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mov eax, 0
mov ebx, 0
mov edx, 0
mov ax, 31
mul cx
mov bx, 12
div bx
add bp, ax
mov eax, 0
mov ebx, 0
mov bp, bp
mov al, 7
div al

can anyone tell me whats wrong with the div al instruction in this block of code, so as I'm debugging every number of bp i calculated, when i divide by al it give me 1 as the remainder, why is this happen?

the remainder should be store back to ah register

thank in advance

edited code :

mov eax, 0
mov ebx, 0
mov edx, 0
mov ax, 31
mul cx
mov bx, 12
div bx
add bp, ax
mov eax, 0
mov ebx, 0
mov ax, bp
mov bl, 7
div bl
mov al, 0
share|improve this question
    
mov reg, 0 would be better written as xor reg, reg –  Lưu Vĩnh Phúc Oct 22 '13 at 2:31
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2 Answers 2

You can't use al as divisor, because the command div assumes ax to be the dividend.

This is an example for dividing bp by 7

mov ax,bp // ax is the dividend
mov bl,7  // prepare divisor
div bl    // divide ax by bl

This is 8 bit division, so yes the remainder will be stored in ah. The result is in al.

To clarify: If you write to al you partially overwrite ax!

|31..16|15-8|7-0|
        |AH.|AL.|
        |AX.....|
|EAX............|
share|improve this answer
    
I did that before but got integer overflow error –  bluebk May 6 '13 at 17:53
    
i set al to zero as well –  bluebk May 6 '13 at 17:54
    
@bluebk where do you get integer overflow? you should not write anything to al if you want to divide bp by something, because you will overwrite ax (the dividend) –  typ1232 May 6 '13 at 17:56
    
i got integer over flow at div bl instruction in the edited code –  bluebk May 6 '13 at 17:57
    
@bluebk well then maybe this is because your result does not fit into al. If bp is anything greater than 0x700 you will get the integer overflow –  typ1232 May 6 '13 at 18:06
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up vote 1 down vote accepted

edited code:

mov eax, 0
mov ebx, 0
mov ax, 31
mul cx
mov bx, 12
div bx
add bp, ax
mov eax, 0
mov ebx, 0
mov edx, 0
mov ax, bp
mov bx, 7
div bx
mov esi, edx 
mov eax, 0
share|improve this answer
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