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I am working on a part of code where I have an array which looks like [[data]]. The data is rendered on the server side through django template engine. So my code looks like this:

var data = {{ series|safe }}; 
// data will be [[]] if no data is present
if (data ==[[]])
  console.log('no data');

The if always returns false. That means in [[]] == [[]] is false and my test shows that []==[] is false as well.

Any descriptions would be appreciated.

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Why the double brackets? –  Cerbrus Dec 4 '12 at 12:46
1  
Point 3 at coding.smashingmagazine.com/2011/05/30/… contains a description of what you see. –  Henrik Dec 4 '12 at 12:46
1  
    
@Cerbrus it is data series format for jqplot. –  Nasir Dec 4 '12 at 12:49
    
=== is overrated imho, one should not compare different types and even if you do then === is always false. Writing +'5' === 5 is ridiculous when you can just write '5' == 5 –  Esailija Dec 4 '12 at 12:50
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5 Answers

up vote 11 down vote accepted

Because == (and ===) test to see if two objects are the same object and not if they are identical objects.

Most test frameworks will include functions such as deepEqual if you want to see if two objects are identical.

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To see exactly where this happens, see the Abstract Equality Comparison Algorithm (and note typeof [] === 'object') –  Paul S. Dec 4 '12 at 12:49
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The expression [] == [] has an equivalent notation of:

new Array() == new Array()

And knowing that Array is also an Object, the behaviour of the comparison is unambiguously explained in The Abstract Equality Comparison Algorithm section of the ECMAScript Language Specification:

The comparison x == y, where x and y are values, produces true or false. Such a comparison is performed as follows:

  1. If Type(x) is the same as Type(y), then
    1. If Type(x) is Undefined, return true.
    2. If Type(x) is Null, return true.
    3. If Type(x) is Number, then
      1. If x is NaN, return false.
      2. If y is NaN, return false.
      3. If x is the same Number value as y, return true.
      4. If x is +0 and y is −0, return true.
      5. If x is −0 and y is +0, return true.
      6. Return false.
    4. If Type(x) is String, then return true if x and y are exactly the same sequence of characters (same length and same characters in corresponding positions). Otherwise, return false.
    5. If Type(x) is Boolean, return true if x and y are both true or both false. Otherwise, return false.
    6. Return true if x and y refer to the same object. Otherwise, return false.
  2. If x is null and y is undefined, return true.
  3. If x is undefined and y is null, return true.
  4. If Type(x) is Number and Type(y) is String, return the result of the comparison x == ToNumber(y).
  5. If Type(x) is String and Type(y) is Number, return the result of the comparison ToNumber(x) == y.
  6. If Type(x) is Boolean, return the result of the comparison ToNumber(x) == y.
  7. If Type(y) is Boolean, return the result of the comparison x == ToNumber(y).
  8. If Type(x) is either String or Number and Type(y) is Object, return the result of the comparison x == ToPrimitive(y).
  9. If Type(x) is Object and Type(y) is either String or Number, return the result of the comparison ToPrimitive(x) == y.
  10. Return false.

Your comparison result is explained by 1.6, highlighted above.

Alternative expression

In your case I would suggest to simply use this condition instead:

if (a[0].length == 0) {
    console.log('no data');
}
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Javascript is like Java in that the == operator compares the values of primitive types, but the references of objects. You're creating two arrays, and the == operator is telling you that they do not point to the same exact object in memory:

var b = new Array( 1, 2, 3 );
var c = new Array( 1, 2, 3 );

console.log(b == c); // Prints false.
console.log(b == b); // Prints true.
console.log(b === c); // Prints false.

b = c;

console.log(b == c); // Now prints true.

You have to do a deep comparison by hand if you want to compare the values of the objects.

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Because they are different instances of an Array, thus not equal.

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Because [] creates a new array, so you are comparing one array object with another array object.

It's not the contents of the arrays that is compared, the object references are compared. They are not equal because it's not the same object instance.

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