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Could anyone explain these undefined behaviors (i = i++ + ++i , i = i++, etc…)

I can't understand who the following works:

#include <stdio.h>

int main(void)

{

     int i = 1;

     printf("%d %d\n", i, i++);
     printf("%d %d\n", i++, i);
     printf("%d %d\n", i, ++i);
     printf("%d %d\n", ++i, i);

     return 0;
}

I expected the following results.

1 1  \n
2 3  \n
3 4  \n
5 5  

However, the results are as follows.

2 1 \n
2 3 \n
4 4 \n
5 5

Why does this happen?

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marked as duplicate by Mat, Useless, Kerrek SB, J. Steen, Jens Gustedt Sep 21 '12 at 11:40

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.

    
The real duplicate is: stackoverflow.com/questions/2934904/… –  pmr Sep 21 '12 at 11:46

2 Answers 2

Because it's undefined behavior and anything can happen. You don't know which of the parameters to printf gets evaluated first.

Let's try to explain the first line:

int i = 1;
printf("%d %d\n", i, i++);

You expected 1 1. But, in reality, arguments are pushed on the argument stack from the right (at least on your compiler). So, i++ is evaluated first and its old value (1) pushed in the argument stack. Then, i is evaluated, but it was incremented, so it now is 2. Ergo, you get the 2 1.

Don't rely on this, it's still undefined.

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2  
I think it is bad practice to explain how UB behaves on any given machine, with a weensy tiny disclaimer that "it's still undefined" at the end. It gives the impression that it could still be relied upon somehow - leading to code that does rely on UB. If it's UB, don't do it, period - that's my answer to such questions. –  DevSolar Sep 21 '12 at 11:49
    
In a normal function call it would be UB because i is accesses twice without a sequence point in between, for other purposes than to determine the new value of i. But this is not an ordinary function call, it is a call to a variable argument list. I'm not entirely sure how a va list would be translated by the compiler, I think the standard enforces them to be implemented as macros? If so, it is quite an over-simplification to dismiss this as UB, because then it all depends on how those macros are implemented. –  Lundin Sep 21 '12 at 12:01
    
In addition, C11 7.21.6: "The formatted input/output functions shall behave as if there is a sequence point after the actions associated with each specifier." I am not sure whether this affects the evaluation of the va_list or not: if it does and there is a sequence point between them, then the code is not UB. –  Lundin Sep 21 '12 at 12:02
    
@Lundin: That would render your answer wrong, not my comment on how UB is handled. ;-) –  DevSolar Sep 21 '12 at 14:13
    
@DevSolar It is UB, I noted that, but I personally also like to know what's going on regardless. –  Luchian Grigore Sep 21 '12 at 14:15

It's basically undefined behaviour. The compiler is free to evaluate i and i++ in the following expression:

f(i, i++)

in any order.

The full reason is to do with sequence points, something hard to explain, so I'll point you to a list of referencese:

Undefined Behavior and Sequence Points

http://msdn.microsoft.com/en-us/library/d45c7a5d%28v=vs.80%29.aspx

http://en.wikipedia.org/wiki/Sequence_point

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The undefined behaviour has nothing to do with the order, that's just unspecified. The problem is that i is used twice. –  Bo Persson Sep 21 '12 at 17:25
    
@BoPersson: Yeah you're right - the wording in the answer above is unclear. –  sashang Sep 24 '12 at 7:29

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