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.

It is little bit weird. I just play with the unsigned char type and negative values. I have the following code.

 #include <stdio.h>  

 int main(int argc, char* agrv[]){  
   unsigned char c = -3;  
   printf("%d,%u,%d,%u\n",c,c,~c,~c);  
 }  

the output is,

253,253,-254,4294967042

I can not figure out the last 3 values. What does %d and %u really do?

Thanks.

share|improve this question

4 Answers 4

up vote 3 down vote accepted

The %d format prints out an int, and %u prints out an unsigned int. All arithmetic on unsigned char values is done by first casting them to int and doing the operations on int values, and so ~c (which is equal to -1 - (int)c) will return a negative int value. An explicit cast would be needed to get the unsigned char result before printing it out (and the call to printf would cast it back to int anyway).

share|improve this answer
    
Standard pedant's note: the C spec doesn't require that hardware use two's complement (which is why right shift on signed numbers may or may not be arithmetic), so ~c is equal to 1 - (int)c only in practise, on all shipping hardware. –  Tommy Feb 18 '11 at 18:25
    
Thanks for the quick answer. Could you explain "~c (which is equal to 1 - (int)c) " a little bit more? Why -254? Does the cast happen before the "~" operation? –  Hong Feb 18 '11 at 18:26
    
@Hong: There was a typo in the expression; it should be -1 - (int)c. The cast does happen before the ~ operation. The identity to start with is -x = (~x) + 1; you can rearrange that to get a definition of ~ in terms of -. This all assumes a two's-complement system. –  Jeremiah Willcock Feb 18 '11 at 18:30
    
Thanks! Now it makes perfect sense. –  Hong Feb 18 '11 at 18:43
    
@Hong The Standard requires (signed or unsigned) chars and shorts to be promoted to corresponding int type whenever they are used in expressions or passed as arguments. Since ~c is an expression, c must be promoted before the operator is applied. –  Jim Balter Feb 18 '11 at 23:06

c is 11 11 11 01 (2's complement) 1. when printed as signed integer(%d) it interprets 32 bits of c 00000000-00000000-00000000-11111101 which equal to decimal 253. 2. %u also prints same as above number (word) is positive.

~c is 1111111111-11111111-11111111-00000010

  1. When printed as %d its -254 (again 2'c complement)

  2. Above number when interpreted as unsigned (255*256^3 + 255 *256^2 + 255*256 + 2) its equal to 4294967042.

share|improve this answer

"%d" prints as a signed number, %u prints as an unsigned number.

char gets promoted to int when you pass it to printf. printf will typically take whatever value happens to be on the stack, and interpret it as the type you've specified with your format. On a typical machine (apparently including yours) that means it treats the bit pattern as two's complement.

share|improve this answer
    
The promotion happens before the ~ operator is applied. –  R.. Feb 18 '11 at 18:31

Well, I would not go till the printf(). I would rather stop at :

unsigned char c = -3; 

and question the purpose of such an initialization which is self cotradictory - using -3 to initialize an unsigned char. -3 is a signed integer. If sign magnitude / ones' complement / two's complement are used to represent this value, then -3 ( int ) requires more than 1 byte for representation. This value, when assigned to an unsigned char will cause an overflow which produces undefined behavior.

share|improve this answer
    
Assigning to unsigned types never causes overflow - C specifies that numbers out of range of the type are brought into range by repeatedly adding or subtracting the maximum value of the type plus 1. So this assignment is well defined, and will assign UCHAR_MAX - 2 to c. –  caf Feb 18 '11 at 21:54

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.