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I'm working under visual studio 2005 with assembly (I'm a newbie) and I want to create a program that calculate arithmetic progression with that rule: A(n) = 2*A(n-1) + A(n-2) but. I really don't know how to work with registers and I need just one example from you to continue with my exercises.

This is my code:

.386
.MODEL flat,stdcall

.STACK 4096

extern ExitProcess@4:Near

.data                               
arraysize DWORD 10

setarray  DWORD 0 DUP(arraysize)
firstvar  DWORD 1
secondvar DWORD 2

.code                               
_main:                              
mov eax,[firstvar]
mov [setarray+0],eax        
mov eax,[secondvar]
mov [setarray+4],eax

mov ecx, arraysize              ;loop definition
mov ax, 8

Lp:
mov eax,[setarray+ax-4]
add eax,[setarray+ax-4]
add eax,[setarray+ax-8]
mov [setarray+ax],eax

add ax,4;
loop Lp

add ax,4;

    push    0                   ;Black box. Always terminate
    call    ExitProcess@4       ;program with this sequence

    end   _main              ;End of program. Label is the entry point.
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I think the code formatting messed up? I could try to fix it, but I might introduce errors. –  winwaed Nov 22 '10 at 15:04
    
i fixed it. you can check again. –  Elad Nov 22 '10 at 15:13
    
I think that my problem is that i can't move dword 32bit to register 16bit, so how can i do that? –  Elad Nov 22 '10 at 15:20
    
You don't want to move 32 bit into a 16 bit register, really. How do you want to achieve it? Squeeze the bits somewhat? –  hirschhornsalz Nov 22 '10 at 15:34

2 Answers 2

up vote 1 down vote accepted

You can't use ax as index register and eax as data register at the same time. For 32bit code, stick to 32 bit registers, unless you now what you are doing. You inadvertedly used a 16 Bit addressing mode, which you probably didn't want.

mov ecx, arraysize-1              ;loop definition
mov ebx, 8

Lp:
mov eax,[setarray+ebx-4]
add eax,[setarray+ebx-4]
add eax,[setarray+ebx-8]
mov [setarray+ebx],eax

add ebx,4
dec ecx
jnc Lp

Never ever use the loop instruction, even if some modern processors can execute ist fast (most can't).

share|improve this answer
    
Gracias!! and thanks for the advice about the loop –  Elad Nov 22 '10 at 15:39
    
I wouldn't worry about optimizing out the LOOP instruction unless it's time-critical code. It is rather dramatically slower than a DEC/JNZ as far as cycle counting goes, however LOOP is more intuitive when reading the code and it's smaller (which can actually make it faster if it avoids a cache miss). –  Brian Knoblauch Nov 23 '10 at 19:55
    
Well, i would argue, that if you actually do some assembly programming where it is useful, you will always want to avoid loop, because it most likely will be time critical. Furthermore, if you aren't able to parse DEC/JNC sequence immediatly as "this is a loop counter with jump back", you most likely won't be able to do something useful in assembly anyway ;-) So why not doing it the right way from the beginning. By the way DEC/JNZ won't work, because DEC doesn't set the zero flag. –  hirschhornsalz Nov 24 '10 at 0:10

I'm a beginner in assembler too, but my algorithm is a bit different:


    A   dword   1026 dup (0)          ; declare this in the data segm.

; ...

    mov     esi, offset A         ; point at the results array
    mov     [esi], 1               ; initialize A(0)
    mov     [esi + 4], 2           ;  and A(1)
    xor  ecx, ecx

lp: add esi, 8
mov eax, [esi - 4] ; get A(n-1) add eax, eax ; double it add eax, [esi - 8] ; computes A(n) mov [esi], eax ; and save it inc ecx ; next n cmp ecx, n ; be sure n is a dword, use ; cmp ecx, dword ptr n ; if it isn't jb lp ; loop until ecx < n ; ; now you should have the results in the A array with ; esi pointing to the end of it

I didn't compiled it to see if works well but it should..

share|improve this answer
    
whoops! in the mov instructions I forgot a dword ptr: –  BlackBear Nov 29 '10 at 17:18

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