I'm using JavaScript, and would like to check whether an array exists in an array of arrays.

Here is my code, along with the return values:

var myArr = [1,3];
var prizes = [[1,3],[1,4]];
prizes.indexOf(myArr);
-1

Why?

It's the same in jQuery:

$.inArray(myArr, prizes);
-1

Why is this returning -1 when the element is present in the array?

up vote 6 down vote accepted

Because [1,3] !== [1,3], since objects will only equal if they reference the same object. You need to write your own search routine:

function searchForArray(haystack, needle){
  var i, j, current;
  for(i = 0; i < haystack.length; ++i){
    if(needle.length === haystack[i].length){
      current = haystack[i];
      for(j = 0; j < needle.length && needle[j] === current[j]; ++j);
      if(j === needle.length)
        return i;
    }
  }
  return -1;
}

var arr = [[1,3],[1,2]];
var n   = [1,3];

console.log(searchForArray(arr,n)); // 0

References

  • Using the Equality Operators:

    If both operands are objects, they're compared as objects, and the equality test is true only if both refer the same object.

  • for(var i in haystack ){ instead of for(i = 0; i < haystack.length; ++i){ will not throw exception if haystack[1] is missing and haystack[0] and haystack[2] are defined - still returns i=2 if the needle matches haystack[2] – Bharath Parlapalli Jan 24 '14 at 21:28
  • @BharathParlapalli: If haystack[1] is missing, then haystack is not a valid array, and therefor not a suitable candidate for searchForArray. – Zeta Jan 24 '14 at 23:59
  • 1
    Tests "[1,3] == [1,3]" in the console... Wat. – Charles Clayton Aug 8 '16 at 16:18
  • This shortcut of the for loop will fail in most ESLint configurations. – dude Feb 13 at 19:40

You can use this

 var a = [ [1,2] , [3,4] ];
 var b = [1,2];
 a = JSON.stringify(a);
 b = JSON.stringify(b);

then you can do just an indexOf() to check if it is present

var c = a.indexOf(b);
if(c != -1){
    console.log('element present');
}
  • this is pretty elegant in it's simplicity, I'm surprised it's not higher – Pirijan Dec 23 '15 at 3:19
  • @Pirijan this would be really elegant if it worked, but it doesn't, JSON.stringify(a) returns [null] then the check fails. – Charles Clayton Aug 8 '16 at 16:30
  • @crclayton there was supposed to be a comma separating the 2 arrays ,i guess i made a mistake while posting the answer, it should work now – ajack13 Aug 9 '16 at 11:38

Because both these methods use reference equality when operating on objects. The array that exists and the one you are searching for might be structurally identical, but they are unique objects so they won't compare as equal.

This would give the expected result, even if it's not useful in practice:

var myArr = [1,3];
var prizes = [myArr,[1,4]];
prizes.indexOf(myArr);

To do what you wanted you will need to write code that explicitly compares the contents of arrays recursively.

Because javascript objects are compared by identity, not value. So if they don't reference the same object they will return false.

You need to compare recursively for this to work properly.

first define a compare function for arrays

// attach the .compare method to Array's prototype to call it on any array
Array.prototype.compare = function (array) {
    // if the other array is a falsy value, return
    if (!array)
        return false;

    // compare lengths - can save a lot of time
    if (this.length != array.length)
        return false;

    for (var i = 0; i < this.length; i++) {
        // Check if we have nested arrays
        if (this[i] instanceof Array && array[i] instanceof Array) {
            // recurse into the nested arrays
            if (!this[i].compare(array[i]))
                return false;
        }
        else if (this[i] != array[i]) {
            // Warning - two different object instances will never be equal: {x:20} != {x:20}
            return false;
        }
    }
    return true;
}

second just find the array with

prizes.filter(function(a){ return a.compare(myArr)})

NOTE: check the browser compatibility for array.filter

Assuming you are only dealing with a two-dimensional array (you mention an "array of arrays" but nothing deeper than that), this non-recursive code should do what you need.

var compare_arrays = function (array_a, array_b) {
    var rtn = true,
        i, l;
    if (array_a.length === array_b.length) {
        for (i = 0, l = array_a.length; (i < l) && rtn; i += 1) {
            rtn = array_a[i] === array_b[i];
        }
    } else {
        rtn = false;
    }
    return rtn;
},
indexOfSimilarArray = function (arrayToFind, arrayToSearch) {
    var i = arrayToSearch.length,
        chk = false;
    while (i && !chk) {
        i -= 1;
        chk = compare_arrays(arrayToFind, arrayToSearch[i]);
    }
    return i;
};

// Test
var myArr = [1,3];
var prizes = [[1,3],[1,4]];
indexOfSimilarArray(myArr, prizes);

JSFiddle: http://jsfiddle.net/guypursey/V7XpE/. (View the console to see the result.)

function doesArrayOfArraysContainArray (arrayOfArrays, array){
  var aOA = arrayOfArrays.map(function(arr) {
      return arr.slice();
  });
  var a = array.slice(0);
  for(let i=0; i<aOA.length; i++){
    if(aOA[i].sort().join(',') === a.sort().join(',')){
      return true;
    }
  }
  return false;
}

Worth noting:

  • aOA[i].sort().join(',') === a.sort().join(',') is a useful way to check for arrays that contain the same values in the same order, but are references to different objects.

  • array.slice(0) creates a non-referential copy of the original 2D array.

  • However, to create a copy of a 3D array arrayOfArrays.slice(0) does not work; the reference chain will still be present. In order to create a non-referential copy the .map function is necessary.

If you don't create these non-referential array copies you can really run into some tough to track down issues. This function should operate as a conditional and not effect the initial objects passed in.

Javascript is one fickle mistress.

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