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I trying to write a MIPS program that gets an unsigned integer as argument and returns the sum of all decimal digits in the integer recursively. For example if the argument is 75080 then the sum to be returned is 20 (7+5+0+8+0). Here is my code so far. Any help would be appreciated.

My way of thinking was to divide the number by 10 leaving me with the last integer in the number, add the reminder using mfhi.

.data
prompt: .asciiz "Enter a string of integer: "
output: .asciiz "\nThe total sum is: "
    .text
    .globl main
main:
    la $a0, prompt
    li $v0, 4
    syscall

    li $v0, 5
    syscall

    move $t2, $v0

    la $a0, output
    li $v0, 4
    syscall

Loop:
    div $t2, $t2, 10
    mflo, $t1
    mfhi, $t3
    beqz $t1, Exit
    add $t1, $t1, 0
    b additive

additive:
    add $t0, $t1, $t1
    j Loop

Exit:   
        la $a0, output
            li $v0, 4
            syscall
            la $v0, 10
            syscall
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What OS is this where syscall 4 lets you print a prompt without giving a buffer length, and syscall 5 gets you input that's already converted to an integer? –  Kaz Apr 7 '12 at 6:21
    
I don't remember if MIPS is this way or not, but in some systems it matters which order the move from high and move from low commands come in, and if what little I remember about MIPS is actually correct, you might have gotten this backwards. –  Ross Aiken Apr 7 '12 at 6:44
    
This is a repost of stackoverflow.com/questions/10031785/… –  bta Apr 10 '12 at 17:53

1 Answer 1

  • What's this supposed to be doing? Adding 0 to the register won't change its value:

    add $t1, $t1, 0

  • After dividing and copying to $t1 and $t3, the quotient is in $t1 and the remainder is in $t3. You're treating it the other way around when you add to the total.

  • This is actually going to give you $t0 = 2 * $t1: you're adding $t1 to itself and storing the result in $t0.

    add $t0, $t1, $t1

    You probably actually want:

    add $t0, $t0, $t3

  • You're checking for $t1 == 0 before adding the remainder to the total, so the most significant digit will never get added. You don't really need a subroutine for adding to the total either. You can also use bnez Loop instead of beqz Exit -> b Loop. Lastly, you don't even need $t1, because the quotient is already in $t2.

Get rid of additive and replace Loop with this:

Loop:
    div $t2, $t2, 10
    mfhi, $t3
    add $t0, $t0, $t3
    bnez $t2, Loop
  • Your Exit is weird: you're printing the output string a second time instead of printing the integer.

Change it to this:

Exit:
    move $a0, $t0
    la $v0, 1
    syscall

    la $v0, 10
    syscall
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