Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise
#define M 20  
#define N 20  
void main()  
{  
    int i,j;  
    int A[M][N] = {0};  
    for (i=0; i < M; i++)  
    {  
        for (j=0; j< N; j++)  
        {  
            //A[i][j +1] = A[i][j] + 5;  
            A[i][j] = 0;  
        }  
    }  
    printf("%d\n", A[2][3]);  
}   

Generated Assembly Code is

main:  
    pushl   %ebp  
    xorl    %eax, %eax  
    pxor    %xmm0, %xmm0  
    movl    %esp, %ebp  
    andl    -16, %esp  
    pushl   %edi  
    movl    400, %ecx  
    subl    1628, %esp  
    leal    16(%esp), %edi  
    rep stosl  
    leal    16(%esp), %edx  
    leal    1616(%esp), %eax 
    .p2align 4,,7  
    .p2align 3  
.L2:  
    movdqa  %xmm0, (%edx)  
    movdqa  %xmm0, 16(%edx)  
    movdqa  %xmm0, 32(%edx)  
    movdqa  %xmm0, 48(%edx)  
    movdqa  %xmm0, 64(%edx)  
    addl    80, %edx  
    cmpl    %eax, %edx  
    jne .L2  
    movl    188(%esp), %eax  
    movl    .LC0, (%esp)  
    movl    %eax, 4(%esp)  
    call    printf  
    addl    1628, %esp  
    popl    %edi  
    movl    %ebp, %esp  
    popl    %ebp  
    ret  

I am not able to understand the assembly Code from main upto label L2. This assembly code is optimized using auto-vectorization. Thanks in Advance.

share|improve this question
2  
It's setting up a stack frame and initializing A to zero. What exactly are you having trouble understanding? – user786653 Sep 4 '11 at 8:57
1  
What the use of following instructions: andl -16, %esp leal 16(%esp), %edi leal 16(%esp), %edx leal 1616(%esp), %eax – PhantomM Sep 4 '11 at 10:25
up vote 5 down vote accepted
pushl   %ebp          ; save the old %ebp value
xorl    %eax, %eax    ; clear %eax
pxor    %xmm0, %xmm0  ; clear %xmm0
movl    %esp, %ebp  
andl    -16, %esp  
pushl   %edi          ; save edi  ^--- you have to restore all these value on function return.

movl    400, %ecx  
subl    1628, %esp    ; allocate 1628 bytes from stack
leal    16(%esp), %edi    ; load address of A to %edi
rep stosl             ; repeat cx(400) time, clear the memory -- this initialize "A" as {0}
share|improve this answer
    
Thanks for your help. What the use of following instructions: andl -16, %esp leal 16(%esp), %edi leal 16(%esp), %edx leal 1616(%esp), %eax – PhantomM Sep 4 '11 at 10:17
1  
16(%esp) is a pointer to A. leal 16(%esp), %edi load that into %edi (for rep stosl) – J-16 SDiZ Sep 4 '11 at 10:27
    
1616(%esp) is the address of another local variable .. I guess it is i, but i am too lazy to check. – J-16 SDiZ Sep 4 '11 at 10:30
2  
1616(%esp) is a pointer to the last element of the array (used to check if the end has been reached). and -16, %esp aligns the stack o n a 16-byte boundary. – user786653 Sep 4 '11 at 10:33
    
Thanks a lot.... – PhantomM Sep 4 '11 at 11:04

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.