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Could you please help me understand the purpose of the two assembly instructions in below ? (for more context, assembly + C code at the end). Thanks !

movzx  edx,BYTE PTR [edx+0xa]
mov    BYTE PTR [eax+0xa],dl

===================================

Assembly code below:

push   ebp    
mov    ebp,esp
and    esp,0xfffffff0
sub    esp,0x70
mov    eax,gs:0x14
mov    DWORD PTR [esp+0x6c],eax
xor    eax,eax
mov    edx,0x8048520
lea    eax,[esp+0x8]
mov    ecx,DWORD PTR [edx]
mov    DWORD PTR [eax],ecx
mov    ecx,DWORD PTR [edx+0x4]
mov    DWORD PTR [eax+0x4],ecx
movzx  ecx,WORD PTR [edx+0x8]
mov    WORD PTR [eax+0x8],cx
movzx  edx,BYTE PTR [edx+0xa]    ; instruction 1
mov    BYTE PTR [eax+0xa],dl     ; instruction 2
mov    edx,DWORD PTR [esp+0x6c]
xor    edx,DWORD PTR gs:0x14
je     804844d <main+0x49>
call   8048320 <__stack_chk_fail@plt>
leave  
ret

===================================

C source code below (without libraries inclusion):

int main() {
    char str_a[100];    
    strcpy(str_a, "eeeeefffff");
}
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1  
It does what it says... it's copying the contents of the array at 0x8048520 into str_a. Which part of it is unclear? –  Kerrek SB Aug 18 '13 at 15:41
    
Instead of the zero-extending copy, you could also have written mov dl, BYTE PTR [eax+0xa]. That would have left the upper 24 bits random rather than set them to zero. –  Kerrek SB Aug 18 '13 at 15:42

1 Answer 1

up vote 4 down vote accepted

It inlined the strcpy() call, the code generator can tell that 11 bytes need to be copied. The string literal "eeeeefffff" has 10 characters, one extra for the zero terminator.

The code optimizer unrolled the copy loop to 4 moves, moving 4 + 4 + 2 + 1 bytes. It needs to be done this way because there is no processor instruction that moves 3 bytes. The instructions you are asking about copy the 11th byte. Using movzx is a bit overkill but it is probably faster than loading the DL register.

Observe the changes in the generated code when you alter the string. Adding an extra letter should unroll to 3 moves, 4 + 4 + 4. When the string gets too long you ought to see it fall back to something like memmove.

share|improve this answer
    
Thank you, I understand now - what I missed was the fact that there should be a zero terminator + the way used to store that 0 is indeed quite convoluted. –  Julien Aug 18 '13 at 17:54

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