6

First off, this is homework.

I'm trying to read a 5 digit number into the register bx. The number is assumed to be no greater than 65535 (16 bits). Below is how I am attempting to do so.

However, when I attempt to print the number, I am only printing the very last digit that was entered. Which leads me to guess that when I add another number to bx it is overwriting the previous number, but I am unable to see the problem. Any help would be appreciated, I'm almost certain that it is something small I'm overlooking :-/

mov cx,0x05 ; loop 5 times
    mov bx,0    ; clear the register we are going to store our result in
    mov dx,10   ; set our divisor to 10

read:
    mov ah,0x01     ; read a character function
    int 0x21        ; store the character in al
    sub al,0x30     ; convert ascii number to its decimal equivalent
    and ax,0x000F   ; set higher bits of ax to 0, so we are left with the decimal
    push ax         ; store the number on the stack, this is the single digit that was typed
    ; at this point we have read the char, converted it to decimal, and pushed it onto the stack
    mov ax,bx       ; move our total into ax
    mul dx          ; multiply our total by 10, to shift it right 1
    pop bx          ; pop our single digit into bx
    add bx,ax       ; add our total to bx
    loop read       ; read another char
  • if you are converting decimal to hex, then how come, that you are dividing by 10? you don't need to multiply/divide by 10 when convertng to hex – fazo Apr 3 '11 at 23:09
  • I don't see where I am dividing by 10 any where in the snippet I posted. But the reason I am multiplying by 10 is because I can only read 1 character at a time, and I need to multiply it by 10, so that when I add another number, it is in the appropriate spot. – Adam Apr 3 '11 at 23:16
  • +1 for posting a homework question and showing what you already tried. – vcsjones Apr 3 '11 at 23:18
  • sorry, my bad.. i don't have your environment (assembler) could you post some results what you get? – fazo Apr 3 '11 at 23:18
4

When using the MUL opcode, there are three different results:

  • 8 bit - results are stored in ax
  • 16 bit - results are stored in dx:ax
  • 32 bit - results are stored in edx:eax

So when you perform your multiplication, the instruction overwrites dx with zero in your case. This means that each subsequent use of the mul opcode is multiplying by zero.

  • Thank you very much, 1 line and it's working perfectly. It hadn't occurred to me that dx was being over written with 0, I assumed it would stay the same value. – Adam Apr 4 '11 at 0:34
  • 1
    Remember, the same thing can happen when you use the div opcode only in reverse. – Sparafusile Apr 4 '11 at 11:42

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