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Will testTrue ever be called?

if( 1 == 0 && testTrue(x) )
{
   //nothing
}
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marked as duplicate by juanchopanza, birryree, Rapptz, Blastfurnace, paxdiablo Feb 7 '13 at 0:52

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I will point out that this sort of things is trivial to test; although testing it on any one compiler won't tell you whether that's "standard" behavior or the compiler being smart. –  Nik Bougalis Feb 7 '13 at 0:45

4 Answers 4

Nope. This is known as short-circuit evaluation. && only evaluates its right-hand operand if the left-hand side evaluates to true. Similarly, || only evaluates its right-hand operand if the left-hand side evaluates to false.

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Thanks, I liked your addition of the || explination so I will give you the best answer. –  user975911 Feb 7 '13 at 0:44

No, from the standard (emphasis mine):

5.14 Logical AND operator [expr.log.and]

1 The && operator groups left-to-right. The operands are both implicitly converted to type bool (clause 4). The result is true if both operands are true and false otherwise. Unlike &, && guarantees left-to-right evaluation: the second operand is not evaluated if the first operand is false.

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No, because of short-circuit evaluation the other operand will not be evaluated if the left one is false.

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If the left one is false, you mean. –  Benjamin Lindley Feb 7 '13 at 0:47

Never. Which if you aren't careful, can cause problems. If you're accessing dynamic memory you don't want to check the memory before you have verified there is something to check.

i.e.

if ( current != NULL && x > current -> info)

is very different from

if ( x > current -> info && current != NULL)

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