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.

Could someone explain to me what's happening to "n" in this situation?

main.c

unsigned long temp0;
PLLSYS0_FWD_DIV_A_DECODE(n);

main.h

#define PLLSYS0_FWD_DIV_A_DECODE(n) ((((unsigned long)(n))>>8)& 0x0000000f)

I understand that n is being shifted 8 bits and then anded with 0x0000000f. So what does (unsigned long)(n) actually do?

#include <stdio.h>

int main(void)
{
    unsigned long test1 = 1;
    printf("test1 = %d \n", test1);
    printf("(unsigned long)test1 = %d \n", (unsigned long)(test1));

return 0;
}

Output:

test1 = 1 
(unsigned long)test1 = 1
share|improve this question
    
It's a cast without *. –  arrowdodger Oct 4 '13 at 17:22

5 Answers 5

up vote 1 down vote accepted

It widens it to be the size of an unsigned long. Imagine if you called this with a char and shifted it 8 bits to the right, the anding wouldn't work the same.

Also just found this (look under right-shift operator) for why it's unsigned. Apparently unsigned forces a logical shift in which the left-most bit is replaced with a zero for each position shifted. Whereas a signed value shifted performs an arithmetic shift where the left-most bit is replaced by the dropped rightmost bit.

Example:

11000011 ( unsigned, shifted to the right by 1 )
01100001

11000011 ( signed, shifted to the right by 1 )
11100001
share|improve this answer
    
"Just found this" :) –  Murilo Vasconcelos Oct 4 '13 at 18:15
    
Hey, I'm no master of this stuff. I thought a shift was alway as logical shift. TIL arithmetic shifts. –  William Custode Oct 4 '13 at 18:25
    
If you shift to the right, widening the type does not help much. –  undur_gongor Oct 4 '13 at 19:42

In your code example, the cast doesn't make much sense because test1 is already an unsigned long, but it makes sense when the macro is used on a different type like unsigned char etc.

Also you should use %lu in printf to print unsigned long.

printf("(unsigned long)test1 = %lu\n", (unsigned long)(test1));
//                              ^^
share|improve this answer

Could someone explain to me what's happening to "n" in this situation?

You are casting n to unsigned long.

So what does (unsigned long)(n) actually do?

It will promote n to unsigned long.

share|improve this answer

Casting the input is all it's doing before the bit shift and the anding. Being careful about order if operations and precedence of operators. It's pretty ugly.

But looks like they're avoiding hitting the sign bit and by doing this instead of a function, there's no type checking on n.

It's just ugly.

Better form would be to have a clean clear function that has input type checking.

share|improve this answer

That ensures that n has the proper size (in bits) and most importantly is treated as unsigned. As the shift operators perform sign extension, when a number is signed and negative, the extension will be done with 1 not zero. It means that a negative number shifted will always result in a negative number.

For example:

int main()
{
        long i = -1;
        long x, y;

        x = ((unsigned long)i) >> 8;
        y = i >> 8;

        printf("%ld %ld\n", x, y);
}

On my machine it outputs:

72057594037927935 -1

Because of the sign extension in y, the number continues to be -1:

share|improve this answer

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.