Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How would I translate the following code into MIPS assembly language?

# include < stdio .h >
int fibRecursive ( int n )
{
   int answer ;
   if ( n < 2 ) {
   answer = n ;
   }
   else {
     answer = fibRecursive ( n - 1 ) + fibRecursive ( n - 2 ) ;
   }
   return answer ;
}

int main ( int argc , char * argv [] )
{
   int input = 10;
   int result = fibRecursive ( input ) ;
   printf ( " The %d - th Fibonacci number is % d .\ n " , input , result ) ;
   return 0;
}

Thanks for any help. I am having trouble with the line:

answer = fibRecursive ( n - 1 ) + fibRecursive ( n - 2 ) ;

Here is the MIPS I have so far:

fibRecursive:
addi $sp, $sp, -4
sw $ra, 0($sp)
addi $s0, $zero, 0
slti $t0, $a0, 2
beq $t0, $zero, ELSE
add $s0, $a0, $zero
j EXIT

ELSE:
addi $sp, $sp, -4
sw $a0, 0($sp)
addi $a0, $a0, -1
jal fibRecursive

EXIT:
add $v0, $zero, $s0
share|improve this question
1  
I think a compiler could help you with this task? –  Niklas B. Feb 11 '13 at 21:50
2  
It's your homework, do it yourself. –  Kevin Feb 11 '13 at 21:50
2  
@user1998581 do you know MIPS assembly language? –  shf301 Feb 11 '13 at 21:51
1  
gcc or armcc or whatever with the -S flag. Outputs a nice assembler file for you to look at. See how the compiler does it and then hand roll your own for work or homework if needed. –  Michael Dorgan Feb 11 '13 at 21:52
2  
@user1998581 There is no difference in calling a function "recursively" it's a call like every other call. The name of the label is just "by accident" the same as the label of the caller. –  junix Feb 11 '13 at 21:57

3 Answers 3

I would run a compiler (like GCC) with a flag set to emit assembler code. (e.g. for GCC you can use the -S option)

share|improve this answer
1  
how do I put a flag on the compiler? –  ola Feb 11 '13 at 21:53
1  
It will generate Intel Assembly, NOT MIPS! –  Blood Feb 11 '13 at 21:55
2  
@Blood Depends on the cross-compiler you invoke isn't it? –  junix Feb 11 '13 at 21:56
1  
mips compiler doesn't support this kind of things –  Blood Feb 11 '13 at 21:59
2  
@Blood: If you're not developing on a MIPS platform, you will most likely need a cross-compiler –  Niklas B. Feb 11 '13 at 22:19


// Swapped to MIPs syntax :)
main:
  jal function
  ...

function:
  // if code here
  // return value here
  jal function
  // gather answer into reg.
  jal function
  // add away
  // return value here
  ...

There, you now see how to have a recursive function be called twice in main. Cleaning up the end cases is left as an exercise for the user.

share|improve this answer
1  
answer = fibRecursive ( n - 1 ) + fibRecursive ( n - 2 ) is the line I am having trouble with not the main function –  ola Feb 11 '13 at 21:57
1  
Same thing... If you can call the function twice, gathering the answers into registers, then what's the problem. Here's I'll change the example slightly... –  Michael Dorgan Feb 11 '13 at 21:59
1  
Isn't that ARM assembly? Thought for MIPS it's JAL? –  junix Feb 11 '13 at 22:00
1  
I just don't understand where to put the second recursive call... I know I probably sound like an idiot but I am just learning this. I have added the code I have –  ola Feb 11 '13 at 22:04
1  
@MichaelDorgan I understand what you are saying now. I think I figured it out, thank you –  ola Feb 11 '13 at 22:14

Compiled to MIPS I get this .file 1 "c2mips.c"

 # -G value = 8, Cpu = 3000, ISA = 1
 # GNU C version cygnus-2.7.2-970404 (mips-mips-ecoff) compiled by GNU C version cygnus-2.7.2-970404.
 # options passed:  -msoft-float
 # options enabled:  -fpeephole -ffunction-cse -fkeep-static-consts
 # -fpcc-struct-return -fcommon -fverbose-asm -fgnu-linker -msoft-float
 # -meb -mcpu=3000

gcc2_compiled.:
__gnu_compiled_c:
    .text
    .align  2
    .globl  fibRecursive
    .ent    fibRecursive
fibRecursive:
    .frame  $fp,40,$31      # vars= 8, regs= 3/0, args= 16, extra= 0
    .mask   0xc0010000,-8
    .fmask  0x00000000,0
    subu    $sp,$sp,40
    sw  $31,32($sp)
    sw  $fp,28($sp)
    sw  $16,24($sp)
    move    $fp,$sp
    sw  $4,40($fp)
    lw  $2,40($fp)
    slt $3,$2,2
    beq $3,$0,$L2
    lw  $2,40($fp)
    sw  $2,16($fp)
    j   $L3
$L2:
    lw  $3,40($fp)
    addu    $2,$3,-1
    move    $4,$2
    jal fibRecursive
    move    $16,$2
    lw  $3,40($fp)
    addu    $2,$3,-2
    move    $4,$2
    jal fibRecursive
    addu    $3,$16,$2
    sw  $3,16($fp)
$L3:
    lw  $3,16($fp)
    move    $2,$3
    j   $L1
$L1:
    move    $sp,$fp         # sp not trusted here
    lw  $31,32($sp)
    lw  $fp,28($sp)
    lw  $16,24($sp)
    addu    $sp,$sp,40
    j   $31
    .end    fibRecursive
    .rdata
    .align  2
$LC0:
    .ascii  " The %d - th Fibonacci number is % d . n \000"
    .text
    .align  2
    .globl  main
    .ent    main
main:
    .frame  $fp,32,$31      # vars= 8, regs= 2/0, args= 16, extra= 0
    .mask   0xc0000000,-4
    .fmask  0x00000000,0
    subu    $sp,$sp,32
    sw  $31,28($sp)
    sw  $fp,24($sp)
    move    $fp,$sp
    sw  $4,32($fp)
    sw  $5,36($fp)
    jal __main
    li  $2,10           # 0x0000000a
    sw  $2,16($fp)
    lw  $4,16($fp)
    jal fibRecursive
    sw  $2,20($fp)
    la  $4,$LC0
    lw  $5,16($fp)
    lw  $6,20($fp)
    jal printf
    move    $2,$0
    j   $L4
$L4:
    move    $sp,$fp         # sp not trusted here
    lw  $31,28($sp)
    lw  $fp,24($sp)
    addu    $sp,$sp,32
    j   $31
    .end    main
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.