const uint32_t offset = i * char_spacing + 1;
memcpy(buffer + offset, font + index * char_width, char_width);
}
}
} }
void UI_PrintString(const char *pString, uint8_t Start, uint8_t End, uint8_t Line, uint8_t Width) void UI_PrintString(const char *pString, uint8_t Start, uint8_t End, uint8_t Line, uint8_t Width)
@@ -77,74 +92,57 @@ void UI_PrintString(const char *pString, uint8_t Start, uint8_t End, uint8_t Lin
if (pString[i] > ' ' && pString[i] < 127) if (pString[i] > ' ' && pString[i] < 127)
{ {
const unsigned int index = pString[i] - ' ' - 1; const unsigned int index = pString[i] - ' ' - 1;
memmove(gFrameBuffer[Line + 0] + ofs, &gFontBig[index][0], 7); memcpy(gFrameBuffer[Line + 0] + ofs, &gFontBig[index][0], 7);
memmove(gFrameBuffer[Line + 1] + ofs, &gFontBig[index][7], 7); memcpy(gFrameBuffer[Line + 1] + ofs, &gFontBig[index][7], 7);
} }
} }
} }
void UI_PrintStringSmall(const char *pString, uint8_t Start, uint8_t End, uint8_t Line) void UI_PrintStringSmall(const char *pString, uint8_t Start, uint8_t End, uint8_t Line, uint8_t char_width, const uint8_t *font)
{ {
const size_t Length = strlen(pString); const size_t Length = strlen(pString);
size_t i;
const unsigned int char_width = ARRAY_SIZE(gFontSmall[0]);
const unsigned int char_spacing = char_width + 1; const unsigned int char_spacing = char_width + 1;
if (End > Start) if (End > Start) {
Start += (((End - Start) - (Length * char_spacing)) + 1) / 2; Start += (((End - Start) - Length * char_spacing) + 1) / 2;
uint8_t *pFb = gFrameBuffer[Line] + Start;
for (i = 0; i < Length; i++)
{
if (pString[i] > ' ')
{
const unsigned int index = (unsigned int)pString[i] - ' ' - 1;
if (index < ARRAY_SIZE(gFontSmall))
memmove(pFb + (i * char_spacing) + 1, &gFontSmall[index], char_width);
}
} }
UI_PrintStringBuffer(pString, gFrameBuffer[Line] + Start, char_width, font);
} }
void UI_PrintStringSmallNormal(const char *pString, uint8_t Start, uint8_t End, uint8_t Line)
{
UI_PrintStringSmall(pString, Start, End, Line, ARRAY_SIZE(gFontSmall[0]), (const uint8_t *)gFontSmall);
}
void UI_PrintStringSmallBold(const char *pString, uint8_t Start, uint8_t End, uint8_t Line)
{
#ifdef ENABLE_SMALL_BOLD #ifdef ENABLE_SMALL_BOLD
void UI_PrintStringSmallBold(const char *pString, uint8_t Start, uint8_t End, uint8_t Line) const uint8_t *font = (uint8_t *)gFontSmallBold;
{ const uint8_t char_width = ARRAY_SIZE(gFontSmallBold[0]);
const size_t Length = strlen(pString); #else
size_t i; const uint8_t *font = (uint8_t *)gFontSmall;
const uint8_t char_width = ARRAY_SIZE(gFontSmall[0]);
if (End > Start)
Start += (((End - Start) - (Length * 8)) + 1) / 2;
const unsigned int char_width = ARRAY_SIZE(gFontSmallBold[0]);
const unsigned int char_spacing = char_width + 1;
uint8_t *pFb = gFrameBuffer[Line] + Start;
for (i = 0; i < Length; i++)
{
if (pString[i] > ' ')
{
const unsigned int index = (unsigned int)pString[i] - ' ' - 1;
if (index < ARRAY_SIZE(gFontSmallBold))
memmove(pFb + (i * char_spacing) + 1, &gFontSmallBold[index], char_width);
}
}
}
#endif #endif
void UI_PrintStringSmallBuffer(const char *pString, uint8_t *buffer) UI_PrintStringSmall(pString, Start, End, Line, char_width, font);
}
void UI_PrintStringSmallBufferNormal(const char *pString, uint8_t * buffer)
{ {
size_t i; UI_PrintStringBuffer(pString, buffer, ARRAY_SIZE(gFontSmall[0]), (uint8_t *)gFontSmall);
const unsigned int char_width = ARRAY_SIZE(gFontSmall[0]); }
const unsigned int char_spacing = char_width + 1;
for (i = 0; i < strlen(pString); i++) void UI_PrintStringSmallBufferBold(const char *pString, uint8_t * buffer)
{ {
if (pString[i] > ' ') #ifdef ENABLE_SMALL_BOLD
{ const uint8_t *font = (uint8_t *)gFontSmallBold;
const unsigned int index = (unsigned int)pString[i] - ' ' - 1; const uint8_t char_width = ARRAY_SIZE(gFontSmallBold[0]);
if (index < ARRAY_SIZE(gFontSmall)) #else
memmove(buffer + (i * char_spacing) + 1, &gFontSmall[index], char_width); const uint8_t *font = (uint8_t *)gFontSmall;
} const uint8_t char_width = ARRAY_SIZE(gFontSmall[0]);
} #endif
UI_PrintStringBuffer(pString, buffer, char_width, font);
} }
void UI_DisplayFrequency(const char *string, uint8_t X, uint8_t Y, bool center) void UI_DisplayFrequency(const char *string, uint8_t X, uint8_t Y, bool center)
@@ -184,10 +182,11 @@ void UI_DisplayFrequency(const char *string, uint8_t X, uint8_t Y, bool center)
void UI_DrawPixelBuffer(uint8_t (*buffer)[128], uint8_t x, uint8_t y, bool black) void UI_DrawPixelBuffer(uint8_t (*buffer)[128], uint8_t x, uint8_t y, bool black)
{ {
const uint8_t pattern = 1 << (y % 8);
if(black) if(black)
buffer[y/8][x] |= 1 << (y%8); buffer[y/8][x] |= pattern;
else else
buffer[y/8][x] &= ~(1 << (y%8)); buffer[y/8][x] &= ~pattern;
} }
static void sort(int16_t *a, int16_t *b) static void sort(int16_t *a, int16_t *b)
@@ -227,11 +226,10 @@ void UI_DrawRectangleBuffer(uint8_t (*buffer)[128], int16_t x1, int16_t y1, int1
UI_DrawLineBuffer(buffer, x1,y2, x2,y2, black); UI_DrawLineBuffer(buffer, x1,y2, x2,y2, black);
} }
void UI_DisplayPopup(const char *string) void UI_DisplayPopup(const char *string)
{ {
for(uint8_t i = 0; i < 7; i++) { UI_DisplayClear();
memset(gFrameBuffer[i], 0x00, 128);
}
// for(uint8_t i = 1; i < 5; i++) { // for(uint8_t i = 1; i < 5; i++) {
// memset(gFrameBuffer[i]+8, 0x00, 111); // memset(gFrameBuffer[i]+8, 0x00, 111);
@@ -248,5 +246,10 @@ void UI_DisplayPopup(const char *string)
// } // }
// DrawRectangle(9,9, 118,38, true); // DrawRectangle(9,9, 118,38, true);
UI_PrintString(string, 9, 118, 2, 8); UI_PrintString(string, 9, 118, 2, 8);
UI_PrintStringSmall("Press EXIT", 9, 118, 6); UI_PrintStringSmallNormal("Press EXIT", 9, 118, 6);
}
void UI_DisplayClear()
{
memset(gFrameBuffer, 0, sizeof(gFrameBuffer));
} }

View File

@@ -23,13 +23,11 @@
void UI_GenerateChannelString(char *pString, const uint8_t Channel); void UI_GenerateChannelString(char *pString, const uint8_t Channel);
void UI_GenerateChannelStringEx(char *pString, const bool bShowPrefix, const uint8_t ChannelNumber); void UI_GenerateChannelStringEx(char *pString, const bool bShowPrefix, const uint8_t ChannelNumber);
void UI_PrintString(const char *pString, uint8_t Start, uint8_t End, uint8_t Line, uint8_t Width); void UI_PrintString(const char *pString, uint8_t Start, uint8_t End, uint8_t Line, uint8_t Width);
void UI_PrintStringSmall(const char *pString, uint8_t Start, uint8_t End, uint8_t Line); void UI_PrintStringSmallNormal(const char *pString, uint8_t Start, uint8_t End, uint8_t Line);
#ifdef ENABLE_SMALL_BOLD void UI_PrintStringSmallBold(const char *pString, uint8_t Start, uint8_t End, uint8_t Line);
void UI_PrintStringSmallBold(const char *pString, uint8_t Start, uint8_t End, uint8_t Line); void UI_PrintStringSmallBufferNormal(const char *pString, uint8_t *buffer);
#endif void UI_PrintStringSmallBufferBold(const char *pString, uint8_t * buffer);
void UI_PrintStringSmallBuffer(const char *pString, uint8_t *buffer);
void UI_DisplayFrequency(const char *string, uint8_t X, uint8_t Y, bool center); void UI_DisplayFrequency(const char *string, uint8_t X, uint8_t Y, bool center);
#endif
void UI_DisplayPopup(const char *string); void UI_DisplayPopup(const char *string);
@@ -37,3 +35,6 @@ void UI_DrawPixelBuffer(uint8_t (*buffer)[128], uint8_t x, uint8_t y, bool black
void UI_DrawLineBuffer(uint8_t (*buffer)[128], int16_t x1, int16_t y1, int16_t x2, int16_t y2, bool black); void UI_DrawLineBuffer(uint8_t (*buffer)[128], int16_t x1, int16_t y1, int16_t x2, int16_t y2, bool black);
void UI_DrawRectangleBuffer(uint8_t (*buffer)[128], int16_t x1, int16_t y1, int16_t x2, int16_t y2, bool black); void UI_DrawRectangleBuffer(uint8_t (*buffer)[128], int16_t x1, int16_t y1, int16_t x2, int16_t y2, bool black);
void UI_DisplayClear();
#endif

View File

@@ -35,10 +35,9 @@ static void Render(void)
char String[7]; char String[7];
memset(gStatusLine, 0, sizeof(gStatusLine)); memset(gStatusLine, 0, sizeof(gStatusLine));
memset(gFrameBuffer, 0, sizeof(gFrameBuffer)); UI_DisplayClear();
strcpy(String, "LOCK"); UI_PrintString("LOCK", 0, 127, 1, 10);
UI_PrintString(String, 0, 127, 1, 10);
for (i = 0; i < 6; i++) for (i = 0; i < 6; i++)
String[i] = (gInputBox[i] == 10) ? '-' : '*'; String[i] = (gInputBox[i] == 10) ? '-' : '*';
String[6] = 0; String[6] = 0;
@@ -143,13 +142,14 @@ void UI_DisplayLock(void)
gKeyReading0 = Key; gKeyReading0 = Key;
} }
#ifdef ENABLE_UART
if (UART_IsCommandAvailable()) if (UART_IsCommandAvailable())
{ {
__disable_irq(); __disable_irq();
UART_HandleCommand(); UART_HandleCommand();
__enable_irq(); __enable_irq();
} }
#endif
if (gUpdateDisplay) if (gUpdateDisplay)
{ {
Render(); Render();

347
ui/main.c
View File

@@ -19,7 +19,7 @@
#include "app/chFrScanner.h" #include "app/chFrScanner.h"
#include "app/dtmf.h" #include "app/dtmf.h"
#ifdef ENABLE_AM_FIX_SHOW_DATA #ifdef ENABLE_AM_FIX
#include "am_fix.h" #include "am_fix.h"
#endif #endif
#include "bitmaps.h" #include "bitmaps.h"
@@ -39,6 +39,26 @@
center_line_t center_line = CENTER_LINE_NONE; center_line_t center_line = CENTER_LINE_NONE;
const int8_t dBmCorrTable[7] = {
-15, // band 1
-25, // band 2
-20, // band 3
-4, // band 4
-7, // band 5
-6, // band 6
-1 // band 7
};
const char *VfoStateStr[] = {
[VFO_STATE_NORMAL]="",
[VFO_STATE_BUSY]="BUSY",
[VFO_STATE_BAT_LOW]="BAT LOW",
[VFO_STATE_TX_DISABLE]="TX DISABLE",
[VFO_STATE_TIMEOUT]="TIMEOUT",
[VFO_STATE_ALARM]="ALARM",
[VFO_STATE_VOLTAGE_HIGH]="VOLT HIGH"
};
// *************************************************************************** // ***************************************************************************
static void DrawSmallAntennaAndBars(uint8_t *p, unsigned int level) static void DrawSmallAntennaAndBars(uint8_t *p, unsigned int level)
@@ -140,11 +160,10 @@ void UI_DisplayAudioBar(void)
#endif #endif
static void DisplayRSSIBar(const int16_t rssi, const bool now) void DisplayRSSIBar(const bool now)
{ {
#if defined(ENABLE_RSSI_BAR) #if defined(ENABLE_RSSI_BAR)
if (center_line == CENTER_LINE_RSSI) {
const unsigned int txt_width = 7 * 8; // 8 text chars const unsigned int txt_width = 7 * 8; // 8 text chars
const unsigned int bar_x = 2 + txt_width + 4; // X coord of bar graph const unsigned int bar_x = 2 + txt_width + 4; // X coord of bar graph
@@ -162,7 +181,7 @@ static void DisplayRSSIBar(const int16_t rssi, const bool now)
0b00011000, 0b00011000,
}; };
if (gEeprom.KEY_LOCK && gKeypadLocked > 0) if ((gEeprom.KEY_LOCK && gKeypadLocked > 0) || center_line != CENTER_LINE_RSSI)
return; // display is in use return; // display is in use
if (gCurrentFunction == FUNCTION_TRANSMIT || if (gCurrentFunction == FUNCTION_TRANSMIT ||
@@ -176,21 +195,18 @@ static void DisplayRSSIBar(const int16_t rssi, const bool now)
if (now) if (now)
memset(p_line, 0, LCD_WIDTH); memset(p_line, 0, LCD_WIDTH);
const int8_t dBmCorrTable[7] = {
-15, // band 1
-25, // band 2
-20, // band 3
-4, // band 4
-7, // band 5
-6, // band 6
-1 // band 7
};
const int16_t s0_dBm = -130; // S0 .. base level const int16_t s0_dBm = -gEeprom.S0_LEVEL; // S0 .. base level
const int16_t rssi_dBm = (rssi / 2) - 160 + dBmCorrTable[gRxVfo->Band]; const int16_t rssi_dBm =
BK4819_GetRSSI_dBm()
#ifdef ENABLE_AM_FIX
+ ((gSetting_AM_fix && gRxVfo->Modulation == MODULATION_AM) ? AM_fix_get_gain_diff() : 0)
#endif
+ dBmCorrTable[gRxVfo->Band];
const uint8_t s_level = MIN(MAX((rssi_dBm - s0_dBm) / 6, 0), 9); // S0 - S9 int s0_9 = gEeprom.S0_LEVEL - gEeprom.S9_LEVEL;
uint8_t overS9dBm = MIN(MAX(rssi_dBm - (s0_dBm + 9*6), 0), 99); const uint8_t s_level = MIN(MAX((int32_t)(rssi_dBm - s0_dBm)*100 / (s0_9*100/9), 0), 9); // S0 - S9
uint8_t overS9dBm = MIN(MAX(rssi_dBm + gEeprom.S9_LEVEL, 0), 99);
uint8_t overS9Bars = MIN(overS9dBm/10, 4); uint8_t overS9Bars = MIN(overS9dBm/10, 4);
if(overS9Bars == 0) { if(overS9Bars == 0) {
@@ -201,12 +217,12 @@ static void DisplayRSSIBar(const int16_t rssi, const bool now)
memcpy(p_line + 2 + 7*5, &plus, ARRAY_SIZE(plus)); memcpy(p_line + 2 + 7*5, &plus, ARRAY_SIZE(plus));
} }
UI_PrintStringSmall(str, 2, 0, line); UI_PrintStringSmallNormal(str, 2, 0, line);
DrawLevelBar(bar_x, line, s_level + overS9Bars); DrawLevelBar(bar_x, line, s_level + overS9Bars);
} if (now)
ST7565_BlitLine(line);
#else #else
int16_t rssi = BK4819_GetRSSI();
uint8_t Level; uint8_t Level;
if (rssi >= gEEPROM_RSSI_CALIB[gRxVfo->Band][3]) { if (rssi >= gEEPROM_RSSI_CALIB[gRxVfo->Band][3]) {
@@ -225,42 +241,75 @@ static void DisplayRSSIBar(const int16_t rssi, const bool now)
if (now) if (now)
memset(pLine, 0, 23); memset(pLine, 0, 23);
DrawSmallAntennaAndBars(pLine, Level); DrawSmallAntennaAndBars(pLine, Level);
#endif
if (now) if (now)
ST7565_BlitFullScreen(); ST7565_BlitFullScreen();
#endif
} }
#ifdef ENABLE_AGC_SHOW_DATA
void UI_UpdateRSSI(const int16_t rssi, const int vfo) void UI_MAIN_PrintAGC(bool now)
{ {
(void)vfo; // unused char buf[20];
memset(gFrameBuffer[3], 0, 128);
union {
struct {
uint16_t _ : 5;
uint16_t agcSigStrength : 7;
int16_t gainIdx : 3;
uint16_t agcEnab : 1;
};
uint16_t __raw;
} reg7e;
reg7e.__raw = BK4819_ReadRegister(0x7E);
uint8_t gainAddr = reg7e.gainIdx < 0 ? 0x14 : 0x10 + reg7e.gainIdx;
union {
struct {
uint16_t pga:3;
uint16_t mixer:2;
uint16_t lna:3;
uint16_t lnaS:2;
};
uint16_t __raw;
} agcGainReg;
agcGainReg.__raw = BK4819_ReadRegister(gainAddr);
int8_t lnaShortTab[] = {-28, -24, -19, 0};
int8_t lnaTab[] = {-24, -19, -14, -9, -6, -4, -2, 0};
int8_t mixerTab[] = {-8, -6, -3, 0};
int8_t pgaTab[] = {-33, -27, -21, -15, -9, -6, -3, 0};
int16_t agcGain = lnaShortTab[agcGainReg.lnaS] + lnaTab[agcGainReg.lna] + mixerTab[agcGainReg.mixer] + pgaTab[agcGainReg.pga];
// optional larger RSSI dBm, S-point and bar level sprintf(buf, "%d%2d %2d %2d %3d", reg7e.agcEnab, reg7e.gainIdx, -agcGain, reg7e.agcSigStrength, BK4819_GetRSSI());
UI_PrintStringSmallNormal(buf, 2, 0, 3);
if(now)
ST7565_BlitLine(3);
}
#endif
if (gCurrentFunction == FUNCTION_RECEIVE || void UI_MAIN_TimeSlice500ms(void)
gCurrentFunction == FUNCTION_MONITOR || {
gCurrentFunction == FUNCTION_INCOMING) if(gScreenToDisplay==DISPLAY_MAIN) {
{ #ifdef ENABLE_AGC_SHOW_DATA
UI_MAIN_PrintAGC(true);
return;
#endif
DisplayRSSIBar(rssi, true); if(FUNCTION_IsRx()) {
DisplayRSSIBar(true);
}
} }
} }
// *************************************************************************** // ***************************************************************************
void UI_DisplayMain(void) void UI_DisplayMain(void)
{ {
const unsigned int line0 = 0; // text screen line
const unsigned int line1 = 4;
char String[22]; char String[22];
unsigned int vfo_num;
center_line = CENTER_LINE_NONE; center_line = CENTER_LINE_NONE;
// clear the screen // clear the screen
memset(gFrameBuffer, 0, sizeof(gFrameBuffer)); UI_DisplayClear();
if(gLowBattery && !gLowBatteryConfirmed) { if(gLowBattery && !gLowBatteryConfirmed) {
UI_DisplayPopup("LOW BATTERY"); UI_DisplayPopup("LOW BATTERY");
@@ -278,13 +327,15 @@ void UI_DisplayMain(void)
unsigned int activeTxVFO = gRxVfoIsActive ? gEeprom.RX_VFO : gEeprom.TX_VFO; unsigned int activeTxVFO = gRxVfoIsActive ? gEeprom.RX_VFO : gEeprom.TX_VFO;
for (vfo_num = 0; vfo_num < 2; vfo_num++) for (unsigned int vfo_num = 0; vfo_num < 2; vfo_num++)
{ {
const unsigned int line0 = 0; // text screen line
const unsigned int line1 = 4;
const unsigned int line = (vfo_num == 0) ? line0 : line1; const unsigned int line = (vfo_num == 0) ? line0 : line1;
const bool isMainVFO = (vfo_num == gEeprom.TX_VFO); const bool isMainVFO = (vfo_num == gEeprom.TX_VFO);
uint8_t *p_line0 = gFrameBuffer[line + 0]; uint8_t *p_line0 = gFrameBuffer[line + 0];
uint8_t *p_line1 = gFrameBuffer[line + 1]; uint8_t *p_line1 = gFrameBuffer[line + 1];
unsigned int mode = 0; enum Vfo_txtr_mode mode = VFO_MODE_NONE;
if (activeTxVFO != vfo_num) // this is not active TX VFO if (activeTxVFO != vfo_num) // this is not active TX VFO
{ {
@@ -292,128 +343,112 @@ void UI_DisplayMain(void)
if(gScanRangeStart) { if(gScanRangeStart) {
UI_PrintString("ScnRng", 5, 0, line, 8); UI_PrintString("ScnRng", 5, 0, line, 8);
sprintf(String, "%3u.%05u", gScanRangeStart / 100000, gScanRangeStart % 100000); sprintf(String, "%3u.%05u", gScanRangeStart / 100000, gScanRangeStart % 100000);
UI_PrintStringSmall(String, 56, 0, line); UI_PrintStringSmallNormal(String, 56, 0, line);
uint32_t frq = gEeprom.VfoInfo[vfo_num].pRX->Frequency; sprintf(String, "%3u.%05u", gScanRangeStop / 100000, gScanRangeStop % 100000);
sprintf(String, "%3u.%05u", frq / 100000, frq % 100000); UI_PrintStringSmallNormal(String, 56, 0, line + 1);
UI_PrintStringSmall(String, 56, 0, line + 1);
continue; continue;
} }
#endif #endif
if ( if (gDTMF_InputMode
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
gDTMF_CallState != DTMF_CALL_STATE_NONE || gDTMF_IsTx || || gDTMF_CallState != DTMF_CALL_STATE_NONE || gDTMF_IsTx
#endif #endif
gDTMF_InputMode) ) {
{ // show DTMF stuff char *pPrintStr = "";
// show DTMF stuff
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
char Contact[16]; char Contact[16];
if (!gDTMF_InputMode) {
if (gDTMF_CallState == DTMF_CALL_STATE_CALL_OUT) {
pPrintStr = DTMF_FindContact(gDTMF_String, Contact) ? Contact : gDTMF_String;
} else if (gDTMF_CallState == DTMF_CALL_STATE_RECEIVED || gDTMF_CallState == DTMF_CALL_STATE_RECEIVED_STAY){
pPrintStr = DTMF_FindContact(gDTMF_Callee, Contact) ? Contact : gDTMF_Callee;
}else if (gDTMF_IsTx) {
pPrintStr = gDTMF_String;
}
}
if (!gDTMF_InputMode) UI_PrintString(pPrintStr, 2, 0, 2 + (vfo_num * 3), 8);
{
memset(Contact, 0, sizeof(Contact)); pPrintStr = "";
if (gDTMF_CallState == DTMF_CALL_STATE_CALL_OUT) if (!gDTMF_InputMode) {
strcpy(String, (gDTMF_State == DTMF_STATE_CALL_OUT_RSP) ? "CALL OUT(RSP)" : "CALL OUT"); if (gDTMF_CallState == DTMF_CALL_STATE_CALL_OUT) {
else pPrintStr = (gDTMF_State == DTMF_STATE_CALL_OUT_RSP) ? "CALL OUT(RSP)" : "CALL OUT";
if (gDTMF_CallState == DTMF_CALL_STATE_RECEIVED || gDTMF_CallState == DTMF_CALL_STATE_RECEIVED_STAY) } else if (gDTMF_CallState == DTMF_CALL_STATE_RECEIVED || gDTMF_CallState == DTMF_CALL_STATE_RECEIVED_STAY) {
sprintf(String, "CALL FRM:%s", (DTMF_FindContact(gDTMF_Caller, Contact)) ? Contact : gDTMF_Caller); sprintf(String, "CALL FRM:%s", (DTMF_FindContact(gDTMF_Caller, Contact)) ? Contact : gDTMF_Caller);
else pPrintStr = String;
if (gDTMF_IsTx) } else if (gDTMF_IsTx) {
strcpy(String, (gDTMF_State == DTMF_STATE_TX_SUCC) ? "DTMF TX(SUCC)" : "DTMF TX"); pPrintStr = (gDTMF_State == DTMF_STATE_TX_SUCC) ? "DTMF TX(SUCC)" : "DTMF TX";
}
} }
else else
#endif #endif
{ {
sprintf(String, ">%s", gDTMF_InputBox); sprintf(String, ">%s", gDTMF_InputBox);
} pPrintStr = String;
UI_PrintString(String, 2, 0, 0 + (vfo_num * 3), 8);
#ifdef ENABLE_DTMF_CALLING
memset(String, 0, sizeof(String));
if (!gDTMF_InputMode) {
memset(Contact, 0, sizeof(Contact));
if (gDTMF_CallState == DTMF_CALL_STATE_CALL_OUT)
sprintf(String, ">%s", (DTMF_FindContact(gDTMF_String, Contact)) ? Contact : gDTMF_String);
else
if (gDTMF_CallState == DTMF_CALL_STATE_RECEIVED || gDTMF_CallState == DTMF_CALL_STATE_RECEIVED_STAY)
sprintf(String, ">%s", (DTMF_FindContact(gDTMF_Callee, Contact)) ? Contact : gDTMF_Callee);
else
if (gDTMF_IsTx)
sprintf(String, ">%s", gDTMF_String);
} }
UI_PrintString(String, 2, 0, 2 + (vfo_num * 3), 8); UI_PrintString(pPrintStr, 2, 0, 0 + (vfo_num * 3), 8);
#endif
center_line = CENTER_LINE_IN_USE; center_line = CENTER_LINE_IN_USE;
continue; continue;
} }
// highlight the selected/used VFO with a marker // highlight the selected/used VFO with a marker
if (isMainVFO) if (isMainVFO)
memmove(p_line0 + 0, BITMAP_VFO_Default, sizeof(BITMAP_VFO_Default)); memcpy(p_line0 + 0, BITMAP_VFO_Default, sizeof(BITMAP_VFO_Default));
} }
else // active TX VFO else // active TX VFO
{ // highlight the selected/used VFO with a marker { // highlight the selected/used VFO with a marker
if (isMainVFO) if (isMainVFO)
memmove(p_line0 + 0, BITMAP_VFO_Default, sizeof(BITMAP_VFO_Default)); memcpy(p_line0 + 0, BITMAP_VFO_Default, sizeof(BITMAP_VFO_Default));
else else
memmove(p_line0 + 0, BITMAP_VFO_NotDefault, sizeof(BITMAP_VFO_NotDefault)); memcpy(p_line0 + 0, BITMAP_VFO_NotDefault, sizeof(BITMAP_VFO_NotDefault));
} }
if (gCurrentFunction == FUNCTION_TRANSMIT) if (gCurrentFunction == FUNCTION_TRANSMIT)
{ // transmitting { // transmitting
#ifdef ENABLE_ALARM #ifdef ENABLE_ALARM
if (gAlarmState == ALARM_STATE_ALARM) if (gAlarmState == ALARM_STATE_SITE_ALARM)
mode = 2; mode = VFO_MODE_RX;
else else
#endif #endif
{ {
if (activeTxVFO == vfo_num) if (activeTxVFO == vfo_num)
{ // show the TX symbol { // show the TX symbol
mode = 1; mode = VFO_MODE_TX;
#ifdef ENABLE_SMALL_BOLD
UI_PrintStringSmallBold("TX", 14, 0, line); UI_PrintStringSmallBold("TX", 14, 0, line);
#else
UI_PrintStringSmall("TX", 14, 0, line);
#endif
} }
} }
} }
else else
{ // receiving .. show the RX symbol { // receiving .. show the RX symbol
mode = 2; mode = VFO_MODE_RX;
if ((gCurrentFunction == FUNCTION_RECEIVE || if (FUNCTION_IsRx() && gEeprom.RX_VFO == vfo_num) {
gCurrentFunction == FUNCTION_MONITOR ||
gCurrentFunction == FUNCTION_INCOMING) &&
gEeprom.RX_VFO == vfo_num)
{
#ifdef ENABLE_SMALL_BOLD
UI_PrintStringSmallBold("RX", 14, 0, line); UI_PrintStringSmallBold("RX", 14, 0, line);
#else
UI_PrintStringSmall("RX", 14, 0, line);
#endif
} }
} }
if (IS_MR_CHANNEL(gEeprom.ScreenChannel[vfo_num])) if (IS_MR_CHANNEL(gEeprom.ScreenChannel[vfo_num]))
{ // channel mode { // channel mode
const unsigned int x = 2; const unsigned int x = 2;
const bool inputting = (gInputBoxIndex == 0 || gEeprom.TX_VFO != vfo_num) ? false : true; const bool inputting = gInputBoxIndex != 0 && gEeprom.TX_VFO == vfo_num;
if (!inputting) if (!inputting)
sprintf(String, "M%u", gEeprom.ScreenChannel[vfo_num] + 1); sprintf(String, "M%u", gEeprom.ScreenChannel[vfo_num] + 1);
else else
sprintf(String, "M%.3s", INPUTBOX_GetAscii()); // show the input text sprintf(String, "M%.3s", INPUTBOX_GetAscii()); // show the input text
UI_PrintStringSmall(String, x, 0, line + 1); UI_PrintStringSmallNormal(String, x, 0, line + 1);
} }
else if (IS_FREQ_CHANNEL(gEeprom.ScreenChannel[vfo_num])) else if (IS_FREQ_CHANNEL(gEeprom.ScreenChannel[vfo_num]))
{ // frequency mode { // frequency mode
// show the frequency band number // show the frequency band number
const unsigned int x = 2; const unsigned int x = 2;
char * buf = gEeprom.VfoInfo[vfo_num].pRX->Frequency < 100000000 ? "" : "+"; char * buf = gEeprom.VfoInfo[vfo_num].pRX->Frequency < _1GHz_in_KHz ? "" : "+";
sprintf(String, "F%u%s", 1 + gEeprom.ScreenChannel[vfo_num] - FREQ_CHANNEL_FIRST, buf); sprintf(String, "F%u%s", 1 + gEeprom.ScreenChannel[vfo_num] - FREQ_CHANNEL_FIRST, buf);
UI_PrintStringSmall(String, x, 0, line + 1); UI_PrintStringSmallNormal(String, x, 0, line + 1);
} }
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
else else
@@ -426,16 +461,16 @@ void UI_DisplayMain(void)
{ // user entering channel number { // user entering channel number
sprintf(String, "N%u%u", '0' + gInputBox[0], '0' + gInputBox[1]); sprintf(String, "N%u%u", '0' + gInputBox[0], '0' + gInputBox[1]);
} }
UI_PrintStringSmall(String, 7, 0, line + 1); UI_PrintStringSmallNormal(String, 7, 0, line + 1);
} }
#endif #endif
// ************ // ************
unsigned int state = VfoState[vfo_num]; enum VfoState_t state = VfoState[vfo_num];
#ifdef ENABLE_ALARM #ifdef ENABLE_ALARM
if (gCurrentFunction == FUNCTION_TRANSMIT && gAlarmState == ALARM_STATE_ALARM) { if (gCurrentFunction == FUNCTION_TRANSMIT && gAlarmState == ALARM_STATE_SITE_ALARM) {
if (activeTxVFO == vfo_num) if (activeTxVFO == vfo_num)
state = VFO_STATE_ALARM; state = VFO_STATE_ALARM;
} }
@@ -445,19 +480,18 @@ void UI_DisplayMain(void)
if (state != VFO_STATE_NORMAL) if (state != VFO_STATE_NORMAL)
{ {
const char *state_list[] = {"", "BUSY", "BAT LOW", "TX DISABLE", "TIMEOUT", "ALARM", "VOLT HIGH"}; if (state < ARRAY_SIZE(VfoStateStr))
if (state < ARRAY_SIZE(state_list)) UI_PrintString(VfoStateStr[state], 31, 0, line, 8);
UI_PrintString(state_list[state], 31, 0, line, 8);
} }
else if (gInputBoxIndex > 0 && IS_FREQ_CHANNEL(gEeprom.ScreenChannel[vfo_num]) && gEeprom.TX_VFO == vfo_num) else if (gInputBoxIndex > 0 && IS_FREQ_CHANNEL(gEeprom.ScreenChannel[vfo_num]) && gEeprom.TX_VFO == vfo_num)
{ // user entering a frequency { // user entering a frequency
const char * ascii = INPUTBOX_GetAscii(); const char * ascii = INPUTBOX_GetAscii();
bool isGigaF = frequency>=100000000; bool isGigaF = frequency>=_1GHz_in_KHz;
sprintf(String, "%.*s.%.3s", 3 + isGigaF, ascii, ascii + 3 + isGigaF); sprintf(String, "%.*s.%.3s", 3 + isGigaF, ascii, ascii + 3 + isGigaF);
#ifdef ENABLE_BIG_FREQ #ifdef ENABLE_BIG_FREQ
if(!isGigaF) { if(!isGigaF) {
// show the remaining 2 small frequency digits // show the remaining 2 small frequency digits
UI_PrintStringSmall(String + 7, 113, 0, line + 1); UI_PrintStringSmallNormal(String + 7, 113, 0, line + 1);
String[7] = 0; String[7] = 0;
// show the main large frequency digits // show the main large frequency digits
UI_DisplayFrequency(String, 32, line, false); UI_DisplayFrequency(String, 32, line, false);
@@ -485,14 +519,14 @@ void UI_DisplayMain(void)
// show the scan list assigment symbols // show the scan list assigment symbols
const ChannelAttributes_t att = gMR_ChannelAttributes[gEeprom.ScreenChannel[vfo_num]]; const ChannelAttributes_t att = gMR_ChannelAttributes[gEeprom.ScreenChannel[vfo_num]];
if (att.scanlist1) if (att.scanlist1)
memmove(p_line0 + 113, BITMAP_ScanList1, sizeof(BITMAP_ScanList1)); memcpy(p_line0 + 113, BITMAP_ScanList1, sizeof(BITMAP_ScanList1));
if (att.scanlist2) if (att.scanlist2)
memmove(p_line0 + 120, BITMAP_ScanList2, sizeof(BITMAP_ScanList2)); memcpy(p_line0 + 120, BITMAP_ScanList2, sizeof(BITMAP_ScanList2));
// compander symbol // compander symbol
#ifndef ENABLE_BIG_FREQ #ifndef ENABLE_BIG_FREQ
if (att.compander) if (att.compander)
memmove(p_line0 + 120 + LCD_WIDTH, BITMAP_compand, sizeof(BITMAP_compand)); memcpy(p_line0 + 120 + LCD_WIDTH, BITMAP_compand, sizeof(BITMAP_compand));
#else #else
// TODO: // find somewhere else to put the symbol // TODO: // find somewhere else to put the symbol
#endif #endif
@@ -502,9 +536,9 @@ void UI_DisplayMain(void)
case MDF_FREQUENCY: // show the channel frequency case MDF_FREQUENCY: // show the channel frequency
sprintf(String, "%3u.%05u", frequency / 100000, frequency % 100000); sprintf(String, "%3u.%05u", frequency / 100000, frequency % 100000);
#ifdef ENABLE_BIG_FREQ #ifdef ENABLE_BIG_FREQ
if(frequency < 100000000) { if(frequency < _1GHz_in_KHz) {
// show the remaining 2 small frequency digits // show the remaining 2 small frequency digits
UI_PrintStringSmall(String + 7, 113, 0, line + 1); UI_PrintStringSmallNormal(String + 7, 113, 0, line + 1);
String[7] = 0; String[7] = 0;
// show the main large frequency digits // show the main large frequency digits
UI_DisplayFrequency(String, 32, line, false); UI_DisplayFrequency(String, 32, line, false);
@@ -526,7 +560,7 @@ void UI_DisplayMain(void)
case MDF_NAME: // show the channel name case MDF_NAME: // show the channel name
case MDF_NAME_FREQ: // show the channel name and frequency case MDF_NAME_FREQ: // show the channel name and frequency
BOARD_fetchChannelName(String, gEeprom.ScreenChannel[vfo_num]); SETTINGS_FetchChannelName(String, gEeprom.ScreenChannel[vfo_num]);
if (String[0] == 0) if (String[0] == 0)
{ // no channel name, show the channel number instead { // no channel name, show the channel number instead
sprintf(String, "CH-%03u", gEeprom.ScreenChannel[vfo_num] + 1); sprintf(String, "CH-%03u", gEeprom.ScreenChannel[vfo_num] + 1);
@@ -536,14 +570,10 @@ void UI_DisplayMain(void)
UI_PrintString(String, 32, 0, line, 8); UI_PrintString(String, 32, 0, line, 8);
} }
else { else {
#ifdef ENABLE_SMALL_BOLD
UI_PrintStringSmallBold(String, 32 + 4, 0, line); UI_PrintStringSmallBold(String, 32 + 4, 0, line);
#else
UI_PrintStringSmall(String, 32 + 4, 0, line);
#endif
// show the channel frequency below the channel number/name // show the channel frequency below the channel number/name
sprintf(String, "%03u.%05u", frequency / 100000, frequency % 100000); sprintf(String, "%03u.%05u", frequency / 100000, frequency % 100000);
UI_PrintStringSmall(String, 32 + 4, 0, line + 1); UI_PrintStringSmallNormal(String, 32 + 4, 0, line + 1);
} }
break; break;
@@ -554,9 +584,9 @@ void UI_DisplayMain(void)
sprintf(String, "%3u.%05u", frequency / 100000, frequency % 100000); sprintf(String, "%3u.%05u", frequency / 100000, frequency % 100000);
#ifdef ENABLE_BIG_FREQ #ifdef ENABLE_BIG_FREQ
if(frequency < 100000000) { if(frequency < _1GHz_in_KHz) {
// show the remaining 2 small frequency digits // show the remaining 2 small frequency digits
UI_PrintStringSmall(String + 7, 113, 0, line + 1); UI_PrintStringSmallNormal(String + 7, 113, 0, line + 1);
String[7] = 0; String[7] = 0;
// show the main large frequency digits // show the main large frequency digits
UI_DisplayFrequency(String, 32, line, false); UI_DisplayFrequency(String, 32, line, false);
@@ -572,9 +602,9 @@ void UI_DisplayMain(void)
const ChannelAttributes_t att = gMR_ChannelAttributes[gEeprom.ScreenChannel[vfo_num]]; const ChannelAttributes_t att = gMR_ChannelAttributes[gEeprom.ScreenChannel[vfo_num]];
if (att.compander) if (att.compander)
#ifdef ENABLE_BIG_FREQ #ifdef ENABLE_BIG_FREQ
memmove(p_line0 + 120, BITMAP_compand, sizeof(BITMAP_compand)); memcpy(p_line0 + 120, BITMAP_compand, sizeof(BITMAP_compand));
#else #else
memmove(p_line0 + 120 + LCD_WIDTH, BITMAP_compand, sizeof(BITMAP_compand)); memcpy(p_line0 + 120 + LCD_WIDTH, BITMAP_compand, sizeof(BITMAP_compand));
#endif #endif
} }
} }
@@ -584,7 +614,7 @@ void UI_DisplayMain(void)
{ // show the TX/RX level { // show the TX/RX level
uint8_t Level = 0; uint8_t Level = 0;
if (mode == 1) if (mode == VFO_MODE_TX)
{ // TX power level { // TX power level
switch (gRxVfo->OUTPUT_POWER) switch (gRxVfo->OUTPUT_POWER)
{ {
@@ -594,7 +624,7 @@ void UI_DisplayMain(void)
} }
} }
else else
if (mode == 2) if (mode == VFO_MODE_RX)
{ // RX signal level { // RX signal level
#ifndef ENABLE_RSSI_BAR #ifndef ENABLE_RSSI_BAR
// bar graph // bar graph
@@ -609,13 +639,14 @@ void UI_DisplayMain(void)
// ************ // ************
String[0] = '\0'; String[0] = '\0';
const VFO_Info_t *vfoInfo = &gEeprom.VfoInfo[vfo_num];
// show the modulation symbol // show the modulation symbol
const char * s = ""; const char * s = "";
const ModulationMode_t mod = gEeprom.VfoInfo[vfo_num].Modulation; const ModulationMode_t mod = vfoInfo->Modulation;
switch (mod){ switch (mod){
case MODULATION_FM: { case MODULATION_FM: {
const FREQ_Config_t *pConfig = (mode == 1) ? gEeprom.VfoInfo[vfo_num].pTX : gEeprom.VfoInfo[vfo_num].pRX; const FREQ_Config_t *pConfig = (mode == VFO_MODE_TX) ? vfoInfo->pTX : vfoInfo->pRX;
const unsigned int code_type = pConfig->CodeType; const unsigned int code_type = pConfig->CodeType;
const char *code_list[] = {"", "CT", "DCS", "DCR"}; const char *code_list[] = {"", "CT", "DCS", "DCR"};
if (code_type < ARRAY_SIZE(code_list)) if (code_type < ARRAY_SIZE(code_list))
@@ -626,57 +657,49 @@ void UI_DisplayMain(void)
s = gModulationStr[mod]; s = gModulationStr[mod];
break; break;
} }
UI_PrintStringSmall(s, LCD_WIDTH + 24, 0, line + 1); UI_PrintStringSmallNormal(s, LCD_WIDTH + 24, 0, line + 1);
if (state == VFO_STATE_NORMAL || state == VFO_STATE_ALARM) if (state == VFO_STATE_NORMAL || state == VFO_STATE_ALARM)
{ // show the TX power { // show the TX power
const char pwr_list[] = "LMH"; const char pwr_list[][2] = {"L","M","H"};
const unsigned int i = gEeprom.VfoInfo[vfo_num].OUTPUT_POWER; int i = vfoInfo->OUTPUT_POWER % 3;
String[0] = (i < ARRAY_SIZE(pwr_list)) ? pwr_list[i] : '\0'; UI_PrintStringSmallNormal(pwr_list[i], LCD_WIDTH + 46, 0, line + 1);
String[1] = '\0';
UI_PrintStringSmall(String, LCD_WIDTH + 46, 0, line + 1);
} }
if (gEeprom.VfoInfo[vfo_num].freq_config_RX.Frequency != gEeprom.VfoInfo[vfo_num].freq_config_TX.Frequency) if (vfoInfo->freq_config_RX.Frequency != vfoInfo->freq_config_TX.Frequency)
{ // show the TX offset symbol { // show the TX offset symbol
const char dir_list[] = "\0+-"; const char dir_list[][2] = {"", "+", "-"};
const unsigned int i = gEeprom.VfoInfo[vfo_num].TX_OFFSET_FREQUENCY_DIRECTION; int i = vfoInfo->TX_OFFSET_FREQUENCY_DIRECTION % 3;
String[0] = (i < sizeof(dir_list)) ? dir_list[i] : '?'; UI_PrintStringSmallNormal(dir_list[i], LCD_WIDTH + 54, 0, line + 1);
String[1] = '\0';
UI_PrintStringSmall(String, LCD_WIDTH + 54, 0, line + 1);
} }
// show the TX/RX reverse symbol // show the TX/RX reverse symbol
if (gEeprom.VfoInfo[vfo_num].FrequencyReverse) if (vfoInfo->FrequencyReverse)
UI_PrintStringSmall("R", LCD_WIDTH + 62, 0, line + 1); UI_PrintStringSmallNormal("R", LCD_WIDTH + 62, 0, line + 1);
{ // show the narrow band symbol if (vfoInfo->CHANNEL_BANDWIDTH == BANDWIDTH_NARROW)
String[0] = '\0'; UI_PrintStringSmallNormal("N", LCD_WIDTH + 70, 0, line + 1);
if (gEeprom.VfoInfo[vfo_num].CHANNEL_BANDWIDTH == BANDWIDTH_NARROW)
{
String[0] = 'N';
String[1] = '\0';
}
UI_PrintStringSmall(String, LCD_WIDTH + 70, 0, line + 1);
}
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
// show the DTMF decoding symbol // show the DTMF decoding symbol
if (gEeprom.VfoInfo[vfo_num].DTMF_DECODING_ENABLE || gSetting_KILLED) if (vfoInfo->DTMF_DECODING_ENABLE || gSetting_KILLED)
UI_PrintStringSmall("DTMF", LCD_WIDTH + 78, 0, line + 1); UI_PrintStringSmallNormal("DTMF", LCD_WIDTH + 78, 0, line + 1);
#endif #endif
// show the audio scramble symbol // show the audio scramble symbol
if (gEeprom.VfoInfo[vfo_num].SCRAMBLING_TYPE > 0 && gSetting_ScrambleEnable) if (vfoInfo->SCRAMBLING_TYPE > 0 && gSetting_ScrambleEnable)
UI_PrintStringSmall("SCR", LCD_WIDTH + 106, 0, line + 1); UI_PrintStringSmallNormal("SCR", LCD_WIDTH + 106, 0, line + 1);
} }
#ifdef ENABLE_AGC_SHOW_DATA
center_line = CENTER_LINE_IN_USE;
UI_MAIN_PrintAGC(false);
#endif
if (center_line == CENTER_LINE_NONE) if (center_line == CENTER_LINE_NONE)
{ // we're free to use the middle line { // we're free to use the middle line
const bool rx = (gCurrentFunction == FUNCTION_RECEIVE || const bool rx = FUNCTION_IsRx();
gCurrentFunction == FUNCTION_MONITOR ||
gCurrentFunction == FUNCTION_INCOMING);
#ifdef ENABLE_AUDIO_BAR #ifdef ENABLE_AUDIO_BAR
if (gSetting_mic_bar && gCurrentFunction == FUNCTION_TRANSMIT) { if (gSetting_mic_bar && gCurrentFunction == FUNCTION_TRANSMIT) {
@@ -698,7 +721,7 @@ void UI_DisplayMain(void)
center_line = CENTER_LINE_AM_FIX_DATA; center_line = CENTER_LINE_AM_FIX_DATA;
AM_fix_print_data(gEeprom.RX_VFO, String); AM_fix_print_data(gEeprom.RX_VFO, String);
UI_PrintStringSmall(String, 2, 0, 3); UI_PrintStringSmallNormal(String, 2, 0, 3);
} }
else else
#endif #endif
@@ -706,7 +729,7 @@ void UI_DisplayMain(void)
#ifdef ENABLE_RSSI_BAR #ifdef ENABLE_RSSI_BAR
if (rx) { if (rx) {
center_line = CENTER_LINE_RSSI; center_line = CENTER_LINE_RSSI;
DisplayRSSIBar(gCurrentRSSI[gEeprom.RX_VFO], false); DisplayRSSIBar(false);
} }
else else
#endif #endif
@@ -727,9 +750,8 @@ void UI_DisplayMain(void)
center_line = CENTER_LINE_DTMF_DEC; center_line = CENTER_LINE_DTMF_DEC;
strcpy(String, "DTMF "); sprintf(String, "DTMF %s", gDTMF_RX_live + idx);
strcat(String, gDTMF_RX_live + idx); UI_PrintStringSmallNormal(String, 2, 0, 3);
UI_PrintStringSmall(String, 2, 0, 3);
} }
#else #else
if (gSetting_live_DTMF_decoder && gDTMF_RX_index > 0) if (gSetting_live_DTMF_decoder && gDTMF_RX_index > 0)
@@ -743,9 +765,8 @@ void UI_DisplayMain(void)
center_line = CENTER_LINE_DTMF_DEC; center_line = CENTER_LINE_DTMF_DEC;
strcpy(String, "DTMF "); sprintf(String, "DTMF %s", gDTMF_RX_live + idx);
strcat(String, gDTMF_RX + idx); UI_PrintStringSmallNormal(String, 2, 0, 3);
UI_PrintStringSmall(String, 2, 0, 3);
} }
#endif #endif
@@ -764,7 +785,7 @@ void UI_DisplayMain(void)
sprintf(String, "Charge %u.%02uV %u%%", sprintf(String, "Charge %u.%02uV %u%%",
gBatteryVoltageAverage / 100, gBatteryVoltageAverage % 100, gBatteryVoltageAverage / 100, gBatteryVoltageAverage % 100,
BATTERY_VoltsToPercent(gBatteryVoltageAverage)); BATTERY_VoltsToPercent(gBatteryVoltageAverage));
UI_PrintStringSmall(String, 2, 0, 3); UI_PrintStringSmallNormal(String, 2, 0, 3);
} }
#endif #endif
} }

View File

@@ -26,13 +26,24 @@ enum center_line_t {
CENTER_LINE_DTMF_DEC, CENTER_LINE_DTMF_DEC,
CENTER_LINE_CHARGE_DATA CENTER_LINE_CHARGE_DATA
}; };
enum Vfo_txtr_mode{
VFO_MODE_NONE = 0,
VFO_MODE_TX = 1,
VFO_MODE_RX = 2,
};
typedef enum center_line_t center_line_t; typedef enum center_line_t center_line_t;
extern center_line_t center_line; extern center_line_t center_line;
extern const int8_t dBmCorrTable[7];
void UI_DisplayAudioBar(void); void UI_DisplayAudioBar(void);
void UI_UpdateRSSI(const int16_t rssi, const int vfo); void UI_MAIN_TimeSlice500ms(void);
void UI_DisplayMain(void); void UI_DisplayMain(void);
#ifdef ENABLE_AGC_SHOW_DATA
void UI_MAIN_PrintAGC(bool force);
#endif #endif
#endif

251
ui/menu.c
View File

@@ -15,26 +15,27 @@
*/ */
#include <string.h> #include <string.h>
#include <stdlib.h> // abs() #include <stdlib.h>
#include "../app/dtmf.h"
#include "../app/menu.h"
#include "../bitmaps.h"
#include "../board.h"
#include "../dcs.h"
#include "../driver/backlight.h"
#include "../driver/bk4819.h"
#include "../driver/eeprom.h"
#include "../driver/st7565.h"
#include "../external/printf/printf.h"
#include "../frequencies.h"
#include "../helper/battery.h"
#include "../misc.h"
#include "../settings.h"
#include "helper.h"
#include "inputbox.h"
#include "menu.h"
#include "ui.h"
#include "app/dtmf.h"
#include "app/menu.h"
#include "bitmaps.h"
#include "board.h"
#include "dcs.h"
#include "driver/backlight.h"
#include "driver/bk4819.h"
#include "driver/eeprom.h" // EEPROM_ReadBuffer()
#include "driver/st7565.h"
#include "external/printf/printf.h"
#include "frequencies.h"
#include "helper/battery.h"
#include "misc.h"
#include "settings.h"
#include "ui/helper.h"
#include "ui/inputbox.h"
#include "ui/menu.h"
#include "ui/ui.h"
const t_menu_item MenuList[] = const t_menu_item MenuList[] =
{ {
@@ -65,7 +66,6 @@ const t_menu_item MenuList[] =
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
{"NOAA-S", VOICE_ID_INVALID, MENU_NOAA_S }, {"NOAA-S", VOICE_ID_INVALID, MENU_NOAA_S },
#endif #endif
{"F1Shrt", VOICE_ID_INVALID, MENU_F1SHRT }, {"F1Shrt", VOICE_ID_INVALID, MENU_F1SHRT },
{"F1Long", VOICE_ID_INVALID, MENU_F1LONG }, {"F1Long", VOICE_ID_INVALID, MENU_F1LONG },
{"F2Shrt", VOICE_ID_INVALID, MENU_F2SHRT }, {"F2Shrt", VOICE_ID_INVALID, MENU_F2SHRT },
@@ -117,9 +117,6 @@ const t_menu_item MenuList[] =
#ifdef ENABLE_AM_FIX #ifdef ENABLE_AM_FIX
{"AM Fix", VOICE_ID_INVALID, MENU_AM_FIX }, {"AM Fix", VOICE_ID_INVALID, MENU_AM_FIX },
#endif #endif
#ifdef ENABLE_AM_FIX_TEST1
{"AM FT1", VOICE_ID_INVALID, MENU_AM_FIX_TEST1 },
#endif
#ifdef ENABLE_VOX #ifdef ENABLE_VOX
{"VOX", VOICE_ID_VOX, MENU_VOX }, {"VOX", VOICE_ID_VOX, MENU_VOX },
#endif #endif
@@ -197,7 +194,7 @@ const char gSubMenu_TOT[][7] =
"15 min" "15 min"
}; };
const char* gSubMenu_RXMode[] = const char* const gSubMenu_RXMode[] =
{ {
"MAIN\nONLY", // TX and RX on main only "MAIN\nONLY", // TX and RX on main only
"DUAL RX\nRESPOND", // Watch both and respond "DUAL RX\nRESPOND", // Watch both and respond
@@ -221,7 +218,7 @@ const char gSubMenu_SC_REV[][8] =
"STOP" "STOP"
}; };
const char* gSubMenu_MDF[] = const char* const gSubMenu_MDF[] =
{ {
"FREQ", "FREQ",
"CHANNEL\nNUMBER", "CHANNEL\nNUMBER",
@@ -247,7 +244,7 @@ const char gSubMenu_D_RSP[][11] =
}; };
#endif #endif
const char* gSubMenu_PTT_ID[] = const char* const gSubMenu_PTT_ID[] =
{ {
"OFF", "OFF",
"UP CODE", "UP CODE",
@@ -277,7 +274,7 @@ const char gSubMenu_RESET[][4] =
"ALL" "ALL"
}; };
const char * gSubMenu_F_LOCK[] = const char * const gSubMenu_F_LOCK[] =
{ {
"DEFAULT+\n137-174\n400-470", "DEFAULT+\n137-174\n400-470",
"FCC HAM\n144-148\n420-450", "FCC HAM\n144-148\n420-450",
@@ -309,16 +306,6 @@ const char gSubMenu_RX_TX[][6] =
"TX/RX" "TX/RX"
}; };
#ifdef ENABLE_AM_FIX_TEST1
const char gSubMenu_AM_fix_test1[][8] =
{
"LNA-S 0",
"LNA-S 1",
"LNA-S 2",
"LNA-S 3"
};
#endif
const char gSubMenu_BAT_TXT[][8] = const char gSubMenu_BAT_TXT[][8] =
{ {
"NONE", "NONE",
@@ -347,10 +334,12 @@ const char gSubMenu_SCRAMBLER[][7] =
"3500Hz" "3500Hz"
}; };
const t_sidefunction SIDEFUNCTIONS[] = const t_sidefunction gSubMenu_SIDEFUNCTIONS[] =
{ {
{"NONE", ACTION_OPT_NONE}, {"NONE", ACTION_OPT_NONE},
#ifdef ENABLE_FLASHLIGHT
{"FLASH\nLIGHT", ACTION_OPT_FLASHLIGHT}, {"FLASH\nLIGHT", ACTION_OPT_FLASHLIGHT},
#endif
{"POWER", ACTION_OPT_POWER}, {"POWER", ACTION_OPT_POWER},
{"MONITOR", ACTION_OPT_MONITOR}, {"MONITOR", ACTION_OPT_MONITOR},
{"SCAN", ACTION_OPT_SCAN}, {"SCAN", ACTION_OPT_SCAN},
@@ -373,16 +362,19 @@ const t_sidefunction SIDEFUNCTIONS[] =
#ifdef ENABLE_BLMIN_TMP_OFF #ifdef ENABLE_BLMIN_TMP_OFF
{"BLMIN\nTMP OFF", ACTION_OPT_BLMIN_TMP_OFF}, //BackLight Minimum Temporay OFF {"BLMIN\nTMP OFF", ACTION_OPT_BLMIN_TMP_OFF}, //BackLight Minimum Temporay OFF
#endif #endif
#ifdef ENABLE_SPECTRUM
{"SPECTRUM", ACTION_OPT_SPECTRUM}
#endif
}; };
const t_sidefunction* gSubMenu_SIDEFUNCTIONS = SIDEFUNCTIONS;
const uint8_t gSubMenu_SIDEFUNCTIONS_size = ARRAY_SIZE(SIDEFUNCTIONS); const uint8_t gSubMenu_SIDEFUNCTIONS_size = ARRAY_SIZE(gSubMenu_SIDEFUNCTIONS);
bool gIsInSubMenu; bool gIsInSubMenu;
uint8_t gMenuCursor; uint8_t gMenuCursor;
int UI_MENU_GetCurrentMenuId() { int UI_MENU_GetCurrentMenuId() {
if(gMenuCursor < ARRAY_SIZE(MenuList)) if(gMenuCursor < ARRAY_SIZE(MenuList))
return MenuList[gMenuCursor].menu_id; return MenuList[gMenuCursor].menu_id;
else
return MenuList[ARRAY_SIZE(MenuList)-1].menu_id; return MenuList[ARRAY_SIZE(MenuList)-1].menu_id;
} }
@@ -413,12 +405,10 @@ void UI_DisplayMenu(void)
char Contact[16]; char Contact[16];
#endif #endif
// clear the screen buffer UI_DisplayClear();
memset(gFrameBuffer, 0, sizeof(gFrameBuffer));
#if 0 #ifndef ENABLE_CUSTOM_MENU_LAYOUT
// original menu layout // original menu layout
for (i = 0; i < 3; i++) for (i = 0; i < 3; i++)
if (gMenuCursor > 0 || i > 0) if (gMenuCursor > 0 || i > 0)
if ((gMenuListCount - 1) != gMenuCursor || i != 2) if ((gMenuListCount - 1) != gMenuCursor || i != 2)
@@ -437,28 +427,26 @@ void UI_DisplayMenu(void)
// draw the little sub-menu triangle marker // draw the little sub-menu triangle marker
if (gIsInSubMenu) if (gIsInSubMenu)
memmove(gFrameBuffer[0] + (8 * menu_list_width) + 1, BITMAP_CurrentIndicator, sizeof(BITMAP_CurrentIndicator)); memcpy(gFrameBuffer[0] + (8 * menu_list_width) + 1, BITMAP_CurrentIndicator, sizeof(BITMAP_CurrentIndicator));
// draw the menu index number/count // draw the menu index number/count
sprintf(String, "%2u.%u", 1 + gMenuCursor, gMenuListCount); sprintf(String, "%2u.%u", 1 + gMenuCursor, gMenuListCount);
UI_PrintStringSmall(String, 2, 0, 6);
#else UI_PrintStringSmallNormal(String, 2, 0, 6);
#else
{ // new menu layout .. experimental & unfinished { // new menu layout .. experimental & unfinished
const int menu_index = gMenuCursor; // current selected menu item const int menu_index = gMenuCursor; // current selected menu item
i = 1; i = 1;
if (!gIsInSubMenu) if (!gIsInSubMenu) {
{
while (i < 2) while (i < 2)
{ // leading menu items - small text { // leading menu items - small text
const int k = menu_index + i - 2; const int k = menu_index + i - 2;
if (k < 0) if (k < 0)
UI_PrintStringSmall(MenuList[gMenuListCount + k].name, 0, 0, i); // wrap-a-round UI_PrintStringSmallNormal(MenuList[gMenuListCount + k].name, 0, 0, i); // wrap-a-round
else else if (k >= 0 && k < (int)gMenuListCount)
if (k >= 0 && k < (int)gMenuListCount) UI_PrintStringSmallNormal(MenuList[k].name, 0, 0, i);
UI_PrintStringSmall(MenuList[k].name, 0, 0, i);
i++; i++;
} }
@@ -471,27 +459,24 @@ void UI_DisplayMenu(void)
{ // trailing menu item - small text { // trailing menu item - small text
const int k = menu_index + i - 2; const int k = menu_index + i - 2;
if (k >= 0 && k < (int)gMenuListCount) if (k >= 0 && k < (int)gMenuListCount)
UI_PrintStringSmall(MenuList[k].name, 0, 0, 1 + i); UI_PrintStringSmallNormal(MenuList[k].name, 0, 0, 1 + i);
else else if (k >= (int)gMenuListCount)
if (k >= (int)gMenuListCount) UI_PrintStringSmallNormal(MenuList[gMenuListCount - k].name, 0, 0, 1 + i); // wrap-a-round
UI_PrintStringSmall(MenuList[gMenuListCount - k].name, 0, 0, 1 + i); // wrap-a-round
i++; i++;
} }
// draw the menu index number/count // draw the menu index number/count
sprintf(String, "%2u.%u", 1 + gMenuCursor, gMenuListCount); sprintf(String, "%2u.%u", 1 + gMenuCursor, gMenuListCount);
UI_PrintStringSmall(String, 2, 0, 6); UI_PrintStringSmallNormal(String, 2, 0, 6);
} }
else else if (menu_index >= 0 && menu_index < (int)gMenuListCount)
if (menu_index >= 0 && menu_index < (int)gMenuListCount)
{ // current menu item { // current menu item
strcpy(String, MenuList[menu_index].name);
// strcat(String, ":"); // strcat(String, ":");
UI_PrintString(String, 0, 0, 0, 8); UI_PrintString(MenuList[menu_index].name, 0, 0, 0, 8);
// UI_PrintStringSmall(String, 0, 0, 0); // UI_PrintStringSmallNormal(String, 0, 0, 0);
} }
} }
#endif #endif
// ************** // **************
@@ -499,6 +484,12 @@ void UI_DisplayMenu(void)
bool already_printed = false; bool already_printed = false;
/* Brightness is set to max in some entries of this menu. Return it to the configured brightness
level the "next" time we enter here.I.e., when we move from one menu to another.
It also has to be set back to max when pressing the Exit key. */
BACKLIGHT_TurnOn();
switch (UI_MENU_GetCurrentMenuId()) switch (UI_MENU_GetCurrentMenuId())
{ {
case MENU_SQL: case MENU_SQL:
@@ -595,7 +586,8 @@ void UI_DisplayMenu(void)
case MENU_ABR: case MENU_ABR:
strcpy(String, gSubMenu_BACKLIGHT[gSubMenuSelection]); strcpy(String, gSubMenu_BACKLIGHT[gSubMenuSelection]);
BACKLIGHT_SetBrightness(-1); if(BACKLIGHT_GetBrightness() < 4)
BACKLIGHT_SetBrightness(4);
break; break;
case MENU_ABR_MIN: case MENU_ABR_MIN:
@@ -603,21 +595,14 @@ void UI_DisplayMenu(void)
sprintf(String, "%d", gSubMenuSelection); sprintf(String, "%d", gSubMenuSelection);
if(gIsInSubMenu) if(gIsInSubMenu)
BACKLIGHT_SetBrightness(gSubMenuSelection); BACKLIGHT_SetBrightness(gSubMenuSelection);
else else if(BACKLIGHT_GetBrightness() < 4)
BACKLIGHT_SetBrightness(-1); BACKLIGHT_SetBrightness(4);
break; break;
case MENU_AM: case MENU_AM:
strcpy(String, gModulationStr[gSubMenuSelection]); strcpy(String, gModulationStr[gSubMenuSelection]);
break; break;
#ifdef ENABLE_AM_FIX_TEST1
case MENU_AM_FIX_TEST1:
strcpy(String, gSubMenu_AM_fix_test1[gSubMenuSelection]);
// gSetting_AM_fix = gSubMenuSelection;
break;
#endif
case MENU_AUTOLK: case MENU_AUTOLK:
strcpy(String, (gSubMenuSelection == 0) ? "OFF" : "AUTO"); strcpy(String, (gSubMenuSelection == 0) ? "OFF" : "AUTO");
break; break;
@@ -662,11 +647,13 @@ void UI_DisplayMenu(void)
if (valid && !gAskForConfirmation) if (valid && !gAskForConfirmation)
{ // show the frequency so that the user knows the channels frequency { // show the frequency so that the user knows the channels frequency
const uint32_t frequency = BOARD_fetchChannelFrequency(gSubMenuSelection); const uint32_t frequency = SETTINGS_FetchChannelFrequency(gSubMenuSelection);
sprintf(String, "%u.%05u", frequency / 100000, frequency % 100000); sprintf(String, "%u.%05u", frequency / 100000, frequency % 100000);
UI_PrintString(String, menu_item_x1, menu_item_x2, 4, 8); UI_PrintString(String, menu_item_x1, menu_item_x2, 4, 8);
} }
SETTINGS_FetchChannelName(String, gSubMenuSelection);
UI_PrintString(String[0] ? String : "--", menu_item_x1, menu_item_x2, 2, 8);
already_printed = true; already_printed = true;
break; break;
} }
@@ -680,29 +667,25 @@ void UI_DisplayMenu(void)
if (valid) if (valid)
{ {
const uint32_t frequency = BOARD_fetchChannelFrequency(gSubMenuSelection); const uint32_t frequency = SETTINGS_FetchChannelFrequency(gSubMenuSelection);
if (!gIsInSubMenu || edit_index < 0) if (!gIsInSubMenu || edit_index < 0)
{ // show the channel name { // show the channel name
BOARD_fetchChannelName(String, gSubMenuSelection); SETTINGS_FetchChannelName(String, gSubMenuSelection);
if (String[0] == 0) char *pPrintStr = String[0] ? String : "--";
strcpy(String, "--"); UI_PrintString(pPrintStr, menu_item_x1, menu_item_x2, 2, 8);
UI_PrintString(String, menu_item_x1, menu_item_x2, 2, 8);
} }
else else
{ // show the channel name being edited { // show the channel name being edited
UI_PrintString(edit, menu_item_x1, 0, 2, 8); UI_PrintString(edit, menu_item_x1, 0, 2, 8);
if (edit_index < 10) if (edit_index < 10)
UI_PrintString( "^", menu_item_x1 + (8 * edit_index), 0, 4, 8); // show the cursor UI_PrintString("^", menu_item_x1 + (8 * edit_index), 0, 4, 8); // show the cursor
} }
if (!gAskForConfirmation) if (!gAskForConfirmation)
{ // show the frequency so that the user knows the channels frequency { // show the frequency so that the user knows the channels frequency
sprintf(String, "%u.%05u", frequency / 100000, frequency % 100000); sprintf(String, "%u.%05u", frequency / 100000, frequency % 100000);
if (!gIsInSubMenu || edit_index < 0) UI_PrintString(String, menu_item_x1, menu_item_x2, 4 + (gIsInSubMenu && edit_index >= 0), 8);
UI_PrintString(String, menu_item_x1, menu_item_x2, 4, 8);
else
UI_PrintString(String, menu_item_x1, menu_item_x2, 5, 8);
} }
} }
@@ -762,11 +745,11 @@ void UI_DisplayMenu(void)
break; break;
#endif #endif
case MENU_UPCODE: case MENU_UPCODE:
strcpy(String, gEeprom.DTMF_UP_CODE); sprintf(String, "%.8s\n%.8s", gEeprom.DTMF_UP_CODE, gEeprom.DTMF_UP_CODE + 8);
break; break;
case MENU_DWCODE: case MENU_DWCODE:
strcpy(String, gEeprom.DTMF_DOWN_CODE); sprintf(String, "%.8s\n%.8s", gEeprom.DTMF_DOWN_CODE, gEeprom.DTMF_DOWN_CODE + 8);
break; break;
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
@@ -796,7 +779,7 @@ void UI_DisplayMenu(void)
if (!gIsDtmfContactValid) if (!gIsDtmfContactValid)
strcpy(String, "NULL"); strcpy(String, "NULL");
else else
memmove(String, Contact, 8); memcpy(String, Contact, 8);
break; break;
#endif #endif
@@ -898,7 +881,7 @@ void UI_DisplayMenu(void)
for (i = 0; i < len && lines > 0; lines--) for (i = 0; i < len && lines > 0; lines--)
{ {
if (small) if (small)
UI_PrintStringSmall(String + i, menu_item_x1, menu_item_x2, y); UI_PrintStringSmallNormal(String + i, menu_item_x1, menu_item_x2, y);
else else
UI_PrintString(String + i, menu_item_x1, menu_item_x2, y, 8); UI_PrintString(String + i, menu_item_x1, menu_item_x2, y, 8);
@@ -918,79 +901,47 @@ void UI_DisplayMenu(void)
if (UI_MENU_GetCurrentMenuId() == MENU_SLIST1 || UI_MENU_GetCurrentMenuId() == MENU_SLIST2) if (UI_MENU_GetCurrentMenuId() == MENU_SLIST1 || UI_MENU_GetCurrentMenuId() == MENU_SLIST2)
{ {
i = (UI_MENU_GetCurrentMenuId() == MENU_SLIST1) ? 0 : 1; i = (UI_MENU_GetCurrentMenuId() == MENU_SLIST1) ? 0 : 1;
char *pPrintStr = String;
// if (gSubMenuSelection == 0xFF) if (gSubMenuSelection < 0) {
if (gSubMenuSelection < 0) pPrintStr = "NULL";
strcpy(String, "NULL"); } else {
else
UI_GenerateChannelStringEx(String, true, gSubMenuSelection); UI_GenerateChannelStringEx(String, true, gSubMenuSelection);
pPrintStr = String;
// if (gSubMenuSelection == 0xFF || !gEeprom.SCAN_LIST_ENABLED[i])
if (gSubMenuSelection < 0 || !gEeprom.SCAN_LIST_ENABLED[i])
{
// channel number
UI_PrintString(String, menu_item_x1, menu_item_x2, 0, 8);
// channel name
BOARD_fetchChannelName(String, gSubMenuSelection);
if (String[0] == 0)
strcpy(String, "--");
UI_PrintString(String, menu_item_x1, menu_item_x2, 2, 8);
} }
else
{
// channel number // channel number
UI_PrintString(String, menu_item_x1, menu_item_x2, 0, 8); UI_PrintString(pPrintStr, menu_item_x1, menu_item_x2, 0, 8);
// channel name SETTINGS_FetchChannelName(String, gSubMenuSelection);
BOARD_fetchChannelName(String, gSubMenuSelection); pPrintStr = String[0] ? String : "--";
if (String[0] == 0)
strcpy(String, "--");
UI_PrintStringSmall(String, menu_item_x1, menu_item_x2, 2);
if (IS_MR_CHANNEL(gEeprom.SCANLIST_PRIORITY_CH1[i])) // channel name and scan-list
{ if (gSubMenuSelection < 0 || !gEeprom.SCAN_LIST_ENABLED[i]) {
sprintf(String, "PRI1:%u", gEeprom.SCANLIST_PRIORITY_CH1[i] + 1); UI_PrintString(pPrintStr, menu_item_x1, menu_item_x2, 2, 8);
} else {
UI_PrintStringSmallNormal(pPrintStr, menu_item_x1, menu_item_x2, 2);
if (IS_MR_CHANNEL(gEeprom.SCANLIST_PRIORITY_CH1[i])) {
sprintf(String, "PRI%d:%u", 1, gEeprom.SCANLIST_PRIORITY_CH1[i] + 1);
UI_PrintString(String, menu_item_x1, menu_item_x2, 3, 8); UI_PrintString(String, menu_item_x1, menu_item_x2, 3, 8);
} }
if (IS_MR_CHANNEL(gEeprom.SCANLIST_PRIORITY_CH2[i])) if (IS_MR_CHANNEL(gEeprom.SCANLIST_PRIORITY_CH2[i])) {
{ sprintf(String, "PRI%d:%u", 2, gEeprom.SCANLIST_PRIORITY_CH2[i] + 1);
sprintf(String, "PRI2:%u", gEeprom.SCANLIST_PRIORITY_CH2[i] + 1);
UI_PrintString(String, menu_item_x1, menu_item_x2, 5, 8); UI_PrintString(String, menu_item_x1, menu_item_x2, 5, 8);
} }
} }
} }
if (UI_MENU_GetCurrentMenuId() == MENU_MEM_CH ||
UI_MENU_GetCurrentMenuId() == MENU_DEL_CH ||
UI_MENU_GetCurrentMenuId() == MENU_1_CALL)
{ // display the channel name
char s[11];
BOARD_fetchChannelName(s, gSubMenuSelection);
if (s[0] == 0)
strcpy(s, "--");
UI_PrintString(s, menu_item_x1, menu_item_x2, 2, 8);
}
if ((UI_MENU_GetCurrentMenuId() == MENU_R_CTCS || UI_MENU_GetCurrentMenuId() == MENU_R_DCS) && gCssBackgroundScan) if ((UI_MENU_GetCurrentMenuId() == MENU_R_CTCS || UI_MENU_GetCurrentMenuId() == MENU_R_DCS) && gCssBackgroundScan)
UI_PrintString("SCAN", menu_item_x1, menu_item_x2, 4, 8); UI_PrintString("SCAN", menu_item_x1, menu_item_x2, 4, 8);
if (UI_MENU_GetCurrentMenuId() == MENU_UPCODE)
if (strlen(gEeprom.DTMF_UP_CODE) > 8)
UI_PrintString(gEeprom.DTMF_UP_CODE + 8, menu_item_x1, menu_item_x2, 4, 8);
if (UI_MENU_GetCurrentMenuId() == MENU_DWCODE)
if (strlen(gEeprom.DTMF_DOWN_CODE) > 8)
UI_PrintString(gEeprom.DTMF_DOWN_CODE + 8, menu_item_x1, menu_item_x2, 4, 8);
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
if (UI_MENU_GetCurrentMenuId() == MENU_D_LIST && gIsDtmfContactValid) if (UI_MENU_GetCurrentMenuId() == MENU_D_LIST && gIsDtmfContactValid) {
{
Contact[11] = 0; Contact[11] = 0;
memmove(&gDTMF_ID, Contact + 8, 4); memcpy(&gDTMF_ID, Contact + 8, 4);
sprintf(String, "ID:%s", Contact + 8); sprintf(String, "ID:%4s", gDTMF_ID);
UI_PrintString(String, menu_item_x1, menu_item_x2, 4, 8); UI_PrintString(String, menu_item_x1, menu_item_x2, 4, 8);
} }
#endif #endif
@@ -1002,11 +953,9 @@ void UI_DisplayMenu(void)
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
|| UI_MENU_GetCurrentMenuId() == MENU_D_LIST || UI_MENU_GetCurrentMenuId() == MENU_D_LIST
#endif #endif
) ) {
{
sprintf(String, "%2d", gSubMenuSelection); sprintf(String, "%2d", gSubMenuSelection);
UI_PrintStringSmall(String, 105, 0, 0); UI_PrintStringSmallNormal(String, 105, 0, 0);
} }
if ((UI_MENU_GetCurrentMenuId() == MENU_RESET || if ((UI_MENU_GetCurrentMenuId() == MENU_RESET ||
@@ -1014,8 +963,8 @@ void UI_DisplayMenu(void)
UI_MENU_GetCurrentMenuId() == MENU_MEM_NAME || UI_MENU_GetCurrentMenuId() == MENU_MEM_NAME ||
UI_MENU_GetCurrentMenuId() == MENU_DEL_CH) && gAskForConfirmation) UI_MENU_GetCurrentMenuId() == MENU_DEL_CH) && gAskForConfirmation)
{ // display confirmation { // display confirmation
strcpy(String, (gAskForConfirmation == 1) ? "SURE?" : "WAIT!"); char *pPrintStr = (gAskForConfirmation == 1) ? "SURE?" : "WAIT!";
UI_PrintString(String, menu_item_x1, menu_item_x2, 5, 8); UI_PrintString(pPrintStr, menu_item_x1, menu_item_x2, 5, 8);
} }
ST7565_BlitFullScreen(); ST7565_BlitFullScreen();

View File

@@ -104,9 +104,6 @@ enum
#ifdef ENABLE_AM_FIX #ifdef ENABLE_AM_FIX
MENU_AM_FIX, MENU_AM_FIX,
#endif #endif
#ifdef ENABLE_AM_FIX_TEST1
MENU_AM_FIX_TEST1,
#endif
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
MENU_NOAA_S, MENU_NOAA_S,
#endif #endif
@@ -138,36 +135,33 @@ extern const char gSubMenu_W_N[2][7];
extern const char gSubMenu_OFF_ON[2][4]; extern const char gSubMenu_OFF_ON[2][4];
extern const char gSubMenu_SAVE[5][4]; extern const char gSubMenu_SAVE[5][4];
extern const char gSubMenu_TOT[11][7]; extern const char gSubMenu_TOT[11][7];
extern const char* gSubMenu_RXMode[4]; extern const char* const gSubMenu_RXMode[4];
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
extern const char gSubMenu_VOICE[3][4]; extern const char gSubMenu_VOICE[3][4];
#endif #endif
extern const char gSubMenu_SC_REV[3][8]; extern const char gSubMenu_SC_REV[3][8];
extern const char* gSubMenu_MDF[4]; extern const char* const gSubMenu_MDF[4];
#ifdef ENABLE_ALARM #ifdef ENABLE_ALARM
extern const char gSubMenu_AL_MOD[2][5]; extern const char gSubMenu_AL_MOD[2][5];
#endif #endif
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
extern const char gSubMenu_D_RSP[4][11]; extern const char gSubMenu_D_RSP[4][11];
#endif #endif
extern const char* gSubMenu_PTT_ID[5]; extern const char* const gSubMenu_PTT_ID[5];
extern const char gSubMenu_PONMSG[4][8]; extern const char gSubMenu_PONMSG[4][8];
extern const char gSubMenu_ROGER[3][6]; extern const char gSubMenu_ROGER[3][6];
extern const char gSubMenu_RESET[2][4]; extern const char gSubMenu_RESET[2][4];
extern const char* gSubMenu_F_LOCK[F_LOCK_LEN]; extern const char* const gSubMenu_F_LOCK[F_LOCK_LEN];
extern const char gSubMenu_BACKLIGHT[8][7]; extern const char gSubMenu_BACKLIGHT[8][7];
extern const char gSubMenu_RX_TX[4][6]; extern const char gSubMenu_RX_TX[4][6];
#ifdef ENABLE_AM_FIX_TEST1
extern const char gSubMenu_AM_fix_test1[4][8];
#endif
extern const char gSubMenu_BAT_TXT[3][8]; extern const char gSubMenu_BAT_TXT[3][8];
extern const char gSubMenu_BATTYP[2][9]; extern const char gSubMenu_BATTYP[2][9];
extern const char gSubMenu_SCRAMBLER[11][7]; extern const char gSubMenu_SCRAMBLER[11][7];
typedef struct {char* name; uint8_t id;} t_sidefunction; typedef struct {char* name; uint8_t id;} t_sidefunction;
extern const uint8_t gSubMenu_SIDEFUNCTIONS_size; extern const uint8_t gSubMenu_SIDEFUNCTIONS_size;
extern const t_sidefunction* gSubMenu_SIDEFUNCTIONS; extern const t_sidefunction gSubMenu_SIDEFUNCTIONS[];
extern bool gIsInSubMenu; extern bool gIsInSubMenu;

View File

@@ -26,56 +26,58 @@
void UI_DisplayScanner(void) void UI_DisplayScanner(void)
{ {
char String[16]; char String[16] = {0};
char *pPrintStr = String;
bool bCentered; bool bCentered;
uint8_t Start; uint8_t Start;
memset(gFrameBuffer, 0, sizeof(gFrameBuffer)); UI_DisplayClear();
memset(String, 0, sizeof(String)); if (gScanSingleFrequency || (gScanCssState != SCAN_CSS_STATE_OFF && gScanCssState != SCAN_CSS_STATE_FAILED)) {
if (gScanSingleFrequency || (gScanCssState != SCAN_CSS_STATE_OFF && gScanCssState != SCAN_CSS_STATE_FAILED))
sprintf(String, "FREQ:%u.%05u", gScanFrequency / 100000, gScanFrequency % 100000); sprintf(String, "FREQ:%u.%05u", gScanFrequency / 100000, gScanFrequency % 100000);
else pPrintStr = String;
strcpy(String, "FREQ:**.*****"); } else {
UI_PrintString(String, 2, 0, 1, 8); pPrintStr = "FREQ:**.*****";
}
memset(String, 0, sizeof(String)); UI_PrintString(pPrintStr, 2, 0, 1, 8);
if (gScanCssState < SCAN_CSS_STATE_FOUND || !gScanUseCssResult)
strcpy(String, "CTC:******"); if (gScanCssState < SCAN_CSS_STATE_FOUND || !gScanUseCssResult) {
else pPrintStr = "CTC:******";
if (gScanCssResultType == CODE_TYPE_CONTINUOUS_TONE) } else if (gScanCssResultType == CODE_TYPE_CONTINUOUS_TONE) {
sprintf(String, "CTC:%u.%uHz", CTCSS_Options[gScanCssResultCode] / 10, CTCSS_Options[gScanCssResultCode] % 10); sprintf(String, "CTC:%u.%uHz", CTCSS_Options[gScanCssResultCode] / 10, CTCSS_Options[gScanCssResultCode] % 10);
else pPrintStr = String;
} else {
sprintf(String, "DCS:D%03oN", DCS_Options[gScanCssResultCode]); sprintf(String, "DCS:D%03oN", DCS_Options[gScanCssResultCode]);
UI_PrintString(String, 2, 0, 3, 8); pPrintStr = String;
}
UI_PrintString(pPrintStr, 2, 0, 3, 8);
memset(String, 0, sizeof(String)); memset(String, 0, sizeof(String));
if (gScannerSaveState == SCAN_SAVE_CHANNEL) if (gScannerSaveState == SCAN_SAVE_CHANNEL) {
{ pPrintStr = "SAVE?";
strcpy(String, "SAVE?");
Start = 0; Start = 0;
bCentered = 1; bCentered = 1;
} } else {
else Start = 2;
{ bCentered = 0;
if (gScannerSaveState == SCAN_SAVE_CHAN_SEL) { if (gScannerSaveState == SCAN_SAVE_CHAN_SEL) {
strcpy(String, "SAVE:"); strcpy(String, "SAVE:");
UI_GenerateChannelStringEx(String + 5, gShowChPrefix, gScanChannel); UI_GenerateChannelStringEx(String + 5, gShowChPrefix, gScanChannel);
} pPrintStr = String;
else if (gScanCssState < SCAN_CSS_STATE_FOUND) { } else if (gScanCssState < SCAN_CSS_STATE_FOUND) {
strcpy(String, "SCAN"); strcpy(String, "SCAN");
memset(String + 4, '.', (gScanProgressIndicator & 7) + 1); memset(String + 4, '.', (gScanProgressIndicator & 7) + 1);
pPrintStr = String;
} else if (gScanCssState == SCAN_CSS_STATE_FOUND) {
pPrintStr = "SCAN CMP.";
} else {
pPrintStr = "SCAN FAIL.";
}
} }
else if (gScanCssState == SCAN_CSS_STATE_FOUND)
strcpy(String, "SCAN CMP.");
else
strcpy(String, "SCAN FAIL.");
Start = 2; UI_PrintString(pPrintStr, Start, bCentered ? 127 : 0, 5, 8);
bCentered = 0;
}
UI_PrintString(String, Start, bCentered ? 127 : 0, 5, 8);
ST7565_BlitFullScreen(); ST7565_BlitFullScreen();
} }

View File

@@ -36,172 +36,139 @@
void UI_DisplayStatus() void UI_DisplayStatus()
{ {
uint8_t *line = gStatusLine;
unsigned int x = 0;
unsigned int x1 = 0;
gUpdateStatus = false; gUpdateStatus = false;
memset(gStatusLine, 0, sizeof(gStatusLine)); memset(gStatusLine, 0, sizeof(gStatusLine));
uint8_t *line = gStatusLine;
unsigned int x = 0;
// ************** // **************
// POWER-SAVE indicator // POWER-SAVE indicator
if (gCurrentFunction == FUNCTION_TRANSMIT) if (gCurrentFunction == FUNCTION_TRANSMIT) {
{ memcpy(line + x, BITMAP_TX, sizeof(BITMAP_TX));
memmove(line + x, BITMAP_TX, sizeof(BITMAP_TX));
x1 = x + sizeof(BITMAP_TX);
} }
else else if (FUNCTION_IsRx()) {
if (gCurrentFunction == FUNCTION_RECEIVE || memcpy(line + x, BITMAP_RX, sizeof(BITMAP_RX));
gCurrentFunction == FUNCTION_MONITOR ||
gCurrentFunction == FUNCTION_INCOMING)
{
memmove(line + x, BITMAP_RX, sizeof(BITMAP_RX));
x1 = x + sizeof(BITMAP_RX);
} }
else else if (gCurrentFunction == FUNCTION_POWER_SAVE) {
if (gCurrentFunction == FUNCTION_POWER_SAVE) memcpy(line + x, BITMAP_POWERSAVE, sizeof(BITMAP_POWERSAVE));
{
memmove(line + x, BITMAP_POWERSAVE, sizeof(BITMAP_POWERSAVE));
x1 = x + sizeof(BITMAP_POWERSAVE);
} }
x += sizeof(BITMAP_POWERSAVE); x += 8;
unsigned int x1 = x;
#ifdef ENABLE_NOAA #ifdef ENABLE_NOAA
// NOASS SCAN indicator if (gIsNoaaMode) { // NOASS SCAN indicator
if (gIsNoaaMode) memcpy(line + x, BITMAP_NOAA, sizeof(BITMAP_NOAA));
{
memmove(line + x, BITMAP_NOAA, sizeof(BITMAP_NOAA));
x1 = x + sizeof(BITMAP_NOAA); x1 = x + sizeof(BITMAP_NOAA);
} }
x += sizeof(BITMAP_NOAA); x += sizeof(BITMAP_NOAA);
#else #endif
// hmmm, what to put in it's place
#endif
#ifdef ENABLE_DTMF_CALLING #ifdef ENABLE_DTMF_CALLING
if (gSetting_KILLED) if (gSetting_KILLED) {
{
memset(line + x, 0xFF, 10); memset(line + x, 0xFF, 10);
x1 = x + 10; x1 = x + 10;
} }
else else
#endif #endif
{ #ifdef ENABLE_FMRADIO
// SCAN indicator if (gFmRadioMode) { // FM indicator
if (gScanStateDir != SCAN_OFF || SCANNER_IsScanning()) memcpy(line + x, BITMAP_FM, sizeof(BITMAP_FM));
{ x1 = x + sizeof(BITMAP_FM);
}
else
#endif
{ // SCAN indicator
if (gScanStateDir != SCAN_OFF || SCANNER_IsScanning()) {
char * s = ""; char * s = "";
if (IS_MR_CHANNEL(gNextMrChannel) && !SCANNER_IsScanning()) if (IS_MR_CHANNEL(gNextMrChannel) && !SCANNER_IsScanning()) { // channel mode
{ // channel mode
switch(gEeprom.SCAN_LIST_DEFAULT) { switch(gEeprom.SCAN_LIST_DEFAULT) {
case 0: s = "1"; break; case 0: s = "1"; break;
case 1: s = "2"; break; case 1: s = "2"; break;
case 2: s = "*"; break; case 2: s = "*"; break;
} }
} }
else else { // frequency mode
{ // frequency mode
s = "S"; s = "S";
} }
UI_PrintStringSmallBuffer(s, line + x); UI_PrintStringSmallBufferNormal(s, line + x + 1);
x1 = x + 7; x1 = x + 10;
} }
} }
x += 7; // font character width x += 10; // font character width
#ifdef ENABLE_VOICE #ifdef ENABLE_VOICE
// VOICE indicator // VOICE indicator
if (gEeprom.VOICE_PROMPT != VOICE_PROMPT_OFF) if (gEeprom.VOICE_PROMPT != VOICE_PROMPT_OFF){
{ memcpy(line + x, BITMAP_VoicePrompt, sizeof(BITMAP_VoicePrompt));
memmove(line + x, BITMAP_VoicePrompt, sizeof(BITMAP_VoicePrompt));
x1 = x + sizeof(BITMAP_VoicePrompt); x1 = x + sizeof(BITMAP_VoicePrompt);
} }
x += sizeof(BITMAP_VoicePrompt) + 1; x += sizeof(BITMAP_VoicePrompt);
#else #endif
// hmmm, what to put in it's place
#endif
x++;
if(!SCANNER_IsScanning()) { if(!SCANNER_IsScanning()) {
uint8_t dw = (gEeprom.DUAL_WATCH != DUAL_WATCH_OFF) + (gEeprom.CROSS_BAND_RX_TX != CROSS_BAND_OFF) * 2; uint8_t dw = (gEeprom.DUAL_WATCH != DUAL_WATCH_OFF) + (gEeprom.CROSS_BAND_RX_TX != CROSS_BAND_OFF) * 2;
if(dw == 1 || dw == 3) { // DWR - dual watch + respond if(dw == 1 || dw == 3) { // DWR - dual watch + respond
if(gDualWatchActive) if(gDualWatchActive)
memmove(line + x, BITMAP_TDR1, sizeof(BITMAP_TDR1) - (dw==1?0:5)); memcpy(line + x + (dw==1?0:2), BITMAP_TDR1, sizeof(BITMAP_TDR1) - (dw==1?0:5));
else else
memmove(line + x + 3, BITMAP_TDR2, sizeof(BITMAP_TDR2)); memcpy(line + x + 3, BITMAP_TDR2, sizeof(BITMAP_TDR2));
} }
else if(dw == 2) { // XB - crossband else if(dw == 2) { // XB - crossband
memmove(line + x, BITMAP_XB, sizeof(BITMAP_XB)); memcpy(line + x + 2, BITMAP_XB, sizeof(BITMAP_XB));
} }
} }
x += sizeof(BITMAP_TDR1) + 2; x += sizeof(BITMAP_TDR1) + 1;
#ifdef ENABLE_VOX #ifdef ENABLE_VOX
// VOX indicator // VOX indicator
if (gEeprom.VOX_SWITCH) if (gEeprom.VOX_SWITCH) {
{ memcpy(line + x, BITMAP_VOX, sizeof(BITMAP_VOX));
memmove(line + x, BITMAP_VOX, sizeof(BITMAP_VOX)); x1 = x + sizeof(BITMAP_VOX) + 1;
x1 = x + sizeof(BITMAP_VOX);
} }
x += sizeof(BITMAP_VOX) + 2; x += sizeof(BITMAP_VOX) + 1;
#endif #endif
x = MAX(x, 61u); x = MAX(x1, 61u);
x1 = x;
// KEY-LOCK indicator // KEY-LOCK indicator
if (gEeprom.KEY_LOCK) if (gEeprom.KEY_LOCK) {
{ memcpy(line + x, BITMAP_KeyLock, sizeof(BITMAP_KeyLock));
memmove(line + x, BITMAP_KeyLock, sizeof(BITMAP_KeyLock));
x += sizeof(BITMAP_KeyLock); x += sizeof(BITMAP_KeyLock);
x1 = x; x1 = x;
} }
else else if (gWasFKeyPressed) {
if (gWasFKeyPressed) memcpy(line + x, BITMAP_F_Key, sizeof(BITMAP_F_Key));
{
memmove(line + x, BITMAP_F_Key, sizeof(BITMAP_F_Key));
x += sizeof(BITMAP_F_Key); x += sizeof(BITMAP_F_Key);
x1 = x; x1 = x;
} }
{ // battery voltage or percentage { // battery voltage or percentage
char s[8]; char s[8] = "";
unsigned int space_needed; unsigned int x2 = LCD_WIDTH - sizeof(BITMAP_BatteryLevel1) - 0;
unsigned int x2 = LCD_WIDTH - sizeof(BITMAP_BatteryLevel1) - 3;
if (gChargingWithTypeC) if (gChargingWithTypeC)
x2 -= sizeof(BITMAP_USB_C); // the radio is on charge x2 -= sizeof(BITMAP_USB_C); // the radio is on charge
switch (gSetting_battery_text) switch (gSetting_battery_text) {
{
default: default:
case 0: case 0:
break; break;
case 1: // voltage case 1: { // voltage
{
const uint16_t voltage = (gBatteryVoltageAverage <= 999) ? gBatteryVoltageAverage : 999; // limit to 9.99V const uint16_t voltage = (gBatteryVoltageAverage <= 999) ? gBatteryVoltageAverage : 999; // limit to 9.99V
sprintf(s, "%u.%02uV", voltage / 100, voltage % 100); sprintf(s, "%u.%02uV", voltage / 100, voltage % 100);
space_needed = (7 * strlen(s));
if (x2 >= (x1 + space_needed))
{
UI_PrintStringSmallBuffer(s, line + x2 - space_needed);
}
break; break;
} }
case 2: // percentage case 2: // percentage
{
sprintf(s, "%u%%", BATTERY_VoltsToPercent(gBatteryVoltageAverage)); sprintf(s, "%u%%", BATTERY_VoltsToPercent(gBatteryVoltageAverage));
space_needed = (7 * strlen(s));
if (x2 >= (x1 + space_needed))
UI_PrintStringSmallBuffer(s, line + x2 - space_needed);
break; break;
} }
}
unsigned int space_needed = (7 * strlen(s));
if (x2 >= (x1 + space_needed))
UI_PrintStringSmallBufferNormal(s, line + x2 - space_needed);
} }
// move to right side of the screen // move to right side of the screen
@@ -209,7 +176,7 @@ void UI_DisplayStatus()
// USB-C charge indicator // USB-C charge indicator
if (gChargingWithTypeC) if (gChargingWithTypeC)
memmove(line + x, BITMAP_USB_C, sizeof(BITMAP_USB_C)); memcpy(line + x, BITMAP_USB_C, sizeof(BITMAP_USB_C));
x += sizeof(BITMAP_USB_C); x += sizeof(BITMAP_USB_C);
// BATTERY LEVEL indicator // BATTERY LEVEL indicator

49
ui/ui.c
View File

@@ -14,6 +14,7 @@
* limitations under the License. * limitations under the License.
*/ */
#include <assert.h>
#include <string.h> #include <string.h>
#include "app/chFrScanner.h" #include "app/chFrScanner.h"
@@ -34,6 +35,7 @@
#include "ui/menu.h" #include "ui/menu.h"
#include "ui/scanner.h" #include "ui/scanner.h"
#include "ui/ui.h" #include "ui/ui.h"
#include "../misc.h"
GUI_DisplayType_t gScreenToDisplay; GUI_DisplayType_t gScreenToDisplay;
GUI_DisplayType_t gRequestDisplayScreen = DISPLAY_INVALID; GUI_DisplayType_t gRequestDisplayScreen = DISPLAY_INVALID;
@@ -42,36 +44,27 @@ uint8_t gAskForConfirmation;
bool gAskToSave; bool gAskToSave;
bool gAskToDelete; bool gAskToDelete;
void (*UI_DisplayFunctions[])(void) = {
[DISPLAY_MAIN] = &UI_DisplayMain,
[DISPLAY_MENU] = &UI_DisplayMenu,
[DISPLAY_SCANNER] = &UI_DisplayScanner,
#ifdef ENABLE_FMRADIO
[DISPLAY_FM] = &UI_DisplayFM,
#endif
#ifdef ENABLE_AIRCOPY
[DISPLAY_AIRCOPY] = &UI_DisplayAircopy,
#endif
};
static_assert(ARRAY_SIZE(UI_DisplayFunctions) == DISPLAY_N_ELEM);
void GUI_DisplayScreen(void) void GUI_DisplayScreen(void)
{ {
switch (gScreenToDisplay) if (gScreenToDisplay != DISPLAY_INVALID) {
{ UI_DisplayFunctions[gScreenToDisplay]();
case DISPLAY_MAIN:
UI_DisplayMain();
break;
#ifdef ENABLE_FMRADIO
case DISPLAY_FM:
UI_DisplayFM();
break;
#endif
case DISPLAY_MENU:
UI_DisplayMenu();
break;
case DISPLAY_SCANNER:
UI_DisplayScanner();
break;
#ifdef ENABLE_AIRCOPY
case DISPLAY_AIRCOPY:
UI_DisplayAircopy();
break;
#endif
default:
break;
} }
} }

11
ui/ui.h
View File

@@ -23,10 +23,18 @@
enum GUI_DisplayType_t enum GUI_DisplayType_t
{ {
DISPLAY_MAIN = 0, DISPLAY_MAIN = 0,
DISPLAY_FM,
DISPLAY_MENU, DISPLAY_MENU,
DISPLAY_SCANNER, DISPLAY_SCANNER,
#ifdef ENABLE_FMRADIO
DISPLAY_FM,
#endif
#ifdef ENABLE_AIRCOPY
DISPLAY_AIRCOPY, DISPLAY_AIRCOPY,
#endif
DISPLAY_N_ELEM,
DISPLAY_INVALID = 0xFFu DISPLAY_INVALID = 0xFFu
}; };
@@ -43,4 +51,3 @@ void GUI_DisplayScreen(void);
void GUI_SelectNextDisplay(GUI_DisplayType_t Display); void GUI_SelectNextDisplay(GUI_DisplayType_t Display);
#endif #endif

View File

@@ -30,7 +30,7 @@
void UI_DisplayReleaseKeys(void) void UI_DisplayReleaseKeys(void)
{ {
memset(gStatusLine, 0, sizeof(gStatusLine)); memset(gStatusLine, 0, sizeof(gStatusLine));
memset(gFrameBuffer, 0, sizeof(gFrameBuffer)); UI_DisplayClear();
UI_PrintString("RELEASE", 0, 127, 1, 10); UI_PrintString("RELEASE", 0, 127, 1, 10);
UI_PrintString("ALL KEYS", 0, 127, 3, 10); UI_PrintString("ALL KEYS", 0, 127, 3, 10);
@@ -45,19 +45,11 @@ void UI_DisplayWelcome(void)
char WelcomeString1[16]; char WelcomeString1[16];
memset(gStatusLine, 0, sizeof(gStatusLine)); memset(gStatusLine, 0, sizeof(gStatusLine));
memset(gFrameBuffer, 0, sizeof(gFrameBuffer)); UI_DisplayClear();
if (gEeprom.POWER_ON_DISPLAY_MODE == POWER_ON_DISPLAY_MODE_NONE) if (gEeprom.POWER_ON_DISPLAY_MODE == POWER_ON_DISPLAY_MODE_NONE || gEeprom.POWER_ON_DISPLAY_MODE == POWER_ON_DISPLAY_MODE_FULL_SCREEN) {
{
ST7565_FillScreen(0xFF); ST7565_FillScreen(0xFF);
} } else {
else
if (gEeprom.POWER_ON_DISPLAY_MODE == POWER_ON_DISPLAY_MODE_FULL_SCREEN)
{
ST7565_FillScreen(0xFF);
}
else
{
memset(WelcomeString0, 0, sizeof(WelcomeString0)); memset(WelcomeString0, 0, sizeof(WelcomeString0));
memset(WelcomeString1, 0, sizeof(WelcomeString1)); memset(WelcomeString1, 0, sizeof(WelcomeString1));
@@ -77,10 +69,9 @@ void UI_DisplayWelcome(void)
UI_PrintString(WelcomeString0, 0, 127, 0, 10); UI_PrintString(WelcomeString0, 0, 127, 0, 10);
UI_PrintString(WelcomeString1, 0, 127, 2, 10); UI_PrintString(WelcomeString1, 0, 127, 2, 10);
UI_PrintStringSmall(Version, 0, 128, 6); UI_PrintStringSmallNormal(Version, 0, 128, 6);
ST7565_BlitStatusLine(); // blank status line ST7565_BlitStatusLine(); // blank status line
ST7565_BlitFullScreen(); ST7565_BlitFullScreen();
} }
} }