在完成符合 Promise/A+ 规范的代码之前,我们可以先来实现一个简易版 Promise,因为在面试中,如果你能实现出一个简易版的 Promise 基本可以过关了。
那么我们先来搭建构建函数的大体框架
const PENDING = 'pending'
const RESOLVED = 'resolved'
const REJECTED = 'rejected'
function MyPromise(fn) {
const that = this
that.state = PENDING
that.value = null
that.resolvedCallbacks = []
that.rejectedCallbacks = []
// 待完善 resolve 和 reject 函数
// 待完善执行 fn 函数
}
接下来我们来完善 resolve 和 reject 函数,添加在 MyPromise 函数体内部
function resolve(value) {
if (that.state === PENDING) {
that.state = RESOLVED
that.value = value
that.resolvedCallbacks.map(cb => cb(that.value))
}
}
function reject(value) {
if (that.state === PENDING) {
that.state = REJECTED
that.value = value
that.rejectedCallbacks.map(cb => cb(that.value))
}
}
这两个函数代码类似,就一起解析了
完成以上两个函数以后,我们就该实现如何执行 Promise 中传入的函数了
try {
fn(resolve, reject)
} catch (e) {
reject(e)
}
最后我们来实现较为复杂的 then 函数
MyPromise.prototype.then = function(onFulfilled, onRejected) {
const that = this
onFulfilled = typeof onFulfilled === 'function' ? onFulfilled : v => v
onRejected =
typeof onRejected === 'function'
? onRejected
: r => {
throw r
}
if (that.state === PENDING) {
that.resolvedCallbacks.push(onFulfilled)
that.rejectedCallbacks.push(onRejected)
}
if (that.state === RESOLVED) {
onFulfilled(that.value)
}
if (that.state === REJECTED) {
onRejected(that.value)
}
}
首先判断两个参数是否为函数类型,因为这两个参数是可选参数
当参数不是函数类型时,需要创建一个函数赋值给对应的参数,同时也实现了透传,比如如下代码
// 该代码目前在简单版中会报错
// 只是作为一个透传的例子
Promise.resolve(4).then().then((value) => console.log(value))
new MyPromise((resolve, reject) => {
setTimeout(() => {
resolve(1)
}, 0)
}).then(value => {
console.log(value)
})
以上就是简单版 Promise 实现,接下来一小节是实现完整版 Promise 的解析,相信看完完整版的你,一定会对于 Promise 的理解更上一层楼。
这小节代码需要大家配合规范阅读【翻译】Promises/A+规范,因为大部分代码都是根据规范去实现的。
我们先来改造一下 resolve 和 reject 函数
function resolve(value) {
if (value instanceof MyPromise) {
return value.then(resolve, reject)
}
setTimeout(() => {
if (that.state === PENDING) {
that.state = RESOLVED
that.value = value
that.resolvedCallbacks.map(cb => cb(that.value))
}
}, 0)
}
function reject(value) {
setTimeout(() => {
if (that.state === PENDING) {
that.state = REJECTED
that.value = value
that.rejectedCallbacks.map(cb => cb(that.value))
}
}, 0)
}
接下来继续改造 then 函数中的代码,首先我们需要新增一个变量 promise2,因为每个 then 函数都需要返回一个新的 Promise 对象,该变量用于保存新的返回对象,然后我们先来改造判断等待态的逻辑
if (that.state === PENDING) {
return (promise2 = new MyPromise((resolve, reject) => {
that.resolvedCallbacks.push(() => {
try {
const x = onFulfilled(that.value)
resolutionProcedure(promise2, x, resolve, reject)
} catch (r) {
reject(r)
}
})
that.rejectedCallbacks.push(() => {
try {
const x = onRejected(that.value)
resolutionProcedure(promise2, x, resolve, reject)
} catch (r) {
reject(r)
}
})
}))
}
接下来我们改造判断执行态的逻辑
if (that.state === RESOLVED) {
return (promise2 = new MyPromise((resolve, reject) => {
setTimeout(() => {
try {
const x = onFulfilled(that.value)
resolutionProcedure(promise2, x, resolve, reject)
} catch (reason) {
reject(reason)
}
})
}))
}
最后,当然也是最难的一部分,也就是实现兼容多种 Promise 的 resolutionProcedure 函数
function resolutionProcedure(promise2, x, resolve, reject) {
if (promise2 === x) {
return reject(new TypeError('Error'))
}
}
首先规范规定了 x 不能与 promise2 相等,这样会发生循环引用的问题,比如如下代码
let p = new MyPromise((resolve, reject) => {
resolve(1)
})
let p1 = p.then(value => {
return p1
})
然后需要判断 x 的类型
if (x instanceof MyPromise) {
x.then(function(value) {
resolutionProcedure(promise2, value, resolve, reject)
}, reject)
}
这里的代码是完全按照规范实现的。如果 x 为 Promise 的话,需要判断以下几个情况:
当然以上这些是规范需要我们判断的情况,实际上我们不判断状态也是可行的。
接下来我们继续按照规范来实现剩余的代码
let called = false
if (x !== null && (typeof x === 'object' || typeof x === 'function')) {
try {
let then = x.then
if (typeof then === 'function') {
then.call(
x,
y => {
if (called) return
called = true
resolutionProcedure(promise2, y, resolve, reject)
},
e => {
if (called) return
called = true
reject(e)
}
)
} else {
resolve(x)
}
} catch (e) {
if (called) return
called = true
reject(e)
}
} else {
resolve(x)
}
以上就是符合 Promise/A+ 规范的实现了。
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