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So I can't figure out why my program doesn't work and the different outputs for different input. I have 2 variables:

   static_num1_ptr    dw 7 ;
   static_num1_ptr_ptr dw [static_num1_ptr]; 

I have this code:

    mov     bx,static_num1_ptr_ptr;
    mov     bx,[bx];
    mov     ax,[bx];
    call    print_num  

I need to change the declaration of the num1-ptr and num1_ptr_ptr in order to print 7. I can't change the 4 lines of code. I tried changing num1_ptr_ptr to be equal to [num1_ptr] and num1_ptr to be 7. But that gives me 0. Can someone help me understand the logic here? I use emu8086

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  • Please show us the code with these changes made. What assembler syntax is this?
    – fuz
    Nov 8, 2017 at 17:57
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    Do you mean emu8086? Different assemblers with different syntax can build code for 8086, e.g. NASM where mov bx,static_num1_ptr_ptr; is a mov bx, imm16, or TASM where it's a load. Nov 8, 2017 at 18:05
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    I understand. Yes I mean emu8086
    – Yoni G
    Nov 8, 2017 at 18:06
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    I don't think your code assembles like this, which might cause the binary from the previous run to be executed instead, causing the weird behaviour you observe.
    – fuz
    Nov 8, 2017 at 18:19
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    are you aware emu8086 has built-in debugger, so you can see yourself how the code did assemble, what is content of registers and memory, and how does it change after each instruction. It's not clear how dw [static_num1_ptr] will assemble, probably as dw offset static_num1_ptr? It doesn't make sense from x86 ASM point of view, so it's the quirky/relaxed emu8086 syntax (MASM like), which makes it compile, but it's not readable for humans, what was the intent of programmer. Looks like there's maybe one too many dereferences (removing mov bx,[bx] helps?). Will be obvious in debugger.
    – Ped7g
    Nov 8, 2017 at 22:27

1 Answer 1

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I can't change the 4 lines of code.

I think the solution lies in closely reading the names of these labels!

If the first label reads static_num1_ptr, it most probably means that it is supposed to be a pointer to num1 and not the value of num1 itself.
You'll need a third line here:

static_num1         dw 7
static_num1_ptr     dw offset static_num1
static_num1_ptr_ptr dw offset static_num1_ptr

Now your 4 lines of code

mov  bx, static_num1_ptr_ptr
mov  bx, [bx]
mov  ax, [bx]
call print_num

will correctly dereference twice ([bx]) and print the value 7.

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