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In linux using gcc when I write a loop like this

while(1 || 0)

It enters the loop but when I write the loop like this

while(0 || 1)

it doesn't enter the loop. What is the differrence?

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2  
There is no difference and execution should enter the loop body. Can you share more of your code and/or compiler version used? –  Michael Foukarakis Aug 9 '11 at 10:39
    
In both cases it should run infinite loop... –  Amit Singh Tomar Aug 9 '11 at 10:40
    
2nd loop should enter on any standard C compiler. Show us the code how you are deciding that loop is not entered in 2nd case. –  taskinoor Aug 9 '11 at 10:41
    
Did you forgot break; in first cycle? ;-) ideone.com/vWsBa –  Petr Abdulin Aug 9 '11 at 10:41
    
In both cases it run infinite loop...its perfectly working. –  Mr.32 Aug 9 '11 at 10:56

5 Answers 5

up vote 1 down vote accepted

Or you might be typing like

while(0||1);

Won't help you if you put ; after while loop

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There is no any difference. Execution should enter the loop in both expressions.

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There's no difference here. In this case. You're doing something else wrong.


But there's actually difference - in C/C++, there's Short-circuit evaluation . So, as this is not your real code, this could help you.

For example, if you have

while( f() || g() )
// ..

if f() return true, g() will never be executed, as the expression will be evaluated to true immediately. The same for &&:

while( f() && g() )
// ..

if f() return false, g() will never be executed, because the value of the expression will be false for sure (independent of what g() will return here.

Well, if f() returns true (for the last example), g() will be executed, to calculate the value of the expression. The same with ||, but then if f() returns false.

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In both cases it run infinite loop...its perfectly working ... there is no defference between them...

i think you are putting ; at the end of second while loop.. so remove that and see

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both code snippet have same behaviour. In both case condition will be true and will return infinite loop behaviour.

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