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Is this normal? Is it a feature or a bug? (I'm using firebug):

>>> '' || true
true
>>> '' || false
false
>>> '' && false
""
>>> '' && true
""
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3 Answers 3

up vote 8 down vote accepted

It is not converting the empty string to Boolean.

With ||

It is evaluating the left hand side, of which an empty string is falsy. It then checks the right hand side (because it's an or, and that side may be true), and returns that value.

With &&

Because && needs both sides to be true and the left hand side is falsy, it doesn't bother checking the right hand side (short circuit evaluation). Therefore, it just returns the left hand side, which is the empty string.

JavaScript always returns the last value it evaluated.

>>> '' || 0 || undefined || null || false || NaN || 'hello'
"hello"
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It's not that one is converting and the other isn't; the lines with || are returning their second operand and the lines with && are returning their first, due to short-circuiting.

[ECMA-262 11.11]: Semantics

The production LogicalANDExpression : LogicalANDExpression && BitwiseORExpression is evaluated as follows:

  1. Let lref be the result of evaluating LogicalANDExpression.
  2. Let lval be GetValue(lref).
  3. If ToBoolean(lval) is false, return lval.
  4. Let rref be the result of evaluating BitwiseORExpression.
  5. Return GetValue(rref).

The production LogicalORExpression : LogicalORExpression || LogicalANDExpression is evaluated as follows:

  1. Let lref be the result of evaluating LogicalORExpression.
  2. Let lval be GetValue(lref).
  3. If ToBoolean(lval) is true, return lval.
  4. Let rref be the result of evaluating LogicalANDExpression.
  5. Return GetValue(rref).

The LogicalANDExpressionNoIn and LogicalORExpressionNoIn productions are evaluated in the same manner as the LogicalANDExpression and LogicalORExpression productions except that the contained LogicalANDExpressionNoIn, BitwiseORExpressionNoIn and LogicalORExpressionNoIn are evaluated instead of the contained LogicalANDExpression, BitwiseORExpression and LogicalORExpression, respectively.

NOTE The value produced by a && or || operator is not necessarily of type Boolean. The value produced will always be the value of one of the two operand expressions.

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The || operator will return the first value which is truthy.

The && operator will return the second value if the first is truthy, otherwise it returns the first.

For more info, you can see the Logical Operators page on the MDC site.

In your case,

  1. '' || true; '' is false, so the || operator moves onto the second value, which is true, and so returns it.
  2. '' || false; '' is false, so the || operator moves onto the second value, which is false, and has no more values to compare, so returns it.
  3. '' && false; the first value ('') is falsy, so it returns it.
  4. '' && true; the first value ('') is falsy, so it returns it.
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1  
Your answer would be more clear if you pointed out that '' is falsy which, I believe, is what is confusing @Paolo. –  chuckj Dec 5 '11 at 9:31
    
@chuckj: I've added that to my answer :) –  Matt Dec 5 '11 at 9:35
    
Much better! Thanks! –  chuckj Dec 5 '11 at 9:36

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