48aeb6148d
Reviewed by: Matthew Ahrens <mahrens@delphix.com> Reviewed by: Garrett D'Amore <garrett@damore.org> Approved by: Robert Mustacchi <rm@joyent.com> Author: Josef 'Jeff' Sipek <josef.sipek@nexenta.com> illumos/illumos-gate@1a5e258f54
597 lines
14 KiB
C
597 lines
14 KiB
C
/*
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* CDDL HEADER START
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*
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* The contents of this file are subject to the terms of the
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* Common Development and Distribution License (the "License").
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* You may not use this file except in compliance with the License.
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*
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* You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
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* or http://www.opensolaris.org/os/licensing.
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* See the License for the specific language governing permissions
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* and limitations under the License.
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*
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* When distributing Covered Code, include this CDDL HEADER in each
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* file and include the License file at usr/src/OPENSOLARIS.LICENSE.
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* If applicable, add the following below this CDDL HEADER, with the
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* fields enclosed by brackets "[]" replaced with your own identifying
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* information: Portions Copyright [yyyy] [name of copyright owner]
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*
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* CDDL HEADER END
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*/
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/*
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* Copyright 2009 Sun Microsystems, Inc. All rights reserved.
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* Use is subject to license terms.
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*/
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/*
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* Copyright (c) 2011, Joyent, Inc. All rights reserved.
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*/
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#include <sys/errno.h>
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#include <sys/stat.h>
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#include <sys/modctl.h>
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#include <sys/conf.h>
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#include <sys/systm.h>
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#include <sys/ddi.h>
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#include <sys/sunddi.h>
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#include <sys/cpuvar.h>
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#include <sys/kmem.h>
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#include <sys/strsubr.h>
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#include <sys/dtrace.h>
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#include <sys/cyclic.h>
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#include <sys/atomic.h>
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static dev_info_t *profile_devi;
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static dtrace_provider_id_t profile_id;
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/*
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* Regardless of platform, the stack frames look like this in the case of the
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* profile provider:
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*
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* profile_fire
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* cyclic_expire
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* cyclic_fire
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* [ cbe ]
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* [ interrupt code ]
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*
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* On x86, there are five frames from the generic interrupt code; further, the
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* interrupted instruction appears as its own stack frame, giving us a total of
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* 10.
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*
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* On SPARC, the picture is further complicated because the compiler
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* optimizes away tail-calls -- so the following frames are optimized away:
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*
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* profile_fire
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* cyclic_expire
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*
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* This gives three frames. However, on DEBUG kernels, the cyclic_expire
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* frame cannot be tail-call eliminated, yielding four frames in this case.
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*
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* All of the above constraints lead to the mess below. Yes, the profile
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* provider should ideally figure this out on-the-fly by hitting one of its own
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* probes and then walking its own stack trace. This is complicated, however,
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* and the static definition doesn't seem to be overly brittle. Still, we
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* allow for a manual override in case we get it completely wrong.
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*/
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#ifdef __x86
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#define PROF_ARTIFICIAL_FRAMES 10
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#else
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#ifdef __sparc
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#ifdef DEBUG
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#define PROF_ARTIFICIAL_FRAMES 4
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#else
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#define PROF_ARTIFICIAL_FRAMES 3
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#endif
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#endif
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#endif
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#define PROF_NAMELEN 15
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#define PROF_PROFILE 0
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#define PROF_TICK 1
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#define PROF_PREFIX_PROFILE "profile-"
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#define PROF_PREFIX_TICK "tick-"
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typedef struct profile_probe {
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char prof_name[PROF_NAMELEN];
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dtrace_id_t prof_id;
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int prof_kind;
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hrtime_t prof_interval;
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cyclic_id_t prof_cyclic;
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} profile_probe_t;
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typedef struct profile_probe_percpu {
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hrtime_t profc_expected;
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hrtime_t profc_interval;
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profile_probe_t *profc_probe;
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} profile_probe_percpu_t;
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hrtime_t profile_interval_min = NANOSEC / 5000; /* 5000 hz */
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int profile_aframes = 0; /* override */
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static int profile_rates[] = {
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97, 199, 499, 997, 1999,
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4001, 4999, 0, 0, 0,
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0, 0, 0, 0, 0,
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0, 0, 0, 0, 0
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};
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static int profile_ticks[] = {
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1, 10, 100, 500, 1000,
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5000, 0, 0, 0, 0,
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0, 0, 0, 0, 0
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};
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/*
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* profile_max defines the upper bound on the number of profile probes that
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* can exist (this is to prevent malicious or clumsy users from exhausing
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* system resources by creating a slew of profile probes). At mod load time,
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* this gets its value from PROFILE_MAX_DEFAULT or profile-max-probes if it's
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* present in the profile.conf file.
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*/
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#define PROFILE_MAX_DEFAULT 1000 /* default max. number of probes */
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static uint32_t profile_max; /* maximum number of profile probes */
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static uint32_t profile_total; /* current number of profile probes */
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static void
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profile_fire(void *arg)
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{
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profile_probe_percpu_t *pcpu = arg;
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profile_probe_t *prof = pcpu->profc_probe;
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hrtime_t late;
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late = dtrace_gethrtime() - pcpu->profc_expected;
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pcpu->profc_expected += pcpu->profc_interval;
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dtrace_probe(prof->prof_id, CPU->cpu_profile_pc,
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CPU->cpu_profile_upc, late, 0, 0);
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}
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static void
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profile_tick(void *arg)
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{
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profile_probe_t *prof = arg;
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dtrace_probe(prof->prof_id, CPU->cpu_profile_pc,
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CPU->cpu_profile_upc, 0, 0, 0);
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}
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static void
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profile_create(hrtime_t interval, const char *name, int kind)
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{
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profile_probe_t *prof;
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int nr_frames = PROF_ARTIFICIAL_FRAMES + dtrace_mach_aframes();
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if (profile_aframes)
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nr_frames = profile_aframes;
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if (interval < profile_interval_min)
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return;
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if (dtrace_probe_lookup(profile_id, NULL, NULL, name) != 0)
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return;
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atomic_inc_32(&profile_total);
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if (profile_total > profile_max) {
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atomic_dec_32(&profile_total);
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return;
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}
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prof = kmem_zalloc(sizeof (profile_probe_t), KM_SLEEP);
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(void) strcpy(prof->prof_name, name);
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prof->prof_interval = interval;
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prof->prof_cyclic = CYCLIC_NONE;
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prof->prof_kind = kind;
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prof->prof_id = dtrace_probe_create(profile_id,
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NULL, NULL, name, nr_frames, prof);
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}
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/*ARGSUSED*/
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static void
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profile_provide(void *arg, const dtrace_probedesc_t *desc)
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{
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int i, j, rate, kind;
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hrtime_t val = 0, mult = 1, len;
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const char *name, *suffix = NULL;
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const struct {
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char *prefix;
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int kind;
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} types[] = {
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{ PROF_PREFIX_PROFILE, PROF_PROFILE },
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{ PROF_PREFIX_TICK, PROF_TICK },
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{ NULL, NULL }
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};
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const struct {
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char *name;
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hrtime_t mult;
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} suffixes[] = {
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{ "ns", NANOSEC / NANOSEC },
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{ "nsec", NANOSEC / NANOSEC },
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{ "us", NANOSEC / MICROSEC },
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{ "usec", NANOSEC / MICROSEC },
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{ "ms", NANOSEC / MILLISEC },
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{ "msec", NANOSEC / MILLISEC },
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{ "s", NANOSEC / SEC },
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{ "sec", NANOSEC / SEC },
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{ "m", NANOSEC * (hrtime_t)60 },
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{ "min", NANOSEC * (hrtime_t)60 },
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{ "h", NANOSEC * (hrtime_t)(60 * 60) },
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{ "hour", NANOSEC * (hrtime_t)(60 * 60) },
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{ "d", NANOSEC * (hrtime_t)(24 * 60 * 60) },
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{ "day", NANOSEC * (hrtime_t)(24 * 60 * 60) },
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{ "hz", 0 },
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{ NULL }
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};
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if (desc == NULL) {
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char n[PROF_NAMELEN];
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/*
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* If no description was provided, provide all of our probes.
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*/
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for (i = 0; i < sizeof (profile_rates) / sizeof (int); i++) {
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if ((rate = profile_rates[i]) == 0)
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continue;
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(void) snprintf(n, PROF_NAMELEN, "%s%d",
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PROF_PREFIX_PROFILE, rate);
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profile_create(NANOSEC / rate, n, PROF_PROFILE);
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}
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for (i = 0; i < sizeof (profile_ticks) / sizeof (int); i++) {
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if ((rate = profile_ticks[i]) == 0)
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continue;
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(void) snprintf(n, PROF_NAMELEN, "%s%d",
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PROF_PREFIX_TICK, rate);
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profile_create(NANOSEC / rate, n, PROF_TICK);
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}
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return;
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}
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name = desc->dtpd_name;
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for (i = 0; types[i].prefix != NULL; i++) {
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len = strlen(types[i].prefix);
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if (strncmp(name, types[i].prefix, len) != 0)
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continue;
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break;
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}
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if (types[i].prefix == NULL)
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return;
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kind = types[i].kind;
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j = strlen(name) - len;
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/*
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* We need to start before any time suffix.
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*/
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for (j = strlen(name); j >= len; j--) {
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if (name[j] >= '0' && name[j] <= '9')
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break;
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suffix = &name[j];
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}
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ASSERT(suffix != NULL);
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/*
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* Now determine the numerical value present in the probe name.
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*/
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for (; j >= len; j--) {
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if (name[j] < '0' || name[j] > '9')
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return;
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val += (name[j] - '0') * mult;
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mult *= (hrtime_t)10;
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}
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if (val == 0)
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return;
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/*
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* Look-up the suffix to determine the multiplier.
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*/
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for (i = 0, mult = 0; suffixes[i].name != NULL; i++) {
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if (strcasecmp(suffixes[i].name, suffix) == 0) {
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mult = suffixes[i].mult;
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break;
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}
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}
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if (suffixes[i].name == NULL && *suffix != '\0')
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return;
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if (mult == 0) {
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/*
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* The default is frequency-per-second.
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*/
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val = NANOSEC / val;
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} else {
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val *= mult;
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}
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profile_create(val, name, kind);
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}
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/*ARGSUSED*/
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static void
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profile_destroy(void *arg, dtrace_id_t id, void *parg)
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{
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profile_probe_t *prof = parg;
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ASSERT(prof->prof_cyclic == CYCLIC_NONE);
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kmem_free(prof, sizeof (profile_probe_t));
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ASSERT(profile_total >= 1);
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atomic_dec_32(&profile_total);
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}
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/*ARGSUSED*/
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static void
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profile_online(void *arg, cpu_t *cpu, cyc_handler_t *hdlr, cyc_time_t *when)
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{
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profile_probe_t *prof = arg;
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profile_probe_percpu_t *pcpu;
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pcpu = kmem_zalloc(sizeof (profile_probe_percpu_t), KM_SLEEP);
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pcpu->profc_probe = prof;
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hdlr->cyh_func = profile_fire;
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hdlr->cyh_arg = pcpu;
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hdlr->cyh_level = CY_HIGH_LEVEL;
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when->cyt_interval = prof->prof_interval;
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when->cyt_when = dtrace_gethrtime() + when->cyt_interval;
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pcpu->profc_expected = when->cyt_when;
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pcpu->profc_interval = when->cyt_interval;
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}
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/*ARGSUSED*/
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static void
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profile_offline(void *arg, cpu_t *cpu, void *oarg)
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{
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profile_probe_percpu_t *pcpu = oarg;
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ASSERT(pcpu->profc_probe == arg);
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kmem_free(pcpu, sizeof (profile_probe_percpu_t));
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}
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/*ARGSUSED*/
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static int
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profile_enable(void *arg, dtrace_id_t id, void *parg)
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{
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profile_probe_t *prof = parg;
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cyc_omni_handler_t omni;
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cyc_handler_t hdlr;
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cyc_time_t when;
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ASSERT(prof->prof_interval != 0);
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ASSERT(MUTEX_HELD(&cpu_lock));
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if (prof->prof_kind == PROF_TICK) {
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hdlr.cyh_func = profile_tick;
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hdlr.cyh_arg = prof;
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hdlr.cyh_level = CY_HIGH_LEVEL;
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when.cyt_interval = prof->prof_interval;
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when.cyt_when = dtrace_gethrtime() + when.cyt_interval;
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} else {
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ASSERT(prof->prof_kind == PROF_PROFILE);
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omni.cyo_online = profile_online;
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omni.cyo_offline = profile_offline;
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omni.cyo_arg = prof;
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}
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if (prof->prof_kind == PROF_TICK) {
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prof->prof_cyclic = cyclic_add(&hdlr, &when);
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} else {
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prof->prof_cyclic = cyclic_add_omni(&omni);
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}
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return (0);
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}
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/*ARGSUSED*/
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static void
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profile_disable(void *arg, dtrace_id_t id, void *parg)
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{
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profile_probe_t *prof = parg;
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ASSERT(prof->prof_cyclic != CYCLIC_NONE);
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ASSERT(MUTEX_HELD(&cpu_lock));
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cyclic_remove(prof->prof_cyclic);
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prof->prof_cyclic = CYCLIC_NONE;
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}
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/*ARGSUSED*/
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static int
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profile_mode(void *arg, dtrace_id_t id, void *parg)
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{
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profile_probe_t *prof = parg;
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int mode;
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if (CPU->cpu_profile_pc != 0) {
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mode = DTRACE_MODE_KERNEL;
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} else {
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mode = DTRACE_MODE_USER;
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}
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if (prof->prof_kind == PROF_TICK) {
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mode |= DTRACE_MODE_NOPRIV_RESTRICT;
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} else {
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ASSERT(prof->prof_kind == PROF_PROFILE);
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mode |= DTRACE_MODE_NOPRIV_DROP;
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}
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return (mode);
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}
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static dtrace_pattr_t profile_attr = {
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{ DTRACE_STABILITY_EVOLVING, DTRACE_STABILITY_EVOLVING, DTRACE_CLASS_COMMON },
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{ DTRACE_STABILITY_UNSTABLE, DTRACE_STABILITY_UNSTABLE, DTRACE_CLASS_UNKNOWN },
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{ DTRACE_STABILITY_PRIVATE, DTRACE_STABILITY_PRIVATE, DTRACE_CLASS_UNKNOWN },
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{ DTRACE_STABILITY_EVOLVING, DTRACE_STABILITY_EVOLVING, DTRACE_CLASS_COMMON },
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{ DTRACE_STABILITY_EVOLVING, DTRACE_STABILITY_EVOLVING, DTRACE_CLASS_COMMON },
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};
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static dtrace_pops_t profile_pops = {
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profile_provide,
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NULL,
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profile_enable,
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profile_disable,
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NULL,
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NULL,
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NULL,
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NULL,
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profile_mode,
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profile_destroy
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};
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static int
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profile_attach(dev_info_t *devi, ddi_attach_cmd_t cmd)
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{
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switch (cmd) {
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case DDI_ATTACH:
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break;
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case DDI_RESUME:
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return (DDI_SUCCESS);
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default:
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return (DDI_FAILURE);
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}
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if (ddi_create_minor_node(devi, "profile", S_IFCHR, 0,
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DDI_PSEUDO, NULL) == DDI_FAILURE ||
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dtrace_register("profile", &profile_attr,
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DTRACE_PRIV_KERNEL | DTRACE_PRIV_USER, NULL,
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&profile_pops, NULL, &profile_id) != 0) {
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ddi_remove_minor_node(devi, NULL);
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return (DDI_FAILURE);
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}
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profile_max = ddi_getprop(DDI_DEV_T_ANY, devi, DDI_PROP_DONTPASS,
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"profile-max-probes", PROFILE_MAX_DEFAULT);
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ddi_report_dev(devi);
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profile_devi = devi;
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return (DDI_SUCCESS);
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}
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static int
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profile_detach(dev_info_t *devi, ddi_detach_cmd_t cmd)
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{
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switch (cmd) {
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case DDI_DETACH:
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break;
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case DDI_SUSPEND:
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return (DDI_SUCCESS);
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default:
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return (DDI_FAILURE);
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}
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if (dtrace_unregister(profile_id) != 0)
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return (DDI_FAILURE);
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ddi_remove_minor_node(devi, NULL);
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return (DDI_SUCCESS);
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}
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/*ARGSUSED*/
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static int
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profile_info(dev_info_t *dip, ddi_info_cmd_t infocmd, void *arg, void **result)
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{
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int error;
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switch (infocmd) {
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case DDI_INFO_DEVT2DEVINFO:
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*result = (void *)profile_devi;
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error = DDI_SUCCESS;
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break;
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case DDI_INFO_DEVT2INSTANCE:
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*result = (void *)0;
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error = DDI_SUCCESS;
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break;
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default:
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error = DDI_FAILURE;
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}
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return (error);
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}
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/*ARGSUSED*/
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static int
|
|
profile_open(dev_t *devp, int flag, int otyp, cred_t *cred_p)
|
|
{
|
|
return (0);
|
|
}
|
|
|
|
static struct cb_ops profile_cb_ops = {
|
|
profile_open, /* open */
|
|
nodev, /* close */
|
|
nulldev, /* strategy */
|
|
nulldev, /* print */
|
|
nodev, /* dump */
|
|
nodev, /* read */
|
|
nodev, /* write */
|
|
nodev, /* ioctl */
|
|
nodev, /* devmap */
|
|
nodev, /* mmap */
|
|
nodev, /* segmap */
|
|
nochpoll, /* poll */
|
|
ddi_prop_op, /* cb_prop_op */
|
|
0, /* streamtab */
|
|
D_NEW | D_MP /* Driver compatibility flag */
|
|
};
|
|
|
|
static struct dev_ops profile_ops = {
|
|
DEVO_REV, /* devo_rev, */
|
|
0, /* refcnt */
|
|
profile_info, /* get_dev_info */
|
|
nulldev, /* identify */
|
|
nulldev, /* probe */
|
|
profile_attach, /* attach */
|
|
profile_detach, /* detach */
|
|
nodev, /* reset */
|
|
&profile_cb_ops, /* driver operations */
|
|
NULL, /* bus operations */
|
|
nodev, /* dev power */
|
|
ddi_quiesce_not_needed, /* quiesce */
|
|
};
|
|
|
|
/*
|
|
* Module linkage information for the kernel.
|
|
*/
|
|
static struct modldrv modldrv = {
|
|
&mod_driverops, /* module type (this is a pseudo driver) */
|
|
"Profile Interrupt Tracing", /* name of module */
|
|
&profile_ops, /* driver ops */
|
|
};
|
|
|
|
static struct modlinkage modlinkage = {
|
|
MODREV_1,
|
|
(void *)&modldrv,
|
|
NULL
|
|
};
|
|
|
|
int
|
|
_init(void)
|
|
{
|
|
return (mod_install(&modlinkage));
|
|
}
|
|
|
|
int
|
|
_info(struct modinfo *modinfop)
|
|
{
|
|
return (mod_info(&modlinkage, modinfop));
|
|
}
|
|
|
|
int
|
|
_fini(void)
|
|
{
|
|
return (mod_remove(&modlinkage));
|
|
}
|