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struct BLA
{
    int size_;

    int size()const{ return size_; }
}

int x;
BLA b[ 2 ];
BLA * p = &b[ 0 ];

b[ 0 ].size_ = 4;
b[ 1 ].size_ = 6;

When I compile this line:

x = p->size_ + (p++)->size_;

I receive the expected result. But, when I compile this line (without the previous one):

x = p->size() + (p++)->size();

Then I get different result. The 'p' is not incremented at the same time as in the previous line. Can someone explain this, please? Tried on VS 2008 and VS 2010.

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Would you post the result in the first and the second case, too? –  Lyubomir Vasilev Oct 22 '12 at 10:03
1  
It's UB. Something very like tricky question about "what is result of ++i++?" –  keltar Oct 22 '12 at 10:03
    
@Lyubomir, first case 8, seconds case 10. –  user1764961 Oct 22 '12 at 10:17

2 Answers 2

up vote 5 down vote accepted

It's undefined behaviour to seperately read and modify a variable without an intervening sequence point. You've seen a good example of the consequences of that.

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Upon my compilation of your code, x is 8 in both of my cases. Both separately used, and combined used. I'd like to note that using p++ is considered undefined behavior, and the line in which it warns me is that line.

However, the compiler warns me that warning: operation on 'p' may be undefined.

Edit: I'd like to note proper pointer arithmetic would be: x = p->size_ + (p+1)->size_; in this situation.

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