Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This is a question relating the c99 standard and concerns integer promotions and bitwise negations of unsigned char.

In section 6.5.3.3 it states that:

The integer promotions are performed on the operand, and the result has the promoted type. If the promoted type is an unsigned type, the expression ~E is equivalent to the maximum value representable in that type minus E.

Am I understanding that correctly when I say that, that means that:

unsigned int ui = ~ (unsigned char) ~0; // ui is now 0xFF00.

My confusion stems from a discussion with a collegue where he is seeing the following behaviour in our compiler.

unsigned char uc = 0;
unsigned char ucInverted = ~0;

if( ~uc == ~0 )              // True, obviously
if( ~ucInverted == ~(~0) )   // False as it evaluates to: 0xFF00 == 0x0000
if( ~uc == ucInverted )      // False as it evaluates to: 0xFFFF == 0x00FF
if( uc == ~ucInverted )      // False as it evaluates to: 0x0000 == 0xFF00

This behaviour is confirmed with gcc.

Is it possible to get proper expected char comparisons where each of these cases will evaluate to true?

share|improve this question
    
Read in this answer If ~0 is a trap representation, then the behavior is undefined. –  Grijesh Chauhan Sep 23 '13 at 10:44
    
@GrijeshChauhan: These are unsigned, the trap representation in this case is irrelevant. see also footnote 53 in 6.2.6.2 linked from the linked answer. –  Hasturkun Sep 23 '13 at 10:55
2  
@Hasturkun: ~0 is not unsigned... –  Oliver Charlesworth Sep 23 '13 at 10:56
    
@OliCharlesworth: True. As far as I understand though, still not an issue as there's wording stating that "no arithmetic operation on valid values can generate a trap representation other than as part of an exceptional condition such as an overflow." for signed types as well. –  Hasturkun Sep 23 '13 at 14:06

1 Answer 1

up vote 2 down vote accepted

~uc is of type int (value 0xFFFF). ucInverted is of type unsigned char (value 0xFF), which is then promoted to int (value 0x00FF). Thus they are not equal.

I guess you could do if ((unsigned char)~uc == ucInverted). Both operands will still undergo promotion, but they will have identical values before the promotion.

share|improve this answer
    
It just seems completely illogical to me that you must cast an unsigned char back to unsigned char in order to properly compare it to an unsigned char. Or is that just me? –  Kenneth Sep 23 '13 at 10:56
    
@Kenneth: Once one accepts that ~ causes type promotion, the rest is entirely logical ;) –  Oliver Charlesworth Sep 23 '13 at 10:59
1  
~uc is likely of type signed int. –  Alexey Frunze Sep 23 '13 at 12:11
    
No, really promotions will be done (on almost all architectures) to signed int, and never to unsigned int. And then, also, this is not an answer to the question. –  Jens Gustedt Sep 23 '13 at 12:20
    
@JensGustedt: Yes, you're right, integer promotions favour signed wherever possible. Answer updated. (Although I'm not sure what you mean by "not an answer to the question"?) –  Oliver Charlesworth Sep 23 '13 at 13:57

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.