| 123456789101112131415161718192021222324252627282930313233343536373839404142434445464748495051525354555657585960616263646566676869707172737475767778798081828384858687888990919293949596979899100101102103104105106107108109110111112113114115116117118119120121122123124125126127128129130131132133134135136137138139140141142143144145146147148149150151152153154155156157158159160161162163164165166167168169170171172173174175176177178179180181182183184185186187188189190191192193194195196197198199200201202203204205206207208209210211212213214215216217218219220221222223224225226227228229230231232233234235236237238239240241242243244245246247248249250251252253254255256257258259260261262263264265266267268269270271272273274275276277278279280281282283284285286287288289290291292293294295296297298299300301302303304305306307308309310311312313314315316317318319320321322323324325326327328329330331332333334335336 | /* StarPU --- Runtime system for heterogeneous multicore architectures. * * Copyright (C) 2012-2014  Université de Bordeaux * Copyright (C) 2010, 2011, 2012, 2013, 2015  CNRS * * StarPU is free software; you can redistribute it and/or modify * it under the terms of the GNU Lesser General Public License as published by * the Free Software Foundation; either version 2.1 of the License, or (at * your option) any later version. * * StarPU is distributed in the hope that it will be useful, but * WITHOUT ANY WARRANTY; without even the implied warranty of * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. * * See the GNU Lesser General Public License in COPYING.LGPL for more details. *//* * This examplifies the use of the 3D matrix shadow filters: a source "matrix" of * NX*NY*NZ elements (plus SHADOW wrap-around elements) is partitioned into * matrices with some shadowing, and these are copied into a destination * "matrix2" of * NRPARTSX*NPARTSY*NPARTSZ*((NX/NPARTSX+2*SHADOWX)*(NY/NPARTSY+2*SHADOWY)*(NZ/NPARTSZ+2*SHADOWZ)) * elements, partitioned in the traditionnal way, thus showing how shadowing * shows up. */#include <starpu.h>/* Shadow width */#define SHADOWX 2#define SHADOWY 3#define SHADOWZ 4#define NX    12#define NY    9#define NZ    6#define PARTSX 4#define PARTSY 3#define PARTSZ 2#define FPRINTF(ofile, fmt, ...) do { if (!getenv("STARPU_SSILENT")) {fprintf(ofile, fmt, ## __VA_ARGS__); }} while(0)void cpu_func(void *buffers[], void *cl_arg){        /* length of the shadowed source matrix */        unsigned ldy = STARPU_BLOCK_GET_LDY(buffers[0]);        unsigned ldz = STARPU_BLOCK_GET_LDZ(buffers[0]);        unsigned x = STARPU_BLOCK_GET_NX(buffers[0]);        unsigned y = STARPU_BLOCK_GET_NY(buffers[0]);        unsigned z = STARPU_BLOCK_GET_NZ(buffers[0]);        /* local copy of the shadowed source matrix pointer */        int *val = (int *)STARPU_BLOCK_GET_PTR(buffers[0]);        /* length of the destination matrix */        unsigned ldy2 = STARPU_BLOCK_GET_LDY(buffers[1]);        unsigned ldz2 = STARPU_BLOCK_GET_LDZ(buffers[1]);        unsigned x2 = STARPU_BLOCK_GET_NX(buffers[1]);        unsigned y2 = STARPU_BLOCK_GET_NY(buffers[1]);        unsigned z2 = STARPU_BLOCK_GET_NZ(buffers[1]);        /* local copy of the destination matrix pointer */        int *val2 = (int *)STARPU_BLOCK_GET_PTR(buffers[1]);	unsigned i, j, k;	/* If things go right, sizes should match */	STARPU_ASSERT(x == x2);	STARPU_ASSERT(y == y2);	STARPU_ASSERT(z == z2);	for (k = 0; k < z; k++)		for (j = 0; j < y; j++)			for (i = 0; i < x; i++)				val2[k*ldz2+j*ldy2+i] = val[k*ldz+j*ldy+i];}#ifdef STARPU_USE_CUDAvoid cuda_func(void *buffers[], void *cl_arg){        /* length of the shadowed source matrix */        unsigned ldy = STARPU_BLOCK_GET_LDY(buffers[0]);        unsigned ldz = STARPU_BLOCK_GET_LDZ(buffers[0]);        unsigned x = STARPU_BLOCK_GET_NX(buffers[0]);        unsigned y = STARPU_BLOCK_GET_NY(buffers[0]);        unsigned z = STARPU_BLOCK_GET_NZ(buffers[0]);        /* local copy of the shadowed source matrix pointer */        int *val = (int *)STARPU_BLOCK_GET_PTR(buffers[0]);        /* length of the destination matrix */        unsigned ldy2 = STARPU_BLOCK_GET_LDY(buffers[1]);        unsigned ldz2 = STARPU_BLOCK_GET_LDZ(buffers[1]);        unsigned x2 = STARPU_BLOCK_GET_NX(buffers[1]);        unsigned y2 = STARPU_BLOCK_GET_NY(buffers[1]);        unsigned z2 = STARPU_BLOCK_GET_NZ(buffers[1]);        /* local copy of the destination matrix pointer */        int *val2 = (int *)STARPU_BLOCK_GET_PTR(buffers[1]);	unsigned k;	cudaError_t cures;	/* If things go right, sizes should match */	STARPU_ASSERT(x == x2);	STARPU_ASSERT(y == y2);	STARPU_ASSERT(z == z2);	for (k = 0; k < z; k++)	{		cures = cudaMemcpy2DAsync(val2+k*ldz2, ldy2*sizeof(*val2), val+k*ldz, ldy*sizeof(*val),				x*sizeof(*val), y, cudaMemcpyDeviceToDevice, starpu_cuda_get_local_stream());		STARPU_ASSERT(!cures);	}}#endifint main(int argc, char **argv){	unsigned i, j, k, l, m, n;        int matrix[NZ + 2*SHADOWZ][NY + 2*SHADOWY][NX + 2*SHADOWX];        int matrix2[NZ + PARTSZ*2*SHADOWZ][NY + PARTSY*2*SHADOWY][NX + PARTSX*2*SHADOWX];	starpu_data_handle_t handle, handle2;	int ret;        struct starpu_codelet cl =	{                .cpu_funcs = {cpu_func},                .cpu_funcs_name = {"cpu_func"},#ifdef STARPU_USE_CUDA                .cuda_funcs = {cuda_func},		.cuda_flags = {STARPU_CUDA_ASYNC},#endif                .nbuffers = 2,		.modes = {STARPU_R, STARPU_W}        };	memset(matrix, -1, sizeof(matrix));	for(k=1 ; k<=NZ ; k++)		for(j=1 ; j<=NY ; j++)			for(i=1 ; i<=NX ; i++)				matrix[SHADOWZ+k-1][SHADOWY+j-1][SHADOWX+i-1] = i+j+k;	/* Copy planes */	for (k = SHADOWZ ; k<SHADOWZ+NZ ; k++)		for (j = SHADOWY ; j<SHADOWY+NY ; j++)			for(i=0 ; i<SHADOWX ; i++)			{				matrix[k][j][i] = matrix[k][j][i+NX];				matrix[k][j][SHADOWX+NX+i] = matrix[k][j][SHADOWX+i];			}	for(k=SHADOWZ ; k<SHADOWZ+NZ ; k++)		for(j=0 ; j<SHADOWY ; j++)			for(i=SHADOWX ; i<SHADOWX+NX ; i++)			{				matrix[k][j][i] = matrix[k][j+NY][i];				matrix[k][SHADOWY+NY+j][i] = matrix[k][SHADOWY+j][i];			}	for(k=0 ; k<SHADOWZ ; k++)		for(j=SHADOWY ; j<SHADOWY+NY ; j++)			for(i=SHADOWX ; i<SHADOWX+NX ; i++)			{				matrix[k][j][i] = matrix[k+NZ][j][i];				matrix[SHADOWZ+NZ+k][j][i] = matrix[SHADOWZ+k][j][i];			}	/* Copy borders */	for (k = SHADOWZ ; k<SHADOWZ+NZ ; k++)		for(j=0 ; j<SHADOWY ; j++)			for(i=0 ; i<SHADOWX ; i++)			{				matrix[k][j][i] = matrix[k][j+NY][i+NX];				matrix[k][SHADOWY+NY+j][i] = matrix[k][SHADOWY+j][i+NX];				matrix[k][SHADOWY+NY+j][SHADOWX+NX+i] = matrix[k][SHADOWY+j][SHADOWX+i];				matrix[k][j][SHADOWX+NX+i] = matrix[k][j+NY][SHADOWX+i];			}	for(k=0 ; k<SHADOWZ ; k++)		for (j = SHADOWY ; j<SHADOWY+NY ; j++)			for(i=0 ; i<SHADOWX ; i++)			{				matrix[k][j][i] = matrix[k+NZ][j][i+NX];				matrix[SHADOWZ+NZ+k][j][i] = matrix[SHADOWZ+k][j][i+NX];				matrix[SHADOWZ+NZ+k][j][SHADOWX+NX+i] = matrix[SHADOWZ+k][j][SHADOWX+i];				matrix[k][j][SHADOWX+NX+i] = matrix[k+NZ][j][SHADOWX+i];			}	for(k=0 ; k<SHADOWZ ; k++)		for(j=0 ; j<SHADOWY ; j++)			for(i=SHADOWX ; i<SHADOWX+NX ; i++)			{				matrix[k][j][i] = matrix[k+NZ][j+NY][i];				matrix[SHADOWZ+NZ+k][j][i] = matrix[SHADOWZ+k][j+NY][i];				matrix[SHADOWZ+NZ+k][SHADOWY+NY+j][i] = matrix[SHADOWZ+k][SHADOWY+j][i];				matrix[k][SHADOWY+NY+j][i] = matrix[k+NZ][SHADOWY+j][i];			}	/* Copy corners */	for(k=0 ; k<SHADOWZ ; k++)		for(j=0 ; j<SHADOWY ; j++)			for(i=0 ; i<SHADOWX ; i++)			{				matrix[k][j][i] = matrix[k+NZ][j+NY][i+NX];				matrix[k][j][SHADOWX+NX+i] = matrix[k+NZ][j+NY][SHADOWX+i];				matrix[k][SHADOWY+NY+j][i] = matrix[k+NZ][SHADOWY+j][i+NX];				matrix[k][SHADOWY+NY+j][SHADOWX+NX+i] = matrix[k+NZ][SHADOWY+j][SHADOWX+i];				matrix[SHADOWZ+NZ+k][j][i] = matrix[SHADOWZ+k][j+NY][i+NX];				matrix[SHADOWZ+NZ+k][j][SHADOWX+NX+i] = matrix[SHADOWZ+k][j+NY][SHADOWX+i];				matrix[SHADOWZ+NZ+k][SHADOWY+NY+j][i] = matrix[SHADOWZ+k][SHADOWY+j][i+NX];				matrix[SHADOWZ+NZ+k][SHADOWY+NY+j][SHADOWX+NX+i] = matrix[SHADOWZ+k][SHADOWY+j][SHADOWX+i];			}        FPRINTF(stderr,"IN  Matrix:\n");	for(k=0 ; k<NZ + 2*SHADOWZ ; k++)	{		for(j=0 ; j<NY + 2*SHADOWY ; j++)		{			for(i=0 ; i<NX + 2*SHADOWX ; i++)				FPRINTF(stderr, "%5d ", matrix[k][j][i]);			FPRINTF(stderr,"\n");		}		FPRINTF(stderr,"\n\n");	}        FPRINTF(stderr,"\n");	ret = starpu_init(NULL);	if (ret == -ENODEV)		exit(77);	STARPU_CHECK_RETURN_VALUE(ret, "starpu_init");	/* Declare source matrix to StarPU */	starpu_block_data_register(&handle, STARPU_MAIN_RAM, (uintptr_t)matrix,			NX + 2*SHADOWX, (NX + 2*SHADOWX) * (NY + 2*SHADOWY),			NX + 2*SHADOWX, NY + 2*SHADOWY, NZ + 2*SHADOWZ,			sizeof(matrix[0][0][0]));	/* Declare destination matrix to StarPU */	starpu_block_data_register(&handle2, STARPU_MAIN_RAM, (uintptr_t)matrix2,			NX + PARTSX*2*SHADOWX, (NX + PARTSX*2*SHADOWX) * (NY + PARTSY*2*SHADOWY),			NX + PARTSX*2*SHADOWX, NY + PARTSY*2*SHADOWY, NZ + PARTSZ*2*SHADOWZ,			sizeof(matrix2[0][0][0]));        /* Partition the source matrix in PARTSZ*PARTSY*PARTSX sub-matrices with shadows */	/* NOTE: the resulting handles should only be used in read-only mode,	 * as StarPU will not know how the overlapping parts would have to be	 * combined. */	struct starpu_data_filter fz =	{		.filter_func = starpu_block_filter_depth_block_shadow,		.nchildren = PARTSZ,		.filter_arg_ptr = (void*)(uintptr_t) SHADOWZ /* Shadow width */	};	struct starpu_data_filter fy =	{		.filter_func = starpu_block_filter_vertical_block_shadow,		.nchildren = PARTSY,		.filter_arg_ptr = (void*)(uintptr_t) SHADOWY /* Shadow width */	};	struct starpu_data_filter fx =	{		.filter_func = starpu_block_filter_block_shadow,		.nchildren = PARTSX,		.filter_arg_ptr = (void*)(uintptr_t) SHADOWX /* Shadow width */	};	starpu_data_map_filters(handle, 3, &fz, &fy, &fx);        /* Partition the destination matrix in PARTSZ*PARTSY*PARTSX sub-matrices */	struct starpu_data_filter fz2 =	{		.filter_func = starpu_block_filter_depth_block,		.nchildren = PARTSZ,	};	struct starpu_data_filter fy2 =	{		.filter_func = starpu_block_filter_vertical_block,		.nchildren = PARTSY,	};	struct starpu_data_filter fx2 =	{		.filter_func = starpu_block_filter_block,		.nchildren = PARTSX,	};	starpu_data_map_filters(handle2, 3, &fz2, &fy2, &fx2);        /* Submit a task on each sub-matrix */	for (k=0; k<PARTSZ; k++)	{		for (j=0; j<PARTSY; j++)		{			for (i=0; i<PARTSX; i++)			{				starpu_data_handle_t sub_handle = starpu_data_get_sub_data(handle, 3, k, j, i);				starpu_data_handle_t sub_handle2 = starpu_data_get_sub_data(handle2, 3, k, j, i);				struct starpu_task *task = starpu_task_create();				task->handles[0] = sub_handle;				task->handles[1] = sub_handle2;				task->cl = &cl;				task->synchronous = 1;				ret = starpu_task_submit(task);				if (ret == -ENODEV) goto enodev;				STARPU_CHECK_RETURN_VALUE(ret, "starpu_task_submit");			}		}	}	starpu_data_unpartition(handle, STARPU_MAIN_RAM);	starpu_data_unpartition(handle2, STARPU_MAIN_RAM);        starpu_data_unregister(handle);        starpu_data_unregister(handle2);	starpu_shutdown();        FPRINTF(stderr,"OUT Matrix:\n");	for(k=0 ; k<NZ + PARTSZ*2*SHADOWZ ; k++)	{		for(j=0 ; j<NY + PARTSY*2*SHADOWY ; j++)		{			for(i=0 ; i<NX + PARTSX*2*SHADOWX ; i++)			{				FPRINTF(stderr, "%5d ", matrix2[k][j][i]);			}			FPRINTF(stderr,"\n");		}		FPRINTF(stderr,"\n\n");	}        FPRINTF(stderr,"\n");	for(k=0 ; k<PARTSZ ; k++)		for(j=0 ; j<PARTSY ; j++)			for(i=0 ; i<PARTSX ; i++)				for (n=0 ; n<NZ/PARTSZ + 2*SHADOWZ ; n++)					for (m=0 ; m<NY/PARTSY + 2*SHADOWY ; m++)						for (l=0 ; l<NX/PARTSX + 2*SHADOWX ; l++)							STARPU_ASSERT(matrix2[k*(NZ/PARTSZ+2*SHADOWZ)+n][j*(NY/PARTSY+2*SHADOWY)+m][i*(NX/PARTSX+2*SHADOWX)+l] ==									matrix[k*(NZ/PARTSZ)+n][j*(NY/PARTSY)+m][i*(NX/PARTSX)+l]);	return 0;enodev:	FPRINTF(stderr, "WARNING: No one can execute this task\n");	starpu_shutdown();	return 77;}
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