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I have a question in Javascript.

This is the following Array: [1,0,0,0,0,0,0]

I would like to return the only value that does not repeat, that is, 1.

Any suggestions?

I have this:

var result = arr.filter(x => arr.indexOf(x) !== 0);
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    Anything you've tried so far ? – Cid Apr 8 '19 at 9:39
  • show us the things you have tried so far. – Francis ask question Apr 8 '19 at 9:40
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    @Esko that's not the same – Cid Apr 8 '19 at 9:41
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Using indexOf and lastIndexOf

You can compare indexOf and lastIndexOf and filter()

let arr = [1,0,0,0,0,0,0];
let res = arr.filter(x => arr.indexOf(x) === arr.lastIndexOf(x));

console.log(res)

If you only want the first element you can use find()

let arr = [1,0,0,0,0,0,0];
let res = arr.find(x => arr.indexOf(x) === arr.lastIndexOf(x));

console.log(res)

You can remove duplicates using Set() and then use filter() on it.

let arr = [1,0,0,0,0,0,0];
let res = [...new Set(arr)].filter(x => arr.indexOf(x) === arr.lastIndexOf(x));

console.log(res)

Using nested filter()

let arr = [1,0,0,0,0,0,0];
let res = arr.filter(x => arr.filter(a => a === x).length === 1);
console.log(res)

Using Object and reduce()

This one is best regarding time complexity.

let arr = [1,0,0,0,0,0,0];
let obj = arr.reduce((ac,a) => (ac[a] = ac[a] + 1 || 1,ac),{});
let res = Object.keys(obj).filter(x => obj[x] === 1).map(x => +x || x);

console.log(res)

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  • Never thought if this solution before, neat one. – Max Fahl Apr 8 '19 at 9:43
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    And, in the second approach, you can use let res = arr.find((x,i) => i === arr.lastIndexOf(x)); instead. – bitifet Apr 8 '19 at 9:47
  • Explanation of how this works: stackoverflow.com/questions/52297644/… – georg Apr 8 '19 at 9:48
  • Oh, perfect! Thank you. – Marcio Apr 8 '19 at 10:01

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