92

I would like to filter an array of items by using the map() function. Here is a code snippet:

var filteredItems = items.map(function(item)
{
    if( ...some condition... )
    {
        return item;
    }
});

The problem is that filtered out items still uses space in the array and I would like to completely wipe them out.

Any idea?

EDIT: Thanks, I forgot about filter(), what I wanted is actually a filter() then a map().

EDIT2: Thanks for pointing that map() and filter() are not implemented in all browsers, although my specific code was not intended to run in a browser.

  • Can you elaborate on why 2 iterations are worst that 1 ? I mean, 2*O(n) is equivalent to O(2*n) to me... – Vincent Robert Jun 9 '16 at 10:07
106

You should use the filter method rather than map unless you want to mutate the items in the array, in addition to filtering.

eg.

var filteredItems = items.filter(function(item)
{
    return ...some condition...;
});

[Edit: Of course you could always do sourceArray.filter(...).map(...) to both filter and mutate]

| improve this answer | |
  • 3
    map doesn't mutate – Thank you Sep 23 '16 at 16:38
  • 15
    But you can mutate in map. – Crazywako May 8 '17 at 12:54
  • Careful with this: as JS passes reference when you mutate something with map it will change the object but as MDN stands, maps returns the mutated array. – alexOtano Sep 28 '19 at 13:38
  • 1
    The question did not ask how to filter, the question asked how to delete on map – Dazzle Jan 16 at 16:08
  • 1
    @alexOtano No, map does not mutate, and does not return a mutated array. It returns a new array. e.g., x=[1,2,3];y = x.map(z => z*2);console.log(x,y); – Kyle Baker May 16 at 3:13
42

Inspired by writing this answer, I ended up later expanding and writing a blog post going over this in careful detail. I recommend checking that out if you want to develop a deeper understanding of how to think about this problem--I try to explain it piece by piece, and also give a JSperf comparison at the end, going over speed considerations.

That said, The tl;dr is this: To accomplish what you're asking for (filtering and mapping within one function call), you would use Array.reduce().

However, the more readable and (less importantly) usually significantly faster2 approach is to just use filter and map chained together:

[1,2,3].filter(num => num > 2).map(num => num * 2)

What follows is a description of how Array.reduce() works, and how it can be used to accomplish filter and map in one iteration. Again, if this is too condensed, I highly recommend seeing the blog post linked above, which is a much more friendly intro with clear examples and progression.


You give reduce an argument that is a (usually anonymous) function.

That anonymous function takes two parameters--one (like the anonymous functions passed in to map/filter/forEach) is the iteratee to be operated on. There is another argument for the anonymous function passed to reduce, however, that those functions do not accept, and that is the value that will be passed along between function calls, often referred to as the memo.

Note that while Array.filter() takes only one argument (a function), Array.reduce() also takes an important (though optional) second argument: an initial value for 'memo' that will be passed into that anonymous function as its first argument, and subsequently can be mutated and passed along between function calls. (If it is not supplied, then 'memo' in the first anonymous function call will by default be the first iteratee, and the 'iteratee' argument will actually be the second value in the array)

In our case, we'll pass in an empty array to start, and then choose whether to inject our iteratee into our array or not based on our function--this is the filtering process.

Finally, we'll return our 'array in progress' on each anonymous function call, and reduce will take that return value and pass it as an argument (called memo) to its next function call.

This allows filter and map to happen in one iteration, cutting down our number of required iterations in half--just doing twice as much work each iteration, though, so nothing is really saved other than function calls, which are not so expensive in javascript.

For a more complete explanation, refer to MDN docs (or to my post referenced at the beginning of this answer).

Basic example of a Reduce call:

let array = [1,2,3];
const initialMemo = [];

array = array.reduce((memo, iteratee) => {
    // if condition is our filter
    if (iteratee > 1) {
        // what happens inside the filter is the map
        memo.push(iteratee * 2); 
    }

    // this return value will be passed in as the 'memo' argument
    // to the next call of this function, and this function will have
    // every element passed into it at some point.
    return memo; 
}, initialMemo)

console.log(array) // [4,6], equivalent to [(2 * 2), (3 * 2)]

more succinct version:

[1,2,3].reduce((memo, value) => value > 1 ? memo.concat(value * 2) : memo, [])

Notice that the first iteratee was not greater than one, and so was filtered. Also note the initialMemo, named just to make its existence clear and draw attention to it. Once again, it is passed in as 'memo' to the first anonymous function call, and then the returned value of the anonymous function is passed in as the 'memo' argument to the next function.

Another example of the classic use case for memo would be returning the smallest or largest number in an array. Example:

[7,4,1,99,57,2,1,100].reduce((memo, val) => memo > val ? memo : val)
// ^this would return the largest number in the list.

An example of how to write your own reduce function (this often helps understanding functions like these, I find):

test_arr = [];

// we accept an anonymous function, and an optional 'initial memo' value.
test_arr.my_reducer = function(reduceFunc, initialMemo) {
    // if we did not pass in a second argument, then our first memo value 
    // will be whatever is in index zero. (Otherwise, it will 
    // be that second argument.)
    const initialMemoIsIndexZero = arguments.length < 2;

    // here we use that logic to set the memo value accordingly.
    let memo = initialMemoIsIndexZero ? this[0] : initialMemo;

    // here we use that same boolean to decide whether the first
    // value we pass in as iteratee is either the first or second
    // element
    const initialIteratee = initialMemoIsIndexZero ? 1 : 0;

    for (var i = initialIteratee; i < this.length; i++) {
        // memo is either the argument passed in above, or the 
        // first item in the list. initialIteratee is either the
        // first item in the list, or the second item in the list.
           memo = reduceFunc(memo, this[i]);
        // or, more technically complete, give access to base array
        // and index to the reducer as well:
        // memo = reduceFunc(memo, this[i], i, this);
    }

    // after we've compressed the array into a single value,
    // we return it.
    return memo;
}

The real implementation allows access to things like the index, for example, but I hope this helps you get an uncomplicated feel for the gist of it.

| improve this answer | |
  • 2
    brilliant! I been wanting to do something like this for years. Decided to try and figure out a nice and way and wow, natural javascript! – jemiloii Sep 13 '17 at 14:41
  • Another usefulness of reduce is that, unlike filter + map, the callback can be passed an index argument that is the index of the original array, and not that of the filtered one. – congusbongus Apr 16 '18 at 6:24
  • @KyleBaker The link to your blog post goes to a page-not-found. Can you please update the link? Thanks! – Tim Philip Jan 8 at 17:15
10

That's not what map does. You really want Array.filter. Or if you really want to remove the elements from the original list, you're going to need to do it imperatively with a for loop.

| improve this answer | |
6

Array Filter method

var arr = [1, 2, 3]

// ES5 syntax
arr = arr.filter(function(item){ return item != 3 })

// ES2015 syntax
arr = arr.filter(item => item != 3)

console.log( arr )

| improve this answer | |
  • 1
    you can also do var arr = [1,2,"xxx", "yyy"]; arr = arr.filter(function(e){ return e!="xxx" }) console.log(arr) – jack blank Dec 2 '15 at 9:15
  • You came back 4 years later to add huge text? minus one – Thank you Jun 25 '19 at 13:37
  • @user633183 Who are you referring? what "huge text"? Your comment is unclear. Are you sure you're commenting on the right place...? – vsync Jun 25 '19 at 14:39
2

You must note however that the Array.filter is not supported in all browser so, you must to prototyped:

//This prototype is provided by the Mozilla foundation and
//is distributed under the MIT license.
//http://www.ibiblio.org/pub/Linux/LICENSES/mit.license

if (!Array.prototype.filter)
{
    Array.prototype.filter = function(fun /*, thisp*/)
    {
        var len = this.length;

        if (typeof fun != "function")
            throw new TypeError();

        var res = new Array();
        var thisp = arguments[1];

        for (var i = 0; i < len; i++)
        {
            if (i in this)
            {
                var val = this[i]; // in case fun mutates this

                if (fun.call(thisp, val, i, this))
                   res.push(val);
            }
        }

        return res;
    };
}

And doing so, you can prototype any method you may need.

| improve this answer | |
  • 2
    If you really intend to polyfill this method, please use a proper polyfill, or better yet a library like Modernizr. Otherwise, you'll likely run into confusing bugs with obscure browsers that you won't realize until they've been in production for too long. – Kyle Baker Apr 25 '18 at 21:24
0

following statement cleans object using map function.

var arraytoclean = [{v:65, toberemoved:"gronf"}, {v:12, toberemoved:null}, {v:4}];
arraytoclean.map((x,i)=>x.toberemoved=undefined);
console.dir(arraytoclean);
| improve this answer | |
0

I just wrote array intersection that correctly handles also duplicates

https://gist.github.com/gkucmierz/8ee04544fa842411f7553ef66ac2fcf0

// array intersection that correctly handles also duplicates

const intersection = (a1, a2) => {
  const cnt = new Map();
  a2.map(el => cnt[el] = el in cnt ? cnt[el] + 1 : 1);
  return a1.filter(el => el in cnt && 0 < cnt[el]--);
};

const l = console.log;
l(intersection('1234'.split``, '3456'.split``)); // [ '3', '4' ]
l(intersection('12344'.split``, '3456'.split``)); // [ '3', '4' ]
l(intersection('1234'.split``, '33456'.split``)); // [ '3', '4' ]
l(intersection('12334'.split``, '33456'.split``)); // [ '3', '3', '4' ]

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0

First you can use map and with chaining you can use filter

state.map(item => {
            if(item.id === action.item.id){   
                    return {
                        id : action.item.id,
                        name : item.name,
                        price: item.price,
                        quantity : item.quantity-1
                    }

            }else{
                return item;
            }
        }).filter(item => {
            if(item.quantity <= 0){
                return false;
            }else{
                return true;
            }
        });
| improve this answer | |

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