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hexagonal-architecture

affaan-m/ecc

Design domain-centric systems with clear boundaries, dependency inversion, and testable use-case orchestration.

What is hexagonal-architecture?

Hexagonal architecture (Ports and Adapters) isolates business logic from frameworks, transport, and persistence by defining abstract ports at the edges and keeping the domain independent. Use this when building maintainable systems, refactoring tightly coupled code, supporting multiple interfaces for the same use case, or replacing infrastructure without rewriting business rules.

  • Model domain entities and business rules with zero framework dependencies
  • Define inbound and outbound ports as contracts for use-case inputs and infrastructure dependencies
  • Implement use cases as pure orchestration layers that coordinate domain behavior
  • Build adapters at the edges to convert protocol-specific input/output and manage infrastructure
  • Wire adapters and use cases in a centralized composition root to avoid hidden service-locator patterns
  • Test use cases with fake ports, adapters with real infrastructure, and flows end-to-end

How to install hexagonal-architecture

npx skills add null --skill hexagonal-architecture
Claude Code
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How to use hexagonal-architecture

  1. 1.Identify a single use case with clear input and output boundaries, keeping transport details outside
  2. 2.Define outbound ports first by listing every side effect (persistence, external calls, logging, time)
  3. 3.Implement the use case class/function to orchestrate domain rules and coordinate ports without framework imports
  4. 4.Build inbound adapters to convert protocol input (HTTP, CLI, job payload) to use-case input
  5. 5.Build outbound adapters to map port interfaces to concrete APIs, ORMs, or query builders
  6. 6.Create a composition root module that instantiates adapters and injects them into use cases
  7. 7.Test use cases with fake ports, adapters with real infrastructure, and full flows end-to-end

Use cases

Good for
  • Refactoring a monolith where domain logic is tangled with HTTP controllers and ORM code
  • Building a new feature that must support HTTP, CLI, and async job interfaces simultaneously
  • Replacing a database or payment provider without touching business logic
  • Designing a multi-language microservice (TypeScript, Java, Kotlin, Go) with consistent architecture
  • Testing domain rules in isolation using fake repositories and gateways
Who it's for
  • Backend engineers building or refactoring services where maintainability and testability are priorities
  • Teams adopting domain-driven design or transitioning from layered/framework-heavy architectures
  • Architects designing multi-interface or multi-language systems with clear separation of concerns

hexagonal-architecture FAQ

Where should outbound port interfaces live?

Outbound ports typically live in the application layer (or domain layer only if the abstraction is truly domain-level). Infrastructure adapters implement them. The direction of dependency is always inward: adapters depend on ports, not the reverse.

How do I organize code across TypeScript, Java, Kotlin, and Go?

Use the same boundary rules in all languages. TypeScript/JavaScript use interfaces in `application/ports/*` and classes with constructor injection. Java uses packages like `application.port.in/out` with Spring or manual wiring. Kotlin mirrors Java with Koin/Dagger/Spring. Go uses small interfaces owned by the application package. The structure and principles remain consistent.

What is a composition root and why is it important?

A composition root is a single, centralized location where concrete adapters are instantiated and injected into use cases. It prevents hidden service-locator behavior and makes dependencies explicit. Keep all wiring logic here, not scattered across domain or use-case classes.

How should I test hexagonal architecture?

Unit test use cases with fake/mock ports to verify orchestration logic. Integration test adapters with real infrastructure (test database, sandbox APIs) to verify they correctly implement port contracts. E2E test user-facing flows through inbound adapters to verify end-to-end behavior.

When should I use hexagonal architecture versus simpler patterns?

Use hexagonal architecture when long-term maintainability and testability matter, when you need to support multiple interfaces for the same use case, or when you anticipate replacing infrastructure. For simple CRUD scripts or prototypes, simpler patterns may be sufficient.

Full instructions (SKILL.md)

Source of truth, from affaan-m/ecc.


name: hexagonal-architecture description: Design, implement, and refactor Ports & Adapters systems with clear domain boundaries, dependency inversion, and testable use-case orchestration across TypeScript, Java, Kotlin, and Go services. metadata: origin: ECC

Hexagonal Architecture

Hexagonal architecture (Ports and Adapters) keeps business logic independent from frameworks, transport, and persistence details. The core app depends on abstract ports, and adapters implement those ports at the edges.

When to Use

  • Building new features where long-term maintainability and testability matter.
  • Refactoring layered or framework-heavy code where domain logic is mixed with I/O concerns.
  • Supporting multiple interfaces for the same use case (HTTP, CLI, queue workers, cron jobs).
  • Replacing infrastructure (database, external APIs, message bus) without rewriting business rules.

Use this skill when the request involves boundaries, domain-centric design, refactoring tightly coupled services, or decoupling application logic from specific libraries.

Core Concepts

  • Domain model: Business rules and entities/value objects. No framework imports.
  • Use cases (application layer): Orchestrate domain behavior and workflow steps.
  • Inbound ports: Contracts describing what the application can do (commands/queries/use-case interfaces).
  • Outbound ports: Contracts for dependencies the application needs (repositories, gateways, event publishers, clock, UUID, etc.).
  • Adapters: Infrastructure and delivery implementations of ports (HTTP controllers, DB repositories, queue consumers, SDK wrappers).
  • Composition root: Single wiring location where concrete adapters are bound to use cases.

Outbound port interfaces usually live in the application layer (or in domain only when the abstraction is truly domain-level), while infrastructure adapters implement them.

Dependency direction is always inward:

  • Adapters -> application/domain
  • Application -> port interfaces (inbound/outbound contracts)
  • Domain -> domain-only abstractions (no framework or infrastructure dependencies)
  • Domain -> nothing external

How It Works

Step 1: Model a use case boundary

Define a single use case with a clear input and output DTO. Keep transport details (Express req, GraphQL context, job payload wrappers) outside this boundary.

Step 2: Define outbound ports first

Identify every side effect as a port:

  • persistence (UserRepositoryPort)
  • external calls (BillingGatewayPort)
  • cross-cutting (LoggerPort, ClockPort)

Ports should model capabilities, not technologies.

Step 3: Implement the use case with pure orchestration

Use case class/function receives ports via constructor/arguments. It validates application-level invariants, coordinates domain rules, and returns plain data structures.

Step 4: Build adapters at the edge

  • Inbound adapter converts protocol input to use-case input.
  • Outbound adapter maps app contracts to concrete APIs/ORM/query builders.
  • Mapping stays in adapters, not inside use cases.

Step 5: Wire everything in a composition root

Instantiate adapters, then inject them into use cases. Keep this wiring centralized to avoid hidden service-locator behavior.

Step 6: Test per boundary

  • Unit test use cases with fake ports.
  • Integration test adapters with real infra dependencies.
  • E2E test user-facing flows through inbound adapters.

Architecture Diagram

flowchart LR
  Client["Client (HTTP/CLI/Worker)"] --> InboundAdapter["Inbound Adapter"]
  InboundAdapter -->|"calls"| UseCase["UseCase (Application Layer)"]
  UseCase -->|"uses"| OutboundPort["OutboundPort (Interface)"]
  OutboundAdapter["Outbound Adapter"] -->|"implements"| OutboundPort
  OutboundAdapter --> ExternalSystem["DB/API/Queue"]
  UseCase --> DomainModel["DomainModel"]

Suggested Module Layout

Use feature-first organization with explicit boundaries:

src/
  features/
    orders/
      domain/
        Order.ts
        OrderPolicy.ts
      application/
        ports/
          inbound/
            CreateOrder.ts
          outbound/
            OrderRepositoryPort.ts
            PaymentGatewayPort.ts
        use-cases/
          CreateOrderUseCase.ts
      adapters/
        inbound/
          http/
            createOrderRoute.ts
        outbound/
          postgres/
            PostgresOrderRepository.ts
          stripe/
            StripePaymentGateway.ts
      composition/
        ordersContainer.ts

TypeScript Example

Port definitions

export interface OrderRepositoryPort {
  save(order: Order): Promise<void>;
  findById(orderId: string): Promise<Order | null>;
}

export interface PaymentGatewayPort {
  authorize(input: { orderId: string; amountCents: number }): Promise<{ authorizationId: string }>;
}

Use case

type CreateOrderInput = {
  orderId: string;
  amountCents: number;
};

type CreateOrderOutput = {
  orderId: string;
  authorizationId: string;
};

export class CreateOrderUseCase {
  constructor(
    private readonly orderRepository: OrderRepositoryPort,
    private readonly paymentGateway: PaymentGatewayPort
  ) {}

  async execute(input: CreateOrderInput): Promise<CreateOrderOutput> {
    const order = Order.create({ id: input.orderId, amountCents: input.amountCents });

    const auth = await this.paymentGateway.authorize({
      orderId: order.id,
      amountCents: order.amountCents,
    });

    // markAuthorized returns a new Order instance; it does not mutate in place.
    const authorizedOrder = order.markAuthorized(auth.authorizationId);
    await this.orderRepository.save(authorizedOrder);

    return {
      orderId: order.id,
      authorizationId: auth.authorizationId,
    };
  }
}

Outbound adapter

export class PostgresOrderRepository implements OrderRepositoryPort {
  constructor(private readonly db: SqlClient) {}

  async save(order: Order): Promise<void> {
    await this.db.query(
      "insert into orders (id, amount_cents, status, authorization_id) values ($1, $2, $3, $4)",
      [order.id, order.amountCents, order.status, order.authorizationId]
    );
  }

  async findById(orderId: string): Promise<Order | null> {
    const row = await this.db.oneOrNone("select * from orders where id = $1", [orderId]);
    return row ? Order.rehydrate(row) : null;
  }
}

Composition root

export const buildCreateOrderUseCase = (deps: { db: SqlClient; stripe: StripeClient }) => {
  const orderRepository = new PostgresOrderRepository(deps.db);
  const paymentGateway = new StripePaymentGateway(deps.stripe);

  return new CreateOrderUseCase(orderRepository, paymentGateway);
};

Multi-Language Mapping

Use the same boundary rules across ecosystems; only syntax and wiring style change.

  • TypeScript/JavaScript
    • Ports: application/ports/* as interfaces/types.
    • Use cases: classes/functions with constructor/argument injection.
    • Adapters: adapters/inbound/*, adapters/outbound/*.
    • Composition: explicit factory/container module (no hidden globals).
  • Java
    • Packages: domain, application.port.in, application.port.out, application.usecase, adapter.in, adapter.out.
    • Ports: interfaces in application.port.*.
    • Use cases: plain classes (Spring @Service is optional, not required).
    • Composition: Spring config or manual wiring class; keep wiring out of domain/use-case classes.
  • Kotlin
    • Modules/packages mirror the Java split (domain, application.port, application.usecase, adapter).
    • Ports: Kotlin interfaces.
    • Use cases: classes with constructor injection (Koin/Dagger/Spring/manual).
    • Composition: module definitions or dedicated composition functions; avoid service locator patterns.
  • Go
    • Packages: internal/<feature>/domain, application, ports, adapters/inbound, adapters/outbound.
    • Ports: small interfaces owned by the consuming application package.
    • Use cases: structs with interface fields plus explicit New... constructors.
    • Composition: wire in cmd/<app>/main.go (or dedicated wiring package), keep constructors explicit.

Anti-Patterns to Avoid

  • Domain entities importing ORM models, web framework types, or SDK clients.
  • Use cases reading directly from req, res, or queue metadata.
  • Returning database rows directly from use cases without domain/application mapping.
  • Letting adapters call each other directly instead of flowing through use-case ports.
  • Spreading dependency wiring across many files with hidden global singletons.

Migration Playbook

  1. Pick one vertical slice (single endpoint/job) with frequent change pain.
  2. Extract a use-case boundary with explicit input/output types.
  3. Introduce outbound ports around existing infrastructure calls.
  4. Move orchestration logic from controllers/services into the use case.
  5. Keep old adapters, but make them delegate to the new use case.
  6. Add tests around the new boundary (unit + adapter integration).
  7. Repeat slice-by-slice; avoid full rewrites.

Refactoring Existing Systems

  • Strangler approach: keep current endpoints, route one use case at a time through new ports/adapters.
  • No big-bang rewrites: migrate per feature slice and preserve behavior with characterization tests.
  • Facade first: wrap legacy services behind outbound ports before replacing internals.
  • Composition freeze: centralize wiring early so new dependencies do not leak into domain/use-case layers.
  • Slice selection rule: prioritize high-churn, low-blast-radius flows first.
  • Rollback path: keep a reversible toggle or route switch per migrated slice until production behavior is verified.

Testing Guidance (Same Hexagonal Boundaries)

  • Domain tests: test entities/value objects as pure business rules (no mocks, no framework setup).
  • Use-case unit tests: test orchestration with fakes/stubs for outbound ports; assert business outcomes and port interactions.
  • Outbound adapter contract tests: define shared contract suites at port level and run them against each adapter implementation.
  • Inbound adapter tests: verify protocol mapping (HTTP/CLI/queue payload to use-case input and output/error mapping back to protocol).
  • Adapter integration tests: run against real infrastructure (DB/API/queue) for serialization, schema/query behavior, retries, and timeouts.
  • End-to-end tests: cover critical user journeys through inbound adapter -> use case -> outbound adapter.
  • Refactor safety: add characterization tests before extraction; keep them until new boundary behavior is stable and equivalent.

Best Practices Checklist

  • Domain and use-case layers import only internal types and ports.
  • Every external dependency is represented by an outbound port.
  • Validation occurs at boundaries (inbound adapter + use-case invariants).
  • Use immutable transformations (return new values/entities instead of mutating shared state).
  • Errors are translated across boundaries (infra errors -> application/domain errors).
  • Composition root is explicit and easy to audit.
  • Use cases are testable with simple in-memory fakes for ports.
  • Refactoring starts from one vertical slice with behavior-preserving tests.
  • Language/framework specifics stay in adapters, never in domain rules.