0

Why does indexOf give -1 in this case:

   var q = ["a","b"];
   var matchables = [["a","b"],["c"]];
   matchables.indexOf(q);

How should I establish if the value stored in q can be found in matchables?

7

Because indexOf uses === as the comparison flag.

=== operating on non-primitives (like Arrays) checks for if the Objects are identical. In JavaScript, Objects are only identical if they reference the same variable.

Try this to see what I mean (in console):

([])===([])

It returns false because they do not occupy the same space in memory.

You need to loop and use your own equality check for anything other than true/false/string primitive/number primitive/null/undefined

// Only checks single dimensional arrays with primitives as elements!
var shallowArrayEquality = function(a, b){
    if(!(a instanceOf Array) || !(b instanceof Array) || a.length !== b.length)
      return false;
    for(var ii=0; ii<a.length; ii++)
      if(a[ii]!==b[ii])
        return false;
    return true;
};

var multiDimensionalIndexOf = function(multi, single){
   for(var ii=0; ii<a.length; ii++)
      if(shallowArrayEquality(multi[ii], single) || multi[ii] === single)
        return ii;
   return -1;
};

multiDimensionalIndexOf(matchables, q); // returns 0
  • I'll add a quick function for checking shallow array equality – Andrew Templeton Mar 2 '14 at 20:23
  • I use ii because it's easier to search against in code – Andrew Templeton Mar 2 '14 at 20:31
  • 1
    non-literals? you probably mean non-primatives – Musa Mar 2 '14 at 20:40
  • You're right! Sleepy :) Updating... – Andrew Templeton Mar 2 '14 at 20:47
3

Because

["a","b"] === ["a","b"]

is false.

  • @What should I be doing to find ["a","b"] in matchables? – Baz Mar 2 '14 at 20:17
  • 4
    You will need to compare the elements piecewise; JavaScript does not have a way to test of two arrays have equivalent elements. – Phrogz Mar 2 '14 at 20:19
  • Everything they say is true, I added an example to mine to illustrate – Andrew Templeton Mar 2 '14 at 20:30
-1

The way to get it to work would Be this:

var q = ["a", "b"];
var matchables = [q, ["c"]];
matchables.indexOf(q);
  • Does not answer question – Andrew Templeton Mar 2 '14 at 20:20
  • @This is not how I wish to solve this problem. I'm interested in finding by value, not reference. – Baz Mar 2 '14 at 20:20

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