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We found this is some vendor written code and we're trying to figure out why they'd do this.

bool tmp = false;

if (somecase)
   tmp = true;

if (someOtherCase)
   tmp |= true;   
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17  
Is the right side really a constant true? Using |= on bools is perfectly reasonable, using |= true rarely is. –  CodesInChaos Mar 28 '12 at 14:43
3  
You are aware that even msdn lists a boolean and the |= operators in its example... –  Brad Christie Mar 28 '12 at 14:44
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10 Answers

up vote 68 down vote accepted

For no good reason at all. A boolean value |= true will always be true. This is someone trying to be fancy, or forgetting boolean logic =)

Change it to tmp = true;.

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Thank you after a few test programs I came to that conclusion.. which is why I asked.. can't be to safe. –  carny666 Mar 28 '12 at 14:46
7  
@code4life: false | true is still true... Are you forgetting your boolean logic, too? –  Daniel Hilgarth Mar 28 '12 at 14:47
1  
@code4life: OK, what if it was? Then what is its state after "tmp |= true;"? –  Eric Lippert Mar 28 '12 at 14:47
12  
tmp |= someOtherCase; would make more sense. Perhaps it started that way and was carelessly converted to the more complex form with an if. –  phkahler Mar 28 '12 at 16:58
2  
|= false is also useless: It's a no-op. –  dan04 Mar 29 '12 at 3:23
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Perhaps one of the boolean literals used to be a variable, and they just didn't think to change the operator when they changed the operand. Obviously the logic is equivalent.

More likely, they were thinking that in the second case, they want to retain the result of evaluating the first "if" condition. Of course, that's false reasoning.

A simpler equivalent statement:

bool tmp = somecase | someOtherCase;

EDIT

As pickypg notes, this statement could be confusing, since most people don't expect | with boolean values, and many won't notice it, or won't think about the implications for side effects. The best way to be explicit (if indeed there are side effects) would be minitech's solution: just change the |= to =.

Or, if there are no side effects to the someOtherCase expression, use Jakub Konecki's solution : someCase || someOtherCase.

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That's what we thought.. or maybe a lucky type-o. –  carny666 Mar 28 '12 at 14:48
1  
I suspect that was the original code, but even that should be converted to bool tmp = somecase || someOtherCase; to let short circuiting do its job. If you want the side effects, then chances are you're destroying readability by one-lining the code, particularly by implicitly associating the two methods that can only be loosely associated at that point (as the first is not preventing the second by "failing" or whatever false represents). –  pickypg Sep 7 '12 at 18:58
    
@pickypg I agree that one-lining the code with | decreases readability. There's also a huge chance that someone will "correct" the | to || at some point. Both of these are true because using | with boolean values isn't really idiomatic C#. I find that a shame, but there's not much to be done about it. –  phoog Dec 5 '12 at 14:42
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Interesting - that looks like it's doing the equivalent:

tmp = tmp | true;

Which will always set tmp to true.

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foo |= true is a short version of foo = foo | true.

The actual code can be rewritten as

bool tmp = false;
tmp |= someCase;
tmp |= someOtherCase;

Or even better as

someCase || someOtherCase
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4  
Small quibble: If someOtherCase has side effects, someCase | someOtherCase would preserve them, while someCase || someOtherCase would not. –  phoog Mar 28 '12 at 14:50
    
@phoog - good point. –  Jakub Konecki Mar 28 '12 at 14:51
2  
someCase | someOtherCase –  phkahler Mar 28 '12 at 17:00
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Like the other op= operators, x |= y is equivalent (except for multiple-evaluation side effects) to x = x | y. This is a terse way of writing if (!x) x = y; or if (y) x = true;.

However, it doesn't make any sense to have a constant on the right-hand side.

  • x |= true is more straightforwardly written as x = true
  • x |= false leaves x unchanged.

why they'd do this.

Some possible explanations are:

  • It's a typo: They meant to write tmp = true; instead of tmp |= true;, but never noticed it because their program happened to work as expected.
  • The RHS was originally a variable, which was replaced with the constant true without otherwise changing the code.
  • tmp was originally a bitfield (for which |= makes more sense), which was later reduced to a single bit.
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The ultimate result will be "If any of the cases is true, the result will be true." There is no reason that you have to use the operator though, since the || in an if would work just as well.

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2  
If someOtherCase has side effects, you'd need to use | rather than || to preserve them. –  phoog Mar 28 '12 at 14:53
    
@phoog: Good point. –  Kendall Frey Mar 28 '12 at 19:26
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A clever compiler could avoid the assignment in this case, though it probably wouldn't as it shouldn't short-circuit a bitwise operation. In any event, it seems like a micro-optimization. In reality I suspect it's a hold-over pattern the author has from using bit flags (or s/he just doesn't understand how it works). It would be better as:

bool tmp = somecase || someOthercase;

(and then inline the temporary if you only use it once)

Note that, when using flags, it does make sense.

#define CONDITION_ONE 0x01
#define CONDITION_TWO 0x02

int temp = 0;
if (somecase) {
   temp = CONDITION_ONE;
}

if (someOthercase) {
   temp |= CONDITION_TWO;
}
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This does not preserve side effects of someOtherCase, if there are any to be preserved. –  phoog Mar 28 '12 at 14:51
    
@phoog - that's true. if the cases are functions or otherwise contain statements, then using lazy evaluation wouldn't be the same and they shouldn't be combined. –  tvanfosson Mar 28 '12 at 14:53
    
You could combine them with the | operator. –  phoog Mar 28 '12 at 14:55
1  
@phoog that would be the purest sort of evil. IMO, depending on the reader to distinguish between bitwise OR and logical OR to determine the evaluation of a statement (on booleans) is the worst sort of coding magic. I'd rather split the condition and evaluate in two statements to make it clear what the expectations are. I've long used the rule that you only use logical operators on boolean variables. –  tvanfosson Mar 28 '12 at 14:58
    
I agree with you; the subtle difference between the two operators makes it far too easy to misread one for the other. Your terminology doesn't agree with Microsoft's, however; they classify both operators as logical, and make a distinction between bitwise logic and boolean logic: msdn.microsoft.com/en-us/library/6a71f45d(v=vs.100).aspx –  phoog Mar 28 '12 at 15:15
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Its an expression using the |= assignment operator. Check MSDN

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Yeah I looked and understood it just didn't make sense where they used it in the code I had. –  carny666 Mar 28 '12 at 14:49
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for bools not so much

however for bitflags this can allow code like this:

int flags=0;
flags|=READ;
//flags|=UPDATE;
foo(arg,flags);

this allows some flags to be easily commented out (and makes the used flags a tad more readable IMO)

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This is equivalent to

tmp = tmp | true;

EDIT: Which is equal to

tmp = true;

I concur with the rest of the posters here...!

More information here

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