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So I have two pointers:

unsigned char * a;
unsigned char * b;

Let's assume that I used malloc and they are allocated of a certain size. I want to make the least significant 4 bits of the address of the pointers to be the same... but I really don't know how.

First of all I want to take the least significant 4 bits from a. I tried something like

int least = (&a) & 0x0f;

but I get an error that & is an invalid operand. I was thinking to allocate more for b and search for an address that has the least significant 4 bits the same as a but I really have no idea how I can do that.

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3  
Why would you need/do this? Seems like a nasty UB hack. –  user529758 Apr 29 '13 at 16:55
    
you used & when you wanted to use && –  im so confused Apr 29 '13 at 16:57
    
I am working with cell and I want to use mfc_put to send 4 bytes at the time and I have to have the least significant 4 bits of the address of the source and destination the same –  exilonX Apr 29 '13 at 16:59
    
No I need & trust me –  exilonX Apr 29 '13 at 16:59
2  
@IonelMerca - Please explain the motivation for doing this? I am intrigued. –  Ed Heal Apr 29 '13 at 17:15

4 Answers 4

#include <stddef.h>
#include <stdlib.h>
#include <stdio.h>

int main()
{
    unsigned char *a;
    unsigned char *b;

    a = malloc(8);
    b = malloc(8);

    if (((uintptr_t)a & 0x0F) == ((uintptr_t)b & 0x0F)) {
        printf("Yeah, the least 4 bits are the same.\n");
    } else {
        printf("Nope, the least 4 bits are not the same.\n");
    }

    free(a);
    free(b);

    return EXIT_SUCCESS;
}
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3  
Shouldn't you use uintptr_t rather than ptrdiff_t. –  Pete Fordham Apr 29 '13 at 17:10
    
@PeteFordham: I think it doesn't matter in this case, but uintptr_t is probably ideologically more correct. From what I can tell in practice, unsigned long usually suits Linux kernel developers well. –  user405725 Apr 29 '13 at 17:16
    
SO if I want to find the address that has the least significant 4 bits the same like A how do I do that ? –  exilonX Apr 29 '13 at 17:22
1  
and of all but the last 4 bits as above, then add any multiple of 16 you want to that value. They will have the same low 4-bits. Not sure what you are trying to accomplish here though... –  Michael Dorgan Apr 29 '13 at 18:30

What about this:

int least;

least = (int)(&a) ^ (int)(&b); //this is a bitwise XOR, returning 0s when the bits are the same

if (least % 16) = 0 then
{
     //first four bits are zeroes, meaning they all match
}
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Hm, it seems like you are taking addresses of pointers, not values of pointers. –  user405725 Apr 29 '13 at 17:18
    
I thought that was what he was asking for in the question: "I want to make the least significant 4 bits of the address of the pointers to be the same..." –  Joe M Apr 29 '13 at 17:20
    
Joe, yeah, you actually might be right! –  user405725 Apr 29 '13 at 17:22
    
-1 &a and &b are pointers and ^ is not defined for pointers. C doesn't have mod either. –  Alexey Frunze Apr 29 '13 at 17:24
1  
NP - now people are going to complain that your are type-casting a pointer to an int, which is probably undefined behavior. Personally, I'm fine with it though. The xor is interesting. My first soultion would be & 0xf as the above answer, but this does work. –  Michael Dorgan Apr 29 '13 at 18:40

One possible way to solve this problem is to use an allocation function that will only return allocations that are aligned on 16 byte boundaries (therefore the least significant 4 bits will be always be zero).

Some platforms have such alignment-guaranteed allocation functions such as _aligned_malloc() in MSVC or posix_memalign() on Unix variants. If you don't have such an allocator available, returning an aligned block of memory using plain vanilla malloc() is a common interview question - an internet search will net you many possible solutions.

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Try this:

int main()
{
    unsigned char *a, *b;

    a = malloc(32);
    b = a + 16;

    printf("%p %p\n", a, b); // You should see that their least significative
                             // 4-bits are equal
}

Since a and b are 16 byte apart and part of a contiguous memory block, their addresses should have the property you want.

share|improve this answer
    
You don't actually describe how to check if the low 4-bits are the same. –  Michael Dorgan Apr 29 '13 at 18:27
    
NM, the question is just unclear. down-vote removed. –  Michael Dorgan Apr 29 '13 at 18:31
    
Yeah, this snippet guarantees that both a and b have the same low 4-bits, so OP wouldn't have to check them. I tried to answer the question in the title. I agree that the question is unclear. –  bsmartins Apr 29 '13 at 18:45

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