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So, as the question asks, I am wondering how can i replace a specific character in MIPS?

I store the character I want to replace in $s0, using

addi $s0, $v0, 0

I store character I want to replace it with in $s1, using

addi $s1, $v0, 0

Now, my loop so far loops like this:

 la $t0, userInput

 replaceLoop:
 lbu $t2, 0($t0)    #load our input's first char is at
 addi $t0, $t0, 1   #increment address of our string.
 beq $t2, $s0, replace #check if char in input, matches
 beq $t2, $0, end      #char we want to replace.

So what it is supposed to do is first ask "Is the character i am currently pointing at in the userInput matching the character I want to replace?" If so, go to replace command. Question is, how would I write the replace? I am just beginning to learn MIPS, so any help would be appreciated.

Edit: Figured out the issue; redacted for now until turned in.

  • sb $s1, -1($t0); b replaceLoop; – EOF Apr 7 '16 at 1:02
  • Could you explain what it does and how it does it? – SomeStudent Apr 7 '16 at 1:03
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    sb is store byte, from the source (in this case $s1) to the address given. The address is one less than $t0, since you already incremented the address before the conditional branch. Afterwards, jump back to the beginning of the loop. – EOF Apr 7 '16 at 1:05
  • I see, now how would i then go about printing the final string? Would it be something like li $v0, 4 la $a0, final syscall li $v0, 4 la $a0, ($t0) #li $a1, 600 syscall – SomeStudent Apr 7 '16 at 1:08
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    @SomeStudent You must know that editing a question does not "redact" it. If you weren't supposed to post it here it's too late – Konrad Lindenbach Apr 7 '16 at 7:01
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The hint as the answer lies within the replaceLoop, and has to do with a missing bne that jumps back to our loop.

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