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As the title says, is

y = x = x + 1;

undefined behavior in C?

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3 Answers

up vote 31 down vote accepted

Answer to your question
No.

What will happen
This will happen:

int x = 1; /* ASSUME THIS IS SO */
y = x = x + 1;

/* Results: */
y == 2;
x == 2;

How it compiles
The same as:

x += 1;
y = x;

Why this is not undefined
Because you are not writing x in the same expression you read it. You just set it to itself + 1, then assign y to the value of x.

Your future
If you find the code confusing you can use parentheses for readability:

y = x = (x + 1);
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1  
Just for your info, muntoo, as the "return value" of assignment is it's own value, you can also use it for other things, like if ( 1 == x = 1 ), which is a pretty common bug and the reason, developers prefer to write 1 == x instead of x == 1 (because you can't assign x to 1). –  anroesti Feb 5 '11 at 23:02
32  
The only developers I know who write things like 1 == x are ones I would not work with... –  R.. Feb 5 '11 at 23:21
18  
@andre: No, "developers" don't prefer to write that. It's gross, unclean, and useless; just join the last decade and turn on your compiler warnings. –  GManNickG Feb 5 '11 at 23:43
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No, your expression is properly defined. You probably were looking for y = x = x++;, which is not.

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Wouldn't y = x = x++; be equal to y = x = x; x += 1;? Why wouldn't that be properly defined? –  rzetterberg Jul 10 '11 at 8:37
    
Or would it be equivalent to y = x = x + 1; x += 1;, or to y = x + 1 = x; x += 1;? –  Nikolai N Fetissov Jul 10 '11 at 12:57
    
I was asking because I wasn't sure and I wanted to know why x + 1 was ok, but x++ wasn't. –  rzetterberg Jul 10 '11 at 13:16
1  
That example statement is supposed to change the value of x twice. The problem is that the C++ language does not tell in what order that would happen. –  Nikolai N Fetissov Jul 10 '11 at 16:16
    
Thanks for clarifying! Is this true for C also? –  rzetterberg Jul 10 '11 at 17:00
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No. You only modify x once, and due to the right-associativity of = that assignment happens before the assignment to y. Even if it did happen after, there's still only one modification of x. Your statement is as legal as y = ++x.

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