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As the title states, why does:

> !!1=="1"

equal

True

and

> !!2=="2"

equal:

False

Likewise, why does > "1"==true equal true and > "2"==true equal false

I'm baffled. Are these just bugs in JS or what's going on here?

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2  
@Michael: 2==“2” equal false for you? For me it's working correctly jsfiddle.net/HGEcs –  Ishan Jain May 16 '14 at 5:24
8  
This is why you should ALWAYS be using === for comparison in JavaScript. –  tester May 16 '14 at 5:25
53  
No, it's not a bug. You simply should not compare booleans to strings if you don't know what it means. –  Bergi May 16 '14 at 5:50
11  
Depends what you mean by "bug". In the usual sense of the word, no, this isn't a bug - but it is a design flaw. –  Harry Johnston May 16 '14 at 6:15
2  
Please notice that these aren't duplicates. We here are considering the case compare boolean to numeric string, not something similar. –  Bergi May 16 '14 at 15:42

5 Answers 5

up vote 189 down vote accepted

As per the Operator precedence rules, logical ! has higher priority over ==. So, in both the cases, !! is evaluated first.

Note: Truthiness of various objects have been explained in this answer of mine.

First Case

!!1 == "1"

!1 will be evaluated to false, since 1 is considered Truthy. Negating again we get true. So the expression becomes

true == "1"

Now, the coercion rules kick in as you have used == operator, which evaluates as per the The Abstract Equality Comparison Algorithm defined in ECMAScript 5.1 Specification,

6. If Type(x) is Boolean, return the result of the comparison ToNumber(x) == y.

So, true will be converted to a number, which is 1 as per ToNumber algorithm for Boolean values. Now the expression becomes

1 == "1"

Now,

4. If Type(x) is Number and Type(y) is String, return the result of the comparison x == ToNumber(y).

So, "1" will be converted to a number and that will give 1, as per the ToNumber algorithm. That is why it shows true in the first case.

Second Case

The same rules are applied here.

!!2 == "2"

becomes

true == "2"

then

1 == "2"

which becomes

1 == 2

which is not true, that is why the second case prints false.

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6  
+1 No wonder: 100==true is always false. This lingered some Confusion as in; How can both Negative Numbers and Positive Number == true be false except 1 which is a Positive number?... Your Explanation really shades some GreatLight on this issue. mostly the point 4. –  ErickBest May 16 '14 at 5:50
4  
@MichaelRader If you want to compare the values then you might want to use === operator, which uses Strict Equality Algorithm –  thefourtheye May 16 '14 at 5:55
3  
@MichaelRader Sure, but please go through the documentation to know the limitations of === before diving in ;-) –  thefourtheye May 16 '14 at 5:58
4  
I love when people give step-by-step breakdowns of code, because not all of us know what goes on in the background. Thanks! –  Chris Cirefice May 16 '14 at 17:20
1  
If you're trying to create a statement out of this, you might opt for a little boolean algebra, so if you have var1 = 2 and var2 = 2, then you can use if !!var1 and var2, since you're not checking for the integer value of these numbers, but instead want their boolean value. –  JFA May 16 '14 at 23:07

tldr; this is due to the [ToNumber] conversions in the == operator algorithm.

The first step is to simplify the expression. Since !!x=="x" is parsed like (!!x)=="x" and !!a_truthy_expression -> true, the actual relevant expression for the equality is

!!1=="2" -> true=="1" -> Boolean==String
!!2=="2" -> true=="2" -> Boolean==String

So then looking at the rules for 11.9.3 The Abstract Equality Comparison Algorithm and following along with the application yields

Rule 6 - If Type(x) is Boolean, return the result of the comparison ToNumber(x) == y.

which results in Number==String or 1=="1" and 1=="2", respectively1. Then the rule

Rule 7 - If Type(x) is Number and Type(y) is String, return the result of the comparison x == ToNumber(y).

is applied which results in Number==Number or 1==1 and 1==2, respectively1; the latter is clearly false.

Rule 1 - If Type(x) is the same as Type(y), then [by c.iii.] If x is the same Number value as y, return true [else return false].

(The same algorithm explains the String==Boolean case when the complementing rules are applied.)


1To see the [ToNumber] rule applied, consider:

+false -> 0
+true  -> 1
+"1"   -> 1
+"2"   -> 2
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Its a precedence operator problem.

The ! operator is an unary operator. That means the left side must be an expression or a boolean evaluable section. See Javascript MDN.

!!1==1 is not necessary !!(1==1)
!!2==2 is not necessary !!(2==2)

I think that these expressions should be consistent if the equal operator has more precedence than ! operator. But if we consider the opposite, evaluating first negations we have:

!!1 == 1
!1 -> false
!!1 -> true
!!1 == 1 

And with the two

!!2==2
!2 -> false
!!2 -> true
(!!2) == 2 -> false

That is because the ! operator has precedence over == operator

See Mozilla Operator Preference

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!!1 is equal to true, and "1" is equal to true ("0" is false, so is every other string). So !!1 == "1" evaluates to true == true, which of course returns true.

!!2 is also equal to true. As I mentioned earlier, "2" is not "1", so it's false. Therefore, we have true == false, which of course returns false.

If you want to see if 2 (a number) is equal to "2" (a string representation of a number), then all you have to do is 2 == "2", which evaluates to 2 == 2, which is true. The difference is that we're not comparing a boolean against a boolean. We're comparing a number against a number.

Basically, putting !! in front of a number converts to a boolean, which forces JavaScript to cast your string to a boolean instead of a number.

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Leave a comment if you're going to downvote. I tested all of these cases, so I know that they're correct. –  Meredith May 16 '14 at 5:29
    
Which is exactly what I said. –  Meredith May 16 '14 at 5:31
    
YOU SAID: As I mentioned earlier, "2" is not "1". Did he say 2 == 1 ??... try to explain that point –  ErickBest May 16 '14 at 5:34
6  
-1. The strings are not being casted to booleans. The booleans are casted to numbers. Also, ""0" is false" is confusing (if not wrong), because "0" is truthy: !!"0" === true and "0" == false –  Bergi May 16 '14 at 5:48
3  
-1. !!"" === false, !!anyOtherString === true. In other words the empty string is falsey, all other strings are truthy. Your first sentence directly contradicts this –  erm410 May 16 '14 at 12:44

Because "1" may be considered as "true" when you do equality check, not identity, but "2" - can't.

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Consider !!2 vs !!1 - both evaluate to true (as such, both 1 and 2 are truthy-values) –  user2864740 May 16 '14 at 5:20
    
Please read @thefourtheye's detailed explanation. –  Phil Perry May 16 '14 at 13:56

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