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Why does the following given expression invoke undefined behavior?

int i = 5;
i = (i,i++,i) + 1 

My question is influenced by Als' question here

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does this question add anything to the discussion? –  KevinDTimm Nov 5 '10 at 11:42
    
What is meant by undefined behavior. –  Shamim Hafiz Nov 5 '10 at 11:42
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Just out of curiosity: What does (i,i++,i) even mean? Is this a list? –  sleske Nov 5 '10 at 11:43
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@McCoy : The behaviour is well defined. –  Prasoon Saurav Nov 5 '10 at 11:48
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3 Answers

up vote 10 down vote accepted

It isn't undefined.

Answered here for C, Sequence points and partial order

I think the same applies in C++ (and here's my response before I saw that link):

The comma operator introduces a sequence point (and constrains to some extent the order in which the expression must be evaluated - left before right), so:

  • the two modifications of i are separated by a sequence point (the second comma).
  • the modification of i in i++ is separated from everything else by sequence points.
  • the modification of i by = is not separated from the last occurrence of i in the expression, but that's OK because we're allowed to access i and modify it without an intervening sequence point, provided that the access is "to determine the value to be stored" (5/4).
  • As Als says, in practice it wouldn't matter whether that code has defined behavior or not provided that everyone had the basic common sense not to write it ;-)
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Considering only the fact that , is a sequence point, yes. Unfortunately the standard is very careful about this: Note that some aspects of sequencing in the abstract machine are unspecified; the preceding restriction upon side effects applies to that particular execution sequence in which the actual code is generated. –  Let_Me_Be Nov 5 '10 at 11:55
    
I wanted to answer but I didn't. [Yet another undefined behaviour question] ;-) –  Prasoon Saurav Nov 5 '10 at 11:56
    
@Let_Me_Be: I confess I don't understand that footnote. What does it mean for "actual code" to be generated "in an execution sequence"? –  Steve Jessop Nov 5 '10 at 12:04
    
@Let_Me_Be: oh, I think I get it. The implementation has a choice of legal execution sequences for an expression, and which one it chooses is unspecified. The restrictions on side-effects mention terms like "previous" and "subsequent", and those terms are to be understood with respect to the order actually chosen. Right? So here we rely on two facts (1) that the side-effects are complete, and (2) that the comma operator specifies the order of execution of its operands (5.18/1: "All side effects [on the left] are performed before the evaluation of the right expression.") –  Steve Jessop Nov 5 '10 at 12:17
    
Come to think of it, nothing explicitly states that the comma operator actually is a sequence point, only that all side effects on the left are complete. But the rules for expressions don't say you can modify twice if all side effects are complete, they say you can modify twice if there's a sequence point. However, the examples in 5/4 clearly treat comma as a sequence point, so I think we must conclude that it is one, on the basis that its semantics incorporate the semantics of a sequence point. –  Steve Jessop Nov 5 '10 at 12:22
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Because it isn't defined in the standard which of the post-increment or the assignment will take place first; it is left to the compiler implementation to decide their order.

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It is undefined in C++ to assign an incremented value to itself:

i = i++

What should i be after this? Should it be the previous value or one plus the previous value? The order of execution is left to the compiler, so different platforms will have different results.

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I'm pretty sure that i should remain unchanged after that. It's still technically undefined behavior because of the sequence point thing, but there's no way there could be some other result. –  Paul Manta Dec 3 '11 at 9:08
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