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In pure ANSI C (C89), I have the following.

unsigned y=<smallnumber>,x=y+3;
printf("%<whatgoeshere>\n",x-y);

What do I put after the % to be absolutely sure it will print 3? I can see arguments for both %u (result is unsigned if both operands are) and %d (integral expressions are converted to int when passing arguments to printf) here.

Of course both work on any reasonable compiler, which is exactly why I ask here. :-) I have a feeling only one is really correct accordung to standard (but even that could be wrong).

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2 Answers 2

up vote 5 down vote accepted

Unsigned. Use %u. When performing default promotions on integral expressions (because of printf() being a variadic function), unsigned to signed conversion does not happen.

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Specifically, unsigned int is not promoted to signed int. unsigned char or unsigned short will be, but only if their ranges are subranges of unsigned int's range. –  Keith Thompson Jun 1 '13 at 22:47
    
@H2CO3 "unsigned to signed conversion does not happen" - Are you sure? Just checked in Visual Studio with %d and x=y-3. I see -3 in console –  kotlomoy Jun 1 '13 at 23:22
    
@KeithThompson Yes, that's precise. –  user529758 Jun 2 '13 at 5:30
1  
@kotlomoy Wrong - you're confusing the behavior of a conversion specifier on a mismatching type (which causes undefined behavior, by the way) with what actually happens. Try printf("%d\n", (unsigned)-1); - it will most likely print -1, although you've cast your input to unsigned. –  user529758 Jun 2 '13 at 5:31
    
@H2CO3 "it will most likely print -1" - this is what I'm talking about. Unsigned (unsigned)-1 was converted to signed -1. I fail to see how there's no conversion here. –  kotlomoy Jun 2 '13 at 10:37

This way

printf( "%d\n", (int)(x-y) );

It works for x < y, unlike %u.

Though it doesn't work if result of x-y is out of range of signed int.

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