كتابة إضافات منصات مخصصة لـ iOS وAndroid
أنشئ إضافات اتحادية تعرض واجهات Kotlin وSwift الأصلية لـ Dart
كتابة إضافات منصات مخصصة لـ iOS وAndroid درس مجاني في Flutter Mobile Development على CoddyKit. هذا هو الدرس 3 من أصل 4. يمكنك قراءة الدرس كاملاً أدناه مجاناً — ثم تمرن عليه مباشرة في المتصفح باستخدام محرر أكواد مدمج ومدرس ذكاء اصطناعي متاح 24/7. هذا الدرس جزء من مسار التعلم في Flutter Mobile Development، وتقدمك يتزامن عبر الويب وتطبيق CoddyKit. تتضمن دورة Flutter Mobile Development 4 دروس في المجموع.
بعض أجزاء هذا الدرس لم تُترجم بعد وتظهر باللغة الإنجليزية.
Why Platform Plugins?
Dart cannot call native iOS or Android APIs directly. A platform plugin bridges that gap, exposing Swift/Objective-C and Kotlin/Java capabilities to your Dart code through a typed channel.
- Package: pure Dart, no native code.
- Plugin: Dart API plus platform-specific native implementations.
You write a plugin whenever you need hardware (sensors, BLE), OS services (notifications, keychain), or a native SDK that has no Dart equivalent. In this lesson we author a federated plugin that surfaces native Kotlin and Swift APIs to Dart.
Federated Plugin Architecture
A federated plugin splits responsibilities across several packages so different parties can own different platforms:
- app-facing package (
battery): the public Dart API developers import. - platform interface (
battery_platform_interface): an abstract contract all implementations must satisfy. - platform packages (
battery_android,battery_ios): concrete native implementations registered viapubspec.yaml.
This decoupling lets a third party add, say, a Windows implementation without touching the app-facing package. The interface package is the linchpin contract.
The Platform Interface Contract
The platform interface uses the plugin_platform_interface package. It declares an abstract base class with a MethodChannel-free contract, plus a default instance other packages override.
The PlatformInterface token-verification prevents implementers from extends-ing and breaking the contract; they must use implements guarded by verifyToken.
import 'package:plugin_platform_interface/plugin_platform_interface.dart';
abstract class BatteryPlatform extends PlatformInterface {
BatteryPlatform() : super(token: _token);
static final Object _token = Object();
static BatteryPlatform _instance = MethodChannelBattery();
static BatteryPlatform get instance => _instance;
static set instance(BatteryPlatform value) {
PlatformInterface.verifyToken(value, _token);
_instance = value;
}
Future<int> getBatteryLevel() {
throw UnimplementedError('getBatteryLevel() is not implemented.');
}
}MethodChannel: The Default Implementation
The default implementation talks to native code over a MethodChannel. Each channel has a unique name shared by Dart and native sides. invokeMethod serializes arguments using the standard message codec and awaits a native reply.
Keep channel names namespaced (reverse-DNS) to avoid collisions across plugins.
import 'package:flutter/services.dart';
import 'battery_platform_interface.dart';
class MethodChannelBattery extends BatteryPlatform {
final MethodChannel _channel =
const MethodChannel('com.example.battery/methods');
@override
Future<int> getBatteryLevel() async {
final level = await _channel.invokeMethod<int>('getBatteryLevel');
if (level == null) {
throw PlatformException(code: 'NO_LEVEL', message: 'Level unavailable');
}
return level;
}
}Android: Kotlin Plugin Registration
On Android the native side implements FlutterPlugin and MethodChannel.MethodCallHandler. In onAttachedToEngine you wire a MethodChannel with the same name used in Dart, then route incoming calls in onMethodCall.
result.success(value)resolves the Dart Future.result.error(code, msg, details)throws aPlatformExceptionin Dart.result.notImplemented()signals an unknown method.
This is Kotlin, not Dart, so it is illustrative only.
iOS: Swift Plugin Registration
On iOS you conform to FlutterPlugin and register in register(with:), creating a FlutterMethodChannel with the matching name. handle(_:result:) dispatches calls and replies via the FlutterResult callback.
For federated plugins the platform package declares its native entry point under flutter.plugin.platforms.ios in pubspec.yaml, pointing at the Swift class. The Dart registrant is wired automatically.
Declaring the Federated pubspec
The platform implementation packages announce themselves via flutter.plugin.platforms. The dartPluginClass is registered with the platform interface at startup, and pluginClass names the native class.
Crucially the app-facing package lists each platform package under default_package, so adding a platform is a pubspec change, not a code change.
Endorsing Platform Implementations
The app-facing package endorses implementations by depending on them in its pubspec.yaml. Endorsed packages are pulled in transitively, so app developers add one dependency and get every platform.
At runtime, each platform package's registerWith() sets the interface's instance to its own implementation. The Dart API then calls through BatteryPlatform.instance without knowing which platform answered.
// battery_android registers itself at startup
import 'battery_platform_interface.dart';
class BatteryAndroid extends BatteryPlatform {
/// Registered via dartPluginClass in pubspec.yaml.
static void registerWith() {
BatteryPlatform.instance = BatteryAndroid();
}
@override
Future<int> getBatteryLevel() {
// Delegates to the MethodChannel under the hood.
return MethodChannelBattery().getBatteryLevel();
}
}The App-Facing Dart API
The public package wraps the interface in an ergonomic, well-documented API. App developers never touch channels or platform classes — they call clean Dart methods.
Keep this layer thin: validation, convenience overloads, and documentation. All real work lives behind BatteryPlatform.instance.
import 'battery_platform_interface.dart';
class Battery {
/// Returns the current battery level as a percentage (0-100).
Future<int> get batteryLevel => BatteryPlatform.instance.getBatteryLevel();
/// Convenience: true when the device is critically low.
Future<bool> get isCritical async => (await batteryLevel) <= 15;
}Streaming Native Events with EventChannel
For continuous data (charging state, sensor streams) a single method call is not enough. Use an EventChannel: the native side pushes events through a StreamHandler/FlutterEventSink, and Dart exposes them as a Stream.
receiveBroadcastStream lazily starts the native listener on first subscription and tears it down on cancel.
import 'package:flutter/services.dart';
class BatteryStream {
final EventChannel _events =
const EventChannel('com.example.battery/charging');
Stream<bool> get onChargingChanged => _events
.receiveBroadcastStream()
.map((event) => event == 'charging');
}Type-Safe Channels with Pigeon
Hand-written channels are stringly-typed and error-prone. Pigeon generates type-safe Dart, Kotlin, and Swift bindings from a single Dart definition file, eliminating method-name typos and codec mismatches.
You annotate an abstract class with @HostApi() (Dart calls native) or @FlutterApi() (native calls Dart), run the Pigeon generator, and wire the generated classes — no manual invokeMethod strings.
import 'package:pigeon/pigeon.dart';
class BatteryInfo {
int? level;
bool? isCharging;
}
@HostApi()
abstract class BatteryHostApi {
BatteryInfo getBatteryInfo();
}
@FlutterApi()
abstract class BatteryFlutterApi {
void onLevelChanged(int level);
}Quick Check
You are publishing a Flutter plugin and want third parties to add new platform implementations (e.g. Windows) without modifying or forking your app-facing package. Which architecture and mechanism makes that possible?
Recap
You learned to author a federated platform plugin exposing native Kotlin and Swift APIs to Dart:
- Architecture: app-facing package, platform interface, and per-platform implementations.
- Contract: an abstract
PlatformInterfacewith token verification and a swappableinstance. - Channels:
MethodChannelfor request/response,EventChannelfor native event streams, with matching names on both sides. - Native sides: Kotlin
onMethodCalland Swifthandle(_:result:)resolving via success/error. - Endorsement: pubspec wires
dartPluginClassandpluginClassso platforms register themselves. - Pigeon: generates type-safe bindings to replace fragile string-based channels.
With this you can wrap any native SDK behind a clean, testable Dart API.
الأسئلة الشائعة
هل درس «كتابة إضافات منصات مخصصة لـ iOS وAndroid» مجاني؟
نعم — نص درس «كتابة إضافات منصات مخصصة لـ iOS وAndroid» كامل متاح مجاناً هنا على الويب. لتمرينه بشكل تفاعلي (محرر أكواد مدمج ومدرس ذكاء اصطناعي متاح 24/7) وفتح باقي دورة Flutter Mobile Development، انتقل إلى CoddyKit PRO. تتضمن دورة Flutter Mobile Development 4 دروس في المجموع.
ماذا ستتعلم في «كتابة إضافات منصات مخصصة لـ iOS وAndroid»؟
أنشئ إضافات اتحادية تعرض واجهات Kotlin وSwift الأصلية لـ Dart تتمرن على Flutter Mobile Development مع أكواد عملية تشغلها مباشرة في المتصفح، ومدرس ذكاء اصطناعي متاح 24/7 يجيب على أسئلتك أثناء عملك.
هل أحتاج إلى خبرة سابقة لأبدأ Flutter Mobile Development؟
لا تُشترط خبرة سابقة. Flutter Mobile Development على CoddyKit منظم للمبتدئين حتى المتقدمين، لذا يمكنك البدء من هنا أو من البداية والتقدم بسرعتك الخاصة. هذا هو الدرس 3 من أصل 4.
كم من الوقت يستغرق درس «كتابة إضافات منصات مخصصة لـ iOS وAndroid»؟
معظم دروس CoddyKit تستغرق حوالي 5–10 دقائق. كل منها موجز وتفاعلي، لذا تحرز تقدماً مستمراً وتستأنف من حيث توقفت عبر الويب والتطبيق.
هل يمكنني كتابة وتشغيل أكواد في درس Flutter Mobile Development هذا؟
نعم. كل درس في Flutter Mobile Development يتضمن محرر أكواد مدمج، لذا تكتب وتشغل أكواداً حقيقية مباشرة في متصفحك وتحصل على تعليقات فورية من الذكاء الاصطناعي — بدون إعداد محلي.
جميع الدروس في هذه الدورة
- استدعاء مكتبات C باستخدام dart:ffi
- قنوات منصات آمنة من حيث النوع باستخدام Pigeon
- كتابة إضافات منصات مخصصة لـ iOS وAndroid
- العزلات الخلفية وإدارة الذاكرة الأصلية