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any ideas? Why I am getting: Runtime exception at 0x00400020: fetch address not aligned on word boundary 0x00000007 Problem line is: lw $s1,0($a1) #copy arg2 = size of array

.data
    .align 4 #added this, didnt work
    size:   .word   7
    .align 4 #added this, didnt work
    search: .word   30
    .align 4 #added this,didnt work
    array:  .word 10,20,30,40,50,60,70
    .align 4

.text

main:

            la  $a0,array   #$a0 = address of array
            lw  $a1,size    #a1 = size of array
            lw  $a2,search  #$a2 = search key


COUNT:
            lw $s0,0($a0)   #copy arg1 = address array
            addi $s1,$zero,7
            lw $s1,0($a1)   #copy arg2 = size of array
            lw $s2,0($a2)   #copy arg3 = search key (n)
            addi $s2,$zero,30
            COUNTLOOP:
            add $v0,$zero,$zero #v0 = res
            add $t0,$zero,$zero #$t0 = init i to 0
            slt $t1,$t0,$s1     #check if i > size of array
            beq $t1,$zero,DONECOUNT #i is n so end
            sll $t2,$s0,2       #$t2 = get off set for a[i]
            lw  $t3,0($t2)      #$t3 = get value of a[i]
            bne $t3,$s2,CLOOPBTM #check if a[i] == seach key
            addi $v0,$v0,1      #if above then increment res
            CLOOPBTM:
            addi $t0,$t0,1
            j COUNTLOOP
            DONECOUNT:
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1 Answer 1

The problem with the code is, that you're not using the address where the size is stored but the size itself:

Here you load the address into A0 and the size (7) into A1:

        la  $a0,array   
        lw  $a1,size    #a1 = size of array

Here you load the first word stored at your array (that will load a 10). This is not what you've intended.

        lw $s0,0($a0)   #copy arg1 = address array
        addi $s1,$zero,7

Here you load the first word stored at location 0x000007. (your size). This is probably also not intended and will cause an exception because the address is not aligned:

        lw $s1,0($a1)   #copy arg2 = size of array

and so on.

It seems to me, that you have a misunderstanding what the LW instruction does. It reads a memory location into a register. What you want in the prolog of your loop is to make copies of a register.

To do so you can use the move pseudo instruction if your assembler supports it. Otherwise use the OR instruction to copy registers like this:

COUNT:
            or    $s0, $a0, $a0   #copy arg1 = address array
            addi  $s1, $zero,7
            or    $s1, $a1, $a1   #copy arg2 = size of array
            or    $s2, $a2, $a2   #copy arg3 = search key (n)
            addi  $s2, $zero,30
            COUNTLOOP:

            ...

for a complete example of a linear search loop try this (untested and expects that the assembler cares about the delay slots)

main:

            la  $a0,array            # $a0 = address of array
            lw  $a1,size             # $a1  = size of array
            lw  $a2,search           # $a2 = search key


            beq $a1, $zero, NOTFOUND # handle the size==0 case..
            or  $v0, $zero, $zero    # init counter to zero

LOOP:
            lw  $s0, 0($a0)          # load element
            beq $s0, $a2, FOUND      # branch if key found:

            addiu $a0, $a0, 4        # increment array pointer
            addiu $v0, $v0, 1        # increment loop counter
            bne   $v0, $a1, LOOP     # repeat until we've processed the array.

NOTFOUND:
            # --------------------------------------
            # if you reach this, key does not exist:
            # --------------------------------------
            li  $v0, -1              # load a -1 to signal key not found.
            jr  $lr                  # return to caller

FOUND:
            # -----------------------------------------
            # v0 now contains the position of the key.
            # -----------------------------------------
            jr  $lr
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Hey, I REALLY appreciate the help. This isn't quite a linear search, its just a problem from a book that adds another number, but that is irrelevant. I did go back and notice a few mistakes, but I was still have problems. My problems have revolved around this: la $a0,array #if this loads the address of the array into a0 and lw $s0,($a0) #should this not copy the address stored there to s0 I fixed this in my code by doing la $s0,($a0) The way I understood LW is it gets the value stored at that memory address and puts it in the register. So is this incorrect? It just stores the address? –  bep Feb 26 '10 at 5:31
    
la loads the address of a symbol. In your case it will contain the location of the arrays first element. lw loads the memory cell from memory and stores it in the destination register. la $s0, ($a0) makes no sense. la always takes a symbol from your code, never a register. –  Nils Pipenbrinck Feb 26 '10 at 5:38
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