Files
meshcore-sar_android/lib/services/contact_route_resolver.dart
2026-03-12 14:39:44 +01:00

337 lines
9.3 KiB
Dart

import 'dart:math' as math;
import 'package:latlong2/latlong.dart';
import '../models/contact.dart';
class ResolvedContactRoutePlan {
final List<String> tokens;
final List<Contact> selectedContacts;
final String summary;
const ResolvedContactRoutePlan({
required this.tokens,
required this.selectedContacts,
required this.summary,
});
String get canonicalText => tokens.join(',');
}
class ContactRouteResolver {
static const Distance _distance = Distance();
const ContactRouteResolver._();
static ResolvedContactRoutePlan? resolveAutomaticRoute({
required LatLng senderLocation,
required Contact recipient,
required List<Contact> availableContacts,
required int hashSize,
}) {
final recipientLocation = recipient.displayLocation;
if (recipientLocation == null) return null;
final repeaters = availableContacts
.where(
(contact) =>
contact.isRepeater &&
contact.displayLocation != null &&
contact.publicKeyHex != recipient.publicKeyHex,
)
.toList();
if (repeaters.isEmpty) return null;
final recipientLatLng = LatLng(
recipientLocation.latitude,
recipientLocation.longitude,
);
final routedCandidates =
repeaters
.where(
(contact) =>
contact.routeHasPath && contact.routeHashSize == hashSize,
)
.toList()
..sort(
(a, b) =>
_scoreKnownRouteRepeater(
senderLocation: senderLocation,
recipientLocation: recipientLatLng,
repeater: a,
availableContacts: repeaters,
hashSize: hashSize,
).compareTo(
_scoreKnownRouteRepeater(
senderLocation: senderLocation,
recipientLocation: recipientLatLng,
repeater: b,
availableContacts: repeaters,
hashSize: hashSize,
),
),
);
if (routedCandidates.isNotEmpty) {
final anchor = routedCandidates.first;
final tokens = <String>[
...anchor.routeCanonicalText
.split(',')
.where((token) => token.isNotEmpty)
.map((token) => token.toUpperCase()),
_tokenFor(anchor, hashSize),
];
final selectedContacts = _matchContactsForTokens(
tokens,
availableContacts: repeaters,
);
return ResolvedContactRoutePlan(
tokens: _dedupeTokens(tokens),
selectedContacts: selectedContacts,
summary: 'Resolved via known repeater route',
);
}
final corridorRepeaters = List<Contact>.from(repeaters)
..sort((a, b) {
final progressA = _progressAlongSegment(
point: LatLng(
a.displayLocation!.latitude,
a.displayLocation!.longitude,
),
start: senderLocation,
end: recipientLatLng,
);
final progressB = _progressAlongSegment(
point: LatLng(
b.displayLocation!.latitude,
b.displayLocation!.longitude,
),
start: senderLocation,
end: recipientLatLng,
);
final progressCompare = progressA.compareTo(progressB);
if (progressCompare != 0) return progressCompare;
return _scoreRepeater(
senderLocation: senderLocation,
recipientLocation: recipientLatLng,
repeater: a,
).compareTo(
_scoreRepeater(
senderLocation: senderLocation,
recipientLocation: recipientLatLng,
repeater: b,
),
);
});
final selected = <Contact>[];
var currentPoint = senderLocation;
var currentDistanceToRecipient = _distance.as(
LengthUnit.Meter,
senderLocation,
recipientLatLng,
);
final maxCorridorDistance = math.max(
1500.0,
currentDistanceToRecipient * 0.22,
);
for (final repeater in corridorRepeaters) {
if (selected.length >= 4) break;
final repeaterPoint = LatLng(
repeater.displayLocation!.latitude,
repeater.displayLocation!.longitude,
);
final distanceToSegment = _distanceToSegmentMeters(
repeaterPoint,
senderLocation,
recipientLatLng,
);
if (distanceToSegment > maxCorridorDistance) {
continue;
}
final nextDistanceToRecipient = _distance.as(
LengthUnit.Meter,
repeaterPoint,
recipientLatLng,
);
if (nextDistanceToRecipient >= currentDistanceToRecipient - 300) {
continue;
}
final distanceFromCurrent = _distance.as(
LengthUnit.Meter,
currentPoint,
repeaterPoint,
);
if (distanceFromCurrent < 100) {
continue;
}
selected.add(repeater);
currentPoint = repeaterPoint;
currentDistanceToRecipient = nextDistanceToRecipient;
if (currentDistanceToRecipient < 2500) {
break;
}
}
if (selected.isEmpty) {
return null;
}
return ResolvedContactRoutePlan(
tokens: selected.map((contact) => _tokenFor(contact, hashSize)).toList(),
selectedContacts: selected,
summary: 'Resolved from repeater locations',
);
}
static List<Contact> _matchContactsForTokens(
List<String> tokens, {
required List<Contact> availableContacts,
}) {
final matches = <Contact>[];
final seen = <String>{};
for (final token in tokens) {
final match = availableContacts
.where(
(contact) => contact.publicKeyHex.toUpperCase().startsWith(token),
)
.firstOrNull;
if (match != null && seen.add(match.publicKeyHex)) {
matches.add(match);
}
}
return matches;
}
static List<String> _dedupeTokens(List<String> tokens) {
final result = <String>[];
for (final token in tokens) {
if (result.isEmpty || result.last != token) {
result.add(token);
}
}
return result;
}
static String _tokenFor(Contact contact, int hashSize) {
final hex = contact.publicKeyHex.toUpperCase();
final length = hashSize * 2;
return hex.length < length ? hex : hex.substring(0, length);
}
static double _scoreRepeater({
required LatLng senderLocation,
required LatLng recipientLocation,
required Contact repeater,
}) {
final point = LatLng(
repeater.displayLocation!.latitude,
repeater.displayLocation!.longitude,
);
final toRecipient = _distance.as(
LengthUnit.Meter,
point,
recipientLocation,
);
final corridor = _distanceToSegmentMeters(
point,
senderLocation,
recipientLocation,
);
return (toRecipient * 0.75) + (corridor * 0.25);
}
static double _scoreKnownRouteRepeater({
required LatLng senderLocation,
required LatLng recipientLocation,
required Contact repeater,
required List<Contact> availableContacts,
required int hashSize,
}) {
final baseScore = _scoreRepeater(
senderLocation: senderLocation,
recipientLocation: recipientLocation,
repeater: repeater,
);
final repeaterPoint = LatLng(
repeater.displayLocation!.latitude,
repeater.displayLocation!.longitude,
);
final chainContacts = repeater.routeCanonicalText
.split(',')
.where((token) => token.isNotEmpty)
.map(
(token) => availableContacts
.where(
(contact) =>
contact.displayLocation != null &&
contact.publicKeyHex.toUpperCase().startsWith(
token.toUpperCase(),
),
)
.firstOrNull,
)
.whereType<Contact>()
.toList();
final chainEnd = chainContacts.isNotEmpty
? LatLng(
chainContacts.last.displayLocation!.latitude,
chainContacts.last.displayLocation!.longitude,
)
: senderLocation;
final chainGap = _distance.as(LengthUnit.Meter, chainEnd, repeaterPoint);
final senderGap = _distance.as(
LengthUnit.Meter,
senderLocation,
repeaterPoint,
);
return (chainGap * 0.55) + (baseScore * 0.35) + (senderGap * 0.10);
}
static double _progressAlongSegment({
required LatLng point,
required LatLng start,
required LatLng end,
}) {
final dx = end.longitude - start.longitude;
final dy = end.latitude - start.latitude;
final lengthSquared = (dx * dx) + (dy * dy);
if (lengthSquared == 0) return 0;
return (((point.longitude - start.longitude) * dx) +
((point.latitude - start.latitude) * dy)) /
lengthSquared;
}
static double _distanceToSegmentMeters(LatLng p, LatLng a, LatLng b) {
final ax = a.longitude;
final ay = a.latitude;
final bx = b.longitude;
final by = b.latitude;
final px = p.longitude;
final py = p.latitude;
final abx = bx - ax;
final aby = by - ay;
final apx = px - ax;
final apy = py - ay;
final ab2 = abx * abx + aby * aby;
if (ab2 == 0) {
return _distance.as(LengthUnit.Meter, a, p);
}
var t = (apx * abx + apy * aby) / ab2;
t = t.clamp(0.0, 1.0);
final closest = LatLng(ay + aby * t, ax + abx * t);
return _distance.as(LengthUnit.Meter, closest, p);
}
}