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x86 assembly registers — Why do they work the way they do?

I've compiled the following program:

#include <stdio.h>

int square(int x) {
    return x * x;

int main() {
    int y = square(9);
    printf("%d\n", y);

    return 0;

two times with different options on OSX with GCC 4.2.1:

gcc foo.c -o foo_32.s -S -fverbose-asm -m32 -O1

gcc foo.c -o foo_64.s -S -fverbose-asm -m64 -O1

The result for 32 bit:

_square:                                ## @square
## BB#0:                                ## %entry
    pushl   %ebp
    movl    %esp, %ebp
    movl    8(%ebp), %eax
    imull   %eax, %eax
    popl    %ebp

And for 64-bit:

_square:                                ## @square
## BB#0:                                ## %entry
    pushq   %rbp
    movq    %rsp, %rbp
    movl    %edi, %eax
    imull   %eax, %eax
    popq    %rbp

As is evident, the 32-bit version retrieves the parameter from the stack, which is what one would expect with cdecl. The 64-bit version however uses the EDI register to pass the parameter.

Doesn't this violate the System V AMD64 ABI, which specifies that the RDI, RSI, RDX, RCX, R8, R9, XMM0–7 registers should be used? Or is this only the case for true 64-bit values like long?

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marked as duplicate by Flexo, Overv, Hans Passant, Bo Persson, harold Sep 26 '12 at 16:17

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

What's the problem? It should be in rdi, it's in rdi.. seems about right – harold Sep 26 '12 at 15:14
EDI is RDI, just half of it in the same way AX is half of EAX – Flexo Sep 26 '12 at 15:14
Oh, I didn't know that. I thought they were extra registers. – Overv Sep 26 '12 at 15:16

1 Answer 1

up vote 2 down vote accepted

EDI is simply the lower half of RDI so the compiler is passing the argument in RDI, but the argument is only 32-bits long, so it only takes up half of the register.

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