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Unexpected order of evaluation (compiler bug?)

I couldn't predict the output for this program :

#include<iostream>
using namespace std;

int *p(int *a)
{
    (*a)++;
    return a;
}
int main()
{
    int i=0;

    cout<<i++<<" "<<(*p(&i))++<<" "<<i++<<" "<<i<<endl;
    return 0;
}

When compiled in vs2008, it outputs 3 2 0 4. Can anybody explain why it's not 0 2 3 4 ?

Note: It works great if there is no function call to p.

Thanks in advance!

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marked as duplicate by Oliver Charlesworth, R. Martinho Fernandes, David Heffernan, Mat, Cat Plus Plus Jan 2 '12 at 19:37

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

5  
Yes, the behaviour is undefined. The question you should be asking yourself is why you would want to write such code. The answer is that you don't. –  David Heffernan Jan 2 '12 at 19:16

2 Answers 2

up vote 4 down vote accepted

Undefined behaviour. Could do anything.

See this answer for a good explanation.

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3  
So cout << x << y could print y and then x?! –  atoMerz Jan 2 '12 at 19:17
    
isn't it something depends on priority ! and why it works ok when I don't call "p" ? –  Khaledvic Jan 2 '12 at 19:17
2  
AtoMerZ: no, because that is not undefined. @Khaledvic: "Could do anything" means it can also "work" (or appear to). –  R. Martinho Fernandes Jan 2 '12 at 19:18
    
@Khaledvic the order in which each thing between each << is undefined, but the order in which the operator<< calls occur, after everything between each << are all evaluated, is left to right. –  Seth Carnegie Jan 2 '12 at 19:27
1  
@AtoMerZ: Because your case isn't modifying any of the operands. –  Oliver Charlesworth Jan 2 '12 at 19:34

The point isn't cout's precedence, but the ++ operator.
This operator's side effect can take place any time between two sequence points, which means anywhere in the statemenet, in this case. The exact order it happens is, as @oli-charlesworth says, undefined.
cout's precedence is left to right, so the leftmost is printed first. But the value of each number depends on the behavior of ++.

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"cout's precedence is left to right" - this doesn't make any sense. cout is an object, not an operator. Also, sequence points are not really the problem here; the problem is that the sequence of evaluation of arguments to operator<< is unspecified. –  Oliver Charlesworth Jan 2 '12 at 19:58
    
Indeed, the << operator's precedence is left to right, not cout. And I do think sequence points matter here (just as it does in "i++ + i++"), though maybe order of evaluation is more basic. But my main point was that it isn't (as someone mistakenly understood from your answer) order of precedence. –  ugoren Jan 2 '12 at 21:30

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