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I am porting a C++ utility to C#. When I run the following statement in C++, I get the correct operation. When I run the same statement in C#, however...

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Does anyone know why 'begin++' is executed? The crazy thing is that if I run (i % 2) == 0 with i=0, the Immediate Window returns true.

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4  
Is this even defined behavior in C++? –  CodesInChaos Nov 20 '11 at 22:18
8  
If this doesn't persuade you to stop writing code like that I don't know what will. –  David Heffernan Nov 20 '11 at 22:28
2  
@SimpleCoder - I think we're seeing 2 steps in C# –  Henk Holterman Nov 20 '11 at 22:30
4  
@CodeInChaos: No, it's not defined behavior in C++, since i++ is both incremented and read between sequence points. –  Ben Voigt Nov 20 '11 at 22:31
9  
You get "correct" behaviour entirely by accident in C++; there is no "correct" behaviour in C++. Or, rather, every behaviour is correct. In C# there is only one correct behaviour, and you're getting it, I assure you. If you expect different behaviour, it is your expectations that are incorrect, so my recommendation is to start expecting the correct behaviour in C#, and stop relying on implementation details in C++. –  Eric Lippert Nov 21 '11 at 6:17

3 Answers 3

up vote 12 down vote accepted

Operator precedence is irrelevant in this question. It's evaluation order that causes this behavior.

In C# i++ is evaluated before i % 2 since it's on the left side. Thus i % 2 is false and the right side of the if gets evaluated.

First you use precedence to get the syntax tree:

=
  buffer[i++]
  if i % 2
    then temp[end--]
    else temp[begin++]

On each node you evaluate the children from left to right. This implies that i++ is evaluated before i % 2.

Eric Lippert has plenty of posts on this, both here on SO, and on his blog:

Personally I'd avoid such code. It's much nicer to split it into multiple expressions, or even use a plain if statement instead of ? :


In C++ accessing a variable that was written to without a sequence point in between is undefined behavior. I think = is no sequence point, so I guess your expression is undefined in C++ and just happened to work.

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1  
Building on that, you could change it to be buffer[i] = (i++ % 2) == 0 ? temp[end--] : temp[begin++]; –  Rob Nov 20 '11 at 22:24
3  
@Rob while that would work, it's still horrible code. –  CodesInChaos Nov 20 '11 at 22:26
    
Ah I see, thanks for the explanation (and the link). –  tlg Nov 20 '11 at 22:27
    
@Rob: buffer[i] = i++ is still undefined behavior due to lack of sequence points. –  FredOverflow Nov 20 '11 at 22:43
1  
@FredOverflow: I think he meant that would fix the problem in C#, although not in C++. –  Ben Voigt Nov 20 '11 at 22:45

I don't know, but why don't you just make your intentions clear?

if(i % 2 == 0) {
    buffer[i] = temp[end--];
} else {
    buffer[i] = temp[begin++];
}

i++;
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I'd even put the i++ after the if. And that higher operator precedence means earlier execution is a common myth. –  CodesInChaos Nov 20 '11 at 22:34
    
I think I'd introduce a temp and avoid writing buffer[i++] twice. But yes, this is the right way to handle this. In fact I have no problems writing increments on separate lines, no arguments when done that way. –  David Heffernan Nov 20 '11 at 22:35
    
@CodeInChaos: You're right, post edited. –  minitech Nov 20 '11 at 22:37

Are you sure that begin < end is correct? You will miss one element at the end, if I'm not mistaken.

Here is how I would write it in C++:

for (; begin <= end; ++i)
{
    buffer[i] = temp[(i & 1) == 0 ? end-- : begin++];
}

But if you think about it, the conditional inside the loop really isn't necessary, because it flip-flops with every iteration. It would be more efficient to simply have two copy operations inside the loop:

while (begin < end)
{
    buffer[i++] = temp[end--];
    buffer[i++] = temp[begin++];
}
if (begin == end)
{
    buffer[i++] = temp[end--];
}

I changed the loop condition back to < and added an if in case there is an odd number of elements.

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