有没有一个简单的方法来合并ES6映射在一起(像Object.assign)?说到这里,ES6集合(比如Array.concat)呢?
集:
var merged = new Set([...set1, ...set2, ...set3])
地图:
var merged = new Map([...map1, ...map2, ...map3])
注意,如果多个映射具有相同的键,则合并映射的值将是具有该键的最后一个合并映射的值。
出于我不理解的原因,您不能直接使用内置方法将一个Set的内容添加到另一个Set。像联合、交叉、合并等操作…是非常基本的集合操作,但不是内置的。幸运的是,您可以相当容易地自己构建这些。
[2021年新增]-现在有一个提议为这些类型的操作添加新的Set/Map方法,但实施的时间还不清楚。他们似乎处于规范过程的第二阶段。
要实现合并操作(将一个Set的内容合并到另一个Set中,或将一个Map的内容合并到另一个Map中),你可以使用单个.forEach()行来完成:
var s = new Set([1,2,3]);
var t = new Set([4,5,6]);
t.forEach(s.add, s);
console.log(s); // 1,2,3,4,5,6
对于Map,你可以这样做:
var s = new Map([["key1", 1], ["key2", 2]]);
var t = new Map([["key3", 3], ["key4", 4]]);
t.forEach(function(value, key) {
s.set(key, value);
});
或者,在ES6语法中:
t.forEach((value, key) => s.set(key, value));
[2021年新增]
由于现在有一个新的Set方法的官方提议,你可以使用这个polyfill提议的.union()方法,它将在ES6+版本的ECMAScript中工作。注意,根据规范,这将返回一个新Set,它是另外两个Set的并集。它不会将一个集合的内容合并到另一个集合中,这实现了建议中指定的类型检查。
if (!Set.prototype.union) {
Set.prototype.union = function(iterable) {
if (typeof this !== "object") {
throw new TypeError("Must be of object type");
}
const Species = this.constructor[Symbol.species];
const newSet = new Species(this);
if (typeof newSet.add !== "function") {
throw new TypeError("add method on new set species is not callable");
}
for (item of iterable) {
newSet.add(item);
}
return newSet;
}
}
或者,这里有一个更完整的版本,它对ECMAScript过程进行了建模,以更完整地获得物种构造函数,并且已经适应于在甚至可能没有Symbol或有Symbol的旧版本Javascript上运行。种类:
if (!Set.prototype.union) {
Set.prototype.union = function(iterable) {
if (typeof this !== "object") {
throw new TypeError("Must be of object type");
}
const Species = getSpeciesConstructor(this, Set);
const newSet = new Species(this);
if (typeof newSet.add !== "function") {
throw new TypeError("add method on new set species is not callable");
}
for (item of iterable) {
newSet.add(item);
}
return newSet;
}
}
function isConstructor(C) {
return typeof C === "function" && typeof C.prototype === "object";
}
function getSpeciesConstructor(obj, defaultConstructor) {
const C = obj.constructor;
if (!C) return defaultConstructor;
if (typeof C !== "function") {
throw new TypeError("constructor is not a function");
}
// use try/catch here to handle backward compatibility when Symbol does not exist
let S;
try {
S = C[Symbol.species];
if (!S) {
// no S, so use C
S = C;
}
} catch (e) {
// No Symbol so use C
S = C;
}
if (!isConstructor(S)) {
throw new TypeError("constructor function is not a constructor");
}
return S;
}
供参考,如果你想要一个内置Set对象的简单子类,它包含一个.merge()方法,你可以使用这个:
// subclass of Set that adds new methods
// Except where otherwise noted, arguments to methods
// can be a Set, anything derived from it or an Array
// Any method that returns a new Set returns whatever class the this object is
// allowing SetEx to be subclassed and these methods will return that subclass
// For this to work properly, subclasses must not change behavior of SetEx methods
//
// Note that if the contructor for SetEx is passed one or more iterables,
// it will iterate them and add the individual elements of those iterables to the Set
// If you want a Set itself added to the Set, then use the .add() method
// which remains unchanged from the original Set object. This way you have
// a choice about how you want to add things and can do it either way.
class SetEx extends Set {
// create a new SetEx populated with the contents of one or more iterables
constructor(...iterables) {
super();
this.merge(...iterables);
}
// merge the items from one or more iterables into this set
merge(...iterables) {
for (let iterable of iterables) {
for (let item of iterable) {
this.add(item);
}
}
return this;
}
// return new SetEx object that is union of all sets passed in with the current set
union(...sets) {
let newSet = new this.constructor(...sets);
newSet.merge(this);
return newSet;
}
// return a new SetEx that contains the items that are in both sets
intersect(target) {
let newSet = new this.constructor();
for (let item of this) {
if (target.has(item)) {
newSet.add(item);
}
}
return newSet;
}
// return a new SetEx that contains the items that are in this set, but not in target
// target must be a Set (or something that supports .has(item) such as a Map)
diff(target) {
let newSet = new this.constructor();
for (let item of this) {
if (!target.has(item)) {
newSet.add(item);
}
}
return newSet;
}
// target can be either a Set or an Array
// return boolean which indicates if target set contains exactly same elements as this
// target elements are iterated and checked for this.has(item)
sameItems(target) {
let tsize;
if ("size" in target) {
tsize = target.size;
} else if ("length" in target) {
tsize = target.length;
} else {
throw new TypeError("target must be an iterable like a Set with .size or .length");
}
if (tsize !== this.size) {
return false;
}
for (let item of target) {
if (!this.has(item)) {
return false;
}
}
return true;
}
}
module.exports = SetEx;
这意味着在它自己的文件setex.js中,然后你可以在node.js中使用require()并取代内置的Set。
要合并数组集合中的集合,您可以执行
var Sets = [set1, set2, set3];
var merged = new Set([].concat(...Sets.map(set => Array.from(set))));
对我来说有点神秘的是,为什么下面这些应该是等价的,但至少在巴别塔失败了:
var merged = new Set([].concat(...Sets.map(Array.from)));
以下是我使用生成器的解决方案:
地图:
let map1 = new Map(), map2 = new Map();
map1.set('a', 'foo');
map1.set('b', 'bar');
map2.set('b', 'baz');
map2.set('c', 'bazz');
let map3 = new Map(function*() { yield* map1; yield* map2; }());
console.log(Array.from(map3)); // Result: [ [ 'a', 'foo' ], [ 'b', 'baz' ], [ 'c', 'bazz' ] ]
集:
let set1 = new Set(['foo', 'bar']), set2 = new Set(['bar', 'baz']);
let set3 = new Set(function*() { yield* set1; yield* set2; }());
console.log(Array.from(set3)); // Result: [ 'foo', 'bar', 'baz' ]
不,它们没有内置操作,但你可以很容易地创建自己的操作:
Map.prototype.assign = function(...maps) {
for (const m of maps)
for (const kv of m)
this.add(...kv);
return this;
};
Set.prototype.concat = function(...sets) {
const c = this.constructor;
let res = new (c[Symbol.species] || c)();
for (const set of [this, ...sets])
for (const v of set)
res.add(v);
return res;
};
被认可的答案很好,但每次都会创建一个新的集合。
如果要更改现有对象,请使用helper函数
在不久的将来,你可以只使用setA.union(setB)
Set
function concatSets(set, ...iterables) {
for (const iterable of iterables) {
for (const item of iterable) {
set.add(item);
}
}
}
用法:
const setA = new Set([1, 2, 3]);
const setB = new Set([4, 5, 6]);
const setC = new Set([7, 8, 9]);
concatSets(setA, setB, setC);
// setA will have items 1, 2, 3, 4, 5, 6, 7, 8, 9
Map
function concatMaps(map, ...iterables) {
for (const iterable of iterables) {
for (const item of iterable) {
map.set(...item);
}
}
}
用法:
const mapA = new Map().set('S', 1).set('P', 2);
const mapB = new Map().set('Q', 3).set('R', 4);
concatMaps(mapA, mapB);
// mapA will have items ['S', 1], ['P', 2], ['Q', 3], ['R', 4]
例子
const mergedMaps = (...maps) => {
const dataMap = new Map([])
for (const map of maps) {
for (const [key, value] of map) {
dataMap.set(key, value)
}
}
return dataMap
}
使用
const map = mergedMaps(new Map([[1, false]]), new Map([['foo', 'bar']]), new Map([['lat', 1241.173512]]))
Array.from(map.keys()) // [1, 'foo', 'lat']
编辑:
I benchmarked my original solution against other solutions suggests here and found that it is very inefficient. The benchmark itself is very interesting (link) It compares 3 solutions (higher is better): @fregante (formerly called @bfred.it) solution, which adds values one by one (14,955 op/sec) @jameslk's solution, which uses a self invoking generator (5,089 op/sec) my own, which uses reduce & spread (3,434 op/sec) As you can see, @fregante's solution is definitely the winner. Performance + Immutability With that in mind, here's a slightly modified version which doesn't mutates the original set and excepts a variable number of iterables to combine as arguments: function union(...iterables) { const set = new Set(); for (const iterable of iterables) { for (const item of iterable) { set.add(item); } } return set; } Usage: const a = new Set([1, 2, 3]); const b = new Set([1, 3, 5]); const c = new Set([4, 5, 6]); union(a,b,c) // {1, 2, 3, 4, 5, 6}
原来的答案
我想建议另一种方法,使用reduce和spread运算符:
实现
function union (sets) {
return sets.reduce((combined, list) => {
return new Set([...combined, ...list]);
}, new Set());
}
用法:
const a = new Set([1, 2, 3]);
const b = new Set([1, 3, 5]);
const c = new Set([4, 5, 6]);
union([a, b, c]) // {1, 2, 3, 4, 5, 6}
Tip:
我们还可以使用rest操作符来使界面更好:
function union (...sets) {
return sets.reduce((combined, list) => {
return new Set([...combined, ...list]);
}, new Set());
}
现在,我们不再传递一个集合数组,而是可以传递任意数量的集合参数:
union(a, b, c) // {1, 2, 3, 4, 5, 6}
根据Asaf Katz的回答,以下是一个打字版本:
export function union<T> (...iterables: Array<Set<T>>): Set<T> {
const set = new Set<T>()
iterables.forEach(iterable => {
iterable.forEach(item => set.add(item))
})
return set
}
当向现有集合中添加多个元素(来自数组或另一个集合)时,调用new Set(…anArrayOrSet)没有任何意义。
我在reduce函数中使用了这个,它只是简单的愚蠢。即使你有…数组展开运算符可用,在这种情况下不应该使用它,因为它浪费处理器、内存和时间资源。
// Add any Map or Set to another
function addAll(target, source) {
if (target instanceof Map) {
Array.from(source.entries()).forEach(it => target.set(it[0], it[1]))
} else if (target instanceof Set) {
source.forEach(it => target.add(it))
}
}
演示片段
// Add any Map or Set to another function addAll(target, source) { if (target instanceof Map) { Array.from(source.entries()).forEach(it => target.set(it[0], it[1])) } else if (target instanceof Set) { source.forEach(it => target.add(it)) } } const items1 = ['a', 'b', 'c'] const items2 = ['a', 'b', 'c', 'd'] const items3 = ['d', 'e'] let set set = new Set(items1) addAll(set, items2) addAll(set, items3) console.log('adding array to set', Array.from(set)) set = new Set(items1) addAll(set, new Set(items2)) addAll(set, new Set(items3)) console.log('adding set to set', Array.from(set)) const map1 = [ ['a', 1], ['b', 2], ['c', 3] ] const map2 = [ ['a', 1], ['b', 2], ['c', 3], ['d', 4] ] const map3 = [ ['d', 4], ['e', 5] ] const map = new Map(map1) addAll(map, new Map(map2)) addAll(map, new Map(map3)) console.log('adding map to map', 'keys', Array.from(map.keys()), 'values', Array.from(map.values()))
你可以使用spread语法将它们合并在一起:
const map1 = {a: 1, b: 2}
const map2 = {b: 1, c: 2, a: 5}
const mergedMap = {...a, ...b}
=> {a: 5, b: 1, c: 2}
将集合转换为数组,将它们平直,最后构造函数将惟一化。
const union = (...sets) => new Set(sets.map(s => [...s]).flat());
我已经创建了一个小片段,使用ES6中的一个函数合并任意数量的set。你可以改变“设置”为“地图”,让它与地图一起工作。
const mergeSets = (...args) => {
return new Set(args.reduce((acc, current) => {
return [...acc, ...current];
}, []));
};
const foo = new Set([1, 2, 3]);
const bar = new Set([1, 3, 4, 5]);
mergeSets(foo, bar); // Set(5) {1, 2, 3, 4, 5}
mergeSets(foo, bar, new Set([6])); // Set(6) {1, 2, 3, 4, 5, 6}
一个很好的解决方案,无论你是否有两个或更多的映射合并是将它们作为一个数组,并使用以下:
Array.prototype.merge = function () {
return this.reduce((p, c) => Object.assign(c, p), {});
};
有几种方法可以做到。你可以使用地图。合并功能:
let mergedMap = map1.merge(map2);
注意:如果任何Map的键是相同的,将使用最后一个要合并的Map中的重复键的值。
更多信息请点击这里:https://untangled.io/immutable-js-6-ways-to-merge-maps-with-full-live-examples/#:~:text=merge(),merged%20in%20will%20be%20used。
我创建了一个helper方法来合并映射,并以所需的任何成对方式处理重复键的值:
const mergeMaps = (map1, map2, combineValuesOfDuplicateKeys) => {
const mapCopy1 = new Map(map1);
const mapCopy2 = new Map(map2);
mapCopy1.forEach((value, key) => {
if (!mapCopy2.has(key)) {
mapCopy2.set(key, value);
} else {
const newValue = combineValuesOfDuplicateKeys
? combineValuesOfDuplicateKeys(value, mapCopy2.get(key))
: mapCopy2.get(key);
mapCopy2.set(key, newValue);
mapCopy1.delete(key);
}
});
return new Map([...mapCopy1, ...mapCopy2]);
};
const mergeMaps = (map1, map2, combineValuesOfDuplicateKeys) => { const mapCopy1 = new Map(map1); const mapCopy2 = new Map(map2); mapCopy1.forEach((value, key) => { if (!mapCopy2.has(key)) { mapCopy2.set(key, value); } else { const newValue = combineValuesOfDuplicateKeys ? combineValuesOfDuplicateKeys(value, mapCopy2.get(key)) : mapCopy2.get(key); mapCopy2.set(key, newValue); mapCopy1.delete(key); } }); return new Map([...mapCopy1, ...mapCopy2]); }; const map1 = new Map([ ["key1", 1], ["key2", 2] ]); const map2 = new Map([ ["key2", 3], ["key4", 4] ]); const show = (object) => { return JSON.stringify(Array.from(object), null, 2) } document.getElementById("app").innerHTML = ` <h1>Maps are awesome!</h1> <div>map1 = ${show(map1)}</div> <div>map2 = ${show(map2)}</div><br> <div>Set value of last duplicate key:<br>merged map = ${show(mergeMaps(map1, map2))}</div><br> <div>Set value of pair-wise summated duplicate keys:<br>merged map = ${show(mergeMaps(map1, map2, (value1, value2) => value1 + value2))}</div><br> <div>Set value of pair-wise difference of duplicate keys:<br>merged map = ${show(mergeMaps(map1, map2, (value1, value2) => value1 - value2))}</div><br> <div>Set value of pair-wise multiplication of duplicate keys:<br>merged map = ${show(mergeMaps(map1, map2, (value1, value2) => value1 * value2))}</div><br> <div>Set value of pair-wise quotient of duplicate keys:<br>merged map = ${show(mergeMaps(map1, map2, (value1, value2) => value1 / value2))}</div><br> <div>Set value of pair-wise power of duplicate keys:<br>merged map = ${show(mergeMaps(map1, map2, (value1, value2) => Math.pow(value1, value2)))}</div><br> `; <!DOCTYPE html> <html> <head> <title>Parcel Sandbox</title> <meta charset="UTF-8" /> </head> <body> <div id="app"></div> <script src="src/index.js"> </script> </body> </html>
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