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691 lines
17 KiB
691 lines
17 KiB
/*
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* Copyright (c) 1991, 1992 Paul Kranenburg <pk@cs.few.eur.nl>
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* Copyright (c) 1993 Branko Lankester <branko@hacktic.nl>
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* Copyright (c) 1993, 1994, 1995, 1996 Rick Sladkey <jrs@world.std.com>
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* Copyright (c) 1996-1999 Wichert Akkerman <wichert@cistron.nl>
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* Copyright (c) 1999 IBM Deutschland Entwicklung GmbH, IBM Corporation
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* Linux for s390 port by D.J. Barrow
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* <barrow_dj@mail.yahoo.com,djbarrow@de.ibm.com>
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* Copyright (c) 2001-2018 The strace developers.
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* All rights reserved.
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*
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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
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* are met:
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* 1. 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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* 2. 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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* 3. The name of the author may not be used to endorse or promote products
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* derived from this software without specific prior written permission.
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*
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* THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
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* IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
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* OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
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* IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
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* INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
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* NOT 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 OF
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* THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#include "defs.h"
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#include "nsig.h"
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#include "xstring.h"
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/* The libc headers do not define this constant since it should only be
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used by the implementation. So we define it here. */
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#ifndef SA_RESTORER
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# ifdef ASM_SA_RESTORER
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# define SA_RESTORER ASM_SA_RESTORER
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# endif
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#endif
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/*
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* Some architectures define SA_RESTORER in their headers,
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* but do not actually have sa_restorer.
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*
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* Some architectures, otherwise, do not define SA_RESTORER in their headers,
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* but actually have sa_restorer.
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*/
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#ifdef HAVE_ARCH_SA_RESTORER
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# define HAVE_SA_RESTORER HAVE_ARCH_SA_RESTORER
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#else /* !HAVE_ARCH_SA_RESTORER */
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# ifdef SA_RESTORER
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# define HAVE_SA_RESTORER 1
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# else
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# define HAVE_SA_RESTORER 0
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# endif
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#endif /* HAVE_ARCH_SA_RESTORER */
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#include "xlat/sa_handler_values.h"
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#include "xlat/sigact_flags.h"
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#include "xlat/sigprocmaskcmds.h"
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/* Anonymous realtime signals. */
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#ifndef ASM_SIGRTMIN
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/* Linux kernel >= 3.18 defines SIGRTMIN to 32 on all architectures. */
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# define ASM_SIGRTMIN 32
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#endif
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#ifndef ASM_SIGRTMAX
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/* Under glibc 2.1, SIGRTMAX et al are functions, but __SIGRTMAX is a
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constant. This is what we want. Otherwise, just use SIGRTMAX. */
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# ifdef SIGRTMAX
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# ifndef __SIGRTMAX
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# define __SIGRTMAX SIGRTMAX
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# endif
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# endif
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# ifdef __SIGRTMAX
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# define ASM_SIGRTMAX __SIGRTMAX
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# endif
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#endif
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/* Note on the size of sigset_t:
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*
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* In glibc, sigset_t is an array with space for 1024 bits (!),
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* even though all arches supported by Linux have only 64 signals
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* except MIPS, which has 128. IOW, it is 128 bytes long.
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*
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* In-kernel sigset_t is sized correctly (it is either 64 or 128 bit long).
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* However, some old syscall return only 32 lower bits (one word).
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* Example: sys_sigpending vs sys_rt_sigpending.
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*
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* Be aware of this fact when you try to
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* memcpy(&tcp->u_arg[1], &something, sizeof(sigset_t))
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* - sizeof(sigset_t) is much bigger than you think,
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* it may overflow tcp->u_arg[] array, and it may try to copy more data
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* than is really available in <something>.
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* Similarly,
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* umoven(tcp, addr, sizeof(sigset_t), &sigset)
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* may be a bad idea: it'll try to read much more data than needed
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* to fetch a sigset_t.
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* Use NSIG_BYTES as a size instead.
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*/
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static const char *
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get_sa_handler_str(kernel_ulong_t handler)
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{
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return xlookup(sa_handler_values, handler);
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}
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static void
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print_sa_handler(kernel_ulong_t handler)
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{
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const char *sa_handler_str = get_sa_handler_str(handler);
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if (sa_handler_str)
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print_xlat_ex(handler, sa_handler_str, XLAT_STYLE_DEFAULT);
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else
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printaddr(handler);
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}
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const char *
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signame(const int sig)
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{
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static char buf[sizeof("SIGRT_%u") + sizeof(int)*3];
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if (sig >= 0) {
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const unsigned int s = sig;
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if (s < nsignals)
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return signalent[s];
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#ifdef ASM_SIGRTMAX
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if (s >= ASM_SIGRTMIN && s <= (unsigned int) ASM_SIGRTMAX) {
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xsprintf(buf, "SIGRT_%u", s - ASM_SIGRTMIN);
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return buf;
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}
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#endif
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}
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xsprintf(buf, "%d", sig);
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return buf;
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}
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static unsigned int
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popcount32(const uint32_t *a, unsigned int size)
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{
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unsigned int count = 0;
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for (; size; ++a, --size) {
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uint32_t x = *a;
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#ifdef HAVE___BUILTIN_POPCOUNT
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count += __builtin_popcount(x);
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#else
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for (; x; ++count)
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x &= x - 1;
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#endif
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}
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return count;
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}
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const char *
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sprintsigmask_n(const char *prefix, const void *sig_mask, unsigned int bytes)
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{
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/*
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* The maximum number of signal names to be printed
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* is NSIG_BYTES * 8 * 2 / 3.
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* Most of signal names have length 7,
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* average length of signal names is less than 7.
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* The length of prefix string does not exceed 16.
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*/
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static char outstr[128 + 8 * (NSIG_BYTES * 8 * 2 / 3)];
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char *s;
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const uint32_t *mask;
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uint32_t inverted_mask[NSIG_BYTES / 4];
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unsigned int size;
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int i;
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char sep;
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s = stpcpy(outstr, prefix);
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mask = sig_mask;
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/* length of signal mask in 4-byte words */
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size = (bytes >= NSIG_BYTES) ? NSIG_BYTES / 4 : (bytes + 3) / 4;
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/* check whether 2/3 or more bits are set */
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if (popcount32(mask, size) >= size * (4 * 8) * 2 / 3) {
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/* show those signals that are NOT in the mask */
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unsigned int j;
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for (j = 0; j < size; ++j)
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inverted_mask[j] = ~mask[j];
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mask = inverted_mask;
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*s++ = '~';
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}
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sep = '[';
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for (i = 0; (i = next_set_bit(mask, i, size * (4 * 8))) >= 0; ) {
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++i;
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*s++ = sep;
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if ((unsigned) i < nsignals) {
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s = stpcpy(s, signalent[i] + 3);
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}
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#ifdef ASM_SIGRTMAX
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else if (i >= ASM_SIGRTMIN && i <= ASM_SIGRTMAX) {
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s = xappendstr(outstr, s, "RT_%u", i - ASM_SIGRTMIN);
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}
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#endif
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else {
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s = xappendstr(outstr, s, "%u", i);
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}
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sep = ' ';
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}
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if (sep == '[')
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*s++ = sep;
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*s++ = ']';
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*s = '\0';
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return outstr;
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}
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#define sprintsigmask_val(prefix, mask) \
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sprintsigmask_n((prefix), &(mask), sizeof(mask))
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#define tprintsigmask_val(prefix, mask) \
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tprints(sprintsigmask_n((prefix), &(mask), sizeof(mask)))
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static const char *
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sprint_old_sigmask_val(const char *const prefix, const unsigned long mask)
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{
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#if defined(current_wordsize) || !defined(WORDS_BIGENDIAN)
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return sprintsigmask_n(prefix, &mask, current_wordsize);
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#else /* !current_wordsize && WORDS_BIGENDIAN */
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if (current_wordsize == sizeof(mask)) {
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return sprintsigmask_val(prefix, mask);
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} else {
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uint32_t mask32 = mask;
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return sprintsigmask_val(prefix, mask32);
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}
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#endif
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}
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#define tprint_old_sigmask_val(prefix, mask) \
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tprints(sprint_old_sigmask_val((prefix), (mask)))
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void
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printsignal(int nr)
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{
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tprints(signame(nr));
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}
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static void
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print_sigset_addr_len_limit(struct tcb *const tcp, const kernel_ulong_t addr,
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const kernel_ulong_t len, const unsigned int min_len)
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{
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/*
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* Here len is usually equal to NSIG_BYTES or current_wordsize.
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* But we code this defensively:
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*/
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if (len < min_len || len > NSIG_BYTES) {
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printaddr(addr);
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return;
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}
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int mask[NSIG_BYTES / sizeof(int)] = {};
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if (umoven_or_printaddr(tcp, addr, len, mask))
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return;
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tprints(sprintsigmask_n("", mask, len));
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}
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void
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print_sigset_addr_len(struct tcb *const tcp, const kernel_ulong_t addr,
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const kernel_ulong_t len)
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{
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print_sigset_addr_len_limit(tcp, addr, len, current_wordsize);
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}
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void
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print_sigset_addr(struct tcb *const tcp, const kernel_ulong_t addr)
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{
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print_sigset_addr_len_limit(tcp, addr, NSIG_BYTES, NSIG_BYTES);
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}
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SYS_FUNC(ssetmask)
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{
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if (entering(tcp)) {
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tprint_old_sigmask_val("", (unsigned) tcp->u_arg[0]);
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} else if (!syserror(tcp)) {
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tcp->auxstr = sprint_old_sigmask_val("old mask ",
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(unsigned) tcp->u_rval);
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return RVAL_HEX | RVAL_STR;
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}
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return 0;
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}
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struct old_sigaction {
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/* sa_handler may be a libc #define, need to use other name: */
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#if defined MIPS
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unsigned int sa_flags;
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unsigned long sa_handler__;
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unsigned long sa_mask;
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#elif defined ALPHA
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unsigned long sa_handler__;
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unsigned long sa_mask;
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unsigned int sa_flags;
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#else
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unsigned long sa_handler__;
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unsigned long sa_mask;
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unsigned long sa_flags;
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unsigned long sa_restorer;
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#endif
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}
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#ifdef ALPHA
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ATTRIBUTE_PACKED
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#endif
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;
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static void
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decode_old_sigaction(struct tcb *const tcp, const kernel_ulong_t addr)
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{
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struct old_sigaction sa;
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#ifndef current_wordsize
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if (current_wordsize < sizeof(sa.sa_handler__)) {
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struct old_sigaction32 {
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uint32_t sa_handler__;
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uint32_t sa_mask;
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uint32_t sa_flags;
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uint32_t sa_restorer;
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} sa32;
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if (umove_or_printaddr(tcp, addr, &sa32))
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return;
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memset(&sa, 0, sizeof(sa));
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sa.sa_handler__ = sa32.sa_handler__;
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sa.sa_flags = sa32.sa_flags;
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sa.sa_restorer = sa32.sa_restorer;
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sa.sa_mask = sa32.sa_mask;
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} else
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#endif
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if (umove_or_printaddr(tcp, addr, &sa))
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return;
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tprints("{sa_handler=");
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print_sa_handler(sa.sa_handler__);
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tprints(", sa_mask=");
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tprint_old_sigmask_val("", sa.sa_mask);
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tprints(", sa_flags=");
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printflags(sigact_flags, sa.sa_flags, "SA_???");
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#if !(defined ALPHA || defined MIPS)
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if (sa.sa_flags & 0x04000000U) {
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tprints(", sa_restorer=");
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printaddr(sa.sa_restorer);
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}
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#endif
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tprints("}");
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}
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SYS_FUNC(sigaction)
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{
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if (entering(tcp)) {
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int signo = tcp->u_arg[0];
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#if defined SPARC || defined SPARC64
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if (signo < 0) {
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tprints("-");
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signo = -signo;
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}
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#endif
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printsignal(signo);
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tprints(", ");
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decode_old_sigaction(tcp, tcp->u_arg[1]);
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tprints(", ");
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} else
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decode_old_sigaction(tcp, tcp->u_arg[2]);
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return 0;
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}
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SYS_FUNC(signal)
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{
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if (entering(tcp)) {
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printsignal(tcp->u_arg[0]);
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tprints(", ");
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print_sa_handler(tcp->u_arg[1]);
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return 0;
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} else if (!syserror(tcp)) {
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tcp->auxstr = get_sa_handler_str(tcp->u_rval);
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return RVAL_HEX | RVAL_STR;
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}
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return 0;
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}
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SYS_FUNC(sgetmask)
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{
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if (exiting(tcp) && !syserror(tcp)) {
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tcp->auxstr = sprint_old_sigmask_val("mask ", tcp->u_rval);
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return RVAL_HEX | RVAL_STR;
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}
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return 0;
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}
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SYS_FUNC(sigsuspend)
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{
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#ifdef MIPS
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print_sigset_addr_len(tcp, tcp->u_arg[tcp->s_ent->nargs - 1],
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current_wordsize);
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#else
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tprint_old_sigmask_val("", tcp->u_arg[tcp->s_ent->nargs - 1]);
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#endif
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return RVAL_DECODED;
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}
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#ifdef ALPHA
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/*
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* The OSF/1 sigprocmask is different: it doesn't pass in two pointers,
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* but rather passes in the new bitmask as an argument and then returns
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* the old bitmask. This "works" because we only have 64 signals to worry
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* about. If you want more, use of the rt_sigprocmask syscall is required.
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*
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* Alpha:
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* old = osf_sigprocmask(how, new);
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* Everyone else:
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* ret = sigprocmask(how, &new, &old, ...);
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*/
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SYS_FUNC(osf_sigprocmask)
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{
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if (entering(tcp)) {
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printxval(sigprocmaskcmds, tcp->u_arg[0], "SIG_???");
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tprintsigmask_val(", ", tcp->u_arg[1]);
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} else if (!syserror(tcp)) {
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tcp->auxstr = sprintsigmask_val("old mask ", tcp->u_rval);
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return RVAL_HEX | RVAL_STR;
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}
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return 0;
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}
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#else /* !ALPHA */
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/* "Old" sigprocmask, which operates with word-sized signal masks */
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SYS_FUNC(sigprocmask)
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{
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if (entering(tcp)) {
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printxval(sigprocmaskcmds, tcp->u_arg[0], "SIG_???");
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tprints(", ");
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print_sigset_addr_len(tcp, tcp->u_arg[1], current_wordsize);
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tprints(", ");
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} else {
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print_sigset_addr_len(tcp, tcp->u_arg[2], current_wordsize);
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}
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return 0;
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}
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#endif /* !ALPHA */
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SYS_FUNC(kill)
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{
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tprintf("%d, %s",
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(int) tcp->u_arg[0],
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signame(tcp->u_arg[1]));
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return RVAL_DECODED;
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}
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SYS_FUNC(tgkill)
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{
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tprintf("%d, %d, %s",
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(int) tcp->u_arg[0],
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(int) tcp->u_arg[1],
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signame(tcp->u_arg[2]));
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return RVAL_DECODED;
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}
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SYS_FUNC(sigpending)
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{
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if (exiting(tcp))
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print_sigset_addr_len(tcp, tcp->u_arg[0], current_wordsize);
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return 0;
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}
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SYS_FUNC(rt_sigprocmask)
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{
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/* Note: arg[3] is the length of the sigset. Kernel requires NSIG_BYTES */
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if (entering(tcp)) {
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printxval(sigprocmaskcmds, tcp->u_arg[0], "SIG_???");
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tprints(", ");
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print_sigset_addr_len(tcp, tcp->u_arg[1], tcp->u_arg[3]);
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tprints(", ");
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} else {
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print_sigset_addr_len(tcp, tcp->u_arg[2], tcp->u_arg[3]);
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tprintf(", %" PRI_klu, tcp->u_arg[3]);
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}
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return 0;
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}
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/* Structure describing the action to be taken when a signal arrives. */
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struct new_sigaction {
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|
/* sa_handler may be a libc #define, need to use other name: */
|
|
#ifdef MIPS
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unsigned int sa_flags;
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unsigned long sa_handler__;
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#else
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unsigned long sa_handler__;
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unsigned long sa_flags;
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#endif /* !MIPS */
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#if HAVE_SA_RESTORER
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unsigned long sa_restorer;
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#endif
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/* Kernel treats sa_mask as an array of longs. */
|
|
unsigned long sa_mask[NSIG / sizeof(long)];
|
|
};
|
|
/* Same for i386-on-x86_64 and similar cases */
|
|
struct new_sigaction32 {
|
|
uint32_t sa_handler__;
|
|
uint32_t sa_flags;
|
|
#if HAVE_SA_RESTORER
|
|
uint32_t sa_restorer;
|
|
#endif
|
|
uint32_t sa_mask[2 * (NSIG / sizeof(long))];
|
|
};
|
|
|
|
static void
|
|
decode_new_sigaction(struct tcb *const tcp, const kernel_ulong_t addr)
|
|
{
|
|
struct new_sigaction sa;
|
|
|
|
#ifndef current_wordsize
|
|
if (current_wordsize < sizeof(sa.sa_handler__)) {
|
|
struct new_sigaction32 sa32;
|
|
|
|
if (umove_or_printaddr(tcp, addr, &sa32))
|
|
return;
|
|
|
|
memset(&sa, 0, sizeof(sa));
|
|
sa.sa_handler__ = sa32.sa_handler__;
|
|
sa.sa_flags = sa32.sa_flags;
|
|
#if HAVE_SA_RESTORER && defined SA_RESTORER
|
|
sa.sa_restorer = sa32.sa_restorer;
|
|
#endif
|
|
/* Kernel treats sa_mask as an array of longs.
|
|
* For 32-bit process, "long" is uint32_t, thus, for example,
|
|
* 32th bit in sa_mask will end up as bit 0 in sa_mask[1].
|
|
* But for (64-bit) kernel, 32th bit in sa_mask is
|
|
* 32th bit in 0th (64-bit) long!
|
|
* For little-endian, it's the same.
|
|
* For big-endian, we swap 32-bit words.
|
|
*/
|
|
sa.sa_mask[0] = ULONG_LONG(sa32.sa_mask[0], sa32.sa_mask[1]);
|
|
} else
|
|
#endif
|
|
if (umove_or_printaddr(tcp, addr, &sa))
|
|
return;
|
|
|
|
tprints("{sa_handler=");
|
|
print_sa_handler(sa.sa_handler__);
|
|
tprints(", sa_mask=");
|
|
/*
|
|
* Sigset size is in tcp->u_arg[4] (SPARC)
|
|
* or in tcp->u_arg[3] (all other),
|
|
* but kernel won't handle sys_rt_sigaction
|
|
* with wrong sigset size (just returns EINVAL instead).
|
|
* We just fetch the right size, which is NSIG_BYTES.
|
|
*/
|
|
tprintsigmask_val("", sa.sa_mask);
|
|
tprints(", sa_flags=");
|
|
|
|
printflags(sigact_flags, sa.sa_flags, "SA_???");
|
|
#if HAVE_SA_RESTORER && defined SA_RESTORER
|
|
if (sa.sa_flags & SA_RESTORER) {
|
|
tprints(", sa_restorer=");
|
|
printaddr(sa.sa_restorer);
|
|
}
|
|
#endif
|
|
tprints("}");
|
|
}
|
|
|
|
SYS_FUNC(rt_sigaction)
|
|
{
|
|
if (entering(tcp)) {
|
|
printsignal(tcp->u_arg[0]);
|
|
tprints(", ");
|
|
decode_new_sigaction(tcp, tcp->u_arg[1]);
|
|
tprints(", ");
|
|
} else {
|
|
decode_new_sigaction(tcp, tcp->u_arg[2]);
|
|
#if defined(SPARC) || defined(SPARC64)
|
|
tprintf(", %#" PRI_klx ", %" PRI_klu, tcp->u_arg[3], tcp->u_arg[4]);
|
|
#elif defined(ALPHA)
|
|
tprintf(", %" PRI_klu ", %#" PRI_klx, tcp->u_arg[3], tcp->u_arg[4]);
|
|
#else
|
|
tprintf(", %" PRI_klu, tcp->u_arg[3]);
|
|
#endif
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
SYS_FUNC(rt_sigpending)
|
|
{
|
|
if (exiting(tcp)) {
|
|
/*
|
|
* One of the few syscalls where sigset size (arg[1])
|
|
* is allowed to be <= NSIG_BYTES, not strictly ==.
|
|
* This allows non-rt sigpending() syscall
|
|
* to reuse rt_sigpending() code in kernel.
|
|
*/
|
|
print_sigset_addr_len_limit(tcp, tcp->u_arg[0],
|
|
tcp->u_arg[1], 1);
|
|
tprintf(", %" PRI_klu, tcp->u_arg[1]);
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
SYS_FUNC(rt_sigsuspend)
|
|
{
|
|
/* NB: kernel requires arg[1] == NSIG_BYTES */
|
|
print_sigset_addr_len(tcp, tcp->u_arg[0], tcp->u_arg[1]);
|
|
tprintf(", %" PRI_klu, tcp->u_arg[1]);
|
|
|
|
return RVAL_DECODED;
|
|
}
|
|
|
|
static void
|
|
print_sigqueueinfo(struct tcb *const tcp, const int sig,
|
|
const kernel_ulong_t addr)
|
|
{
|
|
printsignal(sig);
|
|
tprints(", ");
|
|
printsiginfo_at(tcp, addr);
|
|
}
|
|
|
|
SYS_FUNC(rt_sigqueueinfo)
|
|
{
|
|
tprintf("%d, ", (int) tcp->u_arg[0]);
|
|
print_sigqueueinfo(tcp, tcp->u_arg[1], tcp->u_arg[2]);
|
|
|
|
return RVAL_DECODED;
|
|
}
|
|
|
|
SYS_FUNC(rt_tgsigqueueinfo)
|
|
{
|
|
tprintf("%d, %d, ", (int) tcp->u_arg[0], (int) tcp->u_arg[1]);
|
|
print_sigqueueinfo(tcp, tcp->u_arg[2], tcp->u_arg[3]);
|
|
|
|
return RVAL_DECODED;
|
|
}
|
|
|
|
SYS_FUNC(rt_sigtimedwait)
|
|
{
|
|
/* NB: kernel requires arg[3] == NSIG_BYTES */
|
|
if (entering(tcp)) {
|
|
print_sigset_addr_len(tcp, tcp->u_arg[0], tcp->u_arg[3]);
|
|
tprints(", ");
|
|
if (!(tcp->u_arg[1] && verbose(tcp))) {
|
|
/*
|
|
* This is the only "return" parameter,
|
|
* if we are not going to fetch it on exit,
|
|
* decode all parameters on entry.
|
|
*/
|
|
printaddr(tcp->u_arg[1]);
|
|
tprints(", ");
|
|
print_timespec(tcp, tcp->u_arg[2]);
|
|
tprintf(", %" PRI_klu, tcp->u_arg[3]);
|
|
} else {
|
|
char *sts = xstrdup(sprint_timespec(tcp, tcp->u_arg[2]));
|
|
set_tcb_priv_data(tcp, sts, free);
|
|
}
|
|
} else {
|
|
if (tcp->u_arg[1] && verbose(tcp)) {
|
|
printsiginfo_at(tcp, tcp->u_arg[1]);
|
|
tprints(", ");
|
|
tprints(get_tcb_priv_data(tcp));
|
|
tprintf(", %" PRI_klu, tcp->u_arg[3]);
|
|
}
|
|
|
|
if (!syserror(tcp) && tcp->u_rval) {
|
|
tcp->auxstr = signame(tcp->u_rval);
|
|
return RVAL_STR;
|
|
}
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
SYS_FUNC(restart_syscall)
|
|
{
|
|
tprintf("<... resuming interrupted %s ...>",
|
|
tcp->s_prev_ent ? tcp->s_prev_ent->sys_name : "system call");
|
|
|
|
return RVAL_DECODED;
|
|
}
|