9

Initially investigating the effect of the #pragma omp simd directive, I came across a behaviour that I cannot explain, related to the vectorization of a simple for loop. The following code sample can be tested on this awesome compiler explorer, provided the -O3 directive is applied and we're on the x86 architecture.

Could anybody explain me the logic behind the following observations ?

#include <stdint.h> 

void test(uint8_t* out, uint8_t const* in, uint32_t length)
{
    unsigned const l1 = (length * 32)/32;  // This is vectorized
    unsigned const l2 = (length / 32)*32;  // This is not vectorized

    unsigned const l3 = (length << 5)>>5;  // This is vectorized
    unsigned const l4 = (length >> 5)<<5;  // This is not vectorized

    unsigned const l5 = length -length%32; // This is not vectorized
    unsigned const l6 = length & ~(32 -1); // This is not vectorized

    for (unsigned i = 0; i<l1 /*pick your choice*/; ++i)
    {
      out[i] = in[i*2];
    }
}

What puzzles me is that both l1 and l3 generate vectorized code in spite of not beeing guaranteed to be multiples of 32. All of the other lengths do not produce vectorized code, but should be multiples of 32. Is there a reason behind this ?

As an aside, using the #pragma omp simd directive doesn't actually change anything.

Edit: After further investigation, the difference of behaviour disappears when the index type is size_t (and no boundary manipulation is even needed), meaning that this generates vectorized code :

#include <stdint.h> 
#include <string>

void test(uint8_t* out, uint8_t const* in, size_t length)
{
    for (size_t i = 0; i<length; ++i)
    {
        out[i] = in[i*2];
    }
}

If somebody know why the loop vectorizing is so dependent on the index type then, I'd be curious to know more !

Edit2, thanks to Mark Lakata, O3 is actually needed

  • In what could be seen as an extension of this question, the exact same behaviour is visible with Clang, so I'm guessing that there's some logic to it. – Benjamin Lefaudeux Jul 15 '16 at 10:55
  • 1
    It seems that the compiler is afraid that the index might wrap and gives up because of it :-( – Marc Glisse Jul 15 '16 at 14:08
  • The type dependence has been explained to me, linked to the risk of overflow (which prevents the vectorization). An unsigned overflow is allowed, while a signed overflow is not, which explains this last point. Using an unsigned and discarding the first bit (effectively killing the overflow risk) allows for vectorization, GCC is super smart : godbolt.org/g/SsVZ2r – Benjamin Lefaudeux Jul 15 '16 at 14:19
  • @BenjaminLefaudeux There are no signed types in the example. i*2 is always unsigned. And so is i<length. – 2501 Jul 15 '16 at 14:27
  • 1
    @BenjaminLefaudeux Please then consider accepting the answer that made this clear, which I presume is that by 2501. – underscore_d Jul 15 '16 at 16:24
4

The issue is apparent conversion1 from unsigned to size_t in the array index: in[i*2];

If you use l1 or l3 then the computation of i*2 will always fit into the type size_t. This means that the type unsigned practically behaves as if it were size_t.

But when you use the other options, the result of the computation i*2 can possibly not fit into size_t as the value might wrap and the conversion must be made.

if you take your first example, not choosing options l1 or l3, and do the cast:

out[i] = in[( size_t )i*2];

the compiler optimizes, if you cast the whole expression:

out[i] = in[( size_t )(i*2)];

it doesn't.


1 The Standard doesn't actually specify that the type in the index must be size_t, but it is a logical step from the compiler perspective.

  • I'm not sure indices get converted to size_t when dereferencing a pointer, though the possibility of overflow you talk about is still relevant – SirGuy Jul 15 '16 at 14:15
  • @GuyGreer According to the Standard they don't, see the update. – 2501 Jul 15 '16 at 14:16
  • 1
    I still disagree with the problem being in any sort of conversion from unsigned to size_t (which on a 32 bit machine is a no-op). Your answer makes much more sense to me stated in terms of dealing with wraparound and when the compiler can prove to itself that it won't happen. – SirGuy Jul 15 '16 at 14:19
  • @GuyGreer There is no conversion as far as C is concerned. I have clarified the wording. – 2501 Jul 15 '16 at 14:21
  • @GuyGreer I also believe that it's a wrapping issue : in the case of l1/l3, the left bits are killed, so the compiler knows that there will be no overflow with the *2 (I had no idea that they were so smart..), so vectorization can be enabled. I think that's the reason why, at least it connects all the dots on my side (also the type dependence) – Benjamin Lefaudeux Jul 15 '16 at 18:37
1

I believe you are confusing optimization with vectorization. I used your compiler explorer and set -O2 for x86, and none of the examples are "vectorized".

Here is l1

test(unsigned char*, unsigned char const*, unsigned int):
        xorl    %eax, %eax
        andl    $134217727, %edx
        je      .L1
.L5:
        movzbl  (%rsi,%rax,2), %ecx
        movb    %cl, (%rdi,%rax)
        addq    $1, %rax
        cmpl    %eax, %edx
        ja      .L5
.L1:
        rep ret

Here is l2

test(unsigned char*, unsigned char const*, unsigned int):
        andl    $-32, %edx
        je      .L1
        leal    -1(%rdx), %eax
        leaq    1(%rdi,%rax), %rcx
        xorl    %eax, %eax
.L4:
        movl    %eax, %edx
        addq    $1, %rdi
        addl    $2, %eax
        movzbl  (%rsi,%rdx), %edx
        movb    %dl, -1(%rdi)
        cmpq    %rcx, %rdi
        jne     .L4
.L1:
        rep ret

That is not surprising, because what you are doing is essentially a "gather" load operation, where the load indices are not the same as the store indices. There is no support in x86 for gather/scatter. It is only introduced in AVX2 and AVX512, and that is not selected.

The slightly longer code is dealing with the signed/unsigned issues, but there is no vectorization going on.

  • Thank for clarifying the vectorization. Can you elaborate on the signed/unsigned. The C source contains no signed types, so why would they be used in assembly? – 2501 Jul 16 '16 at 6:04
  • well, i don't really know, but I'm guessing it has to do with limitations of the indirect load movzbl(%rsi, %rax, 2), %ecx and that %rax has to be less than 32 bits otherwise the scale of 2 will overflow. But I could not find the answer quickly on google... – Mark Lakata Jul 16 '16 at 15:12
  • fwiw, there is one signed value in your code. The constant 2 is signed ... but that doesn't matter in this discussion. – Mark Lakata Jul 16 '16 at 15:14
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    my bad, -O3 vectorizes, I'll correct the question. The compiler can optimize the loads by increasing the word size and discarding the odd subparts, that's a valid "vectorization" which, while not being as nice as a native interleaved load, has been present on x86 for some time. As far as I'm concerned, the explanation dealing with the overflow risk explains everything – Benjamin Lefaudeux Jul 18 '16 at 7:22

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