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How would I write a program that will display the first 24 values in the Fibonacci series in assembly language?

If anyone could help me I would greatly appreciate it, I'm confused with the code in assembly.

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What kind of assembly language? –  Greg Mar 22 '11 at 19:39
    
Please try to provide more details of what you have tried and what you are confused about instead of simply asking for an answer to what seems to be a homework problem. –  quarkdown27 Mar 22 '11 at 19:39
    
for x86 processors –  Stephanie Dente Mar 22 '11 at 19:39

3 Answers 3

A number in Fibonacci series is the sum by the two numbers preceding it. To keep it simple you can store these numbers in an array with the first two element set to 1. esi and edi could point to n-1 and n-2, so fibonacci(n) = [esi] + [edi]] right? In pseudocode it looks like:

fibonacci    DWORD    24 dup (?)

esi = fibonacci(0)       // those are pointers to elements!
edi = fibonacci(1)

for x = 2 to 23
    fibonacci(x) = [esi] + [edi]
    esi += 4             // if you don't like DWORDs change this
    edi += 4
end loop

you can keep x in the ecx register and fibonacci(x) in the eax register.

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Well, you do it pretty similarly to the way you would in most other languages, something like this:

for loop counter = 1 to 24 do
    next_number = fibonacci(previous, previous2)
    print(next_number)
    previous2 = previous
    previous = next_number

The obvious differences from other languages include:

  1. In this case, your "variables" will all probably be in registers.
  2. You'll probably have to write your own code to convert and print a number.
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I left two blank spaces because the code depends on the system where it's going to run (you didn't specify the compiler and operating system).

I haven't tested the code but I think it will work.

    mov eax, 0         ; first number
    mov ebx, 1         ; second number
                       ; edx will contain the third number (eax + ebx )

    mov ecx, 24 - 2    ; print 24 numbers (don't count the first
                         and second because they are printed in the begining)

    mov edx, eax
    call print_number  ; print the first number

    mov edx, ebx
    call print_number  ; print the second number
fibo:
    mov edx, eax
    add edx, ebx       ; edx = eax + ebx

    call print_number

    ; now we have the third number in edx
    ; eax = 1st, ebx = 2nd, edx = 3rd
    ; to prepare eax and abx for the next iteration, shift the values to the right
    ; eax = 2nd, ebx = 3rd, edx = ?
    mov eax, ebx
    mov ebx, edx

    loop fibo

    ; TO DO: exit program

print_number:
    ; TO DO: edx contains the number, print it
    return

Hope it helps.

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