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I'd like to allocate 2d array (square matrix) using memalign with 16B instead of using just malloc.

I have

A =(float **) malloc( (*dim) * sizeof(float*));
for ( i = 0 ; i < (*dim) ; i++) {

    A[i] = (float*) malloc(sizeof(float)*(*dim));
}

how can I change code above with memalign.

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2 Answers 2

With malloc() you need to request 15 extra bytes and then round-up the returned pointer to the nearest multiple of 16, e.g.:

void* p = malloc(size + 15);
void* paligned;
if (!p) { /* handle errors */ }
paligned = (void*)(((size_t)p + 15) / 16 * 16);
/* use paligned */
free(p);
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Nice, platform independent answer –  Wayne Uroda Sep 26 '12 at 7:24

What you have here isn't really a 2D matrix, just a 1D array pointing at more 1D arrays.

Do you want something like this instead?

A = (float*) memalign(16, (*dim) * (*dim) * sizeof(float));

This will generate you a 1D array which is dim^2 elements long. This is how 2D arrays are usually used in C/C++ (unless you have a specific reason to use an array of pointers to other arrays).

I assume you wish to feed this array into some DSP function - It is hard to know more without knowing the function you are trying to use.

If you must have access to the array as A[x][y], you could do this:

float *aMemory = (float*) memalign(16, (*dim) * (*dim));
float **A = (float**) malloc(*dim * sizeof(float));
for (i = 0; i < *dim; i++)
{
    A[i] = &aMemory[*dim * i];
}

Now you can access the array aMemory through the array of pointers A, as

// A[row][column]
A[0][0] = 0.0f;
A[1][1] = 1.0f;

etc.

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I'm trying to do matrix transpose/5-point stencil/matirx multiplication on a square matrix and I thought to use intrinsic functions the array needs to be aligned. –  kiki Sep 26 '12 at 7:19
    
Maybe you should ask a question specific to the functions you are trying to use, you might get more useful information :) I am not sure what you mean by intrinsic functions. I am not even sure what platform/compiler/etc you are using. –  Wayne Uroda Sep 26 '12 at 7:26
    
If I declare it as float* with size of dim^2, will I be able to access the array with 2 index? for example, Can I still do A[x][y] even though A is declared as float *? –  kiki Sep 26 '12 at 7:26
    
No. You can't - you would need to do something like A[x+y*dim] - if you want your array to be in row-major order. –  Wayne Uroda Sep 26 '12 at 7:27
3  
If *dim is replaced with a constant (e.g. 5), one can declare a pointer to an array of floats: float (*A)[5];, allocate memory to it A=malloc(5*5*sizeof(float)+15), align it (as shown in my answer) and then use it as A[x][y]. Just one allocation, no loops. If the compiler supports VLAs (variable-length arrays), the constant 5 may be replaced back by a variable's value, *dim or some such. –  Alexey Frunze Sep 26 '12 at 7:31

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