all-of-frontend/Answer/1 ~ 10/3.md
2021-03-11 07:41:19 +08:00

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// 请使用原生代码实现一个Events模块可以实现自定义事件的订阅、触发、移除功能
const fn1 = (... args)=>console.log('I want sleep1', ... args)
const fn2 = (... args)=>console.log('I want sleep2', ... args)
const event = new Events();
event.on('sleep', fn1, 1, 2, 3);
event.on('sleep', fn2, 1, 2, 3);
event.fire('sleep', 4, 5, 6);
// I want sleep1 1 2 3 4 5 6
// I want sleep2 1 2 3 4 5 6
event.off('sleep', fn1);
event.once('sleep', () => console.log('I want sleep'));
event.fire('sleep');
// I want sleep2 1 2 3
// I want sleep
event.fire('sleep');
// I want sleep2 1 2 3

今天的题目算是一道常考题了,没有一个标准解法,输出正确就行。

但是如果你能用上一些 ES6 的语法以及处理好一些边界问题,面试官对你的评价会更好点。

class Events {
  constructor() {
    this.events = new Map();
  }

  addEvent(key, fn, isOnce, ...args) {
    const value = this.events.get(key) ? this.events.get(key) : this.events.set(key, new Map()).get(key)
    value.set(fn, (...args1) => {
        fn(...args, ...args1)
        isOnce && this.off(key, fn)
    })
  }

  on(key, fn, ...args) {
    if (!fn) {
      console.error(`没有传入回调函数`);
      return
    }
    this.addEvent(key, fn, false, ...args)
  }

  fire(key, ...args) {
    if (!this.events.get(key)) {
      console.warn(`没有 ${key} 事件`);
      return;
    }
    for (let [, cb] of this.events.get(key).entries()) {
      cb(...args);
    }
  }

  off(key, fn) {
    if (this.events.get(key)) {
      this.events.get(key).delete(fn);
    }
  }

  once(key, fn, ...args) {
    this.addEvent(key, fn, true, ...args)
  }
}