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Edge Computing with Cloudflare Workers & Deno · Lekcja

Architektury sterowane zdarzeniami

Twórz systemy sterowane zdarzeniami z użyciem Workers i Deno, reagujące na dane w czasie rzeczywistym i działania użytkowników

Architektury sterowane zdarzeniami to bezpłatna lekcja Edge Computing with Cloudflare Workers & Deno na CoddyKit. To lekcja 2 z 4. Możesz przeczytać całą lekcję poniżej za darmo — a potem ćwiczyć ją interaktywnie w przeglądarce z wbudowanym edytorem kodu i tutorem AI dostępnym 24/7. To część ścieżki edukacyjnej Edge Computing with Cloudflare Workers & Deno, a Twój postęp synchronizuje się między webem a aplikacją CoddyKit. Kurs Edge Computing with Cloudflare Workers & Deno zawiera 4 lekcji w sumie.

Części tej lekcji nie zostały jeszcze przetłumaczone i są wyświetlane po angielsku.

What is Event-Driven Architecture?

Welcome! Today we'll explore Event-Driven Architecture (EDA). It's a design pattern where services communicate by producing and consuming events, rather than direct calls.

Think of it like a news channel: producers (reporters) publish news (events), and consumers (viewers) react to the news they're interested in.

  • Event: A significant change in state, like 'user registered'.
  • Producer: The system that generates and sends an event.
  • Consumer: The system that listens for and reacts to an event.

Why Event-Driven at the Edge?

EDA shines brightly at the edge, offering significant benefits for performance and scalability:

  • Decoupling: Services operate independently, reducing dependencies.
  • Scalability: Individual components can scale up or down based on event load.
  • Real-time Responsiveness: React to user actions or data changes instantly.
  • Resilience: If one consumer fails, others can still process events.

This makes your edge applications more robust and flexible.

Cloudflare Workers as Event Reactors

Cloudflare Workers are perfect for event-driven systems because they are inherently reactive. They spring into action when triggered by an event!

Common events that trigger Workers include:

  • Incoming HTTP requests (e.g., an API call)
  • Messages from a queue (e.g., Cloudflare Queues)
  • Scheduled cron jobs
  • Other Cloudflare service bindings

They act as lightweight, distributed consumers.

Code: Worker Reacting to HTTP Event

Here's a basic Worker that processes an incoming HTTP request as an 'event'. It reads a custom header to identify the event type and logs it.

Try changing the X-Event-Type header when you test it!

export default {
  async fetch(request, env, ctx) {
    const eventType = request.headers.get('X-Event-Type') || 'unknown_event';
    const eventData = await request.json().catch(() => ({}));

    console.log(`Worker received event: ${eventType}`);
    console.log(`Event data: ${JSON.stringify(eventData)}`);

    // In a real app, you'd process eventData here
    return new Response(`Event '${eventType}' processed!`, { status: 200 });
  },
};

Deno as an Event Originator

Just as Workers consume events, Deno applications can act as event producers. A Deno backend service or a CLI tool might generate events.

For instance, a Deno script could:

  • Detect a file change and send an event.
  • Process data and publish a 'data_processed' event.
  • Handle a user action and send a 'user_activity' event to your edge Worker.

Code: Deno Sends Event to Worker

This Deno script acts as a producer, sending a 'user_registered' event to our Cloudflare Worker via an HTTP POST request. The Worker then acts as the consumer.

Remember to replace 'YOUR_WORKER_URL' with your deployed Worker's URL!

// main.ts
async function sendUserRegisteredEvent() {
  const workerUrl = "https://your-worker-name.your-account.workers.dev"; // Replace this!

  const response = await fetch(workerUrl, {
    method: "POST",
    headers: {
      "Content-Type": "application/json",
      "X-Event-Type": "user_registered"
    },
    body: JSON.stringify({ userId: "user_abc", timestamp: Date.now() })
  });

  if (response.ok) {
    console.log("User registered event sent successfully!");
  } else {
    console.error("Failed to send event:", response.status, await response.text());
  }
}

sendUserRegisteredEvent();

Cloudflare Queues for Robust Events

For truly robust event-driven systems, especially at the edge, Cloudflare Queues are invaluable. They act as an event bus, providing a reliable buffer between producers and consumers.

  • Asynchronous: Producers don't wait for consumers to finish.
  • Guaranteed Delivery: Messages are durably stored until processed.
  • Load Leveling: Handles bursts of events without overwhelming consumers.
  • Decoupling: Producers and consumers don't need to know about each other directly.

Code: Worker Publishes to a Queue

Here, a Worker receives an HTTP request (an event) and then publishes a message to a Cloudflare Queue. This offloads heavy processing to a separate consumer.

To make this runnable, you'd need to bind a Queue in your wrangler.toml file (e.g., [[queues.producers]] binding = "MY_QUEUE" queue_name = "my-event-queue").

export default {
  async fetch(request, env, ctx) {
    const eventData = await request.json().catch(() => ({}));
    const eventType = eventData.type || 'api_trigger_event';

    // Publish event to a Cloudflare Queue
    // 'env.MY_QUEUE' refers to the queue binding configured
    await env.MY_QUEUE.send({
      eventType: eventType,
      payload: eventData
    });

    return new Response(`Event '${eventType}' queued successfully!`, { status: 202 });
  },
};

Code: Worker Consuming Queue Messages

This Worker is configured to consume messages directly from a Cloudflare Queue. It processes each message in a batch, extracting the event type and payload.

This Worker would have a queue handler instead of (or in addition to) a fetch handler. You'd configure this in your wrangler.toml (e.g., [[queues.consumers]] queue = "my-event-queue").

export default {
  async queue(batch, env, ctx) {
    for (const message of batch.messages) {
      const { eventType, payload } = message.body;
      console.log(`Processing event from queue: ${eventType}`);
      console.log(`Payload: ${JSON.stringify(payload)}`);

      // Implement your actual event processing logic here
      // e.g., update a database, send a notification, call another API
    }
  },
};

Quick Check: Event-Driven Concepts

Which of the following are key benefits of using an Event-Driven Architecture at the edge?

Recap: Event-Driven Edge Apps

Great job! You've learned about Event-Driven Architectures and how they supercharge applications at the edge.

  • EDA uses events, producers, and consumers for decoupled communication.
  • Cloudflare Workers are ideal for consuming and producing edge events.
  • Deno applications can act as powerful event producers.
  • Cloudflare Queues provide robust, asynchronous event delivery for resilience and scale.

This pattern is key for building highly responsive, scalable, and fault-tolerant edge applications. Keep exploring how events can transform your architecture!

Często zadawane pytania

Czy lekcja „Architektury sterowane zdarzeniami” jest bezpłatna?

Tak — pełny tekst „Architektury sterowane zdarzeniami” jest dostępny za darmo tutaj w sieci. Aby ćwiczyć ją interaktywnie (wbudowany edytor kodu i tutor AI dostępny 24/7) i odblokować resztę kursu Edge Computing with Cloudflare Workers & Deno, przejdź na CoddyKit PRO. Kurs Edge Computing with Cloudflare Workers & Deno zawiera 4 lekcji w sumie.

Co nauczysz się w „Architektury sterowane zdarzeniami”?

Twórz systemy sterowane zdarzeniami z użyciem Workers i Deno, reagujące na dane w czasie rzeczywistym i działania użytkowników Ćwiczysz Edge Computing with Cloudflare Workers & Deno z praktycznym kodem, który uruchamiasz bezpośrednio w przeglądarce, a tutor AI dostępny 24/7 odpowiada na Twoje pytania podczas pracy nad lekcją.

Czy potrzebuję doświadczenia, aby zacząć Edge Computing with Cloudflare Workers & Deno?

Nie wymagamy żadnego doświadczenia. Edge Computing with Cloudflare Workers & Deno w CoddyKit jest strukturyzowany dla początkujących i zaawansowanych użytkowników, więc możesz zacząć tutaj lub od początku i uczyć się w swoim tempie. To lekcja 2 z 4.

Ile czasu zajmuje lekcja „Architektury sterowane zdarzeniami”?

Większość lekcji CoddyKit trwa około 5–10 minut. Każda lekcja to mały, interaktywny krok, dzięki czemu robisz systematyczne postępy i zawsze wracasz dokładnie do tego samego miejsca — na webie i w aplikacji.

Czy mogę pisać i uruchamiać kod w tej lekcji Edge Computing with Cloudflare Workers & Deno?

Tak. Każda lekcja Edge Computing with Cloudflare Workers & Deno zawiera wbudowany edytor kodu, więc piszesz i uruchamiasz prawdziwy kod bezpośrednio w przeglądarce i od razu otrzymujesz sprzężenie zwrotne od AI — bez konfiguracji na komputerze.

Wszystkie lekcje w tym kursie

  1. Mikroserwisy na brzegu sieci
  2. Architektury sterowane zdarzeniami
  3. Geolokalizacja i lokalizacja
  4. Durable Objects i koordynacja ze stanem
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