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In the gcc 4.4.6 docs it is stated:

-funroll-all-loops:
Unroll all loops, even if their number of iterations is uncertain 
when the loop isentered. 

I am compiling this code:

int unroll(){
  int i = 0;
  int array[1000];
  do {
    use(i,array);
    i++;
  }while(i<1000);
  return(0);
}

void use(int i, int *array){
   int x = i*5;
   array[i] = x;
}

...once with the funroll-all-loops optimizations, once without:

OPT = -funroll-all-loops
NOOPT = -O0

Then I use diff to compare the assembly code of each (produced using -S -fverbose-asm).

The produced code is identical.

Tried changing the loop to a do while; adjusting the loop counter (up to 100); changing the statements within the loop body.

What could I be missing? Why is this loop not being unrolled?

Update

Nikos C suggested to raise the loop enroll parameter using --param max-unroll-times=N where N is the upper limit. While that was a sensible suggestion, it did not change behaviour. I also lowered the loop iterations to only 10. Also updated the code to actually 'do' something, no change.

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-O0 tells gcc not to apply any optimizations, which would include unrolling. Try -O or -O2. –  Kevin Nov 12 '12 at 1:09
    
I think the NOOPT = -O0 indicates a control case (i.e., the one expected not to have unrolled loops). –  jpm Nov 12 '12 at 1:09
    
yes that is done intentionally. NOOPT is the flag used to generate the assembly code for comparison w/o loop unrolling. –  franka Nov 12 '12 at 1:10
    
Try forcing the compiler to inline use(). There is generally no reason at all to unroll loops that have function calls. –  Mysticial Nov 12 '12 at 1:14
    
Yet another If I disable optimization, why doesn't gcc optimize? question. –  hirschhornsalz Nov 12 '12 at 2:04

1 Answer 1

up vote 3 down vote accepted

Because you have disabled all other optimizations in your "OPT" case, you tell to compiler to unroll all loops and then deny him the means to do so, like loop induction etc. Try

NOOPT = -O2
OPT = -O2 -funroll-all-loops

If I translate the snippet (changed slightly to an extern function to avoid any inlining and dead code elimination)

void use(int i, int *array);

int unroll(){
  int i = 0;
  int array[1000];
  do {
    use(i,array);
    i++;
  }while(i<1000);
  return(0);
}

with gcc -O2 -funroll-all-loops test.c -o test2.o -c, the resulting object code is unrolled eight times:

  0000000000000000 <unroll>:
  0:   53                      push   %rbx
  1:   31 db                   xor    %ebx,%ebx
  3:   48 81 ec a0 0f 00 00    sub    $0xfa0,%rsp
  a:   66 0f 1f 44 00 00       nopw   0x0(%rax,%rax,1)
  10:   89 df                   mov    %ebx,%edi
  12:   48 89 e6                mov    %rsp,%rsi
  15:   e8 00 00 00 00          callq  1a <unroll+0x1a>
  1a:   8d 7b 01                lea    0x1(%rbx),%edi
  1d:   48 89 e6                mov    %rsp,%rsi
  20:   e8 00 00 00 00          callq  25 <unroll+0x25>
  25:   8d 7b 02                lea    0x2(%rbx),%edi
  28:   48 89 e6                mov    %rsp,%rsi
  2b:   e8 00 00 00 00          callq  30 <unroll+0x30>
  30:   8d 7b 03                lea    0x3(%rbx),%edi
  33:   48 89 e6                mov    %rsp,%rsi
  36:   e8 00 00 00 00          callq  3b <unroll+0x3b>
  3b:   8d 7b 04                lea    0x4(%rbx),%edi
  3e:   48 89 e6                mov    %rsp,%rsi
  41:   e8 00 00 00 00          callq  46 <unroll+0x46>
  46:   8d 7b 05                lea    0x5(%rbx),%edi
  49:   48 89 e6                mov    %rsp,%rsi
  4c:   e8 00 00 00 00          callq  51 <unroll+0x51>
  51:   8d 7b 06                lea    0x6(%rbx),%edi
  54:   48 89 e6                mov    %rsp,%rsi
  57:   e8 00 00 00 00          callq  5c <unroll+0x5c>
  5c:   8d 7b 07                lea    0x7(%rbx),%edi
  5f:   48 89 e6                mov    %rsp,%rsi
  62:   83 c3 08                add    $0x8,%ebx
  65:   e8 00 00 00 00          callq  6a <unroll+0x6a>
  6a:   81 fb e8 03 00 00       cmp    $0x3e8,%ebx
  70:   75 9e                   jne    10 <unroll+0x10>
  72:   48 81 c4 a0 0f 00 00    add    $0xfa0,%rsp
  79:   31 c0                   xor    %eax,%eax
  7b:   5b                      pop    %rbx
  7c:   c3                      retq   
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