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with public repo commit id 565fa3853b.
Change-Id: I68b9824b110cf14df248217a24a6191b3df79d42
631 lines
19 KiB
C
631 lines
19 KiB
C
/*
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BLIS
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An object-based framework for developing high-performance BLAS-like
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libraries.
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Copyright (C) 2014, The University of Texas at Austin
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Copyright (C) 2018 - 2019, Advanced Micro Devices, Inc.
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Redistribution and use in source and binary forms, with or without
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modification, are permitted provided that the following conditions are
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met:
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- Redistributions of source code must retain the above copyright
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notice, this list of conditions and the following disclaimer.
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- Redistributions in binary form must reproduce the above copyright
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notice, this list of conditions and the following disclaimer in the
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documentation and/or other materials provided with the distribution.
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- Neither the name(s) of the copyright holder(s) nor the names of its
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contributors may be used to endorse or promote products derived
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from this software without specific prior written permission.
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THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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"AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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(INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#include "blis.h"
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thrinfo_t* bli_thrinfo_create
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(
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rntm_t* rntm,
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thrcomm_t* ocomm,
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dim_t ocomm_id,
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dim_t n_way,
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dim_t work_id,
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bool_t free_comm,
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bszid_t bszid,
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thrinfo_t* sub_node
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)
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{
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#ifdef BLIS_ENABLE_MEM_TRACING
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printf( "bli_thrinfo_create(): " );
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#endif
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thrinfo_t* thread = bli_sba_acquire( rntm, sizeof( thrinfo_t ) );
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bli_thrinfo_init
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(
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thread,
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ocomm, ocomm_id,
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n_way, work_id,
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free_comm,
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bszid,
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sub_node
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);
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return thread;
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}
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void bli_thrinfo_init
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(
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thrinfo_t* thread,
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thrcomm_t* ocomm,
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dim_t ocomm_id,
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dim_t n_way,
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dim_t work_id,
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bool_t free_comm,
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bszid_t bszid,
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thrinfo_t* sub_node
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)
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{
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thread->ocomm = ocomm;
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thread->ocomm_id = ocomm_id;
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thread->n_way = n_way;
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thread->work_id = work_id;
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thread->free_comm = free_comm;
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thread->bszid = bszid;
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thread->sub_prenode = NULL;
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thread->sub_node = sub_node;
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}
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void bli_thrinfo_init_single
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(
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thrinfo_t* thread
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)
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{
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bli_thrinfo_init
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(
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thread,
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&BLIS_SINGLE_COMM, 0,
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1,
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0,
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FALSE,
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BLIS_NO_PART,
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thread
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);
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}
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void bli_thrinfo_free
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(
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rntm_t* rntm,
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thrinfo_t* thread
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)
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{
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if ( thread == NULL ||
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thread == &BLIS_PACKM_SINGLE_THREADED ||
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thread == &BLIS_GEMM_SINGLE_THREADED
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) return;
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thrinfo_t* thrinfo_sub_prenode = bli_thrinfo_sub_prenode( thread );
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thrinfo_t* thrinfo_sub_node = bli_thrinfo_sub_node( thread );
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// Recursively free all children of the current thrinfo_t.
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if ( thrinfo_sub_prenode != NULL )
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{
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bli_thrinfo_free( rntm, thrinfo_sub_prenode );
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}
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// Recursively free all children of the current thrinfo_t.
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if ( thrinfo_sub_node != NULL )
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{
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bli_thrinfo_free( rntm, thrinfo_sub_node );
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}
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// Free the communicators, but only if the current thrinfo_t struct
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// is marked as needing them to be freed. The most common example of
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// thrinfo_t nodes NOT marked as needing their comms freed are those
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// associated with packm thrinfo_t nodes.
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if ( bli_thrinfo_needs_free_comm( thread ) )
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{
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// The ochief always frees his communicator.
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if ( bli_thread_am_ochief( thread ) )
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bli_thrcomm_free( rntm, bli_thrinfo_ocomm( thread ) );
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}
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#ifdef BLIS_ENABLE_MEM_TRACING
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printf( "bli_thrinfo_free(): " );
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#endif
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// Free the thrinfo_t struct.
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bli_sba_release( rntm, thread );
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}
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// -----------------------------------------------------------------------------
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void bli_thrinfo_grow
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(
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rntm_t* rntm,
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cntl_t* cntl,
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thrinfo_t* thread
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)
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{
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// First, consider the prenode branch of the thrinfo_t tree, which should be
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// expanded only if there exists a prenode branch in the cntl_t tree.
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if ( bli_cntl_sub_prenode( cntl ) != NULL )
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{
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// We only need to take action if the thrinfo_t sub-node is NULL; if it
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// is non-NULL, then it has already been created and we'll use it as-is.
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if ( bli_thrinfo_sub_prenode( thread ) == NULL )
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{
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// Assertion / sanity check.
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if ( bli_cntl_bszid( cntl ) != BLIS_MC )
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{
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printf( "Assertion failed: Expanding prenode for non-IC loop?\n" );
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bli_abort();
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}
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// Now we must create the packa, jr, and ir nodes that make up
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// the prenode branch of current cntl_t node.
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// Create a new node (or, if needed, multiple nodes) along the
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// prenode branch of the tree and return the pointer to the
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// (highest) child.
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thrinfo_t* thread_prenode = bli_thrinfo_rgrow_prenode
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(
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rntm,
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cntl,
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bli_cntl_sub_prenode( cntl ),
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thread
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);
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// Attach the child thrinfo_t node for the secondary branch to its
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// parent structure.
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bli_thrinfo_set_sub_prenode( thread_prenode, thread );
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}
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}
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// Now, grow the primary branch of the thrinfo_t tree.
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// NOTE: If bli_thrinfo_rgrow() is being called, the sub_node field will
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// always be non-NULL, and so there's no need to check it.
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//if ( bli_cntl_sub_node( cntl ) != NULL )
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{
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// We only need to take action if the thrinfo_t sub-node is NULL; if it
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// is non-NULL, then it has already been created and we'll use it as-is.
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if ( bli_thrinfo_sub_node( thread ) == NULL )
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{
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// Create a new node (or, if needed, multiple nodes) along the
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// main sub-node branch of the tree and return the pointer to the
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// (highest) child.
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thrinfo_t* thread_child = bli_thrinfo_rgrow
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(
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rntm,
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cntl,
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bli_cntl_sub_node( cntl ),
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thread
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);
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// Attach the child thrinfo_t node for the primary branch to its
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// parent structure.
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bli_thrinfo_set_sub_node( thread_child, thread );
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}
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}
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}
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// -----------------------------------------------------------------------------
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thrinfo_t* bli_thrinfo_rgrow
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(
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rntm_t* rntm,
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cntl_t* cntl_par,
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cntl_t* cntl_cur,
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thrinfo_t* thread_par
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)
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{
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thrinfo_t* thread_cur;
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// We must handle two cases: those where the next node in the
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// control tree is a partitioning node, and those where it is
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// a non-partitioning (ie: packing) node.
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if ( bli_cntl_bszid( cntl_cur ) != BLIS_NO_PART )
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{
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// Create the child thrinfo_t node corresponding to cntl_cur,
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// with cntl_par being the parent.
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thread_cur = bli_thrinfo_create_for_cntl
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(
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rntm,
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cntl_par,
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cntl_cur,
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thread_par
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);
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}
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else // if ( bli_cntl_bszid( cntl_cur ) == BLIS_NO_PART )
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{
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// Recursively grow the thread structure and return the top-most
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// thrinfo_t node of that segment.
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thrinfo_t* thread_seg = bli_thrinfo_rgrow
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(
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rntm,
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cntl_par,
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bli_cntl_sub_node( cntl_cur ),
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thread_par
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);
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// Create a thrinfo_t node corresponding to cntl_cur. Since the
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// corresponding cntl node, cntl_cur, is a non-partitioning node
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// (bszid = BLIS_NO_PART), this means it's a packing node. Packing
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// thrinfo_t nodes are formed differently than those corresponding to
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// partitioning nodes; specifically, their work_id's are set equal to
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// the their comm_id's. Also, notice that the free_comm field is set
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// to FALSE since cntl_cur is a non-partitioning node. The reason:
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// the communicator used here will be freed when thread_seg, or one
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// of its descendents, is freed.
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thread_cur = bli_thrinfo_create
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(
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rntm, // rntm
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bli_thrinfo_ocomm( thread_seg ), // ocomm
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bli_thread_ocomm_id( thread_seg ), // ocomm_id
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bli_cntl_calc_num_threads_in( rntm, cntl_cur ), // n_way
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bli_thread_ocomm_id( thread_seg ), // work_id
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FALSE, // free_comm
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BLIS_NO_PART, // bszid
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thread_seg // sub_node
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);
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}
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return thread_cur;
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}
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#define BLIS_NUM_STATIC_COMMS 80
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thrinfo_t* bli_thrinfo_create_for_cntl
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(
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rntm_t* rntm,
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cntl_t* cntl_par,
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cntl_t* cntl_chl,
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thrinfo_t* thread_par
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)
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{
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thrcomm_t* static_comms[ BLIS_NUM_STATIC_COMMS ];
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thrcomm_t** new_comms = NULL;
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const bszid_t bszid_chl = bli_cntl_bszid( cntl_chl );
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const dim_t parent_nt_in = bli_thread_num_threads( thread_par );
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const dim_t parent_n_way = bli_thread_n_way( thread_par );
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const dim_t parent_comm_id = bli_thread_ocomm_id( thread_par );
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const dim_t parent_work_id = bli_thread_work_id( thread_par );
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// Sanity check: make sure the number of threads in the parent's
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// communicator is divisible by the number of new sub-groups.
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if ( parent_nt_in % parent_n_way != 0 )
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{
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printf( "Assertion failed: parent_nt_in <mod> parent_n_way != 0\n" );
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bli_abort();
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}
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// Compute:
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// - the number of threads inside the new child comm,
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// - the current thread's id within the new communicator,
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// - the current thread's work id, given the ways of parallelism
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// to be obtained within the next loop.
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const dim_t child_nt_in = bli_cntl_calc_num_threads_in( rntm, cntl_chl );
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const dim_t child_n_way = bli_rntm_ways_for( bszid_chl, rntm );
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const dim_t child_comm_id = parent_comm_id % child_nt_in;
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const dim_t child_work_id = child_comm_id / ( child_nt_in / child_n_way );
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//printf( "thread %d: child_n_way = %d child_nt_in = %d parent_n_way = %d (bszid = %d->%d)\n", (int)child_comm_id, (int)child_nt_in, (int)child_n_way, (int)parent_n_way, (int)bli_cntl_bszid( cntl_par ), (int)bszid_chl );
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// The parent's chief thread creates a temporary array of thrcomm_t
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// pointers.
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if ( bli_thread_am_ochief( thread_par ) )
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{
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if ( parent_n_way > BLIS_NUM_STATIC_COMMS )
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new_comms = bli_malloc_intl( parent_n_way * sizeof( thrcomm_t* ) );
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else
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new_comms = static_comms;
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}
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// Broadcast the temporary array to all threads in the parent's
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// communicator.
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new_comms = bli_thread_obroadcast( thread_par, new_comms );
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// Chiefs in the child communicator allocate the communicator
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// object and store it in the array element corresponding to the
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// parent's work id.
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if ( child_comm_id == 0 )
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new_comms[ parent_work_id ] = bli_thrcomm_create( rntm, child_nt_in );
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bli_thread_obarrier( thread_par );
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// All threads create a new thrinfo_t node using the communicator
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// that was created by their chief, as identified by parent_work_id.
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thrinfo_t* thread_chl = bli_thrinfo_create
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(
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rntm, // rntm
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new_comms[ parent_work_id ], // ocomm
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child_comm_id, // ocomm_id
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child_n_way, // n_way
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child_work_id, // work_id
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TRUE, // free_comm
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bszid_chl, // bszid
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NULL // sub_node
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);
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bli_thread_obarrier( thread_par );
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// The parent's chief thread frees the temporary array of thrcomm_t
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// pointers.
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if ( bli_thread_am_ochief( thread_par ) )
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{
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if ( parent_n_way > BLIS_NUM_STATIC_COMMS )
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bli_free_intl( new_comms );
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}
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return thread_chl;
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}
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// -----------------------------------------------------------------------------
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thrinfo_t* bli_thrinfo_rgrow_prenode
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(
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rntm_t* rntm,
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cntl_t* cntl_par,
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cntl_t* cntl_cur,
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thrinfo_t* thread_par
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)
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{
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thrinfo_t* thread_cur;
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|
|
// We must handle two cases: those where the next node in the
|
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// control tree is a partitioning node, and those where it is
|
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// a non-partitioning (ie: packing) node.
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if ( bli_cntl_bszid( cntl_cur ) != BLIS_NO_PART )
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{
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// Create the child thrinfo_t node corresponding to cntl_cur,
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// with cntl_par being the parent.
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thread_cur = bli_thrinfo_create_for_cntl_prenode
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(
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rntm,
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cntl_par,
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cntl_cur,
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thread_par
|
|
);
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|
}
|
|
else // if ( bli_cntl_bszid( cntl_cur ) == BLIS_NO_PART )
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{
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// Recursively grow the thread structure and return the top-most
|
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// thrinfo_t node of that segment.
|
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thrinfo_t* thread_seg = bli_thrinfo_rgrow_prenode
|
|
(
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rntm,
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cntl_par,
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bli_cntl_sub_node( cntl_cur ),
|
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thread_par
|
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);
|
|
|
|
// Create a thrinfo_t node corresponding to cntl_cur. Since the
|
|
// corresponding cntl node, cntl_cur, is a non-partitioning node
|
|
// (bszid = BLIS_NO_PART), this means it's a packing node. Packing
|
|
// thrinfo_t nodes are formed differently than those corresponding to
|
|
// partitioning nodes; specifically, their work_id's are set equal to
|
|
// the their comm_id's. Also, notice that the free_comm field is set
|
|
// to FALSE since cntl_cur is a non-partitioning node. The reason:
|
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// the communicator used here will be freed when thread_seg, or one
|
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// of its descendents, is freed.
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thread_cur = bli_thrinfo_create
|
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(
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rntm, // rntm
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bli_thrinfo_ocomm( thread_seg ), // ocomm
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bli_thread_ocomm_id( thread_seg ), // ocomm_id
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bli_cntl_calc_num_threads_in( rntm, cntl_par ), // n_way
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bli_thread_ocomm_id( thread_seg ), // work_id
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FALSE, // free_comm
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BLIS_NO_PART, // bszid
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thread_seg // sub_node
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);
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}
|
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return thread_cur;
|
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}
|
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|
|
thrinfo_t* bli_thrinfo_create_for_cntl_prenode
|
|
(
|
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rntm_t* rntm,
|
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cntl_t* cntl_par,
|
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cntl_t* cntl_chl,
|
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thrinfo_t* thread_par
|
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)
|
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{
|
|
// NOTE: This function only has to work for the ic -> (pa -> jr)
|
|
// thrinfo_t tree branch extension. After that, the function
|
|
// bli_thrinfo_create_for_cntl() will be called for the last jr->ir
|
|
// branch extension.
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const bszid_t bszid_chl = bli_cntl_bszid( cntl_chl );
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const dim_t parent_nt_in = bli_thread_num_threads( thread_par );
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const dim_t parent_n_way = bli_thread_n_way( thread_par );
|
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const dim_t parent_comm_id = bli_thread_ocomm_id( thread_par );
|
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//const dim_t parent_work_id = bli_thread_work_id( thread_par );
|
|
|
|
// Sanity check: make sure the number of threads in the parent's
|
|
// communicator is divisible by the number of new sub-groups.
|
|
if ( parent_nt_in % parent_n_way != 0 )
|
|
{
|
|
printf( "Assertion failed: parent_nt_in (%d) <mod> parent_n_way (%d) != 0\n",
|
|
( int )parent_nt_in, ( int )parent_n_way );
|
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bli_abort();
|
|
}
|
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|
|
//dim_t child_nt_in = bli_cntl_calc_num_threads_in( rntm, cntl_chl );
|
|
//dim_t child_n_way = bli_rntm_ways_for( bszid_chl, rntm );
|
|
const dim_t child_nt_in = parent_nt_in;
|
|
const dim_t child_n_way = parent_nt_in;
|
|
const dim_t child_comm_id = parent_comm_id % child_nt_in;
|
|
const dim_t child_work_id = child_comm_id / ( child_nt_in / child_n_way );
|
|
|
|
bli_thread_obarrier( thread_par );
|
|
|
|
// NOTE: Recall that parent_comm_id == child_comm_id, so checking for the
|
|
// parent's chief-ness is equivalent to checking for chief-ness in the new
|
|
// about-to-be-created communicator group.
|
|
thrcomm_t* new_comm = NULL;
|
|
if ( bli_thread_am_ochief( thread_par ) )
|
|
new_comm = bli_thrcomm_create( rntm, child_nt_in );
|
|
|
|
// Broadcast the new thrcomm_t address to the other threads in the
|
|
// parent's group.
|
|
new_comm = bli_thread_obroadcast( thread_par, new_comm );
|
|
|
|
// All threads create a new thrinfo_t node using the communicator
|
|
// that was created by their chief, as identified by parent_work_id.
|
|
thrinfo_t* thread_chl = bli_thrinfo_create
|
|
(
|
|
rntm, // rntm
|
|
new_comm, // ocomm
|
|
child_comm_id, // ocomm_id
|
|
child_n_way, // n_way
|
|
child_work_id, // work_id
|
|
TRUE, // free_comm
|
|
bszid_chl, // bszid
|
|
NULL // sub_node
|
|
);
|
|
|
|
bli_thread_obarrier( thread_par );
|
|
|
|
return thread_chl;
|
|
}
|
|
|
|
// -----------------------------------------------------------------------------
|
|
|
|
#if 0
|
|
void bli_thrinfo_grow_tree
|
|
(
|
|
rntm_t* rntm,
|
|
cntl_t* cntl,
|
|
thrinfo_t* thread
|
|
)
|
|
{
|
|
cntl_t* cntl_jc = cntl;
|
|
thrinfo_t* thrinfo_jc = thread;
|
|
|
|
bli_thrinfo_grow( rntm, cntl_jc, thrinfo_jc );
|
|
|
|
// inside jc loop:
|
|
cntl_t* cntl_pc = bli_cntl_sub_node( cntl_jc );
|
|
thrinfo_t* thrinfo_pc = bli_thrinfo_sub_node( thrinfo_jc );
|
|
|
|
bli_thrinfo_grow( rntm, cntl_pc, thrinfo_pc );
|
|
|
|
// inside pc loop:
|
|
cntl_t* cntl_pb = bli_cntl_sub_node( cntl_pc );
|
|
thrinfo_t* thrinfo_pb = bli_thrinfo_sub_node( thrinfo_pc );
|
|
|
|
bli_thrinfo_grow( rntm, cntl_pb, thrinfo_pb );
|
|
|
|
// after pb packing:
|
|
cntl_t* cntl_ic = bli_cntl_sub_node( cntl_pb );
|
|
thrinfo_t* thrinfo_ic = bli_thrinfo_sub_node( thrinfo_pb );
|
|
|
|
bli_thrinfo_grow( rntm, cntl_ic, thrinfo_ic );
|
|
|
|
// -- main branch --
|
|
|
|
// inside ic loop:
|
|
cntl_t* cntl_pa = bli_cntl_sub_node( cntl_ic );
|
|
thrinfo_t* thrinfo_pa = bli_thrinfo_sub_node( thrinfo_ic );
|
|
|
|
bli_thrinfo_grow( rntm, cntl_pa, thrinfo_pa );
|
|
|
|
// after pa packing:
|
|
cntl_t* cntl_jr = bli_cntl_sub_node( cntl_pa );
|
|
thrinfo_t* thrinfo_jr = bli_thrinfo_sub_node( thrinfo_pa );
|
|
|
|
bli_thrinfo_grow( rntm, cntl_jr, thrinfo_jr );
|
|
|
|
// inside jr loop:
|
|
//cntl_t* cntl_ir = bli_cntl_sub_node( cntl_jr );
|
|
//thrinfo_t* thrinfo_ir = bli_thrinfo_sub_node( thrinfo_jr );
|
|
|
|
// -- trsm branch --
|
|
|
|
// inside ic loop:
|
|
cntl_t* cntl_pa0 = bli_cntl_sub_prenode( cntl_ic );
|
|
thrinfo_t* thrinfo_pa0 = bli_thrinfo_sub_prenode( thrinfo_ic );
|
|
|
|
bli_thrinfo_grow( rntm, cntl_pa0, thrinfo_pa0 );
|
|
|
|
// after pa packing:
|
|
cntl_t* cntl_jr0 = bli_cntl_sub_node( cntl_pa0 );
|
|
thrinfo_t* thrinfo_jr0 = bli_thrinfo_sub_node( thrinfo_pa0 );
|
|
|
|
bli_thrinfo_grow( rntm, cntl_jr0, thrinfo_jr0 );
|
|
|
|
// inside jr loop:
|
|
//cntl_t* cntl_ir0 = bli_cntl_sub_node( cntl_jr0 );
|
|
//thrinfo_t* thrinfo_ir0= bli_thrinfo_sub_node( thrinfo_jr0 );
|
|
}
|
|
|
|
void bli_thrinfo_grow_tree_ic
|
|
(
|
|
rntm_t* rntm,
|
|
cntl_t* cntl,
|
|
thrinfo_t* thread
|
|
)
|
|
{
|
|
cntl_t* cntl_ic = cntl;
|
|
thrinfo_t* thrinfo_ic = thread;
|
|
|
|
bli_thrinfo_grow( rntm, cntl_ic, thrinfo_ic );
|
|
|
|
// -- main branch --
|
|
|
|
// inside ic loop:
|
|
cntl_t* cntl_pa = bli_cntl_sub_node( cntl_ic );
|
|
thrinfo_t* thrinfo_pa = bli_thrinfo_sub_node( thrinfo_ic );
|
|
|
|
bli_thrinfo_grow( rntm, cntl_pa, thrinfo_pa );
|
|
|
|
// after pa packing:
|
|
cntl_t* cntl_jr = bli_cntl_sub_node( cntl_pa );
|
|
thrinfo_t* thrinfo_jr = bli_thrinfo_sub_node( thrinfo_pa );
|
|
|
|
bli_thrinfo_grow( rntm, cntl_jr, thrinfo_jr );
|
|
|
|
// inside jr loop:
|
|
//cntl_t* cntl_ir = bli_cntl_sub_node( cntl_jr );
|
|
//thrinfo_t* thrinfo_ir = bli_thrinfo_sub_node( thrinfo_jr );
|
|
|
|
// -- trsm branch --
|
|
|
|
// inside ic loop:
|
|
cntl_t* cntl_pa0 = bli_cntl_sub_prenode( cntl_ic );
|
|
thrinfo_t* thrinfo_pa0 = bli_thrinfo_sub_prenode( thrinfo_ic );
|
|
|
|
bli_thrinfo_grow( rntm, cntl_pa0, thrinfo_pa0 );
|
|
|
|
// after pa packing:
|
|
cntl_t* cntl_jr0 = bli_cntl_sub_node( cntl_pa0 );
|
|
thrinfo_t* thrinfo_jr0 = bli_thrinfo_sub_node( thrinfo_pa0 );
|
|
|
|
bli_thrinfo_grow( rntm, cntl_jr0, thrinfo_jr0 );
|
|
|
|
// inside jr loop:
|
|
//cntl_t* cntl_ir0 = bli_cntl_sub_node( cntl_jr0 );
|
|
//thrinfo_t* thrinfo_ir0= bli_thrinfo_sub_node( thrinfo_jr0 );
|
|
}
|
|
#endif
|