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I wanted to convert this C code into MIPS.

C Code:

f = A[B[h-g]]

We assume that h > g and B[h-g] > 0. h, g, f are integers.

Also assume that f is assigned to register $s0, g to $s1, h to $s2.

Base addresses of A -> $s6 and B -> $s7

Here is my attempt:

sub $t0, $s2, $s1                   
mult $t0, $t0, 4                     
lw $t0, $t0($s7)           
mult $t0, $t0, 4           
sw $s0, $t0($s6)
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What is your question ? Have you tested the code ? Does it work ? If not then what is the problem exactly ? –  Paul R Feb 6 '12 at 9:46
1  
its a school assignment to convert C into MIPS. I have just started MIPS so I am wondering whether I have done it correctly –  stud91 Feb 6 '12 at 9:51
    
You need to test the code and see if it works correctly. If not then you need to debug it. If you get stuck with any of this then come back with a specific question. –  Paul R Feb 6 '12 at 9:54
    
How can I test this code? –  stud91 Feb 6 '12 at 9:57
    
I guess you are using a simulator such as SPIM ? If you don't know how to use this yet then start with the user manual. –  Paul R Feb 6 '12 at 10:00

1 Answer 1

up vote 1 down vote accepted

It looks good, apart from the last line, which should most likely be:

lw $s0, $t0($s6)

Note that you should always comment your code, particularly so when it's asm, e.g.

sub $t0, $s2, $s1         ; t0 = h - g          
mult $t0, $t0, 4          ; t0 = (h - g) * sizeof(int) = byte index into B
lw $t0, $t0($s7)          ; t0 = B[h - g]
mult $t0, $t0, 4          ; t0 = B[h - g] * sizeof(int) = byte index into A
lw $s0, $t0($s6)          ; s0 = A[B[h - g]]

Note also that you should always test your code - I would recommend using a simulator such as SPIM for this.

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I would definitely try it. Thanks a for your help –  stud91 Feb 6 '12 at 10:51

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