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Can anyone explain why the following two statements both evaluate as true?

[] == false

and

!![]

This question is purely out of curiosity of why this happens and not about how to best test if an array is empty.

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1  
If you really want to get your hands dirty, take a look at section 11.9.1 ("The Equals Operator ==") and Section 8.7.1 ("GetValue(V)") in the spec. And this would be another great example of why == true and == false are generally not ideal style. :-) –  T.J. Crowder Nov 19 '10 at 15:21
1  
Actually, using == or != is never good style. Always use === or !==, and cast the operands by hand. –  Marco Mariani Nov 19 '10 at 15:56
1  
[] == []; // false –  Florian Margaine Nov 6 '12 at 9:56

2 Answers 2

up vote 30 down vote accepted

The first one:

[] == false

The == operator does type conversion to its operands, in this case the both sides are converted to Number, the steps taken on the Abstract Equality Comparison Algorithm would be:

  • object == boolean
  • object == number
  • string == number
  • number == number

In code:

[] == false; // convert false to Number
[] == 0;     // convert [] to Primitive (toString/valueOf)
"" == 0;     // convert "" to Number
0  == 0;     // end

The second comparison, [] is converted to primitive, their valueOf and toString methods are executed, but since valueOf on Array objects, returns the object itself (is inherited from Object.prototype), then the toString method is used.

At the end as you see, both operands are converted to Number, and both yield zero, for example:

Number([]) == 0;
Number(false) == 0;

And empty array produces zero when converted to Number because its string representation is an empty string:

[].toString(); // ""

And an empty string converted to Number, yields zero:

+""; // 0

Now, the double negation (!![]) produces true because all object instances are truthy:

![];  // false, [] is truthy
!![]; // true, negation

The only values that are falsey are:

  • null
  • undefined
  • 0
  • NaN
  • "" (an empty string)
  • false

Anything else will produce true when converted to Boolean.

See also:

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Very interesting. Thanks for the detailed description and sharing those links. –  Matthew Manela Nov 19 '10 at 15:51
    
Whoops, looks like I answered the same question in the same way. Didn't notice until someone marked that question a duplicate of this one. stackoverflow.com/a/10556035/2653 –  Nick Retallack May 11 '12 at 19:23

[] == false

In this case, the type of the left-hand side is object, the type of the right-hand side is boolean. When object is compared to (== The Abstract Equality Comparison) boolean, Javascript first converts the boolean to a number, yielding 0. Then it converts the object to a "primitive", yielding the empty string "". Next it compares the empty string to 0. The empty string is converted to a number, yielding 0, which is numerically equal to the 0 on the right-hand side, so the result of the entire expression is true.

Ref: http://es5.github.com/#x11.9.3 11.9.3 The Abstract Equality Comparison Algorithm

!![]

In this case Javascript converts the object to the boolean true, then inverts it, resulting in false.

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:Please be more descriptive about your solution. Refer:How to Answer –  askmish Oct 20 '12 at 1:37

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