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int x = 15 ;
printf ( "\n%d \t %d \t %d", x != 15, x = 20, x < 30 ) ;

The output of the code is 1 20 1 but I assume it should be 0 20 1 since 15 == 15...

I am facing a problem with the "x != 15" part

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1  
It should be x==20 not x=20. This causes your x variable to change from 15 and actually make that answer make sense. – Florin Stingaciu Jun 7 '12 at 20:37
1  
Your 3rd argument to printf is x = 20, which assigns x to 20. C makes no guarantee as to the order the arguments are evaluated, so x = 20 could be evaluated before x != 15. – vcsjones Jun 7 '12 at 20:44
up vote 5 down vote accepted

In my experience, most lists of arguments are processed from the right to the left under most C / C++ compilers, even though the specification makes no statement about the required order of evaluation.

With such an understanding of how many compilers work, your list of arguments would be evaluated like so

printf ( "\n%d \t %d \t %d", x != 15, x = 20, x < 30 ) ;

evaluates (possibly) in the order of

x < 30  => 1
x = 20 (assigns x to 20, returning 20) => 20
x != 15 => 1 (because x is now 20)

If this evaluation order holds for your compiler, then rearranging the arguments like so

printf ( "\n%d \t %d \t %d", x < 30, x = 20, x != 15 ) ;

should yeild

1 20 0

because the comparison x != 15 will occur before x is reassigned to 20.

The lesson of this exercise is to generally avoid assignments in list constructs (things that look like "a, b, c, d") or at least not to read assigned variables within the same list construct, as you cannot be assured of right to left or left to right evaluation (it's compiler dependent).

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To be blunt, the behavior is undefined, and the results will vary from compiler to compiler. – John Bode Jun 7 '12 at 22:01
    
@JohnBode I thought I made that clear, but most compilers being implemented using LR type parsers lead to efficient (and therefore selected) right to left list handling. If it wasn't clear that order of evaluation could not be assured, thank you for making it even more apparent. – Edwin Buck Jun 7 '12 at 22:52

You're assigning a new value to x with x = 20.

You can't assume any specific order to these operations in the argument list to a function call.

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I don't think he intended that at all. It doesn't look like he was surprised by the 20 in the output. I think he's only surprised that x != 15 is evaluated after the assignment. – sepp2k Jun 7 '12 at 20:38
    
@sepp2k so it is, I read the question and the expected output more carefully and edited my answer. Thanks. – pb2q Jun 7 '12 at 20:39

Your code suffers from unspecified behaviour: the order in which the expressions are executed is not mandated by the Standard to be left-to-right. Try this instead

int x = 15 ;
int result1 = (x != 15);
int result2 = (x = 20);
int result3 = (x < 30);
printf ( "\n%d \t %d \t %d", result1, result2, result3 ) ;
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