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I looked through a pile of the questions and couldn't see this, though I'm sure its on SO somewhere already. So I apologize and figure this will get closed, but hopefully someone will confirm my answer first!

Am I correct in thinking that:

while (--len > -1 && ptr = str[len])

Is well defined (not undefined!) behavior? The way I understand this is that && is a sequence point, and the way short-circuiting would work would mean that --len > -1 should be evaluated first, making the second part not happen if it's unsafe.

I wasn't sure if I was correct in this thought process though.

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Depends what the value of len is before this statement. What if it is 0 or greater. then ptr=str[len] would be evaluated. –  Sid Feb 28 '12 at 17:20
    
Yeah, good point. It's not a danger in my situation, but I didn't think about it in the first place which is bad. :) –  w00te Feb 28 '12 at 17:24
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5 Answers 5

up vote 5 down vote accepted

This is defined behaviour as && is a sequence point and the way you understand it is correct. From the linked Wikipedia page:

In C[2] and C++,[3] sequence points occur in the following places:

Between evaluation of the left and right operands of the && (logical AND), || (logical OR), and comma operators. For example, in the expression *p++ != 0 && *q++ != 0, all side effects of the sub-expression *p++ != 0 are completed before any attempt to access q.

This does not, however, ensure that the --len will not result in an index beyond the bounds of str. If str is a null-terminated str you could change to:

while (--len > -1 && len < strlen(str) && ptr = str[len])
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Very much appreciated :) –  w00te Feb 28 '12 at 18:16
    
@hmjd: I would avoid recomputing strlen at each run of the loop, it certainly is wasteful. If len is inferior to strlen(str) to begin with then decrementing it should not change that fact. Of course, this assumes str itself does not move, which seems the case here. –  Matthieu M. Feb 28 '12 at 18:16
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Yes, that is correct. The order is:

  1. len is decremented
  2. (new value of) len is compared to -1
  3. If (2) evaluated to true, ptr = str[len]
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Thanks for your quick answer ;) –  w00te Feb 28 '12 at 19:35
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You are right to think that ptr = str[len] is not executed if --len > -1 is false (it could be an undefined behavior is len is too big for the indexed array, I assume it isn't what you fear). --len could be an undefined behavior if len is INT_MIN beforehand (again not probable if len is initialized sanely) as overflow of signed arithmetic is an undefined behavior.

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while (--len > -1 && ptr = str[len])

in example for len = 1 ( if len is int ) things goes like that:

1) len = len-1=0
2) ptr = str[0] 

2) is because of decrement of len if first part of if statement. is that what you wanted?

But behaviour is defned and first part will be checked first.

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This is actually OK. The key here is that you aren't writing to len more than once.

First you pre-decrement len. Then check if the decremented value of len is at least 0. Next, assign str[len] (using the decremented len) into ptr. Finally check if ptr is non-null, and if so execute the while loop statements.

Note that if len is unsigned -1 will get promoted to unsigned and the loop will pretty much assuredly fail the first iteration. Additionally even if len is signed if it has the minimum int value (std::numeric_limits<int>::min()) decrementing that is unspecified.

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The key here is that you aren't writing to len more than once. This is not necessarily the issue. map[++i] = i only writes to i once, and yet is undefined. –  Matthieu M. Feb 28 '12 at 18:18
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