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Lets say i have the following:

output: db 1Eh

in binary it is 11110

i would like to print out "#### " how would i do this i understand i would need to some how step through it in a loop but i am struggling thinking of what commands i would need to call to load each bit into a seperate register so i can compare if it is 1 or 0 and output the needed character.

im using NASM and on a windows xp running it using 16 bits.

thanks in advanced.

EDIT--- here is some code i am currently testing though it completely does not work

bits 16
            org 0x100
            jmp main
dollar:     db "$"
hash:       db "#"

printd:
            mov dx,dollar
            call disply
            ret
printh:
            mov dx,hash
            call disply
            ret             
disply:     mov ah,09h  ;This function displays what is currently in the DX register 
            int 21h
            ret
main:
            mov ax,1Eh
            mov bx,5

            shl ax,10
loop1:      shl ax,1
            JB printd
            JAE printh
            sub bx,1
            JNS loop1   

            int 20h 
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1  
shl will put a bit in the carry flag. Then adc to make a '0' or '1'. –  Frank Kotler Apr 11 '14 at 19:47
    
Re: your edited code...int 21h/9 isn't going to print a '$'... and isn't going to stop after '#' unless you put a '$' there. Better int 21h/1? You jump to some routines that end in ret. That isn't going to work, either. –  Frank Kotler Apr 11 '14 at 20:45

2 Answers 2

up vote 2 down vote accepted

Example:

    BITS 16
    ORG 100h

        mov cx, 8

    _Loop:
        shl byte [output], 1
        setc dl
        add dl, 30h
        mov ah, 02h
        int 21h
        loop _Loop

        mov ax, 4C00h
        int 21h

    output: db 1Eh

Another Example:

    BITS 16
    ORG 100h

        bsr cx, [output]

    _Loop:
        bt [output], cx
        mov dl, '0'
        adc dl, 0
        mov ah, 02h
        int 21h
        sub cl, 1
        jnc _Loop

        mov ax, 4C00h
        int 21h

    output: dw 1Eh
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Thanks mate your code helped me get to my final code. –  Ludjer Apr 11 '14 at 21:30

rkhb's code helped out but finally i got it right, it might be considered a hack but it does what i need it to do

bits 16
jmp main

axbinout:
    push cx
    push dx
    mov cx, 5
.top:
    rcr ax, 1 ; Rotate and set the carry with what we rotated off
    push ax ; Save AX

    mov dl, ' ' ; Set DL to "0", the default value
    mov al, 4 ; the offset the dollar sign is from space
    mov bl, 0 ;setting bl to zero
    adc bl, 0 ; adding the carry bit to bl 
    mul bl ; multiplying it by the offset set in al

    add dx,ax ; adding ax to dx
    mov ah, 0x0A ; 0x0A is the "print byte at cursor" argument to INT 0x10
    mov al, dl ; Our result is in DL, but INT 0x10 uses AL
    int 0x10 ; Print the byte
    pop ax ; Restore AX

    loop .top

    pop dx
    pop cx
    ret

main:
    mov ax, 1Eh
    call axbinout
    int 20h
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