mirror of
https://salsa.debian.org/srivasta/make-dfsg.git
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ba8383efd8
Move function prototypes into header files and out of .c files. Use void argument lists for functions that accept no args. Remove unused macros. Make private functions static. Align types with printf format characters.
431 lines
10 KiB
C
431 lines
10 KiB
C
/* POSIX-based operating system interface for GNU Make.
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Copyright (C) 2016 Free Software Foundation, Inc.
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This file is part of GNU Make.
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GNU Make is free software; you can redistribute it and/or modify it under the
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terms of the GNU General Public License as published by the Free Software
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Foundation; either version 3 of the License, or (at your option) any later
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version.
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GNU Make is distributed in the hope that it will be useful, but WITHOUT ANY
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WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR
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A PARTICULAR PURPOSE. See the GNU General Public License for more details.
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You should have received a copy of the GNU General Public License along with
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this program. If not, see <http://www.gnu.org/licenses/>. */
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#include "makeint.h"
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#include <stdio.h>
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#ifdef HAVE_FCNTL_H
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# include <fcntl.h>
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#endif
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#if defined(HAVE_PSELECT) && defined(HAVE_SYS_SELECT_H)
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# include <sys/select.h>
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#endif
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#include "debug.h"
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#include "job.h"
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#include "os.h"
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#ifdef MAKE_JOBSERVER
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/* This section provides OS-specific functions to support the jobserver. */
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/* These track the state of the jobserver pipe. Passed to child instances. */
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static int job_fds[2] = { -1, -1 };
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/* Used to signal read() that a SIGCHLD happened. Always CLOEXEC.
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If we use pselect() this will never be created and always -1.
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*/
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static int job_rfd = -1;
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/* Token written to the pipe (could be any character...) */
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static char token = '+';
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static int
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make_job_rfd (void)
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{
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#ifdef HAVE_PSELECT
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/* Pretend we succeeded. */
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return 0;
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#else
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EINTRLOOP (job_rfd, dup (job_fds[0]));
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if (job_rfd >= 0)
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CLOSE_ON_EXEC (job_rfd);
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return job_rfd;
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#endif
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}
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unsigned int
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jobserver_setup (int slots)
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{
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int r;
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EINTRLOOP (r, pipe (job_fds));
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if (r < 0)
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pfatal_with_name (_("creating jobs pipe"));
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if (make_job_rfd () < 0)
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pfatal_with_name (_("duping jobs pipe"));
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while (slots--)
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{
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EINTRLOOP (r, write (job_fds[1], &token, 1));
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if (r != 1)
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pfatal_with_name (_("init jobserver pipe"));
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}
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return 1;
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}
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unsigned int
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jobserver_parse_auth (const char *auth)
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{
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/* Given the command-line parameter, parse it. */
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if (sscanf (auth, "%d,%d", &job_fds[0], &job_fds[1]) != 2)
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OS (fatal, NILF,
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_("internal error: invalid --jobserver-auth string '%s'"), auth);
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DB (DB_JOBS,
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(_("Jobserver client (fds %d,%d)\n"), job_fds[0], job_fds[1]));
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#ifdef HAVE_FCNTL_H
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# define FD_OK(_f) (fcntl ((_f), F_GETFD) != -1)
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#else
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# define FD_OK(_f) 1
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#endif
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/* Make sure our pipeline is valid, and (possibly) create a duplicate pipe,
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that will be closed in the SIGCHLD handler. If this fails with EBADF,
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the parent has closed the pipe on us because it didn't think we were a
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submake. If so, warn and default to -j1. */
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if (!FD_OK (job_fds[0]) || !FD_OK (job_fds[1]) || make_job_rfd () < 0)
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{
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if (errno != EBADF)
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pfatal_with_name (_("jobserver pipeline"));
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job_fds[0] = job_fds[1] = -1;
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return 0;
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}
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return 1;
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}
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char *
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jobserver_get_auth (void)
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{
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char *auth = xmalloc ((INTSTR_LENGTH * 2) + 2);
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sprintf (auth, "%d,%d", job_fds[0], job_fds[1]);
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return auth;
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}
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unsigned int
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jobserver_enabled (void)
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{
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return job_fds[0] >= 0;
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}
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void
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jobserver_clear (void)
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{
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if (job_fds[0] >= 0)
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close (job_fds[0]);
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if (job_fds[1] >= 0)
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close (job_fds[1]);
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if (job_rfd >= 0)
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close (job_rfd);
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job_fds[0] = job_fds[1] = job_rfd = -1;
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}
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void
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jobserver_release (int is_fatal)
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{
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int r;
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EINTRLOOP (r, write (job_fds[1], &token, 1));
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if (r != 1)
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{
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if (is_fatal)
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pfatal_with_name (_("write jobserver"));
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perror_with_name ("write", "");
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}
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}
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unsigned int
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jobserver_acquire_all (void)
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{
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unsigned int tokens = 0;
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/* Close the write side, so the read() won't hang. */
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close (job_fds[1]);
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job_fds[1] = -1;
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while (1)
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{
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char intake;
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int r;
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EINTRLOOP (r, read (job_fds[0], &intake, 1));
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if (r != 1)
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return tokens;
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++tokens;
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}
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}
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/* Prepare the jobserver to start a child process. */
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void
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jobserver_pre_child (int recursive)
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{
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/* If it's not a recursive make, avoid polutting the jobserver pipes. */
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if (!recursive && job_fds[0] >= 0)
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{
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CLOSE_ON_EXEC (job_fds[0]);
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CLOSE_ON_EXEC (job_fds[1]);
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}
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}
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void
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jobserver_post_child (int recursive)
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{
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#if defined(F_GETFD) && defined(F_SETFD)
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if (!recursive && job_fds[0] >= 0)
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{
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unsigned int i;
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for (i = 0; i < 2; ++i)
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{
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int flags;
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EINTRLOOP (flags, fcntl (job_fds[i], F_GETFD));
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if (flags >= 0)
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{
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int r;
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EINTRLOOP (r, fcntl (job_fds[i], F_SETFD, flags & ~FD_CLOEXEC));
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}
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}
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}
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#endif
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}
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void
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jobserver_signal (void)
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{
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if (job_rfd >= 0)
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{
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close (job_rfd);
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job_rfd = -1;
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}
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}
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void
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jobserver_pre_acquire (void)
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{
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/* Make sure we have a dup'd FD. */
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if (job_rfd < 0 && job_fds[0] >= 0 && make_job_rfd () < 0)
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pfatal_with_name (_("duping jobs pipe"));
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}
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#ifdef HAVE_PSELECT
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/* Use pselect() to atomically wait for both a signal and a file descriptor.
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It also provides a timeout facility so we don't need to use SIGALRM.
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This method relies on the fact that SIGCHLD will be blocked everywhere,
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and only unblocked (atomically) within the pselect() call, so we can
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never miss a SIGCHLD.
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*/
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unsigned int
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jobserver_acquire (int timeout)
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{
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sigset_t empty;
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fd_set readfds;
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struct timespec spec;
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struct timespec *specp = NULL;
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int r;
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char intake;
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sigemptyset (&empty);
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FD_ZERO (&readfds);
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FD_SET (job_fds[0], &readfds);
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if (timeout)
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{
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/* Alarm after one second (is this too granular?) */
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spec.tv_sec = 1;
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spec.tv_nsec = 0;
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specp = &spec;
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}
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r = pselect (job_fds[0]+1, &readfds, NULL, NULL, specp, &empty);
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if (r == -1)
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{
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/* Better be SIGCHLD. */
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if (errno != EINTR)
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pfatal_with_name (_("pselect jobs pipe"));
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return 0;
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}
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if (r == 0)
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/* Timeout. */
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return 0;
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/* The read FD is ready: read it! */
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EINTRLOOP (r, read (job_fds[0], &intake, 1));
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if (r < 0)
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pfatal_with_name (_("read jobs pipe"));
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/* What does it mean if read() returns 0? It shouldn't happen because only
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the master make can reap all the tokens and close the write side...?? */
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return r > 0;
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}
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#else
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/* This method uses a "traditional" UNIX model for waiting on both a signal
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and a file descriptor. However, it's complex and since we have a SIGCHLD
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handler installed we need to check ALL system calls for EINTR: painful!
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Read a token. As long as there's no token available we'll block. We
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enable interruptible system calls before the read(2) so that if we get a
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SIGCHLD while we're waiting, we'll return with EINTR and we can process the
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death(s) and return tokens to the free pool.
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Once we return from the read, we immediately reinstate restartable system
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calls. This allows us to not worry about checking for EINTR on all the
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other system calls in the program.
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There is one other twist: there is a span between the time reap_children()
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does its last check for dead children and the time the read(2) call is
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entered, below, where if a child dies we won't notice. This is extremely
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serious as it could cause us to deadlock, given the right set of events.
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To avoid this, we do the following: before we reap_children(), we dup(2)
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the read FD on the jobserver pipe. The read(2) call below uses that new
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FD. In the signal handler, we close that FD. That way, if a child dies
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during the section mentioned above, the read(2) will be invoked with an
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invalid FD and will return immediately with EBADF. */
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static RETSIGTYPE
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job_noop (int sig UNUSED)
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{
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}
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/* Set the child handler action flags to FLAGS. */
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static void
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set_child_handler_action_flags (int set_handler, int set_alarm)
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{
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struct sigaction sa;
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#ifdef __EMX__
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/* The child handler must be turned off here. */
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signal (SIGCHLD, SIG_DFL);
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#endif
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memset (&sa, '\0', sizeof sa);
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sa.sa_handler = child_handler;
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sa.sa_flags = set_handler ? 0 : SA_RESTART;
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#if defined SIGCHLD
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if (sigaction (SIGCHLD, &sa, NULL) < 0)
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pfatal_with_name ("sigaction: SIGCHLD");
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#endif
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#if defined SIGCLD && SIGCLD != SIGCHLD
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if (sigaction (SIGCLD, &sa, NULL) < 0)
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pfatal_with_name ("sigaction: SIGCLD");
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#endif
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#if defined SIGALRM
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if (set_alarm)
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{
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/* If we're about to enter the read(), set an alarm to wake up in a
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second so we can check if the load has dropped and we can start more
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work. On the way out, turn off the alarm and set SIG_DFL. */
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if (set_handler)
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{
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sa.sa_handler = job_noop;
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sa.sa_flags = 0;
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if (sigaction (SIGALRM, &sa, NULL) < 0)
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pfatal_with_name ("sigaction: SIGALRM");
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alarm (1);
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}
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else
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{
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alarm (0);
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sa.sa_handler = SIG_DFL;
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sa.sa_flags = 0;
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if (sigaction (SIGALRM, &sa, NULL) < 0)
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pfatal_with_name ("sigaction: SIGALRM");
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}
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}
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#endif
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}
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unsigned int
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jobserver_acquire (int timeout)
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{
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char intake;
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int got_token;
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int saved_errno;
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/* Set interruptible system calls, and read() for a job token. */
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set_child_handler_action_flags (1, timeout);
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EINTRLOOP (got_token, read (job_rfd, &intake, 1));
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saved_errno = errno;
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set_child_handler_action_flags (0, timeout);
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if (got_token == 1)
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return 1;
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/* If the error _wasn't_ expected (EINTR or EBADF), fatal. Otherwise,
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go back and reap_children(), and try again. */
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errno = saved_errno;
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if (errno != EINTR && errno != EBADF)
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pfatal_with_name (_("read jobs pipe"));
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if (errno == EBADF)
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DB (DB_JOBS, ("Read returned EBADF.\n"));
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return 0;
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}
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#endif
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#endif /* MAKE_JOBSERVER */
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/* Create a "bad" file descriptor for stdin when parallel jobs are run. */
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int
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get_bad_stdin (void)
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{
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static int bad_stdin = -1;
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/* Set up a bad standard input that reads from a broken pipe. */
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if (bad_stdin == -1)
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{
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/* Make a file descriptor that is the read end of a broken pipe.
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This will be used for some children's standard inputs. */
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int pd[2];
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if (pipe (pd) == 0)
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{
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/* Close the write side. */
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(void) close (pd[1]);
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/* Save the read side. */
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bad_stdin = pd[0];
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/* Set the descriptor to close on exec, so it does not litter any
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child's descriptor table. When it is dup2'd onto descriptor 0,
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that descriptor will not close on exec. */
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CLOSE_ON_EXEC (bad_stdin);
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}
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}
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return bad_stdin;
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}
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