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Alright, I've cooked up some code to reverse hex characters around as part of a fun exercise I made up.

Here is what I have at the moment:

#include <stdio.h>  
int main() {  
    char a,b,c;  
    while (1) {  
        c = getchar();  
        if (!feof(stdin)) {  
            a = c % 16;  
            b = (c - a) / 16;  
            c = (a*16) + b;  
            putchar(c);  
        }else{break;}  
    }  
return 0;  
}  

It works well for most values. For example, 0xA0 becomes 0x0A etc...

However, it's not playing well with values beginning with 'F'.

0xF1 becomes 0x10
0xFF becomes 0xF0
etc...

Can somebody point me into the right direction?

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4  
you need some headroom for your math to work. use int for a and b rather than char. Or switch to using bitwise operations (>> << & and | ) instead of math operations. –  John Knoeller Feb 7 '10 at 7:20
    
@KennyTM: you probably mean putchar(cc>>4|(cc&0xf)<<4); –  mjv Feb 7 '10 at 7:25
1  
As an additional note: there's no need to subtract a from c before dividing by 16. b = c / 16 will give you exactly the same result. This is how integer division works in C. –  AndreyT Feb 7 '10 at 9:31

4 Answers 4

up vote 5 down vote accepted

You're using a signed (on your machine) data type. Switch it to unsigned and it should works properly.

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2  
You have got the solution, but note that char can be signed or unsigned depending on the implementation. –  AraK Feb 7 '10 at 7:21
    
Indeed! Thanks! Now, since I'll never learn if I simply use it. You wouldn't mind explaining why signed-ness matters in char's? Or point to some sources? –  tangrs Feb 7 '10 at 7:22
    
You might think this a little too generic a link, but it's actually a very interesting article: en.wikipedia.org/wiki/Integer_(computer_science) –  Steven Fisher Feb 7 '10 at 7:29
2  
Note that you'll have to manually correct the link, as StackOverflow drops the ) from the end of it. –  Steven Fisher Feb 7 '10 at 7:30
2  
Tangrs: Evidently your signed char is 8 bits, and therefore can't store values like 0xFF (or any value greater than 127 / 0x7F). Values with the highest bit set are negative - for example, 0xF0 is actually -16. Your algorithm only works correctly on positive numbers. –  caf Feb 7 '10 at 7:30

getchar and putchar return and take ints. Even better than this they use the value of the char cast to an unsigned char which means that for all valid characters putchar will return a positive value. This is needed for your algorithm as you use % and you would otherwise need to rely on implementation defined behaviour.

If you assign the value of getchar to an int then you can test whether the read failed for any reason (not just end-of-stream) by comparing against EOF. Using feof is then not necessary - it wasn't sufficient before.

E.g.

int main(void) {  
    int c;  
    while ((c = getchar()) != EOF) {  
        /* algorithm goes here */
        putchar(c);  
    }  
    return 0;  
}
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I dont know why someone is doing *, /, % operations while simple bitwise operations can do such things.

a = (c & 0x0F) << 4;
b = (c & 0xF0) >> 4;
c = a|b;

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Quite the opposite. I don't know why would anyone use bitwise operations whnen normal human arithmetics will do the thing just as well. –  AndreyT Feb 7 '10 at 9:30
    
Because for machines they are faster than the 'normal human arithmetics' –  vrrathod Feb 28 '10 at 22:46

If char is signed on your system, then when the upper nibble of c is f, c is negative, and c%16 will give a negative result.

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