MCP HubMCP Hub
Volver a habilidades

implement-a2a-server

pjt222
Actualizado 2 days ago
4 vistas
17
2
17
Ver en GitHub
Metaaiautomationdesign

Acerca de

Esta habilidad ayuda a los desarrolladores a implementar un servidor JSON-RPC 2.0 A2A para flujos de trabajo multiagente con gestión completa del ciclo de vida de tareas. Proporciona transmisión SSE y notificaciones push para construir agentes interoperables o añadir soporte A2A a servicios existentes. Úsela al crear backends de agentes o para garantizar el cumplimiento del protocolo A2A.

Instalación rápida

Claude Code

Recomendado
Principal
npx skills add pjt222/agent-almanac -a claude-code
Comando PluginAlternativo
/plugin add https://github.com/pjt222/agent-almanac
Git CloneAlternativo
git clone https://github.com/pjt222/agent-almanac.git ~/.claude/skills/implement-a2a-server

Copia y pega este comando en Claude Code para instalar esta habilidad

Documentación

Implement A2A Server

Build a fully compliant A2A server that handles JSON-RPC 2.0 requests, manages task lifecycle states, supports SSE streaming for real-time updates, and serves an Agent Card for discovery.

Cuándo Usar

  • Implementing an agent that participates in multi-agent A2A workflows
  • Building a backend for an Agent Card designed with design-a2a-agent-card
  • Adding A2A protocol support to an existing agent or service
  • Creating a reference A2A server implementation for testing
  • Deploying an agent that must interoperate with other A2A-compliant agents

Entradas

  • Requerido: Agent Card (JSON) defining the agent's skills and capabilities
  • Requerido: Implementation language (TypeScript/Node.js or Python)
  • Requerido: Task execution logic for each skill defined in the Agent Card
  • Opcional: Push notification webhook support (true or false)
  • Opcional: Persistent task store (in-memory, Redis, PostgreSQL)
  • Opcional: Authentication middleware matching the Agent Card's auth scheme
  • Opcional: Maximum concurrent tasks limit

Procedimiento

Paso 1: Set Up Project with JSON-RPC 2.0 Handler

1.1. Initialize the project with HTTP server and JSON-RPC parsing:

TypeScript:

mkdir -p $PROJECT_NAME && cd $PROJECT_NAME
npm init -y
npm install express uuid
npm install -D typescript @types/node @types/express tsx

Python:

mkdir -p $PROJECT_NAME && cd $PROJECT_NAME
python -m venv .venv && source .venv/bin/activate
pip install fastapi uvicorn uuid6

1.2. Create the JSON-RPC 2.0 request handler:

interface JsonRpcRequest {
  jsonrpc: "2.0";
  id: string | number;
  method: string;
  params?: Record<string, unknown>;
}

interface JsonRpcResponse {
  jsonrpc: "2.0";
  id: string | number;
  result?: unknown;
  error?: { code: number; message: string; data?: unknown };
}

function handleJsonRpc(request: JsonRpcRequest): JsonRpcResponse {
  switch (request.method) {
    case "tasks/send":
      return handleTaskSend(request);
    case "tasks/get":
      return handleTaskGet(request);
    case "tasks/cancel":
      return handleTaskCancel(request);
    case "tasks/sendSubscribe":
      // Handled separately via SSE
      throw new Error("Use SSE endpoint for sendSubscribe");
    default:
      return {
        jsonrpc: "2.0",
        id: request.id,
        error: { code: -32601, message: `Method not found: ${request.method}` },
      };
  }
}

1.3. Mount the JSON-RPC handler on a POST endpoint (typically /):

app.post("/", (req, res) => {
  const response = handleJsonRpc(req.body);
  res.json(response);
});

1.4. Serve the Agent Card at /.well-known/agent.json:

app.get("/.well-known/agent.json", (req, res) => {
  res.json(agentCard);
});

Esperado: An HTTP server that accepts JSON-RPC 2.0 requests and serves the Agent Card.

En caso de fallo: If JSON-RPC parsing fails, validate that the request body has jsonrpc, method, and id fields. Return -32700 (Parse error) for malformed JSON and -32600 (Invalid Request) for missing required fields.

Paso 2: Implement Task State Machine

2.1. Define the task model with all A2A lifecycle states:

type TaskState =
  | "submitted"
  | "working"
  | "input-required"
  | "completed"
  | "failed"
  | "canceled";

interface Task {
  id: string;
  sessionId: string;
  status: {
    state: TaskState;
    message?: Message;
    timestamp: string;
  };
  history?: TaskStatus[];
  artifacts?: Artifact[];
  metadata?: Record<string, unknown>;
}

interface Message {
  role: "user" | "agent";
  parts: Part[];
}

type Part =
  | { type: "text"; text: string }
  | { type: "file"; file: { name: string; mimeType: string; bytes?: string; uri?: string } }
  | { type: "data"; data: Record<string, unknown> };

2.2. Implement state transition rules:

submitted  -> working | failed | canceled
working    -> completed | failed | canceled | input-required
input-required -> working | failed | canceled
completed  -> (terminal)
failed     -> (terminal)
canceled   -> (terminal)

2.3. Create a task store with CRUD operations:

class TaskStore {
  private tasks: Map<string, Task> = new Map();

  create(sessionId: string, message: Message): Task { ... }
  get(taskId: string): Task | undefined { ... }
  updateStatus(taskId: string, state: TaskState, message?: Message): Task { ... }
  addArtifact(taskId: string, artifact: Artifact): void { ... }
  cancel(taskId: string): Task { ... }
}

2.4. If stateTransitionHistory is enabled in the Agent Card, append each status change to the task's history array with timestamps.

Esperado: A task store that enforces valid state transitions and maintains history.

En caso de fallo: If an invalid state transition is attempted (e.g., completed to working), return a JSON-RPC error with code -32002 and a descriptive message. Never silently ignore invalid transitions.

Paso 3: Add tasks/send and tasks/get Methods

3.1. Implement tasks/send — the primary method for submitting tasks:

function handleTaskSend(request: JsonRpcRequest): JsonRpcResponse {
  const { id: taskId, sessionId, message } = request.params as TaskSendParams;

  // Create or resume task
  let task = taskStore.get(taskId);
  if (!task) {
    task = taskStore.create(sessionId, message);
  } else if (task.status.state === "input-required") {
    taskStore.updateStatus(task.id, "working");
  }

  // Route to skill handler based on message content
  const skill = matchSkill(message);
  if (!skill) {
    taskStore.updateStatus(task.id, "failed", {
      role: "agent",
      parts: [{ type: "text", text: "No matching skill for this request." }],
    });
    return { jsonrpc: "2.0", id: request.id, result: taskStore.get(task.id) };
  }

  // Execute skill (async — task will transition to working, then completed/failed)
  executeSkill(skill, task, message).catch((error) => {
    taskStore.updateStatus(task.id, "failed", {
      role: "agent",
      parts: [{ type: "text", text: error.message }],
    });
  });

  return { jsonrpc: "2.0", id: request.id, result: taskStore.get(task.id) };
}

3.2. Implement tasks/get — retrieve task status and artifacts:

function handleTaskGet(request: JsonRpcRequest): JsonRpcResponse {
  const { id: taskId, historyLength } = request.params as TaskGetParams;
  const task = taskStore.get(taskId);

  if (!task) {
    return {
      jsonrpc: "2.0",
      id: request.id,
      error: { code: -32001, message: `Task not found: ${taskId}` },
    };
  }

  // Optionally trim history to requested length
  const result = historyLength !== undefined
    ? { ...task, history: task.history?.slice(-historyLength) }
    : task;

  return { jsonrpc: "2.0", id: request.id, result };
}

3.3. Implement tasks/cancel:

function handleTaskCancel(request: JsonRpcRequest): JsonRpcResponse {
  const { id: taskId } = request.params as TaskCancelParams;
  try {
    const task = taskStore.cancel(taskId);
    return { jsonrpc: "2.0", id: request.id, result: task };
  } catch (error) {
    return {
      jsonrpc: "2.0",
      id: request.id,
      error: { code: -32002, message: (error as Error).message },
    };
  }
}

Esperado: Working tasks/send, tasks/get, and tasks/cancel methods that correctly manage task lifecycle.

En caso de fallo: If skill matching fails, return the task in failed state with a descriptive message. If the task store is full, return -32003 (resource exhausted).

Paso 4: Implement SSE Streaming for tasks/sendSubscribe

4.1. Create an SSE endpoint for streaming task updates:

app.post("/subscribe", (req, res) => {
  const request = req.body as JsonRpcRequest;
  if (request.method !== "tasks/sendSubscribe") {
    res.status(400).json({ error: "Only tasks/sendSubscribe supported" });
    return;
  }

  // Set SSE headers
  res.setHeader("Content-Type", "text/event-stream");
  res.setHeader("Cache-Control", "no-cache");
  res.setHeader("Connection", "keep-alive");

  const { id: taskId, sessionId, message } = request.params as TaskSendParams;
  let task = taskStore.get(taskId) ?? taskStore.create(sessionId, message);

  // Send initial status
  sendSSEEvent(res, "status", {
    id: request.id,
    result: { id: task.id, status: task.status },
  });

  // Subscribe to task updates
  const unsubscribe = taskStore.onUpdate(task.id, (updatedTask) => {
    if (updatedTask.status.state === "working") {
      sendSSEEvent(res, "status", {
        id: request.id,
        result: { id: updatedTask.id, status: updatedTask.status },
      });
    }

    if (updatedTask.artifacts?.length) {
      sendSSEEvent(res, "artifact", {
        id: request.id,
        result: { id: updatedTask.id, artifact: updatedTask.artifacts.at(-1) },
      });
    }

    // Close stream on terminal states
    if (["completed", "failed", "canceled"].includes(updatedTask.status.state)) {
      sendSSEEvent(res, "status", {
        id: request.id,
        result: { id: updatedTask.id, status: updatedTask.status, final: true },
      });
      unsubscribe();
      res.end();
    }
  });

  // Handle client disconnect
  req.on("close", () => {
    unsubscribe();
  });
});

function sendSSEEvent(res: Response, event: string, data: unknown): void {
  res.write(`event: ${event}\ndata: ${JSON.stringify(data)}\n\n`);
}

4.2. Add an event emitter or pub/sub mechanism to the task store:

class TaskStore {
  private listeners: Map<string, Set<(task: Task) => void>> = new Map();

  onUpdate(taskId: string, callback: (task: Task) => void): () => void {
    if (!this.listeners.has(taskId)) {
      this.listeners.set(taskId, new Set());
    }
    this.listeners.get(taskId)!.add(callback);
    return () => this.listeners.get(taskId)?.delete(callback);
  }

  private notifyListeners(taskId: string): void {
    const task = this.get(taskId);
    if (task) {
      this.listeners.get(taskId)?.forEach((cb) => cb(task));
    }
  }
}

4.3. Emit events from all task state transitions and artifact additions.

Esperado: SSE streaming that sends real-time status and artifact events as the task progresses.

En caso de fallo: If SSE connection drops, the client should be able to reconnect and use tasks/get to retrieve the current state. Ensure the task store does not depend on active SSE connections.

Paso 5: Add Push Notification Webhook Support

5.1. If pushNotifications is enabled in the Agent Card, implement webhook registration via tasks/pushNotification/set:

  • Accept a PushNotificationConfig with url (HTTPS required), optional token, and events array (["status", "artifact"])
  • Validate the webhook URL uses HTTPS; reject with error code -32004 otherwise
  • Store the config in the task store, keyed by task ID

5.2. Send webhook callbacks on task state changes:

  • On each state transition or artifact addition, check for a registered push config
  • POST a JSON payload with taskId, eventType, status, and timestamp to the webhook URL
  • Include Authorization: Bearer <token> header if a token was provided

5.3. Implement retry logic for failed webhooks (exponential backoff, max 3 retries).

5.4. Add tasks/pushNotification/get to retrieve the current push config for a task.

Esperado: Webhook registration and delivery with retry logic.

En caso de fallo: Push notification failures must never affect task execution. Log errors and continue. If the webhook URL is persistently unreachable, remove the subscription after max retries.

Paso 6: Integrate with Agent Card for Discovery

6.1. Load and serve the Agent Card at startup:

  • Parse agent-card.json and validate capabilities match implementation
  • Throw at startup if the card advertises streaming: true but SSE is not enabled
  • Throw at startup if the card advertises pushNotifications: true but webhooks are not enabled

6.2. Add CORS headers for cross-origin Agent Card discovery:

  • Set Access-Control-Allow-Origin: * on /.well-known/agent.json
  • Allow GET and OPTIONS methods

6.3. Add authentication middleware matching the Agent Card's scheme:

  • Skip authentication for /.well-known/agent.json (Agent Card is always public)
  • For all other endpoints, validate the Authorization header or API key
  • Return HTTP 401 with JSON-RPC error code -32000 for unauthorized requests

6.4. Start the server and verify end-to-end:

# Start server
npm run dev

# Fetch Agent Card
curl -s http://localhost:3000/.well-known/agent.json | python3 -m json.tool

# Send a task
curl -X POST http://localhost:3000/ \
  -H "Content-Type: application/json" \
  -d '{"jsonrpc":"2.0","id":1,"method":"tasks/send","params":{"id":"task-1","sessionId":"session-1","message":{"role":"user","parts":[{"type":"text","text":"Analyze my dataset"}]}}}'

Esperado: A running A2A server that serves its Agent Card, accepts tasks, and manages their full lifecycle.

En caso de fallo: If the Agent Card capabilities do not match the implementation, the startup validation from 6.1 will catch the mismatch. Fix the implementation or update the Agent Card to match.

Validación

  • Server starts and serves Agent Card at /.well-known/agent.json
  • tasks/send creates tasks and transitions them through the lifecycle
  • tasks/get retrieves task status and artifacts
  • tasks/cancel moves tasks to the canceled state
  • SSE streaming sends real-time status and artifact events (if enabled)
  • Push notifications deliver webhooks on state changes (if enabled)
  • Invalid state transitions return appropriate JSON-RPC errors
  • Authentication rejects unauthorized requests (if configured)
  • Agent Card capabilities accurately reflect server implementation
  • All JSON-RPC responses include jsonrpc: "2.0" and correct id

Errores Comunes

  • Missing JSON-RPC error codes: The A2A protocol defines specific error codes. Use -32700 (parse error), -32600 (invalid request), -32601 (method not found), and custom codes for domain errors.
  • Task ID collisions: Use UUIDs for task IDs. If the client provides an ID, validate uniqueness before creating the task.
  • SSE connection leaks: Always clean up SSE subscriptions when the client disconnects. Use req.on("close") to detect disconnects.
  • Blocking skill execution: Long-running skills must execute asynchronously. Return the task in submitted or working state immediately, then update via events.
  • Agent Card drift: If the server implementation changes but the Agent Card is not updated, clients will have incorrect expectations. Validate at startup.
  • Ignoring terminal states: Once a task reaches completed, failed, or canceled, no further state transitions are allowed. Guard against this in the state machine.

Habilidades Relacionadas

  • design-a2a-agent-card - design the Agent Card this server implements
  • test-a2a-interop - validate the server against A2A conformance tests
  • build-custom-mcp-server - MCP server patterns that inform A2A implementation
  • scaffold-mcp-server - scaffolding patterns applicable to A2A server setup
  • configure-ingress-networking - production deployment with TLS and routing

Repositorio GitHub

pjt222/agent-almanac
Ruta: i18n/es/skills/implement-a2a-server
0
agentsagentskillsai-assisted-developmentclaude-codeskillsteams

Habilidades relacionadas

content-collections

Meta

Esta habilidad proporciona una configuración probada en producción para Content Collections, una herramienta centrada en TypeScript que transforma archivos Markdown/MDX en colecciones de datos con tipado seguro mediante validación Zod. Úsala al construir blogs, sitios de documentación o aplicaciones Vite + React con mucho contenido para garantizar seguridad de tipos y validación automática de contenido. Abarca todo, desde la configuración del plugin de Vite y compilación MDX hasta la optimización de despliegue y validación de esquemas.

Ver habilidad

polymarket

Meta

Esta habilidad permite a los desarrolladores crear aplicaciones con la plataforma de mercados de predicción Polymarket, incluyendo la integración de API para operaciones y datos de mercado. También proporciona transmisión de datos en tiempo real a través de WebSocket para monitorear operaciones en vivo y actividad del mercado. Úsela para implementar estrategias de trading o crear herramientas que procesen actualizaciones de mercado en tiempo real.

Ver habilidad

creating-opencode-plugins

Meta

Esta habilidad ayuda a los desarrolladores a crear complementos de OpenCode que se conectan a más de 25 tipos de eventos, como comandos, archivos y operaciones LSP. Proporciona la estructura del complemento, las especificaciones de la API de eventos y los patrones de implementación para módulos en JavaScript/TypeScript. Úsala cuando necesites interceptar, monitorear o extender el ciclo de vida del asistente de IA de OpenCode con lógica personalizada basada en eventos.

Ver habilidad

sglang

Meta

SGLang es un framework de alto rendimiento para el servicio de LLM que se especializa en generación rápida y estructurada para JSON, expresiones regulares y flujos de trabajo de agentes utilizando su caché de prefijos RadixAttention. Ofrece una inferencia significativamente más rápida, especialmente para tareas con prefijos repetidos, lo que lo hace ideal para salidas complejas y estructuradas, y conversaciones multiturno. Elige SGLang sobre alternativas como vLLM cuando necesites decodificación restringida o estés construyendo aplicaciones con uso extensivo de prefijos compartidos.

Ver habilidad