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I recently learned about the , operator and the fact that it introduces a sequence point.

I also learned that the following code led to undefined behavior:

i = ++i;

Because i was modified twice between two sequence points.

But what about the following codes ?

i = 0, ++i;
i = (0, ++i);

While I know the rules, I can't get to a conclusion. So is it defined behavior or not ?

edit: Just as @paxdiablo mentions, defined or not, this is really a bad practice which should be avoided. This question is asked solely for educational purposes and better understanding of the "rules".

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21  
I don't know why people keep asking questions like this. It doesn't matter whether it's undefined, it's crappy code. You should never use it, defined or otherwise. –  paxdiablo Oct 18 '10 at 12:12
10  
@paxdiablo: Do you really think I'd use such a useless statement in real code ?! It's only about understanding the rules better. Nothing more. –  ereOn Oct 18 '10 at 12:14
    
@ereOn it's good to learn the rules, that's true. But after a while experience usually leads coders to avoid any constructs that are not well-defined and in common use across all platforms. –  PP. Oct 18 '10 at 12:23
8  
@paxdiablo: In Maths you never try divide by zero. Half of Analysis is based around the behaviour of just that though, since it helps you understand how numbers work better. It's a good thing to question why you shouldn't do things, and what happens when you do, you learn about a lot more than just that single behaviour. –  AaronM Oct 18 '10 at 13:43
1  
@AaronM: Analyzing consequences is one thing, tossing some Is, plusses, and punctuation before a question mark is another. I'd swear I've seen ~15 variations on this topic by now, with very little or no analysis from the OP each time. –  Roger Pate Oct 19 '10 at 7:37

2 Answers 2

up vote 27 down vote accepted

Yes. = has higher precedence than ,, so this expression is equivalent to (i = 0), ++i. , is a sequence point, so it's guaranteed that the ++i occurs after the assignment.

I'm not sure whether i = (0, ++i) is defined though. My guess would be no; there's no sequence point between the increment and the assignment.

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I came up to the same intuition but the fact I can't be sure bothers me a lot. Thanks. –  ereOn Oct 18 '10 at 12:08
    
@ereOn: My intuition is that because the standard doesn't guarantee it, it's undefined. –  Oliver Charlesworth Oct 18 '10 at 12:14
4  
Sequence points are always between evaluations, and sequence the side effects caused by them. There is a sequence point between "0" and "++i". But not between the assignment and the increment, as @Oli pointed out. For examples like i = (0, ++i, 0), I don't think the C++03 Standard is clear about. I think you could make a point for it to be defined, but I will never rely on it: To me it is just undefined aswell. –  Johannes Schaub - litb Oct 18 '10 at 12:18
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@codymanix: Parentheses force operator binding, they don't provide a sequence point. –  Oliver Charlesworth Oct 18 '10 at 12:56
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@codymanix: Just in the same way that the parentheses don't make i = (++i) defined. –  Oliver Charlesworth Oct 19 '10 at 14:28
i = 0, ++i;

As the other answer pointed out it is not Undefined Behaviour.

i = (0, ++i);

The behaviour is undefined in this case because there is no sequence point between ++i and assignment to i.

i = (0, ++i, 0)

The behaviour is well defined1 in C++03, IMHO.

1 See extended discussion for a similar expression.

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1  
+1. Simple and correct. –  Nawaz Nov 18 '11 at 14:26

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