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If you have a C function which returns an integer, you could write a statement like this:

MyInt &= MyFunc();

...where we're using the bitwise-AND assignment operator.

The question is: is MyFunc() guaranteed to be executed, even if MyInt equals zero?

Likwise, if we used the bitwise-OR assignment operator (|=), would MyFunc() always be executed, even if MyInt were set to all ones?

Put another way: is lazy evaluation permitted in C for bitwise operators?

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2 Answers

up vote 1 down vote accepted
MyInt &= MyFunc();

is equivalent to:

MyInt = MyInt & MyFunc();

The language states that the & operator is not short-circuited. However, an optimiser could generate code not to call to the function if MyInt was zero and it was sure that the function had no side effects. I doubt any compilers acrtually do this, as the runtime test probably makes it a pessimisation.

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Except that MyInt is evaluated once (might matter when it's an expression with side-effects.) –  LeakyCode Aug 30 '09 at 15:56
    
The thing on the LHS of the assignment won't be evaluated. –  anon Aug 30 '09 at 16:04
    
Neil: consider myMap["test"] |= 10; where myMap.operator[] prints something. It'll get printed twice in the second form but once in the compound assignment form. –  LeakyCode Aug 30 '09 at 17:40
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@Mehrdad Consider that this question is tagged as C, not C++. –  anon Aug 30 '09 at 17:53
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Attributes are added to C++0X -- I don't remember if there is a pure attribute or not --, but it is a standardization of the attribute notions than some compilers already have. Including gcc. caf suggest here to use a gcc extension. –  AProgrammer Aug 31 '09 at 7:25
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No. Bitwise operators are not short-circuited. MyFunc() execution is guaranteed regardless of the value of MyInt.

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