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.

I am trying to implement SSE vectorization on a piece of code for which I need my 1D array to be 16 byte memory aligned. However, I have tried several ways to allocate 16byte memory aligned data but it ends up being 4byte memory aligned.

I have to work with the Intel icc compiler. This is a sample code I am testing with:

  #include <stdio.h>
  #include <stdlib.h>

  void error(char *str)
  {
   printf("Error:%s\n",str);
   exit(-1);
  }

  int main()
  {
   int i;
   //float *A=NULL;
   float *A = (float*) memalign(16,20*sizeof(float));

   //align
   // if (posix_memalign((void **)&A, 16, 20*sizeof(void*)) != 0)
   //   error("Cannot align");

    for(i = 0; i < 20; i++)
       printf("&A[%d] = %p\n",i,&A[i]);

        free(A);

         return 0;
   }

This is the output I get:

 &A[0] = 0x11fe010
 &A[1] = 0x11fe014
 &A[2] = 0x11fe018
 &A[3] = 0x11fe01c
 &A[4] = 0x11fe020
 &A[5] = 0x11fe024
 &A[6] = 0x11fe028
 &A[7] = 0x11fe02c
 &A[8] = 0x11fe030
 &A[9] = 0x11fe034
 &A[10] = 0x11fe038
 &A[11] = 0x11fe03c
 &A[12] = 0x11fe040
 &A[13] = 0x11fe044
 &A[14] = 0x11fe048
 &A[15] = 0x11fe04c
 &A[16] = 0x11fe050
 &A[17] = 0x11fe054
 &A[18] = 0x11fe058
 &A[19] = 0x11fe05c

It is 4byte aligned everytime, i have used both memalign, posix memalign. Since I am working on Linux, I cannot use _mm_malloc neither can I use _aligned_malloc. I get a memory corruption error when I try to use _aligned_attribute (which is suitable for gcc alone I think).

Can anyone assist me in accurately generating 16byte memory aligned data for icc on linux platform.

share|improve this question
    
How do you know it is 4 byte aligned, simply because printf is only outputting 4 bytes at a time? Just because you are using the memalign routine, you are putting it into a float type. When you print using printf, it knows how to process through it's primitive type (float). –  trumpetlicks Jun 18 '12 at 14:05
    
Why can't you use "_mm_malloc" on Linux? –  Z boson Oct 28 '13 at 7:32

5 Answers 5

up vote 8 down vote accepted

The memory you allocate is 16-byte aligned. See:
&A[0] = 0x11fe010
But in an array of float, each element is 4 bytes, so the second is 4-byte aligned.

You can use an array of structures, each containing a single float, with the aligned attribute:

struct x {
    float y;
} __attribute__((aligned(16)));
struct x *A = memalign(...);
share|improve this answer
    
I think __attribute__ is a GCC's builtin, not available for ICC. –  Benoit Jun 18 '12 at 14:12
    
@Benoit, GCC specific indeed, but I think ICC does support it. See here –  ugoren Jun 18 '12 at 14:32
    
@Benoit: If you need to align a struct on 16, just add 12 bytes of padding at the end... –  user405725 Jun 18 '12 at 14:32
    
@VladLazarenko, Works, but not nice and portable. If, in some compiler, float is changed, you'll have bad alignment again. –  ugoren Jun 18 '12 at 14:36
    
@ugoren: For that reason you could add a static assertion, disable padding for a structure, etc. __attribute__((aligned(16))) doesn't really work with gcc, and is not portable either. –  user405725 Jun 18 '12 at 14:40

The address returned by memalign function is 0x11fe010, which is a multiple of 0x10. So the function is doing a right thing. This also means that your array is properly aligned on a 16-byte boundary. What you are doing later is printing an address of every next element of type float in your array. Since float size is exactly 4 bytes in your case, every next address will be equal to the previous one +4. For instance, 0x11fe010 + 0x4 = 0x11FE014. Of course, address 0x11FE014 is not a multiple of 0x10. If you were to align all floats on 16 byte boundary, then you will have to waste 16 / 4 - 1 bytes per element. Double-check the requirements for the intrinsics that you are using.

share|improve this answer

I found this code on Wikipedia:

Example: get a 12bit aligned 4KBytes buffer with malloc()

// unaligned pointer to large area
void *up=malloc((1<<13)-1);
// well aligned pointer to 4KBytes
void *ap=aligntonext(up,12);

where aligntonext() is meant as: 
move p to the right until next well aligned address if
not correct already. A possible implementation is

// PSEUDOCODE assumes uint32_t p,bits; for readability
// --- not typesafe, not side-effect safe
#define alignto(p,bits) (p>>bits<<bits)
#define aligntonext(p,bits) alignto((p+(1<<bits)-1),bits)
share|improve this answer

AFAIK, both memalign and posix_memalign are doing their job.

&A[0] = 0x11fe010

This is aligned to 16 byte.

&A[1] = 0x11fe014

When you do &A[1] you are telling the compiller to add one position to a float pointer. It will unavoidably lead to:

&A[0] + sizeof( float ) = 0x11fe010 + 4 = 0x11fe014

If you intend to have every element inside your vector aligned to 16 bytes, you should consider declaring an array of structures that are 16 byte wide.

struct float_16byte
{
    float data;
    float padding[ 3 ];
}
    A[ ELEMENT_COUNT ];

Then you must allocate memory for ELEMENT_COUNT (20, in your example) variables:

struct float_16byte *A = ( struct float_16byte * )memalign( 16, ELEMENT_COUNT * sizeof( struct float_16byte ) );
share|improve this answer

I personally believe your code is correct and is suitable for Intel SSE code. When you load data into an XMM register, I believe the processor can only load 4 contiguous float data from main memory with the first one aligned by 16 byte.

In short, I believe what you have done is exactly what you want.

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.