26

I want to remove specific elements in the original array (which is var a). I filter() that array and splice() returned new array. but that doesn't affect the original array in this code. How can I easily remove those elements from the original array?

var a = [{name:'tc_001'}, {name:'tc_002'}, {name:'tc_003'}]

var b = a.filter(function (e) {
    return e.name === 'tc_001';
});

b.splice(0,1);

console.log(a);
console.log(b);
2
55

The Array.prototype.filter() method is used to collect an element set not only one item. If you would like to get one item by evaluating a condition then you have three other options. Array.prototype.indexOf(), Array.prototype.findIndex() and Array.prototype.find() Accordingly only if you want to make an operation on more than one item you should think using the filter function. None of the answers are complete in terms of the job needed to be done. They use the filter function to isolate a set (happens to be only one item in this example) but they don't show how to get rid of the whole set. Well ok let's clarify.

If you want to do find and delete only one item of your array it shall be done like this

var a = [{name:'tc_001'}, {name:'tc_002'}, {name:'tc_003'}];
a.splice(a.findIndex(e => e.name === "tc_001"),1);
console.log(a);

However since you mention "specific elements" in plural, then you will need to collect a set of selected items and do the above job one by one on each element in the set. So the proper approach would be.

var a = [{name:'tc_001'}, {name:'tc_002'}, {name:'tc_003'}],
    b = a.filter(e => e.name === "tc_001");
b.forEach(f => a.splice(a.findIndex(e => e.name === f.name),1));
console.log(a);

Regardless of how many elements there are in your selected list this will do your job. Yet i believe although this looks logical it does tons of redundant job. First filters and then per filtered element does index search this and that. Although i know that findIndex is crazy fast still I would expect this one turn out to be noticeably slow especially with big arrays. Let's find an o(n) solution. Here you go

    var a = [{name:'tc_001'}, {name:'tc_002'}, {name:'tc_003'}];
    a = a.reduce((p,c) => (c.name !== "tc_001" && p.push(c),p),[]);
console.log(a);

So this must be it.

4
  • 2
    I don't get that last one. Could you please break down last one to more simple form a.reduce(function (pre, curr) { ` if (curr.name !=="tc_001"){` ` return p.push(curr);` ` }else{` ` return p,[];` ` }` }) why do you push current object to previous object? – s1n7ax May 23 '16 at 13:26
  • 1
    Yes, we are not modifying the original array instead creating a new array but at the end we are overwriting the original array with the result of the reduce function. Regarding the code you are close... it should look like this a.reduce(function (pre, curr) { if (curr.name !=="tc_001") p.push(curr); return p;}, []) We can not return the result of p.push(curr) since the push() function doesn't return the pushed array as result instead returns the length of it. It's silly. So we have to return p array separately for the reduce function to work. In my code this is why ,p comes at the end. – Redu May 23 '16 at 13:38
  • why do we need an empty array to be passed to the reduce method? – s1n7ax May 23 '16 at 16:31
  • 1
    @Srinesh it is the initialializing argument. Because of that p starts with an empty array and gets filled at every turn. – Redu May 23 '16 at 16:34
17

another way is filtering in two list like below:

const originalList = [{condition:true}, {condition: false}, {condition: true}];

// wished lists
const listWithTrue = originalList.filter(x=>x.condition);
const listWithFalse = originalList.filter(x=>!x.condition); // inverse condition
3
  • This solution is way more elegant and simple in my opinion. – aviya.developer Nov 21 '18 at 16:31
  • Yes, but it creates a new array, so if you need to change the current array by refference, use another solution. – judian Feb 21 '19 at 8:06
  • @judian It's generally better to note mutate the original array. Unless you're concerned about performance, this is a good solution. – Toby Caulk Apr 27 '19 at 15:40
3

So if I understood, you want to remove the elements that matches the filter from the original array (a) but keep them in the new array (b) See if this solution is what you need:

var a = [{name:'tc_001'}, {name:'tc_002'}, {name:'tc_003'}]

var b = a.filter(function (e) {
      return e.name === 'tc_002'
});

b.forEach(function(element) {
   console.log(element)
   var index = a.indexOf(element)
   console.log(index)
   a.splice(index, 1)
})

Result: a = [{"name":"tc_001"},{"name":"tc_003"}] b = [{"name":"tc_002"}]

3

I know I'm a little bit late to the party, but how about a little bit different approach?

var a = [{name:'tc_001'}, {name:'tc_002'}, {name:'tc_002'}, {name:'tc_002'}, {name:'tc_003'}];

while ( a.findIndex(e => e.name === 'tc_002' ) >= 0 )
 a.splice( a.findIndex(f => f.name === 'tc_002'),1);
 
console.log(a);

I know it has some drawbacks, but i hope, it will help some of you in some cases :)

cheers!

2

You can assign filter array to a itself and then apply splice over it.

Example below:

var a = [{name:'tc_001'}, {name:'tc_002'}, {name:'tc_003'}]
a = a.filter(function (e) {
    return e.name === 'tc_001';
});

a.splice(0,1);
1
  • How is this any different from what AlexD did? – Joe Thomas May 23 '16 at 7:58
2

You can either make changes to the original array:

var a = [{name:'tc_001'}, {name:'tc_002'}, {name:'tc_003'}]
a = a.filter(function (e) {
    return e.name === 'tc_001';
});
a.splice(0,1);

Or in your own code just apply to a everything you've done to b

a = b

[edit]

Perhaps if I expand on what each action does, it will be more clear.

var a = [{name:'tc_001'}, {name:'tc_002'}, {name:'tc_003'}]
// You now have array a with 3 elements.

b = a.filter(function (e) {
    return e.name === 'tc_001';
});
// a is still 3 elements, b has one element (tc_001)

b.splice(0,1);
// You remove the first element from b, so b is now empty.

If you want to remove the elements tc_002 and tc_003 from a but keep them in b, this is what you can do:

var a = [{name:'tc_001'}, {name:'tc_002'}, {name:'tc_003'}]
b = a.filter(function (e) {
    return e.name != 'tc_001';
});
a = a.filter(function(item) { return b.indexOf(item) == -1; });
console.log(a); // tc_001
console.log(b); // tc_002, tc_003
4
  • Then how am i going to use these two elements after change the reference of a {name:'tc_002'}, {name:'tc_003'} – s1n7ax May 23 '16 at 7:50
  • You didn't mention anything about that in the question. You want to remove elements from a but keep them in a separate array? – AlexD May 23 '16 at 7:52
  • Q : "How can i easily remove those elements for the original array?" – s1n7ax May 23 '16 at 7:55
  • And the answer is what I wrote, but you mentioned now something about "use these two elements after". If you can clarify what you need I'm sure i'll be able to help. – AlexD May 23 '16 at 7:56

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