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If I have a C statement with the logical OR operator || :

if (isFoo() || isBar())
    blah();

I know the compiler generated code will not execute isBar() if isFoo() returns true.

What about the bitwise OR operator | ?

if (isFoo() | isBar())
    blah();

Likely this is sloppy writing, or if the writer requires isBar() and isFoo() to be both be executed because of those functions' side-effects, then they should express their intent more clearly. Or maybe I'm wrong and this is an acceptable C/C++ idiom.

Nevertheless, will a decent compiler actually generate a temporary variable to do the bitwise or'ing of the return values of isFoo() and isBar() when optimizations are turned on? Or will it instead convert the bitwise OR operation into a logical OR operation in order to allow short-circuit'ing of the boolean expression in order to prevent the calling of isBar()?

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5  
It must call both functions (in no particular order). –  user168715 Aug 25 '11 at 23:23
    
Why dont you try compiling and running it ? That helps sometime. :) –  Ajeet Aug 26 '11 at 0:11
1  
I was curious about the spec as well as more the behavior of compilers that I don't access to. Additionally, I was curious about the acceptability of such code. Perhaps I could have run with gcc -O3 and then someday I'll find out that Microsoft's compiler has an additional optimization. Thus, I wanted to know the correct answer, not a specific compiler implementation. –  Ross Rogers Aug 26 '11 at 0:18
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@Ajeet: Compile/test is rarely a valid way to answer questions like this... –  R.. Aug 26 '11 at 7:02

4 Answers 4

up vote 9 down vote accepted

The compiler is free to optimize the "or'ing" however it wants, but the program must behave as if both function calls actually happen, and they could happen in either order. This actually bit me once when I naively changed a || to | because I needed both calls to happen, but forgot that the right-hand call could happen before the left-hand one and that the right-hand one depended on the results of the left-hand one...and the bug didn't show up until somebody decided to try compiling my code with pcc instead of gcc. So my advice is to be careful with stuff like this and write out what you mean clearly.

Finally, note that I said "as if both function calls actually happen", because in the case where the compiler can determine that a function has no side effects, it might optimize out the right-hand side if the left-hand side resulted in a nonzero value.

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1  
Or equivalently it might optimize out the left-hand one if it determines that left() has no side effects and right() returns a non-zero. –  Michael Burr Aug 25 '11 at 23:40
2  
Or it might optimize out a || (two branches) to a | if it determines that both functions have no side effects and become trivial when inlined. :-) –  R.. Aug 25 '11 at 23:53

"Nevertheless, will a decent compiler actually generate a temporary variable to do the bitwise or'ing of the return values of isFoo() and isBar() when optimizations are turned on?"

Yes. Short circuiting does not apply to bitwise operators.

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Is this reasonable coding practice and I'm the last one to hear about it? –  Ross Rogers Aug 25 '11 at 23:28
    
@Ross: I have never seen anyone do this intentionally. I won't say it's unreasonable, but I think someone looking at it without a comment might think it's a typo and just change it to a logical operator. –  Benjamin Lindley Aug 25 '11 at 23:30
    
Ok. Warrants a comment. I buy that. Thanks. –  Ross Rogers Aug 25 '11 at 23:32
1  
I'll go ahead and say it is unreasonable, or at least very ill-advised. Using || on "isX" boolean functions is such a common pattern that it's not unlikely someone working on the code will change | to || without even realizing it. (Of course, "is" functions with side-effects are a code smell of their own...) –  user168715 Aug 25 '11 at 23:37

No, this is not a reasonable coding practice. Apart from ||'s short-circuit and ordering semantics, it performs a different operation than |.

|| yields 1 if either operand is non-zero, 0 if both are zero.

| yields the bitwise or of its operands.

As it happens, the truth value of the result is going to be the same (I realized this as I was typing this answer). But consider the corresponding && vs. & operators. This:

if (isFoo() && isBar())

will be true if and only if both functions return a non-zero value, but this:

if (isFoo() & isBar())

will be true if and only if the bitwise and of the results is non-zero. If isFoo() returns 1 and isBar() returns 2 (both true results), then isFoo & isBar() will be 0, or false.

Note that the is*() functions declared in <ctype.h> are only specified to return non-zero for true; they can and do return values other than 0 or 1.

If you really want to avoid the short-circuit behavior of ||, assign the results to temporaries:

bool is_foo = isFoo();
bool is_bar = isBar();
if (is_foo && is_bar) ...
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Downvoter: I welcome constructive criticism. –  Keith Thompson Aug 25 '11 at 23:56

We are talking straight C here so we must have something like

typedef int BOOL;
BOOL isFoo();
BOOL isBAr();

This is because ony C++ (and not C) has a boolean type.

Now when we evaluate isFoo() || isBar() the compiler knows that since we are using logical or if isFoo() returns true, the the whole statement will evaluate to true regardless of the value of isBar(), the compiler can therefore safely short circuit `isBar().

However when we evaluate isFoo() | isBar() we are effectively ORing two integers. The compiler has no way of knowing that isFoo() and isBar() can only return 0 or 1 and therefore will have to evaluate both expressions because even if isFoo() returns 1, the final result may be something different (like 3).

C++ does have a bool type and if isFoo() and isBar() return bools the compiler really does not have to evalueate isBar(). I am not an expert on the C++ specification but I imagine since bitwise operators do not make sense for bool types, the bools will be promoted to int and evaluated accordingly.

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The crux of the issue is that the compiler could infer the semantic meaning of the if statement which means that the result of the bitwise OR operation is only important for non-zero testing, so the actual result of the bitwise operation is inconsequential. As the other answers have stated, the compiler could then short-circuit the OR operation if the 2nd expression had no side-effects in either C or C++. –  Ross Rogers Aug 26 '11 at 0:26
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C has a boolean type: _Bool and <stdbool.h> have been a part of the language for 12 years. –  Stephen Canon Aug 26 '11 at 0:31
    
@doron: If K&R had wanted to, they could have defined the bitwise Boolean operators to have short-circuit behavior. If the left-hand operand of a bitwise 'or' returns an all-bits-set value, the result will be all-bits-set, regardless of the value of the right-hand operand. The reason the bitwise operators don't short-circuit is that the spec says they don't. Nothing more; nothing less. –  supercat Jan 23 '12 at 18:42

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