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I'm new to c++ and am curious how the compiler handles lazy evaluation of booleans. For example,

if(A == 1 || B == 2){...}

If A does equal 1, is the B==2 part ever evaluated?

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wow, that was the quickest 6 responses ever. thanks guys. –  yankee2905 Nov 25 '09 at 18:43
2  
You could have tested that by creating a function with a side effect (i.e., print something to standard out) and placing it in the second position (assuming that the first condition is false). Also, the documentation tells us that || is a short circuiting operator. –  Ed S. Nov 25 '09 at 18:45
    
but then where would be the fun in watching all of these answers flow in? –  yankee2905 Nov 25 '09 at 18:50
    
note that it doesn't have anything to do with lazy evaluation. While it's true that lazy evaluating languages make this behavior trivial to implement; in C/C++ case, it's just compiled into the equivalent of a series of nested ifs. –  Javier Nov 25 '09 at 19:02
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@Ed: Tests are not a substitute for standards and documentation. –  David Thornley Nov 25 '09 at 19:10

8 Answers 8

up vote 12 down vote accepted

No, the B==2 part is not evaluated. This is called short-circuit evaluation.

Edit: As Robert C. Cartaino rightly points out, if the logical operator is overloaded, short-circuit evaluation does not take place (that having been said, why someone would overload a logical operator is beyond me).

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Unless the || operator is overloaded, the second expression will not be evaluated. This is called "short-circuit evaluation."

In the case of logical AND (&&) and logical OR (||), the second expression will not be evaluated if the first expression is sufficient to determine the value of the entire expression.

In the case you described above:

if(A == 1 || B == 2){...}

...the second expression will not be evaluate because

TRUE || ANYTHING, always evaluates to TRUE.

Likewise,

FALSE && ANYTHING, always evaluates to FALSE, so that condition will also cause a short-circuit evaluation.

A couple of quick notes

  • Short circuit evaluation will not apply to overloaded && and || operators.
  • In C++, you are guaranteed that the first expression will be evaluated first. Some languages do not guarantee the order of evaluation and VB doesn't do short-circuit evaluation at all. Important to know if you are porting code.
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+1 for noting that overloaded logical operators are not short-circuit evaluated. –  James McNellis Nov 25 '09 at 22:29

The B==2 part is not evaluated.

Be careful! Don't put something like ++B==2 over there!

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C++ applies short circuiting to Boolean expression evaluation so, the B == 2 is never evaluated and the compiler may even omit it entirely.

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The compiler handles this by generating intermediate jumps. For the following code:

if(A == 1 || B == 2){...}

compiled to pseudo-assembler, might be:

    load variable A
    compare to constant 1
    if equal, jump to L1
    load variable B
    compare to constant 2
    if not equal, jump to L2
L1:
    ... (complete body of if statement)
L2:
    (code after if block goes here)
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you don't know that. You compiler might decide that A is always 1 for instance and completely discard that check. –  shoosh Nov 25 '09 at 18:52
3  
That's true, but that's an optimisation and not relevant for this example. –  Greg Hewgill Nov 25 '09 at 19:03

This is short-circuit evaluation, as James says. Lazy evaluation is something entirely different.

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It's not something entirely different. Short-circuit evaluation is a form of lazy evaluation. –  James McNellis Nov 25 '09 at 18:50

No it's not.

Same with &&, if one is wrong, it doesn't bother evaluating the other one.

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B == 2 is never evaluated.

See Short-Circuit Evaluation for more information.

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