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I am new in assembly and I am trying to do some arbitrary precision arithmethic in assembly. But I am stuck in an error for a whole day.

    mov eax,[ebp+8] ; the first parameter of c function
    mov edx,[ebp+12] ; the second parameter of c function
    sub ecx,ecx
    sub ebx,ebx

    for_loop2:
    cmp ecx,[noktadanSonraFark] ; [noktadanSonraFark] is a variable that contains the difference of the lenghts of the two parameters 
    je end_for2

    mov ebx,[length2] ; the length of the second parameter "9"

    sub ebx,1 ; if length is 9 the last chacter will be on 8. index

    sub ebx,ecx

    mov eax, [edx+ebx] ; must show the character at the 8.index

        mov eax,ebx ; this 4 line returns thee value stored in eax to the 
        pop ebx  ; c function. and the result is printed
        pop ebp
        ret

    inc ecx
    jmp for_loop2

My problem is that nothing is printed to the screen. But when I comment this line mov eax, [edx+ebx]the ebx value is printed correctly "8" So it seems that this line mov eax, [edx+ebx] changes the value in ebx or deletes it. Because nothing is printed to the screen. Any ideas?

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Why the two MOVs into EAX on adjacent lines? – Will A May 19 '11 at 22:31
    
Because with the ret command, the value in eax is returned to the caller function. In our case it is a c function which prints the result of eax. I want to see the value in ebx register there for I mov it to eax and then return. But normally I wont need the four lines starting with mov eax,ebx. I will delete them when I see the value in ebx is right. So I use it just for debugging – Alptugay May 19 '11 at 22:38
    
Is the return of this supposed to be a character or integer? If you are returning the number 8 when a character is expected, you won't see any output. (A simple hack to convert a number from 0-9 to a character is to add 48) – ughoavgfhw May 19 '11 at 22:47
    
There's two "pop"s at the end of the function. I assume the function prolog has matching "push"s? Otherwise, that's why you're getting weird results - stack corruption. – John Ripley May 20 '11 at 2:34
1  
@ughoavgfhw I am already adding 48. @John The number of push and pop are equal. And when I just comment one line from the code (the mov eax, [edx+ebx] line ) it works correctly. So I dont think there is a problem with the stack. Btw my function starts with push ebp ; save esp register mov ebp, esp ; get current stack pointer push ebx ; save ebx register – Alptugay May 20 '11 at 9:10

Most likely the problem is that the instruction mov eax, [edx+ebx] is trying to access a memory address that your program doesn't have permission to access. That causes the program to crash. Thus, no output. It's certain that accessing [edx+ebx] does not modify either of those two registers.

You say that if you comment out that line, things work as expected and the output is "8", which is the value of ebx. Have you checked the value of edx?

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