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int x = 0;
x^=x || x++ || ++x;

and the answer for x at last is 3. How to analysis this expression? little confused about this. Thanks a lot.

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See: stackoverflow.com/questions/1895922/… (question assumes knowledge of sequence points) and stackoverflow.com/questions/4445706/… (see accepted answer). Not exact duplicates, but this UB is "well covered" in SO. –  user166390 Jan 26 '11 at 22:43
    
See also Undefined Behavior and Sequence Points. It's from the "c++-faq" but still applies in general. –  user166390 Jan 26 '11 at 22:50

4 Answers 4

up vote 7 down vote accepted

This is undefined behaviour. The result could be anything. This is because there is no sequence point between the ++x and the x ^=, so there is no guarantee which will be "done" first.

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because what ? you mean x++ ,++x and so on...those order of calculation is not defined ,right? –  Josh Morrison Jan 26 '11 at 22:42
    
@Andy, in particular, across the ^=. –  Oliver Charlesworth Jan 26 '11 at 22:43
3  
It's not true that there are no sequence points: the || operator is always a sequence point. The only two modifications that cause UB are the last ++x and the x^=. –  aschepler Jan 26 '11 at 22:52
    
@aschleper: Yes, you're correct. My original answer was a little slap-dash; I'm going to clarify it now. –  Oliver Charlesworth Jan 26 '11 at 22:53

It's undefined behaviour - so you can get any answer you'd like.

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6  
Well, any answer your compiler would like. –  Oliver Charlesworth Jan 26 '11 at 22:42

As others have already noted, this is undefined behavior. But why?

When programming in C, there is an inherent difference between a statement and an expression. Expression evaluation should give you the same observable results in any case (e.g., (x + 5) + 2 is the same as x + (5 + 2)). Statements, on the other hand, are used for sequencing of side-effects, that is to say, will generally result in, say, writing to some memory location.

Considering the above, expressions are safe to "nest" into statements, whereas nesting statements into expressions isn't. By "safe" I mean "no surprising results".

In your example, we have

x^=x || x++ || ++x;

Which order should the evaluation go about? Since || operates on expressions, it shouldn't matter whether we go (x || x++) || ++x or x || (x++ || ++x) or even ++x || (x || x++). However, since x++ and ++x are statements (even though C allows them to be used as expressions), we cannot proceed by algebraic reasoning. So, you will need to express the order of operations explicitly, by writing multiple statements.

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XOR 0 with 0 is 0. Then ++ twice is equal to 2. Nevertheless, as pointed in other answers, there's no sequence point. So the output could be anything.

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-1: No. See other answers. –  Oliver Charlesworth Jan 26 '11 at 22:44
1  
xor 0 with 0 is actually 0. 0,0->0, 0,1->1, 1,0->1, 1,1->0. That's not a good start to an answer :-) –  paxdiablo Jan 26 '11 at 23:02
    
Fixed. Thanks for pointing it out. –  Ron Aug 13 at 15:41

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