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I was trying to come up with inline assembly for gcc to get both division and modulus using single divl instruction. Unfortunately, I am not that good at assembly. Could someone please help me on this? Thank you.

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4 Answers

up vote 2 down vote accepted

Yes -- a divl will produce the quotient in eax and the remainder in edx. Using Intel syntax, for example:

mov eax, 17
mov ebx, 3
xor edx, edx
div ebx
; eax = 5
; edx = 2
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How do I get GCC to accept Intel syntax? I prefer that for x86 assembly? Usually wants AT&T and yours is Intel, so I figure you must know the answer. –  0xC0000022L Apr 9 '11 at 23:25
    
Jerry, it is funny because gcc doesn't even try to optimize two of these operations into one. I'll buy you a beer if you could give me gcc assembly so that I can use it as inline function or something... –  drak0sha Apr 9 '11 at 23:31
    
False alarm. Sorry. GCC does it for me if I don't forget to specify required flags. –  drak0sha Apr 9 '11 at 23:42
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You shouldn't try to optimize this yourself. GCC already does this.

volatile int some_a = 18, some_b = 7;

int main(int argc, char *argv[]) {
    int a = some_a, b = some_b;
    printf("%d %d\n", a / b, a % b);
    return 0;
}

Running

gcc -S test.c -O

yields

main:
.LFB11:
    .cfi_startproc
    subq    $8, %rsp
    .cfi_def_cfa_offset 16
    movl    some_a(%rip), %esi
    movl    some_b(%rip), %ecx
    movl    %esi, %eax
    movl    %esi, %edx
    sarl    $31, %edx
    idivl   %ecx
    movl    %eax, %esi
    movl    $.LC0, %edi
    movl    $0, %eax
    call    printf
    movl    $0, %eax
    addq    $8, %rsp
    .cfi_def_cfa_offset 8
    ret

Notice that the remainder, %edx, is not moved because it is also the third argument passed to printf.

EDIT: The 32-bit version is less confusing. Passing -m32 yields

main:
    pushl   %ebp
    movl    %esp, %ebp
    andl    $-16, %esp
    subl    $16, %esp
    movl    some_a, %eax
    movl    some_b, %ecx
    movl    %eax, %edx
    sarl    $31, %edx
    idivl   %ecx
    movl    %edx, 8(%esp)
    movl    %eax, 4(%esp)
    movl    $.LC0, (%esp)
    call    printf
    movl    $0, %eax
    leave
    ret
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In fact, gcc doesn't. At least not with flags I am using. Maybe I am missing something. –  drak0sha Apr 9 '11 at 23:32
    
I'm on gcc (Debian 4.5.2-4) 4.5.2, but even 4.3 does this. Are you passing -O? –  raylu Apr 9 '11 at 23:34
    
I am using gcc 4.6.. but damn! I spent like 30 minutes playing with this before asking here and it turns out I just forgot to specify '-O3'. I had '-mtune=native' though, but it didn't help. Thanks! I should get some sleep... –  drak0sha Apr 9 '11 at 23:37
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You're looking for something like this:

__asm__("divl %2\n"
       : "=d" (remainder), "=a" (quotient)
       : "g" (modulus), "d" (high), "a" (low));

Although I agree with the other commenters that usually GCC will do this for you and you should avoid inline assembly when possible, sometimes you need this construct.

For instance, if the high word is less than the modulus, then it is safe to perform the division like this. However, GCC isn't smart enough to realize this, because in the general case dividing a 64 bit number by a 32 bit number can lead to overflow, and so it calls to a library routine to do extra work. (Replace with 128 bit/64 bit for 64 bit ISAs.)

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Fortunately, you don't have to resort to inline assembly to achieve this. gcc will do this automatically when it can.

$ cat divmod.c

struct sdiv { unsigned long quot; unsigned long rem; };

struct sdiv divide( unsigned long num, unsigned long divisor )
{
        struct sdiv x = { num / divisor, num % divisor };
        return x;
}

$ gcc -O3 -std=c99 -Wall -Wextra -pedantic -S divmod.c -o -

        .file   "divmod.c"
        .text
        .p2align 4,,15
.globl divide
        .type   divide, @function
divide:
.LFB0:
        .cfi_startproc
        movq    %rdi, %rax
        xorl    %edx, %edx
        divq    %rsi
        ret
        .cfi_endproc
.LFE0:
        .size   divide, .-divide
        .ident  "GCC: (GNU) 4.4.4 20100630 (Red Hat 4.4.4-10)"
        .section        .note.GNU-stack,"",@progbits
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Yeah, you are right. Turns out I had too much beer and forgot to turn on optimizations. Thank you. I've upvoted everyone. –  drak0sha Apr 9 '11 at 23:41
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