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I realize that there are a lot of questions/answers about how to output an integer in its decimal, ASCII form. I've taken some code and modified it for my own needs, but instead of just printing the number, it continues printing gibberish characters, and windows tells me the program stopped working. I think the problem is that it keeps popping values of the stack even though it should break out of the loop. Here is the full code:

.386
.model flat, stdcall
option casemap :none

include \masm32\include\windows.inc 
include \masm32\include\kernel32.inc 
include \masm32\include\masm32.inc 
includelib \masm32\lib\kernel32.lib 
includelib \masm32\lib\masm32.lib 

.data
base dd 10
ans dd ?

.code
start:
MOV ECX,3    ;I'm writing a compiler using
PUSH ECX     ;Jack Crenshaw's "Let's Build A Compiler!"
MOV ECX,9    ;This is just some sample output that I put in
ADD ECX,[ESP];The answer that prints out should be 42
PUSH ECX
MOV ECX,2
XOR EDX,EDX
POP EAX
IDIV ECX
MOV ECX,EAX
PUSH ECX
MOV ECX,7
IMUL ECX,[ESP]

mov eax,ecx
xor ecx,ecx
separateDigit: 
xor edx,edx
idiv base
push edx
inc ecx
cmp eax,0
jne separateDigit

printDigit: 
mov ans,0
pop ans
dec ecx
add ans,'0'
invoke StdOut,addr ans
cmp ecx,0
jne printDigit

invoke ExitProcess, 0
end start

Can someone who hasn't been staring at it for hours chime in and tell me what I'm doing wrong?

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1  
Do you know whether invoke StdOut touches any registers you care about, like ecx? Maybe a push ecx before, and a pop ecx after the invoke would fix it? –  lurker Aug 24 '13 at 1:43
    
@mbratch yeah that worked, thanks. I was just reading about how (most of) the registers are fair game to any calls but it just didn't click. –  rpatel3001 Aug 24 '13 at 2:25

1 Answer 1

up vote 0 down vote accepted

The invoke call is probably not "register safe" so you need to preserve your ecx value:

printDigit: 
    mov ans,0
    pop ans
    dec ecx
    add ans,'0'
    push ecx     ; save ecx
    invoke StdOut,addr ans
    pop ecx      ; restore ecx
    cmp ecx,0
    jne printDigit
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