32

Is there any shortcut to accomplishing the equivalent of PHP's array_flip function in JavaScript or does it have to be done via brute force looping?

It has to be used for dozens of arrays so even small speedups will probably add up.

0

8 Answers 8

24

Don't think there's one built in. Example implementation here, though :).

function array_flip( trans )
{
    var key, tmp_ar = {};

    for ( key in trans )
    {
        if ( trans.hasOwnProperty( key ) )
        {
            tmp_ar[trans[key]] = key;
        }
    }

    return tmp_ar;
}
4
  • 1
    @pianoman - I added the hasOwnProperty check. Hope you don't mind =) Jul 21, 2009 at 13:59
  • 1
    I wouldn't recommend phpjs.org: the code quality is underwhelming and some functions don't work in IE at all! If you want to program in JS, learn it!
    – Christoph
    Jul 21, 2009 at 15:27
  • also keep in mind that this only works reliably if the property values have a unique string representation
    – Christoph
    Jul 21, 2009 at 15:32
  • 3
    @Christoph - See your point, but if the properties aren't unique, one really shouldn't be flipping the array to begin with ಠ_ಠ Jul 21, 2009 at 15:35
14

ES6 version

const example = { a: 'foo', b: 'bar' };

const flipped = Object.entries(example)
  .reduce((obj, [key, value]) => ({ ...obj, [value]: key }), {}); 

// flipped is {foo: 'a', bar: 'b'}

ES5 version

var example = {a: 'foo', b: 'bar'}; 

var flipped = Object.keys(example)                //get the keys as an array
    .reduce(function(obj, key) {                  //build up new object
        obj[example[key]] = key;
        return obj;
    }, {});                                       //{} is the starting value of obj

// flipped is {foo: 'a', bar: 'b'}
7

Using underscore _.invert

_.invert([1, 2]) 
//{1: '0', 2: '1'}

_.invert({a: 'b', c: 'd'}) 
//{b: 'a', d: 'c'}
3
  • Good solution, but how would you cast the string value, which are the array indices, to type number? Call another method like map? Dec 2, 2015 at 16:54
  • @ConAntonakos yes, I guess _.mapObject(_.invert([1, 2]), function (d) {return +d}) will do Mar 29, 2016 at 14:08
  • For those using lodash, it has invert too.
    – Rafał G.
    Mar 23, 2020 at 8:28
2

with jQuery:

var array_flipped={};
$.each(array_to_flip, function(i, el) {
  array_flipped[el]=i;
});
2

I guess you are talking about Objects not Arrays

function flip(o){
    var newObj = {} 
    Object.keys(o).forEach((el,i)=>{
        newObj[o[el]]=el;
    });
    return newObj;
}

Otherwise it could be

function flip(o){

    var newObj = {} 

    if (Array.isArray(o)){

        o.forEach((el,i)=>{
            newObj[el]=i;
        });

    } else if (typeof o === 'object'){

        Object.keys(o).forEach((el,i)=>{
            newObj[o[el]]=el;
        });

    }

    return newObj;

}
1
  • The .map function doesn't work at all, it only creates an array of ascending numbers from 0 to length-1 regardless of array content.
    – Domino
    Aug 11, 2016 at 3:38
1

The current top answer didn't work as expected for me because key values are offset +1. (and so the returned array tmpArr(0) is also always undefined. So I subtracted 1 from key value and it worked as expected.

function array_flip2 (trans) {
  var key
  var tmpArr = {}

  for (key in trans) {
    if (!trans.hasOwnProperty(key)) {
      continue
    }
    tmpArr[trans[parseInt(key)]-1] = (key)
  }
  return tmpArr
}
0

Simple approach

const obj = { a: 'foo', b: 'bar' },
      keys = Object.keys(obj),
      values = Object.values(obj),
      flipped = {};
for(let i=0; i<keys.length; i++){
    flipped[values[i]] = keys[i];
}
console.log(flipped);//{foo: "a", bar: "b"}
0
0

I might flip keys and values this way:

let arr = "abc".split('');

let flip = []
arr.forEach((n, i) => {
    flip[Object.values(arr)[i]] = Object.keys(arr)[i];
})

console.log(Object.keys(arr), Object.values(arr));
console.log(Object.keys(flip), Object.values(flip));

Depending on how large your initial array is you may want to store the keys/values in their own respective arrays.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.