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I have two variables:

unsigned short a,b;

/* When I compare them with a magic number like this */ 

if (a > 8U) /* all fine*/

/* But when I make the following comparison: */ 

if ((a-b) > 8U) /* warning: comparison between signed and unsigned*/

/* And when I make the following comparison: */ 

if ((a-b) > ((unsigned char)8U)) /* all fine again */

Do you have any ideas why I get the warning ? Does this have anything to do with integer promotion maybe?

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the warning is a perfect description of what you're doing... –  Karoly Horvath Mar 21 '12 at 8:52
    
I understood what the warning is about, but the reason eluded me (everything in the statement had unsigned types) –  Mircea Ionica Mar 21 '12 at 9:00

2 Answers 2

up vote 3 down vote accepted

In this expression a-b, integer promotions will apply which mean that a and b are likely to be promoted to int and the result of the expression will also be int which is why you get the warning when comparing against 8U which has type unsigned int.

The promotion would only be to unsinged int rather than int if int couldn't hold all the values of unsigned short which would only happen on platforms where int was the same size as short.

When comparing against (unsigned char)8U, the unsigned char will also be promoted to int which is why the warning doesn't happen in this case.

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But this is what puzzles me : why the cast to 'unsigned char' will result in an 'int' ? –  Mircea Ionica Mar 21 '12 at 8:58
    
@cilica: because an unsigned char will be promoted to an int whereas 8U - which is already an unsigned int - isn't changed by integer promotions. –  Charles Bailey Mar 21 '12 at 9:02

(a-b) doesn't guarantee it's unsigned since b can be bigger than a.

That's why you are getting the warning

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Not true. The type of the expression is not related to the actual values. If a and b where unsigned int then the difference would be also unsigned int. The real reason is because of integer promotion (see the correct answer by Charles Bailey). –  rodrigo Mar 21 '12 at 9:13

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