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I'm trying to write a simple NASM program for fun, but I can't seem to figure out how to write a for loop in it. With the following code, I get a segmentation fault. The following code is supposed to print out "Hello world!" followed by all of the numbers from one to 100.

section .data
    message: db 'Hello world!', 10
    messageLength: equ $-message

section .text
    global _start

_start:
    mov eax, 4
    mov ebx, 1
    mov ecx, message
    mov edx, messageLength
    int 80h

    mov ecx, 0
    jmp loop

    mov eax, 1
    mov ebx, 0
    int 80h

loop:
    mov eax, 4
    mov ebx, 1
    mov edx, 1
    int 80h

    add ecx, 1
    cmp ecx, 100
    jl loop
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Did you try stepping through it under gdb ? –  Paul R Mar 18 '11 at 22:24
    
Problem probably not in the loop, but in the printing statement inside it. Make sure you can print 'Hello world!' and 1 before making a loop. (I can't read assembly without reference so take it for all it is worth :)) –  Eugene Mar 18 '11 at 22:25
    
@Paul I don't know how to, so no. @Eugene I tried printing out 1, and it's giving me a segmentation fault –  Shane M. Pelletier Mar 18 '11 at 22:32
    
it's probably a good idea to learn how to use gdb before you get too much further with programming - even very simple programs need to be debugged, as you see now. Just type gdb ./my_program to get started (where my_program is the name of your executable, of course). –  Paul R Mar 18 '11 at 22:47
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3 Answers

Before you jump to the loop, you are assigning 0 to ECX...

It means your program will try to print a string located at memory address 0, which you don't own, hence the segmentation fault...

Remember you are working with memory addresses. Assigning 10 to a register value wont actually print 10, in ASCII... It just means you are getting memory address 10...

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So... how do I print the string "0" instead of trying to print whatever's at address 0? –  Shane M. Pelletier Mar 18 '11 at 22:37
    
You need to have a memory address you own. For instance by defining 4 bytes in your program (3 digits plus the new line character). Then manipulates this memory address, remembering you work with ASCII so 0 is decimal value 48. –  Macmade Mar 18 '11 at 22:41
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You had two problems: first, your syscall to exit() came before the loop, instead of after; second you are passing an integer instead of a memory pointer to the write() syscall.

Try this instead:

section .data
    message: db 'Hello world!', 10
    messageLength: equ $-message

    digits: db '0123456789'

section .text
    global _start

_start:
    mov eax, 4
    mov ebx, 1
    mov ecx, message
    mov edx, messageLength
    int 80h

    mov ecx, 0
    jmp loop

loop:
    push ecx
    mov eax, digits
    add ecx, eax
    mov eax, 4
    mov ebx, 1
    mov edx, 1
    int 80h
    pop ecx

    add ecx, 1
    cmp ecx, 10
    jl loop

And here is a version that formats numbers and prints the loop counter:

section .data
    message: db 'Hello world!', 10
    messageLength: equ $-message

    number: db '000'
            db 10

section .text
    global _start

_start:
    mov eax, 4
    mov ebx, 1
    mov ecx, message
    mov edx, messageLength
    int 80h

    mov ecx, 0
    jmp loop

loop:
    call _format_number
    push ecx
    mov ecx, number
    mov eax, 4
    mov ebx, 1
    mov edx, 4
    int 80h
    pop ecx

    add ecx, 1
    cmp ecx, 10
    jl loop

    mov eax, 1
    mov ebx, 0
    int 80h

_format_number:
    push ecx
    xor edx, edx
    mov eax, ecx
    mov ecx, 10
    idiv ecx
    add edx, '0'
    mov ebx, number
    mov [ebx+2], dl
    xor edx, edx
    idiv ecx
    add edx, '0'
    mov [ebx+1], dl
    xor edx, edx
    idiv ecx
    add edx, '0'
    mov [ebx+0], dl
    pop ecx
    ret
share|improve this answer
    
That sort of worked, only it seg faults after it's done printing all of the numbers. –  Shane M. Pelletier Mar 18 '11 at 23:00
    
I'm not sure why it segfaults for you. It doesn't for me, after I moved the int80/eax=1 to after the loop. –  Robᵩ Mar 18 '11 at 23:38
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The problem with your code is that you try to print a integer as a dword. I would rather use printf like this:

extern printf ;make sure we can use printf

section .data
    message: db 'Hello world!', 10
    messageLength: equ $-message
    decFormat   db '%d',10 ;format string to use in printf

section .text
    global main

main:
    ;print hello world the usual way
    mov eax, 4
    mov ebx, 1
    mov ecx, message
    mov edx, messageLength
    int 80h

    mov ecx, 0

loop:
    push ecx ;add counter
    push decFormat ;add format string
    call printf ;execute printf, which will use the stack values as arguments

    pop ecx ;clean the stack
    pop ecx

    inc ecx ;if you just want to add 1 to the value, you should use inc not add
    cmp ecx, 100
    jl loop

mov eax,1
mov ebx,0
int 80h
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