ES6(十)—— Destructure(解构)
2020-09-19 本文已影响0人
顽皮的雪狐七七
Destructure
- Array-Destructure
- 基本用法
- 跳过赋值变量、可以是任意可遍历的对象
- 左边可以是对象属性
- rest变量
- 默认值 & 当解构赋值值不够的情况
- Object-Destructure
- 基本用法
- 可以换变量名
- 默认值
- rest运算符
- 嵌套对象
- ES6-ES10学习版图
解构赋值:
使用数组索引去使用变量,不如直接赋值一个变量,但是也不适合用let声明很多变量
Array-Destructure
基本用法
let arr = ['hello', 'world']
// 通过索引访问值
let firstName = arr[0]
let surName = arr[1]
console.log(firstName, surName)
// hello world
ES6
let arr = ['hello', 'world']
let [firstName, surName] = arr
console.log(firstName, surName)
//hello world
跳过赋值变量、可以是任意可遍历的对象
//跳过某个值
//Array
let arr = ['a', 'b', 'c', 'd']
let [firstName,, thirdName] = arr
// 左边是变量,右边是一个可遍历的对象,包括Set和Map
console.log(firstName, thirdName) // a c
//String
let str = 'abcd'
let [,, thirdName] = str
console.log(thirdName) // c
//Set
let [firstName,, thirdName] = new Set([a, b, c, d])
console.log(firstName, thirdName) // a c
左边可以是对象属性
给对象属性重新命名
let user = { name: 's', surname: 't' };
[user.name,user.surname] = [1,2]
//花括号和中括号之间必须要有分号
console.log(user)
// { name: 1,surname: 2}
rest变量
let arr = [1, 2, 3, 4, 5, 6, 7, 8, 9]
let [firstName,, thirdName,...last] = arr
console.log(firstName, thirdName, last)
// 1 2 [3, 4, 5, 6, 7, 8, 9]
// 上面如果只赋值firstName和thirdName,那么剩下的参数arr会被回收掉,如果不想3-9的元素被删掉,那么可以用[...rest]
// rest只能在最后一个元素中使用
默认值 & 当解构赋值值不够的情况
从前往后没有取到为undefined
let arr = [1, 2, 3, 4, 5, 6, 7, 8, 9]
let [firstName,, thirdName,...last] = arr
console.log(firstName, thirdName, last)
// 1 2 [3, 4, 5, 6, 7, 8, 9]
let arr = [1, 2, 3]
let [firstName,, thirdName,...last] = arr
// 1 2 [3]
let arr = [1, 2]
let [firstName,, thirdName,...last] = arr
// 1 2 []
let arr = [1]
let [firstName,, thirdName,...last] = arr
// 1 undefined []
let arr = []
let [firstName,, thirdName,...last] = arr
// undefined undefined []
//默认没有参数,会为undefined,如果这个时候进行数字运算的时候,就会有问题
//如果避免这种情况,就要进行默认值的赋值
let arr = []
let [firstName = 'hello',, thirdName,...last] = arr
// hello undefined []
Object-Destructure
基本用法
let options = {
title: 'menu',
width: 100,
height: 200
}
let { title, width, height } = options
console.log(title, width, height)
// menu 100 200
可以换变量名
如果有变量冲突怎么办?不能用简写形式
// 下面title是匹配属性名提取变量名称
// title2是新的变量名
let {title: title2, width, height} = options
console.log(title2, width, height)
// menu 100 200
默认值
let options = {
title: 'menu',
height: 200
}
let {title: title2, width = 130, height} = options
console.log(title2, width, height)
// menu 130 200
rest运算符
let options = {
title: 'menu',
width: 100,
height: 200
}
let { title, ...last } = options
console.log(title, last)
//menu {width: 100, height: 200}
嵌套对象
let options = {
size: {
width: 100,
height: 200
},
item: ['Cake', 'Donut'],
extra: true
}
let { size: { width: width2, height }, item: [item1] } = options
console.log(width2, height, item1)
//100 200 "Cake"