Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I was asked to create a bubble sort program in NASM Ubuntu. Here's the code:

section .data
i           db 0                    ; Value to be incremented
question    db  'Enter a number: '  ; Prompt
questionLen equ $-question
newLine     db 10, 10, 0            ; New blank line
newLineLen  equ $-newLine

section .bss
num resb 5          ; Array of size 5
counter resb 1      ; Value to be incremented
counter2 resb 1     ; Value to be incremented
temp resb 1
temp2 resb 1

section .text
global _start

_start:
mov esi, 0

getInput:
mov eax, 4
mov ebx, 1
mov ecx, question           ; Prints the question
mov edx, questionLen
int 80h

add byte[i], 30h            ; I'll retain this expression, since the program experienced an error
                                ; when this expression is deleted
sub byte[i], 30h            ; Converts the increment value to integer

mov eax, 3
mov ebx, 0
lea ecx, [num + esi]        ; Element of the array
mov edx, 2
int 80h

inc esi
inc byte[i]
cmp byte[i], 5              ; As long as the array hasn't reached the size of 5,
jl getInput                 ; the program continues to ask input from the user

mov esi, 0
mov byte[i], 0
mov edi, 0                  ; Index of the array

bubble_sort:
mov byte[counter], 0
mov byte[counter2], 0

begin_for_1:
    mov al, 0
    mov al, [counter]       ; Acts as the outer for loop
    cmp al, 5
    jg printArray           ; Prints the sorted list when the array size has reached 5
begin_for_2:
    mov edi, [counter2] ; Acts as the inner for loop
    cmp edi, 4
    jg end_for_2
    mov bl, 0               ; Acts as the if statement
    mov cl, 0
    mov bl, [num + edi]
    mov cl, [num + edi + 1]
    mov byte[temp], cl  ; This is the same as if(a[j] > a[j + 1]){...}
    cmp bl, [temp]
    jg bubbleSortSwap
return:
    inc edi                 ; Same as j++
    jmp begin_for_2     ; Goes out of the inner for loop
end_for_2:
    inc byte[counter]       ; Same as i++
    jmp begin_for_1     ; Goes out of the outer for loop

bubbleSortSwap:
mov [num + edi + 1], bl
mov [num + edi], cl     ; The set of statements is the same as swap(&a[j], &a[j + 1]);
jmp return

printArray:
mov eax, 4
mov ebx, 1
mov ecx, [num + esi]        ; Prints one element at a time
mov edx, 1
int 80h

inc esi
inc byte[i]
cmp byte[i], 5
jl printArray               ; As long as the array size hasn't reached 5, printing continues

mov eax, 4
mov ebx, 1
mov ecx, newLine            ; Displays a new blank line after the array
mov edx, newLineLen
int 80h

mov eax, 1                  ; Exits the program
mov ebx, 0
int 80h

But the only problem is, it cannot print the rest of the iterations, because it only prints the 1st iteration like this:

Enter a number: 7
Enter a number: 1
Enter a number: 4
Enter a number: 3
Enter a number: 5
17435

What I want to output is the array input and the final output, from the 1st iteration up to the last.

share|improve this question
3  
Is this homework? – InternetSeriousBusiness Sep 4 '12 at 18:27

Naw... he just needs some stuff sorted! :)

Doesn't print any output at all for me, as posted. Problem is you're putting "[contents]" in ecx - you want address - you do it right in the input routine.

You can get by with fewer variables - use esi and/or edi as both the "count" and the "index". If you use variables, make sure the size of the variable matches the size of the register you're moving it in/out of! ("mov edi, [counter2]" isn't doing what you want) Courage! If it wuz easy, everybody'd be doing it.

Best, Frank

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.