61f2133901
git-svn-id: https://yap.svn.sf.net/svnroot/yap/trunk@704 b08c6af1-5177-4d33-ba66-4b1c6b8b522a
736 lines
18 KiB
C
736 lines
18 KiB
C
/*************************************************************************
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* *
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* YAP Prolog *
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* *
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* Yap Prolog was developed at NCCUP - Universidade do Porto *
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* *
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* Copyright S. Konstantopoulos and Universidade do Porto 2002 *
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* *
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**************************************************************************
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* *
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* File: mpi.c *
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* Last rev: $Date: 2002-11-21 15:57:23 $ *
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* mods: *
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* comments: Interface to an MPI library *
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* *
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*************************************************************************/
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#ifndef lint
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static char *rcsid = "$Header: /Users/vitor/Yap/yap-cvsbackup/library/mpi/mpi.c,v 1.18 2002-11-21 15:57:23 stasinos Exp $";
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#endif
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#include "Yap.h"
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#if HAVE_MPI
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#include "Yatom.h"
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#include "yapio.h"
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/* for AtomEof */
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#include "Heap.h"
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#include <stdlib.h>
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#include <string.h>
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#include <mpi.h>
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STATIC_PROTO (Int p_mpi_open, (void));
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STATIC_PROTO (Int p_mpi_close, (void));
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STATIC_PROTO (Int p_mpi_send, (void));
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STATIC_PROTO (Int p_mpi_receive, (void));
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STATIC_PROTO (Int p_mpi_bcast3, (void));
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STATIC_PROTO (Int p_mpi_bcast2, (void));
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STATIC_PROTO (Int p_mpi_barrier, (void));
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/*
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* Auxiliary Data and Functions
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*/
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static Int rank, numprocs, namelen;
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static char processor_name[MPI_MAX_PROCESSOR_NAME];
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/* used by the parser */
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static int StartLine;
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static Int mpi_argc;
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static char **mpi_argv;
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/* mini-stream */
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#define RECV_BUF_SIZE 1024*32
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static size_t bufsize, bufstrlen;
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static char *buf;
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static int bufptr;
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static void
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expand_buffer( int space )
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{
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#if MPI_AVOID_REALLOC
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/*
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realloc() has been SIGSEGV'ing on HP-UX 10.20, but there is
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no problem in HP-UX 11.0. We can remove this bit here as soon
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as Yap stops compiling on 10.20 anyway. If removed, also remove
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the MPI_AVOID_REALLOC bits from configure.in and config.h.in
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*/
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char *tmp;
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#if 0
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printf( "expanding by %d (to %d)...", space, (bufsize+space));
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#endif
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tmp = malloc( bufsize + space );
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if( tmp == NULL ) {
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Yap_Error(SYSTEM_ERROR, TermNil, "out of memory" );
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Yap_exit( EXIT_FAILURE );
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}
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memcpy( tmp, buf, bufsize );
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#if 0
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printf("memcpy'd...");
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#endif
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free( buf );
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#if 0
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printf("free'd...");
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#endif
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buf = tmp;
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#else /* use realloc */
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buf = realloc( buf, bufsize + space );
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#if 0
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printf("realloc'ed space...");
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#endif
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if( buf == NULL ) {
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Yap_Error(SYSTEM_ERROR, TermNil, "out of memory");
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Yap_exit( EXIT_FAILURE );
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}
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#endif
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bufsize += space;
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#if 0
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printf("SUCCESS\n");
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printf( "New bufsize: %d\n", bufsize );
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buf[bufsize-space] = 0;
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printf("Buffer contents: %s\n", buf);
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#endif
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}
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static int
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mpi_putc(Int stream, Int ch)
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{
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#if 0
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printf("%d: PUTC %d a.k.a. %c at %d\n", rank, ch, (char)ch, bufptr);
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#endif
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if( ch > 0 ) {
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if( bufptr >= bufsize ) expand_buffer( RECV_BUF_SIZE );
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buf[bufptr++] = ch;
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}
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return ch;
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}
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static Int
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mpi_getc(Int stream)
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{
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#if 0
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printf("%d: GETC %c at %d\n", rank, buf[bufptr], bufptr);
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#endif
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return buf[bufptr++];
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}
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static Int
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mpi_eob(void)
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{
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return (bufptr<bufstrlen) && (buf[bufptr] != EOF);
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}
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/* Term parser */
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static Term
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mpi_parse(void)
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{
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Term t;
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TokEntry *tokstart;
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tr_fr_ptr old_TR, TR_before_parse;
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old_TR = TR;
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while( TRUE ) {
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CELL *old_H;
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/* Scans the term using stack space */
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Yap_eot_before_eof = FALSE;
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/* the first arg is the getc_for_read, diff only if CharConv is on */
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tokstart = Yap_tokptr = Yap_toktide = Yap_tokenizer(mpi_getc, mpi_getc);
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/* preserve value of H after scanning: otherwise we may lose strings
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and floats */
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old_H = H;
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if ( mpi_eob() && !Yap_eot_before_eof) {
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if (tokstart != NIL && tokstart->Tok != Ord (eot_tok)) {
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/* we got the end of file from an abort */
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if (Yap_ErrorMessage == "Abort") {
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TR = old_TR;
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return TermNil;
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}
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/* we need to force the next reading to also give end of file.*/
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buf[bufptr] = EOF;
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Yap_ErrorMessage = "[ Error: end of file found before end of term ]";
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} else {
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/* restore TR */
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TR = old_TR;
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return (Yap_unify_constant(t, MkAtomTerm(AtomEof)));
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}
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}
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repeat_cycle:
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TR_before_parse = TR;
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if( Yap_ErrorMessage || (t = Yap_Parse())==0 ) {
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if (Yap_ErrorMessage && (strcmp(Yap_ErrorMessage,"Stack Overflow") == 0)) {
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/* ignore term we just built */
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TR = TR_before_parse;
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H = old_H;
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if (Yap_growstack_in_parser(&old_TR, &tokstart, &Yap_VarTable)) {
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old_H = H;
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Yap_tokptr = Yap_toktide = tokstart;
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Yap_ErrorMessage = NULL;
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goto repeat_cycle;
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}
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}
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TR = old_TR;
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/*
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behave as if ParserErrorStyle were QUIET_ON_PARSER_ERROR,
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(see iopreds.c), except with bombing Yap instead of simply
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failing the predicate: the parse cannot fail unless there
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is a problem with MPI or the pretty printer.
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*/
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Yap_Error(SYSTEM_ERROR, TermNil, "Failed to parse MPI_Recv()'ed term" );
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Yap_exit( EXIT_FAILURE );
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} else {
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/* parsing succeeded */
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break;
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}
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}
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TR = old_TR;
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return t;
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}
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/*
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* C Predicates
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*/
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static Int
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p_mpi_open(void) /* mpi_open(?rank, ?num_procs, ?proc_name) */
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{
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Term t_rank = Deref(ARG1), t_numprocs = Deref(ARG2), t_procname = Deref(ARG3);
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Int retv;
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/*
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With MPICH MPI_Init() must be called during initialisation,
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but with LAM it can be called from Prolog (mpi_open/3)
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The symptoms match a known RedHat bug, see
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http://email.osc.edu/pipermail/mpiexec/2002-July/000067.html
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for a suggested workaround:
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Redhat have somehow broken their sem.h and ipc.h. If you use your own
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kernel, copy from ../src/kernel/include/asm & ../src/kernel/include/linux
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the file ipc.h and sem.h to /usr/include/sys, recompile your mpich and
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everything might start working. (it did for us)
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*/
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/*
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Note that if MPI_Init() fails, Yap/MPICH and Yap/LAM bahave differently:
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in Yap/MPICH we are still at the Yap initialisation phase, so we let
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Yap exit(FAILURE), whereas in Yap/LAM mpi_open/3 simply fails.
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*/
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#if ! HAVE_LIBMPICH
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retv = MPI_Init( &mpi_argc, &mpi_argv );
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if( retv ) {
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Term t;
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t = MkIntegerTerm(retv);
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Yap_Error( SYSTEM_ERROR, t, "MPI_Init() returned non-zero" );
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return FALSE;
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}
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#endif
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MPI_Comm_size( MPI_COMM_WORLD, &numprocs );
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MPI_Comm_rank( MPI_COMM_WORLD, &rank );
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MPI_Get_processor_name( processor_name, &namelen );
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retv = Yap_unify(t_rank, MkIntTerm(rank));
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retv = retv && Yap_unify(t_numprocs, MkIntTerm(numprocs));
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retv = retv && Yap_unify(t_procname, MkAtomTerm(Yap_LookupAtom(processor_name)));
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return retv;
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}
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static Int /* mpi_close */
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p_mpi_close()
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{
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MPI_Finalize();
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return TRUE;
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}
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static Int
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p_mpi_send() /* mpi_send(+data, +destination, +tag) */
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{
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Term t_data = Deref(ARG1), t_dest = Deref(ARG2), t_tag = Deref(ARG3);
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int tag, dest, retv;
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/* The first argument (data) must be bound */
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if (IsVarTerm(t_data)) {
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Yap_Error(INSTANTIATION_ERROR, t_data, "mpi_send");
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return (FALSE);
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}
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/* The second and third args must be bount to integers */
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if (IsVarTerm(t_dest)) {
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Yap_Error(INSTANTIATION_ERROR, t_dest, "mpi_send");
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return (FALSE);
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} else if( !IsIntegerTerm(t_dest) ) {
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Yap_Error(TYPE_ERROR_INTEGER, t_dest, "mpi_send");
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return (FALSE);
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} else {
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dest = IntOfTerm( t_dest );
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}
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if (IsVarTerm(t_tag)) {
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Yap_Error(INSTANTIATION_ERROR, t_tag, "mpi_send");
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return (FALSE);
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} else if( !IsIntegerTerm(t_tag) ) {
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Yap_Error(TYPE_ERROR_INTEGER, t_tag, "mpi_send");
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return (FALSE);
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} else {
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tag = IntOfTerm( t_tag );
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}
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bufptr = 0;
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/* Turn the term into its ASCII representation */
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Yap_plwrite( t_data, mpi_putc, Quote_illegal_f|Handle_vars_f );
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bufstrlen = (size_t)bufptr;
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/* The buf is not NULL-terminated and does not have the
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trailing ". " required by the parser */
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mpi_putc( 0, '.' );
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mpi_putc( 0, ' ' );
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buf[bufptr] = 0;
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bufstrlen = bufptr + 1;
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bufptr = 0;
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#if 0
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{
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FILE *debug_out;
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debug_out = fopen("debug.out", "a");
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fprintf(debug_out, "%d: About to send %d chars to %d\n",
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rank, bufstrlen, dest);
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fclose(debug_out);
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}
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#endif
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/* send the data */
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retv = MPI_Send( &buf[bufptr], bufstrlen, MPI_CHAR, dest, tag, MPI_COMM_WORLD );
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if( retv != MPI_SUCCESS ) return FALSE;
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#if 0
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{
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FILE *debug_out;
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debug_out = fopen("debug.out", "a");
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fprintf(debug_out, "%d: Sent %s to %d\n", rank, &buf[bufptr], dest);
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fclose(debug_out);
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}
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#endif
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return TRUE;
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}
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static Int
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p_mpi_receive() /* mpi_receive(-data, ?orig, ?tag) */
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{
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Term t_data = Deref(ARG1), t_orig = Deref(ARG2), t_tag = Deref(ARG3);
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int tag, orig, retv;
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MPI_Status status;
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/* The first argument (data) must be unbound */
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if(!IsVarTerm(t_data)) {
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Yap_Error(INSTANTIATION_ERROR, t_data, "mpi_receive");
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return FALSE;
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}
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/* The second argument (source) must be bound to an integer
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(the rank of the source) or left unbound (i.e. any source
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is OK) */
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if (IsVarTerm(t_orig)) {
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orig = MPI_ANY_SOURCE;
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} else if( !IsIntegerTerm(t_orig) ) {
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Yap_Error(TYPE_ERROR_INTEGER, t_orig, "mpi_receive");
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return (FALSE);
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} else {
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orig = IntOfTerm( t_orig );
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}
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/* The third argument must be bound to an integer (the tag)
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or left unbound (i.e. any tag is OK) */
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if (IsVarTerm(t_tag)) {
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tag = MPI_ANY_TAG;
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} else if( !IsIntegerTerm(t_tag) ) {
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Yap_Error(TYPE_ERROR_INTEGER, t_tag, "mpi_receive");
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return (FALSE);
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} else
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tag = IntOfTerm( t_tag );
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/* probe for the size of the term */
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retv = MPI_Probe( orig, tag, MPI_COMM_WORLD, &status );
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if( retv != MPI_SUCCESS ) {
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return FALSE;
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}
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MPI_Get_count( &status, MPI_CHAR, &bufstrlen );
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#if 0
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{
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FILE *debug_out;
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debug_out = fopen("debug.out", "a");
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fprintf(debug_out, "%d: About to receive %d chars from %d\n",
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rank, bufstrlen, orig);
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fclose(debug_out);
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}
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#endif
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/* adjust the buffer */
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if( bufsize < bufstrlen ) expand_buffer(bufstrlen-bufsize);
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/* Already know the source from MPI_Probe() */
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if( orig == MPI_ANY_SOURCE ) {
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orig = status.MPI_SOURCE;
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retv = Yap_unify(t_orig, MkIntTerm(orig));
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if( retv == FALSE ) {
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printf("PROBLEM: file %s, line %d\n", __FILE__, __LINE__);
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}
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}
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/* Already know the tag from MPI_Probe() */
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if( tag == MPI_ANY_TAG ) {
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tag = status.MPI_TAG;
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retv = Yap_unify(t_tag, MkIntTerm(status.MPI_TAG));
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if( retv == FALSE ) {
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printf("PROBLEM: file %s, line %d\n", __FILE__, __LINE__);
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}
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}
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/* Receive the message as a C string */
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retv = MPI_Recv( buf, bufstrlen, MPI_CHAR, orig, tag,
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MPI_COMM_WORLD, &status );
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if( retv != MPI_SUCCESS ) {
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/* Getting in here would be weird; it means the first package
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(size) was sent properly, but there was a glitch with
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the actual content! */
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return FALSE;
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}
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#if 0
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{
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int aa;
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FILE *debug_out;
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MPI_Get_count( &status, MPI_CHAR, &aa );
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debug_out = fopen("debug.out", "a");
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fprintf(debug_out, "%d: Received %d chars from %d\n\
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%d: The message was: %s\n", rank, aa, orig, rank, &buf[bufptr]);
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fclose(debug_out);
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}
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#endif
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/* parse received string into a Prolog term */
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bufptr = 0;
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retv = Yap_unify(ARG1, mpi_parse());
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#if 0
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/* check up on mpi_parse():
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convert the newly-parsed term back to text and print */
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bufptr = 0;
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Yap_plwrite( t_data, mpi_putc, Quote_illegal_f|Handle_vars_f );
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mpi_putc( 0, '.' );
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mpi_putc( 0, ' ' );
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buf[bufptr] = 0;
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bufptr = 0;
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{
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FILE *debug_out;
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debug_out = fopen("debug.out", "a");
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fprintf(debug_out, "%d: mpi_receive: t_data == %d, retv == %d term == %s\n",
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rank, t_data, retv, buf);
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fclose(debug_out);
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}
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#endif
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return retv;
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}
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static Int
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p_mpi_bcast3() /* mpi_bcast( ?data, +root, +max_size ) */
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{
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Term t_data = Deref(ARG1), t_root = Deref(ARG2), t_max_size = Deref(ARG3);
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int root, retv, max_size;
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/* The second argument must be bound to an integer (the rank of
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root processor */
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if (IsVarTerm(t_root)) {
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Yap_Error(INSTANTIATION_ERROR, t_root, "mpi_bcast");
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return FALSE;
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}
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root = IntOfTerm( t_root );
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/* If this is the root processor, then the first argument must
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be bound to the term to be sent. */
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if( root == rank ) {
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if( IsVarTerm(t_data) ) {
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Yap_Error(INSTANTIATION_ERROR, t_data, "mpi_bcast");
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return FALSE;
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}
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bufptr = 0;
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/* Turn the term into its ASCII representation */
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Yap_plwrite( t_data, mpi_putc, Quote_illegal_f|Handle_vars_f );
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/* NULL-terminate the string and add the ". " termination
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required by the parser. */
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buf[bufptr] = 0;
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strcat( buf, ". " );
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bufstrlen = bufptr + 2;
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}
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/* The third argument must be bound to an integer (the maximum length
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of the broadcast term's ASCII representation */
|
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if (IsVarTerm(t_max_size)) {
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Yap_Error(INSTANTIATION_ERROR, t_max_size, "mpi_bcast");
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return FALSE;
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}
|
|
/* allow for the ". " bit and the NULL at the end */
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|
max_size = IntOfTerm( t_max_size ) + 3;
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|
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#if 0
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|
if( (rank == root) && (max_size < bufstrlen) )
|
|
/* issue a warning? explode? bcast s'thing unparsable? */
|
|
printf( "MAYDAY: max_size == %d, bufstrlen == %d\n", max_size, bufstrlen );
|
|
return FALSE;
|
|
}
|
|
#endif
|
|
printf( "%d: About to Bcast(): max_size == %d, bufstrlen == %d\n",
|
|
rank, max_size, bufstrlen );
|
|
|
|
/* adjust the buffer size, if necessary */
|
|
if( max_size > bufsize ) {
|
|
expand_buffer( max_size - bufsize );
|
|
}
|
|
|
|
retv = MPI_Bcast( buf, max_size, MPI_CHAR, root, MPI_COMM_WORLD );
|
|
if( retv != MPI_SUCCESS ) {
|
|
printf( "OOOPS! MPI_Bcast() returned %d.\n", retv );
|
|
return FALSE;
|
|
}
|
|
|
|
printf( "%d: I'm just after Bcast()ing. strlen(buf) == %d\n",
|
|
rank, strlen(buf) );
|
|
|
|
if( root == rank ) return TRUE;
|
|
else {
|
|
/* ARG1 must be unbound so that it can receive data */
|
|
if( !IsVarTerm(t_data) ) {
|
|
Yap_Error(INSTANTIATION_ERROR, t_data, "mpi_bcast");
|
|
return FALSE;
|
|
}
|
|
|
|
bufstrlen = strlen(buf);
|
|
bufptr = 0;
|
|
|
|
/* parse received string into a Prolog term */
|
|
return Yap_unify(mpi_parse(), ARG1);
|
|
}
|
|
}
|
|
|
|
|
|
/*
|
|
This is the same as above, but for dynamic data size.
|
|
It is implemented as two broadcasts, the first being the size
|
|
and the second the actual data.
|
|
*/
|
|
static Int
|
|
p_mpi_bcast2() /* mpi_bcast( ?data, +root ) */
|
|
{
|
|
Term t_data = Deref(ARG1), t_root = Deref(ARG2);
|
|
int root, retv;
|
|
|
|
/* The second argument must be bound to an integer (the rank of
|
|
root processor */
|
|
if (IsVarTerm(t_root)) {
|
|
Yap_Error(INSTANTIATION_ERROR, t_root, "mpi_bcast");
|
|
return FALSE;
|
|
}
|
|
root = IntOfTerm( t_root );
|
|
|
|
|
|
/* If this is the root processor, then the first argument must
|
|
be bound to the term to be sent. */
|
|
if( root == rank ) {
|
|
if( IsVarTerm(t_data) ) {
|
|
Yap_Error(INSTANTIATION_ERROR, t_data, "mpi_bcast");
|
|
return FALSE;
|
|
}
|
|
bufptr = 0;
|
|
/* Turn the term into its ASCII representation */
|
|
Yap_plwrite( t_data, mpi_putc, Quote_illegal_f|Handle_vars_f );
|
|
/* NULL-terminate the string and add the ". " termination
|
|
required by the parser. */
|
|
buf[bufptr] = 0;
|
|
strcat( buf, ". " );
|
|
bufstrlen = bufptr + 2;
|
|
}
|
|
/* Otherwise, it must a variable */
|
|
else {
|
|
if( !IsVarTerm(t_data) ) {
|
|
Yap_Error(INSTANTIATION_ERROR, t_data, "mpi_bcast");
|
|
return FALSE;
|
|
}
|
|
}
|
|
|
|
|
|
/* Broadcast the data size */
|
|
retv = MPI_Bcast( &bufstrlen, sizeof bufstrlen, MPI_INT, root, MPI_COMM_WORLD );
|
|
if( retv != MPI_SUCCESS ) {
|
|
printf("PROBLEM: file %s, line %d\n", __FILE__, __LINE__);
|
|
return FALSE;
|
|
}
|
|
|
|
/* adjust the buffer size, if necessary */
|
|
if( bufstrlen > bufsize ) {
|
|
#if 1
|
|
printf("expanding by %d\n", (bufstrlen-bufsize) );
|
|
#endif
|
|
expand_buffer( bufstrlen - bufsize );
|
|
}
|
|
#if 1
|
|
else {
|
|
printf("bufstrlen: %d, bufsize %d: not expanding\n",bufstrlen,bufsize);
|
|
}
|
|
#endif
|
|
/* Broadcast the data */
|
|
retv = MPI_Bcast( buf, bufstrlen, MPI_CHAR, root, MPI_COMM_WORLD );
|
|
if( retv != MPI_SUCCESS ) {
|
|
printf("PROBLEM: file %s, line %d\n", __FILE__, __LINE__);
|
|
return FALSE;
|
|
}
|
|
|
|
if( root == rank ) return TRUE;
|
|
else {
|
|
/* ARG1 must be unbound so that it can receive data */
|
|
if( !IsVarTerm(t_data) ) {
|
|
Yap_Error(INSTANTIATION_ERROR, t_data, "mpi_bcast");
|
|
return FALSE;
|
|
}
|
|
|
|
bufstrlen = strlen(buf);
|
|
bufptr = 0;
|
|
|
|
/* parse received string into a Prolog term */
|
|
return Yap_unify(ARG1, mpi_parse());
|
|
}
|
|
}
|
|
|
|
|
|
static Int
|
|
p_mpi_barrier() /* mpi_barrier/0 */
|
|
{
|
|
int retv;
|
|
|
|
retv = MPI_Barrier( MPI_COMM_WORLD );
|
|
|
|
return (retv == 0);
|
|
}
|
|
|
|
|
|
|
|
/*
|
|
* Init
|
|
*/
|
|
|
|
|
|
void
|
|
Yap_InitMPI(void)
|
|
{
|
|
int i,j;
|
|
|
|
mpi_argv = malloc( Yap_argc * sizeof(char *) );
|
|
mpi_argv[0] = strdup( Yap_argv[0] );
|
|
|
|
bufsize = RECV_BUF_SIZE;
|
|
buf = malloc(bufsize * sizeof(char));
|
|
|
|
for( i=1; i<Yap_argc; ++i ) {
|
|
if( !strcmp(Yap_argv[i], "--") ) { ++i; break; }
|
|
}
|
|
for( j=1; i<Yap_argc; ++i, ++j ) {
|
|
mpi_argv[j] = strdup( Yap_argv[i] );
|
|
}
|
|
mpi_argc = j;
|
|
|
|
mpi_argv[0] = strdup( Yap_argv[0] );
|
|
|
|
#if 0
|
|
/* DEBUG */
|
|
printf( "Yap_argc = %d\n", Yap_argc );
|
|
for( i=0; i<Yap_argc; ++i ) {
|
|
printf( "%d %s\n", i, Yap_argv[i] );
|
|
}
|
|
#endif
|
|
|
|
#if 0
|
|
/* DEBUG */
|
|
printf( "mpi_argc = %d\n", mpi_argc );
|
|
for( i=0; i<mpi_argc; ++i ) {
|
|
printf( "%d %s\n", i, mpi_argv[i] );
|
|
}
|
|
#endif
|
|
|
|
/* With MPICH MPI_Yap_Init() must be called during initialisation,
|
|
but with LAM it can be called from Prolog (mpi_open/3).
|
|
See also the comment at "if ! HAVE_LIBMPICH" above!
|
|
*/
|
|
#if HAVE_LIBMPICH
|
|
{
|
|
int retv;
|
|
|
|
retv = MPI_Init(&mpi_argc, &mpi_argv);
|
|
if( retv ) {
|
|
Term t;
|
|
|
|
t = MkIntegerTerm(retv);
|
|
Yap_Error(SYSTEM_ERROR, t, "MPI_Init() returned non-zero");
|
|
Yap_exit( EXIT_FAILURE );
|
|
}
|
|
#if 0
|
|
/* DEBUG */
|
|
else {
|
|
puts("MPI_Init() is happy!");
|
|
}
|
|
#endif
|
|
}
|
|
#endif
|
|
|
|
Yap_InitCPred( "mpi_open", 3, p_mpi_open, SyncPredFlag );
|
|
Yap_InitCPred( "mpi_close", 0, p_mpi_close, SafePredFlag|SyncPredFlag );
|
|
Yap_InitCPred( "mpi_send", 3, p_mpi_send, SafePredFlag|SyncPredFlag );
|
|
Yap_InitCPred( "mpi_receive", 3, p_mpi_receive, SyncPredFlag );
|
|
Yap_InitCPred( "mpi_bcast", 3, p_mpi_bcast3, SyncPredFlag );
|
|
Yap_InitCPred( "mpi_bcast", 2, p_mpi_bcast2, SyncPredFlag );
|
|
Yap_InitCPred( "mpi_barrier", 0, p_mpi_barrier, SyncPredFlag );
|
|
}
|
|
|
|
#endif /* HAVE_MPI */
|