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Which if statement is faster, with the following conditions. It seems the short-circuit will compile into more instructions then the non-short-circuit.

bool force = false;
bool _isLoadingActual = true;
bool _isLoadingLoadCore = true;

int a = 0, b = 0;

if (force | !(_isLoadingActual | _isLoadingLoadCore))
{
    a = 1;
}

if (force || !(_isLoadingActual || _isLoadingLoadCore))
{
    b = 1;
}
share|improve this question

closed as too localized by Kirk Broadhurst, JohnnyHK, Jim O'Neil, Daniel Hilgarth, Mario Sannum Feb 21 '13 at 8:08

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9  
Why don't you just test it? – Evan Trimboli Feb 21 '13 at 2:54
1  
@EvanTrimboli, Because I have a question and that is what stackoverflow.com is all about. – AMissico Feb 21 '13 at 2:55
2  
@AMissico If you ran the code you wouldn't have any questions. – Hunter McMillen Feb 21 '13 at 2:56
3  
@AMissico by measuring the time to do it 1000s of times. – kenny Feb 21 '13 at 3:02
2  
@AMissico The spirit of StackOverflow is not to do things you can't be bothered doing, it's about finding solutions to problems you can't find yourself. – TheEvilPenguin Feb 21 '13 at 3:28

Here's the fastest solution

a = 0;
b = 0;

Since you already know the boolean variables value.

No seriously.. The 2nd one is probably faster because it can short-circuit, that is if you did not hard code the first boolean to false! Otherwise, short circuiting seems like it must be faster.

share|improve this answer
    
If I'm not mistaken, a & b will equal 0... – Alastair Pitts Feb 21 '13 at 3:04
    
Yeah, my mistake, I realized the if-statements evaluate to false, but I mixed up the value he assigned.. sorta beside the point... but thanks I need to fix that – Alan Feb 21 '13 at 3:10
    
hehe, no probs. I thought I was going crazy for a second – Alastair Pitts Feb 21 '13 at 3:14

I think the faster is the second code.

if (force || !(_isLoadingActual || _isLoadingLoadCore))
{
    b = 1;
}

Because it's a Short circuit evaluation.

In above code, if force is true then the rest condition (!(_isLoadingActual || _isLoadingLoadCore)) not need to be checked.

share|improve this answer
1  
What about the conditional if, the compiler would have to generate for the short-circuit? – AMissico Feb 21 '13 at 3:01
    
See this answer for more info on "branch mis-prediction". Bottom line: If all three of those operands are already boolean values (and not methods that return booleans), the short circuiting evaluation is slower, because there are multiple branches (if(force) {} else { if (...) ...). – Daniel Hilgarth Feb 21 '13 at 7:47

Assuming your question is "which one of the | or || does short circuit":

  • || does short circuit - || Operator (C# Reference)

    If the first operand evaluates to false, the second operator determines whether the OR expression as a whole evaluates to true or false.

  • | does not short circuit - | Operator (C# Reference)

    For bool operands, | computes the logical OR of its operands; that is, the result is false if and only if both its operands are false.

So in pure theoretical sense code with || would be faster, also most likely you will not be able to measure impact of the difference in real code.

Note that two statements are not equivalent if computation of operands have side effects (not your case as you have bool variables already).

share|improve this answer
    
>>Assuming your question is "which one of the | or || does short circuit": << No. I have the bitwise operator on purpose. It seems performing the bitwise operation then the conditional would be faster than performing all the conditionals. – AMissico Feb 21 '13 at 3:09
3  
When used on two bools, | is not a bitwise operator, it's a non-short circuting boolean operator. – TheEvilPenguin Feb 21 '13 at 3:14
1  
@AMissico, there is no "bitwise or" defined for bool type in C# - check the link (also I've inlined main part) - it is not "bitwise OR" for bool, but rather "non-short-curcuit OR". – Alexei Levenkov Feb 21 '13 at 3:15
    
Isn't logical OR the same as bitwise for boolean values? – AMissico Feb 21 '13 at 3:19
1  
@AMissico, to the extent yes - assuming single bit values. But since it is not explicitly defined as "bitwise" compiler/JIT are free to use the same code as regular "OR" if find necessary. So the only real difference between your 2 statements is if second "OR" need to evaluate right argument for result. – Alexei Levenkov Feb 21 '13 at 3:25

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