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Does this result in undefined behaviour because the order of evaluation will be unspecified?

int i = 0, j = 0, k = 0;
int result = i++ + ++j + k++;
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The order of evaluation is fairly clear here. Pre and post increment happen without problem. –  Diego Sevilla Sep 16 '11 at 20:17
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@Diego: No, it's not. –  Lightness Races in Orbit Sep 16 '11 at 20:19
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@Diego: Yep, exactly. –  Lightness Races in Orbit Sep 16 '11 at 20:22
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@Oli Your question is a duplicate as well :P programmers.stackexchange.com/questions/16135 - but in this case the question is actually different as it's different variables, not the same. –  Michael Stum Sep 16 '11 at 20:22
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I am 99.999% certain that this question is about to get closed as a dup of something that it's not a dup of. –  Lightness Races in Orbit Sep 16 '11 at 20:23
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8 Answers

up vote 5 down vote accepted

No, the result of the evaluation doesn't depend on the unspecified order of evaluation of the sub-expressions.

Undefined behavior only occurs in this situation if two side effects that affect the same object are unsequenced relative to each other or a side effect and a value computation of the same object are unsequenced. The side-effect and value computation of both prefix and postfix increment are explicitly sequenced.

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The order of evaluation is unspecified, but who cares? Each operand acts on a completely distinct object. Nothing undefined here.

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I am still in the camp of "who cares". This kind of question is completely meaningless (apart from the academic exercise) as code such as this will not get past code review. –  Loki Astari Sep 16 '11 at 20:40
    
@Tux-D: There's an "understanding" element. –  Lightness Races in Orbit Sep 16 '11 at 20:42
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No, the behavior is perfectly well-defined: j is incremented, then addition is performed, then i and k are incremented. The only thing that is unspecified is the order in which the increments on i and k are performed. The postcondition is i==1, j==1, k==1, result==1.

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No, that sequence isn't guaranteed, the compiler is perfectly free to generate t1 = i+1; result = t1 + j + k; ++j; ++k; i = t1; There's only the one sequence point, at the end of the expression. –  Ben Voigt Sep 16 '11 at 20:24
    
Arrgh, swap i with j in my earlier comment. My point stands though. –  Ben Voigt Sep 16 '11 at 20:41
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The rule is that the results are unspecified if you modify a variable more than once. You haven't done that in your example.

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Not just unspecified (the compiler does not need to document which of the allowed behaviours is selected), the result is undefined (there is no limit on the possible allowed behaviours). –  curiousguy Nov 2 '11 at 21:27
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It's fine here because you don't use the same variable twice.

What you have is equivalent to:

int i = 0, j = 0, k = 0;
++j;
int result = i + j + k;
++i;
++k;

If you were to have instead int result = i++ + ++i + i++; then you'd have a problem because the order of the increments is unspecified, and you depend on that order.

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Strictly speaking, that's not the case. The evaluation order is not specified. Yes, j's new value will go into the expression, and i and k's old values, but aside from that... –  Lightness Races in Orbit Sep 16 '11 at 20:20
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No, it's not equivalent. The original has a lot fewer sequence points. –  Ben Voigt Sep 16 '11 at 20:20
    
I didn't say it was identical. It is equivalent, i.e. it has the same end result. –  Peter Alexander Sep 16 '11 at 20:21
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@Peter: It may have different behavior, when observed from another thread (or signal handler, etc). The order in which the results become visible is completely unspecified. –  Ben Voigt Sep 16 '11 at 20:26
    
@Ben Voigt: How do you plan on observing local variables from another thread? –  Peter Alexander Sep 16 '11 at 20:32
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Here result will be always 1. The values of j, k, and i will be all 1. Also, note that separator for several variable declaration is ,, and not ;:

int i=0, j=0, k=0;
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And, more importantly, you won't open a black hole by executing this program... which is what the question is really about. –  Lightness Races in Orbit Sep 16 '11 at 20:22
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No, it's a classic/well known c++ sequence point issue, see link here for much more detail http://en.wikipedia.org/wiki/Sequence_point

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Here:

int result = i++ + ++j + k++;

Is Equivalent too:

<SP>
(a1)int t1 = i;     // i++ part one: The result of post-increment is the original value
(a2)     i = i + 1; // i++ part two: the increment part separated from the result
(b1)     j = j + 1;
(b2)int t2 = j;     // The result of pre-increment is the new value
(c1)int t3 = k;     // k++ part one: The result of post-increment is the original value
(c2)     k = k + 1;
(d) int t4 = t1 + t2;
(e) int t5 = t3 + t4;    
(f) int result = t5;
<SP>

The constraints are:

(a1) is before (a2)
(a1) is before (d)
(b1) is before (b2)
(b2) is before (d) 
(c1) is before (c2)
(c1) is before (e)
(d)  is before (e)
(e)  is before (f)

As long as the above constraints are maintained the instructions can be re-ordered as much as the compiler likes. But the constraints guarantee that the result is well formed.

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