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How to add couple of 32 bit numbers on a 32 bit machine but without precision loss, i.e. in a 64 bit "pseudo register" eax:edx. Using Intel syntax assembler.

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do a loop to add them, if you get a CF, add to the edx register. – Bartlomiej Lewandowski Nov 12 '13 at 22:45
up vote 3 down vote accepted

Assuming the 32-bit numbers you're adding are in EAX and EBX:

    xor edx,edx       ;Set EDX to zero
    add eax,ebx
    adc edx,0         ;edx:eax = EAX + EBX
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In order to add 64 bit numbers on a 32 bit machine, you have to first move the top half of the 64bit number into register eax, then the second half into edx. When manipulating this number, you'll have to keep track how the number was placed in eax/edx.

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If I understand the question correctly, you have two 32bit integers that you add to possibly give a 64bit integer. You want to do this without 32bit overflow.

How about looking at what a compiler does:

$ cat add64.c
#include <stdio.h>
#include <stdlib.h>
#include <stdint.h>

int main (int argc, char **argv) {
    uint32_t a, b;

    a = strtoll(argv[1], NULL, 10);
    b = strtoll(argv[2], NULL, 10);
    printf("%lu + %lu = %llu\n", a, b, (uint64_t) a + b);
    return 0;
}
$ gcc -m32 -g -o add64 add64.c 
$ ./add64 3000000000 4000000000
3000000000 + 4000000000 = 7000000000
$ gcc -m32 -g -fverbose-asm -masm=intel -S add64.c
$ $EDITOR add64.s &
[5] 340
$

The relevant generated assembly is:

    mov %ecx, DWORD PTR [%ebp-16]   # D.2300, a
    mov %ebx, 0 # D.2300,
    mov %eax, DWORD PTR [%ebp-12]   # D.2301, b
    mov %edx, 0 # D.2301,
    add %eax, %ecx  # D.2302, D.2300
    adc %edx, %ebx  # D.2302, D.2300
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