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Why both of these resolve to false:

console.log("potato" == false); //false
console.log("potato" == true); //false

Because what I know when using == loose comparison, JS coerces the operand. Since in JS, non-empty string should be true, why do above return false above ?

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Here's a useful article on this topic: http://javascriptweblog.wordpress.com/2011/02/07/truth-equality-and-javascript/‌​. –  jabclab Feb 23 '12 at 12:40
    
@jakeclarkson your comment should be posted as the right answer. +1 anyway –  Fabrizio Calderan Feb 23 '12 at 12:50
    
@jakeclarkson: I could not understand from there that's why asked here. Clear now, thanks all. –  Dev555 Feb 23 '12 at 12:55

2 Answers 2

up vote 5 down vote accepted

There needs a clarification about the == operator. From ECMA-262 Section 11.9.3 the rule6, rule7 and later rule4 determines your result

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

rule 7. If Type(y) is Boolean, return the result of the comparison x == ToNumber(y).

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

In your context, false and true will be converted to 0 and 1, while the 'potato' will be converted to NaN, the comparison expression's value is always false.

"potato" == false // => "potato" == 0 => NaN == 0
"potato" == true // => "potato" == 1 => NaN == 1

Similarly, in '' == true comparison, '' will be converted to 0 while true will be converted to 1, the expression is false.

'' == false // => 0 == 0
'' == true // => 0 == 1

Due to the non-intuitive implementation of ==,=== is encouraged to use in comparison.

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You mean Truthy and Falsy Values:

if ("potato") {
   console.log("true")
}

But here you compare the String "potato" and a true, JavaScript will try to cast to a comparable thing and that is not the case when you compare the two values you have.

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