5

Say I want to delete the first 100 entries of a Map without recreating the map, and also do this in the most efficient way.

Let's say you have a 500 item ES6 Map Object:

let map = new Map(... 500 items)

Currently I do it like this:

const newCache = new Map(
  Array.from(map).slice(100)
)

map.clear()

map = newCache

But this recreates the Map.

The other way is to run over the first 100 keys:

Array.from(map.keys())
     .slice(0, 100)
     .forEach(key => map.delete(key))

But it looks inefficient.

9
  • 3
    What's wrong with that?
    – Barmar
    Commented Aug 17, 2017 at 9:00
  • edited the question: i'd want to keep the same object. I also wonder if this is the most efficient way. Commented Aug 17, 2017 at 9:02
  • Possible duplicate of How to get subarray from array?
    – Rajesh
    Commented Aug 17, 2017 at 9:03
  • No they don't @NinaScholz...
    – malifa
    Commented Aug 17, 2017 at 9:06
  • 1
    Sounds like an XY problem to me. You're trying to mix direct (Map) and sequential ("first N items") access in one data structure. What's your use case?
    – georg
    Commented Aug 17, 2017 at 9:24

6 Answers 6

11

Get an array of the first 100 keys of the Map, then delete them.

var keys = Array.from(map.keys()).slice(0, 100);
keys.forEach(k => map.delete(k));

Or you can use a loop so you don't need to create an array to slice.

var i = 0;
for (var k of map.keys()) {
    if (i++ > 100) {
        break;
    }
    map.delete(k);
}

I created a jsperf test with your two methods and this loop. The loop is bar far the most efficient, 5 times faster than slicing the keys.

11
  • 1
    it looks inefficient. Commented Aug 17, 2017 at 9:14
  • why would he create an Array first anyway` A Map comes with all methods to loop through and delete key/values safely..
    – malifa
    Commented Aug 17, 2017 at 9:14
  • 1
    @lexith I wasn't sure if it's safe to delete while using those iterators. Also, can you slice an iterator to get just the first 100?
    – Barmar
    Commented Aug 17, 2017 at 9:16
  • 1
    @VitalikZaidman If you don't want to recreate the map, I don't see any way to do it without doing 100 deletes. Map doesn't have a splice() operation that can delete multiple elements at once.
    – Barmar
    Commented Aug 17, 2017 at 9:22
  • 1
    @Barmar urgs correct. But with for ... of you can break it. So don't use forEach, but that one. :) ... edit: okay now im unsure, have to test. but it should be interruptable.
    – malifa
    Commented Aug 17, 2017 at 9:23
3

Based on your comment, you're buildng some kind of a LRU cache. You might consider a better data structure that just a Map. For example,

cache = { deque: Array, index: Map, offset: Int }

When you put element in the cache, you append it to the deque and store its position + offset in the index:

class Cache...

    put(obj) {
        this.deque.push(obj)
        pos = this.deque.length - 1
        this.index.set(key(obj),  pos + this.offset)
    }

When getting element, check it its index of positive

get(obj) {
    pos = this.index.get(key(obj)) - this.offset
    if pos >= 0
       return this.deque[pos]
    // cache miss....

Now, cleaning up the cache won't involve any loops

 clear(count) {
     this.deque.splice(0, count)
     this.offset += count
 }

On a general note, if you want something to be re-created, but need a persistent pointer to it in the same time, you can just wrap the private object into a public one and proxy (some of) private's methods:

class Cache
   this._map = new Map() // feel free to recreate this when needed


    get(x) { return this._map.get(x) }
    set(x, y) { return this._map.set(x, y) }

myCache = new Cache() // this can be saved somewhere else 
2
  • accepted the answer because of the wrapping thingie. its a good idea to have something to wrap the map to replace it inside it's own structure. ill go for it. Commented Aug 17, 2017 at 11:04
  • 1
    While this answer has value it should not, IMO, be the accepted answer because it doesn't answer the OP's original question (which is how to delete N keys of an ES6 Map object without recreating the object). While it does apply to the OP's use case, SO users landing here most likely have a query relating to the question at hand and not one of the clarifying comments. I would encourage the OP to consider this and maybe accept @Barmar's answer, since that will draw the attention of other users to the answer that most likely applies to them.
    – GrayedFox
    Commented Mar 20, 2018 at 6:52
2

If your Map is very big, you may not want to pull all of the keys back just to find the first few. In that case, entries may be a better option.

let n = 2;
let map = new Map();

map.set('a', 1);
map.set('b', 2);
map.set('c', 3);
map.set('d', 4);
console.log(map) // Map(4) {'a' => 1, 'b' => 2, 'c' => 3, 'd' => 4}

let iterator = map.entries();
for (let i = 0; i < n; i++) {
  let entry = iterator.next();
  let key = entry.value[0];
  map.delete(key);
}

console.log(map) // Map(2) {'c' => 3, 'd' => 4}
0

Example -

let mm = new Map();
mm.set('10', 'Rina');
mm.set('11', 'Sita');
mm.set('12', 'Gita');

Gives you the first element of Map -

let keys = mm.keys().next() // Gives you 10 -> Rina

mm.delete(keys.value) // Delete from the beginning
0

An one-by-one approach without creating an array of all the keys

const removeFirstItems = (n) => {
    if (map.size >= n) {
        const it = map.keys();
        for (let i = 0; i < n; i++) {
            map.delete(it.next().value);
        }
    }
}

Example:

// array of 105 items 
// using random keys to see that the order of the keys does not matter
const map = new Map();
for (let i = 0; i < 105; i++) {
    map.set(Math.random(), i);
}

removeFirstItems(100);

// the last added 5 items should remain - order of keys does not matter
console.log(Array.from(map.values()).join(',')); // 100,101,102,103,104
0

I needed the N latest elements from the map, maybe someone will find it useful:

function keepNNewestItems(map, n) {
    const elementsToRemoveCount = map.size - n;
    const keys = map.keys();
    for (let i = 0; i < elementsToRemoveCount; i++) {
        map.delete(keys.next().value);
    }
}

function removeNOldestItems(map, n) {
    const elementsToRemoveCount = Math.min(n, map.size);
    const keys = map.keys();
    for (let i = 0; i < elementsToRemoveCount; i++) {
        map.delete(keys.next().value);
    }
}


/* Demo */
const createMap = (length) => new Map(Array.from({ length }, (_, i) => [ Math.random(), i ]));
const printMap = (map) => `[ ${Array.from(map.values()).join(', ')} ]`;

const map1 = createMap(11);
console.log(printMap(map1));
keepNNewestItems(map1, 6);
console.log(`keep 6 newest: ${printMap(map1)}`);

console.log('-'.repeat(36));

const map2 = createMap(11);
console.log(printMap(map2));
removeNOldestItems(map2, 6);
console.log(`remove 6 oldest:  ${printMap(map2)}`);

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