flutter-apply-architecture-best-practices
flutter/agent-plugins
Architect Flutter apps with layered separation of concerns: UI, Logic, and Data layers.
What is flutter-apply-architecture-best-practices?
Structures Flutter applications using a recommended three-layer architecture (UI/Presentation, Logic/Domain, Data) with MVVM pattern and Repository pattern. Use this skill when building new projects or refactoring existing code for scalability and maintainability.
- Organizes code into UI (Views/ViewModels), Logic (Use Cases), and Data (Services/Repositories) layers
- Implements MVVM pattern for state management with ChangeNotifier and immutable state exposure
- Applies Repository pattern to isolate data access and create a single source of truth
- Provides project structure template grouping UI by feature and Data/Domain by type
- Defines workflow for implementing new features from domain models through dependency injection
- Includes concrete code examples for Services, Repositories, ViewModels, and Views
How to install flutter-apply-architecture-best-practices
npx skills add https://github.com/flutter/agent-plugins --skill flutter-apply-architecture-best-practicesHow to use flutter-apply-architecture-best-practices
- 1.Define immutable domain models for your feature using freezed or built_value
- 2.Create Service classes to handle external API communication and raw data fetching
- 3.Implement Repository classes that consume Services and transform raw models into clean domain models
- 4.Create a ViewModel extending ChangeNotifier to manage UI state and expose immutable state snapshots
- 5.Build Views as lean widgets that listen to ViewModel changes using ListenableBuilder or AnimatedBuilder
- 6.Register Services, Repositories, and ViewModels in your dependency injection container (provider or get_it)
- 7.Run unit tests for ViewModels and Repositories to validate the implementation
Use cases
- Structuring a new Flutter project with clear separation of concerns from the start
- Refactoring an existing Flutter app to improve scalability and testability
- Adding a new feature following the prescribed workflow from data layer to UI
- Implementing complex business logic that needs to be reused across multiple screens
- Setting up caching, offline synchronization, and retry logic in the data layer
- Flutter developers building medium to large-scale applications
- Teams needing consistent architectural patterns across projects
- Developers refactoring monolithic Flutter apps into maintainable layers
- Architects designing scalable Flutter application structures
flutter-apply-architecture-best-practices FAQ
Create a Use Case only if your feature requires complex data transformation, cross-repository logic, or business logic that must be reused across multiple ViewModels. For simple CRUD operations, skip this layer and implement logic directly in the Repository.
Views should contain only UI-specific operations like animations, layout constraints, and simple routing. All business logic and state management must be delegated to the ViewModel. Views should be lean, reusable widgets.
Implement caching and offline logic in the Repository layer. The Repository consumes Services and decides whether to return cached data, fetch fresh data, or handle offline scenarios before exposing Domain Models to ViewModels.
Both are valid choices for creating immutable data classes. Use whichever your team prefers; the architecture pattern works with either approach.
Inject dependencies via constructor parameters. Use a dependency injection container (provider or get_it) to register and resolve Services, Repositories, and ViewModels, ensuring loose coupling between layers.
Full instructions (SKILL.md)
Source of truth, from flutter/agent-plugins.
name: flutter-apply-architecture-best-practices description: Architects a Flutter application using the recommended layered approach (UI, Logic, Data). Use when structuring a new project or refactoring for scalability. metadata: model: models/gemini-3.1-pro-preview last_modified: Tue, 21 Apr 2026 20:11:20 GMT
Architecting Flutter Applications
Contents
Architectural Layers
Enforce strict Separation of Concerns by dividing the application into distinct layers. Never mix UI rendering with business logic or data fetching.
UI Layer (Presentation)
Implement the MVVM (Model-View-ViewModel) pattern to manage UI state and logic.
- Views: Write reusable, lean widgets. Restrict logic in Views to UI-specific operations (e.g., animations, layout constraints, simple routing). Pass all required data from the ViewModel.
- ViewModels: Manage UI state and handle user interactions. Extend
ChangeNotifier(or useListenable) to expose state. Expose immutable state snapshots to the View. Inject Repositories into ViewModels via the constructor.
Data Layer
Implement the Repository pattern to isolate data access logic and create a single source of truth.
- Services: Create stateless classes to wrap external APIs (HTTP clients, local databases, platform plugins). Return raw API models or
Resultwrappers. - Repositories: Consume one or more Services. Transform raw API models into clean Domain Models. Handle caching, offline synchronization, and retry logic. Expose Domain Models to ViewModels.
Logic Layer (Domain - Optional)
- Use Cases: Implement this layer only if the application contains complex business logic that clutters the ViewModel, or if logic must be reused across multiple ViewModels. Extract this logic into dedicated Use Case (interactor) classes that sit between ViewModels and Repositories.
Project Structure
Organize the codebase using a hybrid approach: group UI components by feature, and group Data/Domain components by type.
lib/
├── data/
│ ├── models/ # API models
│ ├── repositories/ # Repository implementations
│ └── services/ # API clients, local storage wrappers
├── domain/
│ ├── models/ # Clean domain models
│ └── use_cases/ # Optional business logic classes
└── ui/
├── core/ # Shared widgets, themes, typography
└── features/
└── [feature_name]/
├── view_models/
└── views/
Workflow: Implementing a New Feature
Follow this sequential workflow when adding a new feature to the application. Copy the checklist to track progress.
Task Progress
- Step 1: Define Domain Models. Create immutable data classes for the feature using
freezedorbuilt_value. - Step 2: Implement Services. Create or update Service classes to handle external API communication.
- Step 3: Implement Repositories. Create the Repository to consume Services and return Domain Models.
- Step 4: Apply Conditional Logic (Domain Layer).
- If the feature requires complex data transformation or cross-repository logic: Create a Use Case class.
- If the feature is a simple CRUD operation: Skip to Step 5.
- Step 5: Implement the ViewModel. Create the ViewModel extending
ChangeNotifier. Inject required Repositories/Use Cases. Expose immutable state and command methods. - Step 6: Implement the View. Create the UI widget. Use
ListenableBuilderorAnimatedBuilderto listen to ViewModel changes. - Step 7: Inject Dependencies. Register the new Service, Repository, and ViewModel in the dependency injection container (e.g.,
providerorget_it). - Step 8: Run Validator. Execute unit tests for the ViewModel and Repository.
- Feedback Loop: Run tests -> Review failures -> Fix logic -> Re-run until passing.
Examples
Data Layer: Service and Repository
// 1. Service (Raw API interaction)
class ApiClient {
Future<UserApiModel> fetchUser(String id) async {
// HTTP GET implementation...
}
}
// 2. Repository (Single source of truth, returns Domain Model)
class UserRepository {
UserRepository({required ApiClient apiClient}) : _apiClient = apiClient;
final ApiClient _apiClient;
User? _cachedUser;
Future<User> getUser(String id) async {
if (_cachedUser != null) return _cachedUser!;
final apiModel = await _apiClient.fetchUser(id);
_cachedUser = User(id: apiModel.id, name: apiModel.fullName); // Transform to Domain Model
return _cachedUser!;
}
}
UI Layer: ViewModel and View
// 3. ViewModel (State management and presentation logic)
class ProfileViewModel extends ChangeNotifier {
ProfileViewModel({required UserRepository userRepository})
: _userRepository = userRepository;
final UserRepository _userRepository;
User? _user;
User? get user => _user;
bool _isLoading = false;
bool get isLoading => _isLoading;
Future<void> loadProfile(String id) async {
_isLoading = true;
notifyListeners();
try {
_user = await _userRepository.getUser(id);
} finally {
_isLoading = false;
notifyListeners();
}
}
}
// 4. View (Dumb UI component)
class ProfileView extends StatelessWidget {
const ProfileView({super.key, required this.viewModel});
final ProfileViewModel viewModel;
@override
Widget build(BuildContext context) {
return ListenableBuilder(
listenable: viewModel,
builder: (context, _) {
if (viewModel.isLoading) {
return const Center(child: CircularProgressIndicator());
}
final user = viewModel.user;
if (user == null) {
return const Center(child: Text('User not found'));
}
return Column(
children: [
Text(user.name),
ElevatedButton(
onPressed: () => viewModel.loadProfile(user.id),
child: const Text('Refresh'),
),
],
);
},
);
}
}
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