17

Given a for of loop the value of the assigned the variable(i for this example) is equal to what array[i] would equal if it was a normal for loop. How can the index of the array the that i is currently on be accessed.

What I want

let array = ["one", "two", "three"];

for (let i of array) {
  console.log(i);// normally logs cycle one : "one", cycle two : "two", cycle three : "three".
  console.log(/*what equals the current index*/);// what I want to log cycle one : 1, cycle two : 2, cycle three : 3. 
}
2
  • I don't know much about javascript, but in other languages, you would loop over the length of the array, then over the array itself. – MGP Nov 5 '15 at 7:40
  • 1
    let array = ["one", "two", "three"]; let index=0; for (let i of array) { console.log(i); console.log(index++) } – Kaiido Nov 5 '15 at 7:47
15

nothing simple ... if you want "simple access" to both the item and the index in a loop over an array, use forEach e.g.

array.forEach(function(item, index) { 
... 
});

or as T.J. Crowder pointer out (and I missed the ES6 tag)

array.forEach((item, index) => { 
    ... 
});

like many programming languages, javascript has multiple ways to do similar things, the skill is in choosing the right tool for the job

3
  • This seems to be the best solution for the described problem. – nils Nov 5 '15 at 13:36
  • 3
    In ES6, there's actually no reason to use forEach any more. – Bergi Nov 5 '15 at 14:20
  • I'm intrigued - what would you use instead ... hmmm ... just saw the for/of with .entries answer ... – Jaromanda X Nov 5 '15 at 14:25
25

You can use the entries function. It will return a index/value pair for each entry in the array like:

[0, "one"]
[1, "two"]
[2, "three"]

Use this in tandem with array destructuring to resolve each entry to the appropriate variable name:

const arr = ["one", "two", "three"]
for(const [index, value] of arr.entries()) {
  console.log(index, value);
}

Babel REPL Example

5
  • I like your answer, and it is technically correct, but it would seem more intuitive to me to use index instead of key. – Andrew Willems Dec 14 '16 at 13:42
  • 1
    @AndrewWillems Interesting point, I had actually assumed (incorrectly) that entries() would also iterate any properties set on the Array (i.e. arr.one = "1") but that isn't actually the case, so you're right it should be [index, value] – CodingIntrigue Dec 14 '16 at 15:12
  • 1
    For the record, key is technically correct even so far as to be the correct/only keyword to use to access just those values. e.g. for (let i of arr.keys()) {console.log(i);} produces "0, 1, 2". But, just to make the point again slightly differently, while JavaScript arrays do have a form of keys (with the caveat you point out) they are sequential numeric keys and we typically think of those as indexes (or indices, or whatever spelling you want). So, with respect to code readability, I think your re-edit of your answer to use index instead of key is still best. – Andrew Willems Dec 15 '16 at 15:34
  • 1
    This should be the correct answer to the question IMHO. – Jyotman Singh Apr 6 '17 at 12:19
  • For Typescript validity, add Array.from() around arr.entries(): Array.from(arr.entries()) to prevent TS2488. – mdawsondev Sep 9 '20 at 16:05
5

You mean this?

array = ["one", "two", "three"];

for (i = 0; i < array.length; i++) {
  console.log(i); // Logs the current index number;
  console.log(array[i]); // Logs the index matching in the array;
}

Also a good comment from Kaiido was that you can use this to get the value from the array directly as a variable.

for (var ind = 0, i=array[ind]; ind < array.length; i=array[++ind]) {
    console.log(i);
    console.log(ind);
}
8
  • Yes but I want to have easy access to the idem in the array with just i without having to use array[i]. – user5448026 Nov 5 '15 at 7:53
  • @user5448026, Your question was hard to understand :p, but why not use array[i]? Is there a problem with it? – Thaillie Nov 5 '15 at 7:56
  • 1
    What is not easy about array[i]? – Cerbrus Nov 5 '15 at 8:24
  • @Kaiido: Actually that doesn't work as you don't update i in every iteration. – Bergi Nov 5 '15 at 13:23
  • @Bergi oups, you're right. It should have been for (var ind = 0,i=array[ind] ; ind < array.length; i=array[++ind]) { console.log(i); console.log(ind); } but I personaly always prefer the arr[x] notation – Kaiido Nov 5 '15 at 13:55
3

You can use the entries() function to get an iterator that includes the indices.

for (let [index, value] of [1, 2, 3].entries())
  console.log(index + ':' + value);

or, if you dont like the let [,] notation:

for (let entry of [1, 2, 3].entries())
  console.log(entry[0]+ ':' + entry[1]);

But what about other array-likes? Well, you could easily just take care of it yourself, really

let index = 0;
for (let ch of 'abcd') {
  ++index;
  //your code
}

Or, you can pretty easily patch in your own implementation

Object.defineProperty(String.prototype, 'indexerator', {get:function() {
    var elements = this[Symbol.iterator]();
    var index = 0;
    var output;

    return {
        [Symbol.iterator] : function() { return this; },
        next : function() {
            if (!(output = elements.next()).done)
                output.value = [index++, output.value];
            return output;
        }
    };
}});

/*other code*/

for (let [index, ch] of 'abcd'.indexerator)
  console.log(index + ':' + ch);

demonstrations

3
  • For a string, you can just include .split('') to convert the string to an array of characters and then proceed as usual, i.e. for (let [index, ch] of 'abcd'.split('').entries()) {...}. – Andrew Willems Dec 14 '16 at 13:38
  • 1
    Cool. It was just an easily understood example, your solution will work for strings but wont help you if you needed to patch, say a NodeList on slightly older webkit browsers (which, for some reason, support iterators but NodeList wasn't yet made to be one itself). To have to write that long expression each time you wanted to do something like that in a project would be unwieldy, in which case you'd probably end up turning it into a function, making it no less complicated than the solution here anyway (.indexerator, the patching function is just defined once hidden in a utility somewhere). – Hashbrown Dec 16 '16 at 3:51
  • @AndrewWillems If the string isn't converting to an array a waste of memory and can cause problems? Better to add your own index. – codeAligned Aug 25 '17 at 14:48
1

use indexOf to get the index back

let array = ["one", "two", "three"];

for (let i of array) {
  console.log(i);
  console.log(array.indexOf(i));
}

NOTE: will only work for a array with no duplicates.

3
  • what about let array = ["one", "two", "three", "one"]; – Kaiido Nov 5 '15 at 7:45
  • true, though the question did not mention duplicates. updated my answer. – BenG Nov 5 '15 at 7:47
  • Right but this will return the first index of the value in the array, which is not the same as "the actual index of the array being accessed" – Kaiido Nov 5 '15 at 7:49
0

Or

array = ["one", "two", "three"];

for (i = 0, item; item=array[i]; i++) {
  console.log(i); // Logs the current index number;
  console.log(item); // Logs the current item in the array;
}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy