xref: /freebsd/sys/kern/sched_4bsd.c (revision 2056d0a168da61194845626fcbfc1722893a2d2c)
1b43179fbSJeff Roberson /*-
2b43179fbSJeff Roberson  * Copyright (c) 1982, 1986, 1990, 1991, 1993
3b43179fbSJeff Roberson  *	The Regents of the University of California.  All rights reserved.
4b43179fbSJeff Roberson  * (c) UNIX System Laboratories, Inc.
5b43179fbSJeff Roberson  * All or some portions of this file are derived from material licensed
6b43179fbSJeff Roberson  * to the University of California by American Telephone and Telegraph
7b43179fbSJeff Roberson  * Co. or Unix System Laboratories, Inc. and are reproduced herein with
8b43179fbSJeff Roberson  * the permission of UNIX System Laboratories, Inc.
9b43179fbSJeff Roberson  *
10b43179fbSJeff Roberson  * Redistribution and use in source and binary forms, with or without
11b43179fbSJeff Roberson  * modification, are permitted provided that the following conditions
12b43179fbSJeff Roberson  * are met:
13b43179fbSJeff Roberson  * 1. Redistributions of source code must retain the above copyright
14b43179fbSJeff Roberson  *    notice, this list of conditions and the following disclaimer.
15b43179fbSJeff Roberson  * 2. Redistributions in binary form must reproduce the above copyright
16b43179fbSJeff Roberson  *    notice, this list of conditions and the following disclaimer in the
17b43179fbSJeff Roberson  *    documentation and/or other materials provided with the distribution.
18b43179fbSJeff Roberson  * 3. All advertising materials mentioning features or use of this software
19b43179fbSJeff Roberson  *    must display the following acknowledgement:
20b43179fbSJeff Roberson  *	This product includes software developed by the University of
21b43179fbSJeff Roberson  *	California, Berkeley and its contributors.
22b43179fbSJeff Roberson  * 4. Neither the name of the University nor the names of its contributors
23b43179fbSJeff Roberson  *    may be used to endorse or promote products derived from this software
24b43179fbSJeff Roberson  *    without specific prior written permission.
25b43179fbSJeff Roberson  *
26b43179fbSJeff Roberson  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
27b43179fbSJeff Roberson  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
28b43179fbSJeff Roberson  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
29b43179fbSJeff Roberson  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
30b43179fbSJeff Roberson  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
31b43179fbSJeff Roberson  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
32b43179fbSJeff Roberson  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
33b43179fbSJeff Roberson  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
34b43179fbSJeff Roberson  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
35b43179fbSJeff Roberson  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
36b43179fbSJeff Roberson  * SUCH DAMAGE.
37b43179fbSJeff Roberson  *
38b43179fbSJeff Roberson  * $FreeBSD$
39b43179fbSJeff Roberson  */
40b43179fbSJeff Roberson 
41b43179fbSJeff Roberson #include <sys/param.h>
42b43179fbSJeff Roberson #include <sys/systm.h>
43b43179fbSJeff Roberson #include <sys/kernel.h>
44b43179fbSJeff Roberson #include <sys/ktr.h>
45b43179fbSJeff Roberson #include <sys/lock.h>
46b43179fbSJeff Roberson #include <sys/mutex.h>
47b43179fbSJeff Roberson #include <sys/proc.h>
48b43179fbSJeff Roberson #include <sys/resourcevar.h>
49b43179fbSJeff Roberson #include <sys/sched.h>
50b43179fbSJeff Roberson #include <sys/smp.h>
51b43179fbSJeff Roberson #include <sys/sysctl.h>
52b43179fbSJeff Roberson #include <sys/sx.h>
53b43179fbSJeff Roberson 
5406439a04SJeff Roberson /*
5506439a04SJeff Roberson  * INVERSE_ESTCPU_WEIGHT is only suitable for statclock() frequencies in
5606439a04SJeff Roberson  * the range 100-256 Hz (approximately).
5706439a04SJeff Roberson  */
5806439a04SJeff Roberson #define	ESTCPULIM(e) \
5906439a04SJeff Roberson     min((e), INVERSE_ESTCPU_WEIGHT * (NICE_WEIGHT * (PRIO_MAX - PRIO_MIN) - \
6006439a04SJeff Roberson     RQ_PPQ) + INVERSE_ESTCPU_WEIGHT - 1)
6106439a04SJeff Roberson #define	INVERSE_ESTCPU_WEIGHT	8	/* 1 / (priorities per estcpu level). */
6206439a04SJeff Roberson #define	NICE_WEIGHT		1	/* Priorities per nice level. */
6306439a04SJeff Roberson 
64bcb06d59SJeff Roberson struct ke_sched {
65bcb06d59SJeff Roberson 	int	ske_cpticks;	/* (j) Ticks of cpu time. */
66bcb06d59SJeff Roberson };
67bcb06d59SJeff Roberson 
68bcb06d59SJeff Roberson struct ke_sched ke_sched;
69bcb06d59SJeff Roberson 
70bcb06d59SJeff Roberson struct ke_sched *kse0_sched = &ke_sched;
71de028f5aSJeff Roberson struct kg_sched *ksegrp0_sched = NULL;
72de028f5aSJeff Roberson struct p_sched *proc0_sched = NULL;
73de028f5aSJeff Roberson struct td_sched *thread0_sched = NULL;
74b43179fbSJeff Roberson 
75b43179fbSJeff Roberson static int	sched_quantum;	/* Roundrobin scheduling quantum in ticks. */
764974b53eSMaxime Henrion #define	SCHED_QUANTUM	(hz / 10)	/* Default sched quantum */
77b43179fbSJeff Roberson 
78b43179fbSJeff Roberson static struct callout schedcpu_callout;
79b43179fbSJeff Roberson static struct callout roundrobin_callout;
80b43179fbSJeff Roberson 
81b43179fbSJeff Roberson static void	roundrobin(void *arg);
82b43179fbSJeff Roberson static void	schedcpu(void *arg);
83b43179fbSJeff Roberson static void	sched_setup(void *dummy);
84b43179fbSJeff Roberson static void	maybe_resched(struct thread *td);
85b43179fbSJeff Roberson static void	updatepri(struct ksegrp *kg);
86b43179fbSJeff Roberson static void	resetpriority(struct ksegrp *kg);
87b43179fbSJeff Roberson 
88b43179fbSJeff Roberson SYSINIT(sched_setup, SI_SUB_KICK_SCHEDULER, SI_ORDER_FIRST, sched_setup, NULL)
89b43179fbSJeff Roberson 
90b43179fbSJeff Roberson /*
91b43179fbSJeff Roberson  * Global run queue.
92b43179fbSJeff Roberson  */
93b43179fbSJeff Roberson static struct runq runq;
94b43179fbSJeff Roberson SYSINIT(runq, SI_SUB_RUN_QUEUE, SI_ORDER_FIRST, runq_init, &runq)
95b43179fbSJeff Roberson 
96b43179fbSJeff Roberson static int
97b43179fbSJeff Roberson sysctl_kern_quantum(SYSCTL_HANDLER_ARGS)
98b43179fbSJeff Roberson {
99b43179fbSJeff Roberson 	int error, new_val;
100b43179fbSJeff Roberson 
101b43179fbSJeff Roberson 	new_val = sched_quantum * tick;
102b43179fbSJeff Roberson 	error = sysctl_handle_int(oidp, &new_val, 0, req);
103b43179fbSJeff Roberson         if (error != 0 || req->newptr == NULL)
104b43179fbSJeff Roberson 		return (error);
105b43179fbSJeff Roberson 	if (new_val < tick)
106b43179fbSJeff Roberson 		return (EINVAL);
107b43179fbSJeff Roberson 	sched_quantum = new_val / tick;
108b43179fbSJeff Roberson 	hogticks = 2 * sched_quantum;
109b43179fbSJeff Roberson 	return (0);
110b43179fbSJeff Roberson }
111b43179fbSJeff Roberson 
112b43179fbSJeff Roberson SYSCTL_PROC(_kern, OID_AUTO, quantum, CTLTYPE_INT|CTLFLAG_RW,
113b43179fbSJeff Roberson 	0, sizeof sched_quantum, sysctl_kern_quantum, "I",
114b43179fbSJeff Roberson 	"Roundrobin scheduling quantum in microseconds");
115b43179fbSJeff Roberson 
116b43179fbSJeff Roberson /*
117b43179fbSJeff Roberson  * Arrange to reschedule if necessary, taking the priorities and
118b43179fbSJeff Roberson  * schedulers into account.
119b43179fbSJeff Roberson  */
120b43179fbSJeff Roberson static void
121b43179fbSJeff Roberson maybe_resched(struct thread *td)
122b43179fbSJeff Roberson {
123b43179fbSJeff Roberson 
124b43179fbSJeff Roberson 	mtx_assert(&sched_lock, MA_OWNED);
12593a7aa79SJulian Elischer 	if (td->td_priority < curthread->td_priority && curthread->td_kse)
1264a338afdSJulian Elischer 		curthread->td_flags |= TDF_NEEDRESCHED;
127b43179fbSJeff Roberson }
128b43179fbSJeff Roberson 
129b43179fbSJeff Roberson /*
130b43179fbSJeff Roberson  * Force switch among equal priority processes every 100ms.
131b43179fbSJeff Roberson  * We don't actually need to force a context switch of the current process.
132b43179fbSJeff Roberson  * The act of firing the event triggers a context switch to softclock() and
133b43179fbSJeff Roberson  * then switching back out again which is equivalent to a preemption, thus
134b43179fbSJeff Roberson  * no further work is needed on the local CPU.
135b43179fbSJeff Roberson  */
136b43179fbSJeff Roberson /* ARGSUSED */
137b43179fbSJeff Roberson static void
138b43179fbSJeff Roberson roundrobin(void *arg)
139b43179fbSJeff Roberson {
140b43179fbSJeff Roberson 
141b43179fbSJeff Roberson #ifdef SMP
142b43179fbSJeff Roberson 	mtx_lock_spin(&sched_lock);
143b43179fbSJeff Roberson 	forward_roundrobin();
144b43179fbSJeff Roberson 	mtx_unlock_spin(&sched_lock);
145b43179fbSJeff Roberson #endif
146b43179fbSJeff Roberson 
147b43179fbSJeff Roberson 	callout_reset(&roundrobin_callout, sched_quantum, roundrobin, NULL);
148b43179fbSJeff Roberson }
149b43179fbSJeff Roberson 
150b43179fbSJeff Roberson /*
151b43179fbSJeff Roberson  * Constants for digital decay and forget:
152b43179fbSJeff Roberson  *	90% of (p_estcpu) usage in 5 * loadav time
153b43179fbSJeff Roberson  *	95% of (p_pctcpu) usage in 60 seconds (load insensitive)
154b43179fbSJeff Roberson  *          Note that, as ps(1) mentions, this can let percentages
155b43179fbSJeff Roberson  *          total over 100% (I've seen 137.9% for 3 processes).
156b43179fbSJeff Roberson  *
157b43179fbSJeff Roberson  * Note that schedclock() updates p_estcpu and p_cpticks asynchronously.
158b43179fbSJeff Roberson  *
159b43179fbSJeff Roberson  * We wish to decay away 90% of p_estcpu in (5 * loadavg) seconds.
160b43179fbSJeff Roberson  * That is, the system wants to compute a value of decay such
161b43179fbSJeff Roberson  * that the following for loop:
162b43179fbSJeff Roberson  * 	for (i = 0; i < (5 * loadavg); i++)
163b43179fbSJeff Roberson  * 		p_estcpu *= decay;
164b43179fbSJeff Roberson  * will compute
165b43179fbSJeff Roberson  * 	p_estcpu *= 0.1;
166b43179fbSJeff Roberson  * for all values of loadavg:
167b43179fbSJeff Roberson  *
168b43179fbSJeff Roberson  * Mathematically this loop can be expressed by saying:
169b43179fbSJeff Roberson  * 	decay ** (5 * loadavg) ~= .1
170b43179fbSJeff Roberson  *
171b43179fbSJeff Roberson  * The system computes decay as:
172b43179fbSJeff Roberson  * 	decay = (2 * loadavg) / (2 * loadavg + 1)
173b43179fbSJeff Roberson  *
174b43179fbSJeff Roberson  * We wish to prove that the system's computation of decay
175b43179fbSJeff Roberson  * will always fulfill the equation:
176b43179fbSJeff Roberson  * 	decay ** (5 * loadavg) ~= .1
177b43179fbSJeff Roberson  *
178b43179fbSJeff Roberson  * If we compute b as:
179b43179fbSJeff Roberson  * 	b = 2 * loadavg
180b43179fbSJeff Roberson  * then
181b43179fbSJeff Roberson  * 	decay = b / (b + 1)
182b43179fbSJeff Roberson  *
183b43179fbSJeff Roberson  * We now need to prove two things:
184b43179fbSJeff Roberson  *	1) Given factor ** (5 * loadavg) ~= .1, prove factor == b/(b+1)
185b43179fbSJeff Roberson  *	2) Given b/(b+1) ** power ~= .1, prove power == (5 * loadavg)
186b43179fbSJeff Roberson  *
187b43179fbSJeff Roberson  * Facts:
188b43179fbSJeff Roberson  *         For x close to zero, exp(x) =~ 1 + x, since
189b43179fbSJeff Roberson  *              exp(x) = 0! + x**1/1! + x**2/2! + ... .
190b43179fbSJeff Roberson  *              therefore exp(-1/b) =~ 1 - (1/b) = (b-1)/b.
191b43179fbSJeff Roberson  *         For x close to zero, ln(1+x) =~ x, since
192b43179fbSJeff Roberson  *              ln(1+x) = x - x**2/2 + x**3/3 - ...     -1 < x < 1
193b43179fbSJeff Roberson  *              therefore ln(b/(b+1)) = ln(1 - 1/(b+1)) =~ -1/(b+1).
194b43179fbSJeff Roberson  *         ln(.1) =~ -2.30
195b43179fbSJeff Roberson  *
196b43179fbSJeff Roberson  * Proof of (1):
197b43179fbSJeff Roberson  *    Solve (factor)**(power) =~ .1 given power (5*loadav):
198b43179fbSJeff Roberson  *	solving for factor,
199b43179fbSJeff Roberson  *      ln(factor) =~ (-2.30/5*loadav), or
200b43179fbSJeff Roberson  *      factor =~ exp(-1/((5/2.30)*loadav)) =~ exp(-1/(2*loadav)) =
201b43179fbSJeff Roberson  *          exp(-1/b) =~ (b-1)/b =~ b/(b+1).                    QED
202b43179fbSJeff Roberson  *
203b43179fbSJeff Roberson  * Proof of (2):
204b43179fbSJeff Roberson  *    Solve (factor)**(power) =~ .1 given factor == (b/(b+1)):
205b43179fbSJeff Roberson  *	solving for power,
206b43179fbSJeff Roberson  *      power*ln(b/(b+1)) =~ -2.30, or
207b43179fbSJeff Roberson  *      power =~ 2.3 * (b + 1) = 4.6*loadav + 2.3 =~ 5*loadav.  QED
208b43179fbSJeff Roberson  *
209b43179fbSJeff Roberson  * Actual power values for the implemented algorithm are as follows:
210b43179fbSJeff Roberson  *      loadav: 1       2       3       4
211b43179fbSJeff Roberson  *      power:  5.68    10.32   14.94   19.55
212b43179fbSJeff Roberson  */
213b43179fbSJeff Roberson 
214b43179fbSJeff Roberson /* calculations for digital decay to forget 90% of usage in 5*loadav sec */
215b43179fbSJeff Roberson #define	loadfactor(loadav)	(2 * (loadav))
216b43179fbSJeff Roberson #define	decay_cpu(loadfac, cpu)	(((loadfac) * (cpu)) / ((loadfac) + FSCALE))
217b43179fbSJeff Roberson 
218b43179fbSJeff Roberson /* decay 95% of `p_pctcpu' in 60 seconds; see CCPU_SHIFT before changing */
219b43179fbSJeff Roberson static fixpt_t	ccpu = 0.95122942450071400909 * FSCALE;	/* exp(-1/20) */
220b43179fbSJeff Roberson SYSCTL_INT(_kern, OID_AUTO, ccpu, CTLFLAG_RD, &ccpu, 0, "");
221b43179fbSJeff Roberson 
222b43179fbSJeff Roberson /*
223b43179fbSJeff Roberson  * If `ccpu' is not equal to `exp(-1/20)' and you still want to use the
224b43179fbSJeff Roberson  * faster/more-accurate formula, you'll have to estimate CCPU_SHIFT below
225b43179fbSJeff Roberson  * and possibly adjust FSHIFT in "param.h" so that (FSHIFT >= CCPU_SHIFT).
226b43179fbSJeff Roberson  *
227b43179fbSJeff Roberson  * To estimate CCPU_SHIFT for exp(-1/20), the following formula was used:
228b43179fbSJeff Roberson  *	1 - exp(-1/20) ~= 0.0487 ~= 0.0488 == 1 (fixed pt, *11* bits).
229b43179fbSJeff Roberson  *
230b43179fbSJeff Roberson  * If you don't want to bother with the faster/more-accurate formula, you
231b43179fbSJeff Roberson  * can set CCPU_SHIFT to (FSHIFT + 1) which will use a slower/less-accurate
232b43179fbSJeff Roberson  * (more general) method of calculating the %age of CPU used by a process.
233b43179fbSJeff Roberson  */
234b43179fbSJeff Roberson #define	CCPU_SHIFT	11
235b43179fbSJeff Roberson 
236b43179fbSJeff Roberson /*
237b43179fbSJeff Roberson  * Recompute process priorities, every hz ticks.
238b43179fbSJeff Roberson  * MP-safe, called without the Giant mutex.
239b43179fbSJeff Roberson  */
240b43179fbSJeff Roberson /* ARGSUSED */
241b43179fbSJeff Roberson static void
242b43179fbSJeff Roberson schedcpu(void *arg)
243b43179fbSJeff Roberson {
244b43179fbSJeff Roberson 	register fixpt_t loadfac = loadfactor(averunnable.ldavg[0]);
245b43179fbSJeff Roberson 	struct thread *td;
246b43179fbSJeff Roberson 	struct proc *p;
247b43179fbSJeff Roberson 	struct kse *ke;
248b43179fbSJeff Roberson 	struct ksegrp *kg;
249b43179fbSJeff Roberson 	int realstathz;
250b43179fbSJeff Roberson 	int awake;
251b43179fbSJeff Roberson 
252b43179fbSJeff Roberson 	realstathz = stathz ? stathz : hz;
253b43179fbSJeff Roberson 	sx_slock(&allproc_lock);
254b43179fbSJeff Roberson 	FOREACH_PROC_IN_SYSTEM(p) {
255b43179fbSJeff Roberson 		mtx_lock_spin(&sched_lock);
256b43179fbSJeff Roberson 		p->p_swtime++;
257b43179fbSJeff Roberson 		FOREACH_KSEGRP_IN_PROC(p, kg) {
258b43179fbSJeff Roberson 			awake = 0;
259b43179fbSJeff Roberson 			FOREACH_KSE_IN_GROUP(kg, ke) {
260b43179fbSJeff Roberson 				/*
261b43179fbSJeff Roberson 				 * Increment time in/out of memory and sleep
262b43179fbSJeff Roberson 				 * time (if sleeping).  We ignore overflow;
263b43179fbSJeff Roberson 				 * with 16-bit int's (remember them?)
264b43179fbSJeff Roberson 				 * overflow takes 45 days.
265b43179fbSJeff Roberson 				 */
266b43179fbSJeff Roberson 				/*
267b43179fbSJeff Roberson 				 * The kse slptimes are not touched in wakeup
268b43179fbSJeff Roberson 				 * because the thread may not HAVE a KSE.
269b43179fbSJeff Roberson 				 */
270b43179fbSJeff Roberson 				if (ke->ke_state == KES_ONRUNQ) {
271b43179fbSJeff Roberson 					awake = 1;
272b43179fbSJeff Roberson 					ke->ke_flags &= ~KEF_DIDRUN;
273b43179fbSJeff Roberson 				} else if ((ke->ke_state == KES_THREAD) &&
274b43179fbSJeff Roberson 				    (TD_IS_RUNNING(ke->ke_thread))) {
275b43179fbSJeff Roberson 					awake = 1;
276b43179fbSJeff Roberson 					/* Do not clear KEF_DIDRUN */
277b43179fbSJeff Roberson 				} else if (ke->ke_flags & KEF_DIDRUN) {
278b43179fbSJeff Roberson 					awake = 1;
279b43179fbSJeff Roberson 					ke->ke_flags &= ~KEF_DIDRUN;
280b43179fbSJeff Roberson 				}
281b43179fbSJeff Roberson 
282b43179fbSJeff Roberson 				/*
283b43179fbSJeff Roberson 				 * pctcpu is only for ps?
284b43179fbSJeff Roberson 				 * Do it per kse.. and add them up at the end?
285b43179fbSJeff Roberson 				 * XXXKSE
286b43179fbSJeff Roberson 				 */
2878fb913faSJeff Roberson 				ke->ke_pctcpu
2888fb913faSJeff Roberson 				    = (ke->ke_pctcpu * ccpu) >>
289bcb06d59SJeff Roberson 				    FSHIFT;
290b43179fbSJeff Roberson 				/*
291b43179fbSJeff Roberson 				 * If the kse has been idle the entire second,
292b43179fbSJeff Roberson 				 * stop recalculating its priority until
293b43179fbSJeff Roberson 				 * it wakes up.
294b43179fbSJeff Roberson 				 */
295bcb06d59SJeff Roberson 				if (ke->ke_sched->ske_cpticks == 0)
296b43179fbSJeff Roberson 					continue;
297b43179fbSJeff Roberson #if	(FSHIFT >= CCPU_SHIFT)
2988fb913faSJeff Roberson 				ke->ke_pctcpu += (realstathz == 100)
299bcb06d59SJeff Roberson 				    ? ((fixpt_t) ke->ke_sched->ske_cpticks) <<
300b43179fbSJeff Roberson 				    (FSHIFT - CCPU_SHIFT) :
301bcb06d59SJeff Roberson 				    100 * (((fixpt_t) ke->ke_sched->ske_cpticks)
302bcb06d59SJeff Roberson 				    << (FSHIFT - CCPU_SHIFT)) / realstathz;
303b43179fbSJeff Roberson #else
3048fb913faSJeff Roberson 				ke->ke_pctcpu += ((FSCALE - ccpu) *
305bcb06d59SJeff Roberson 				    (ke->ke_sched->ske_cpticks *
306bcb06d59SJeff Roberson 				    FSCALE / realstathz)) >> FSHIFT;
307b43179fbSJeff Roberson #endif
308bcb06d59SJeff Roberson 				ke->ke_sched->ske_cpticks = 0;
309b43179fbSJeff Roberson 			} /* end of kse loop */
310b43179fbSJeff Roberson 			/*
311b43179fbSJeff Roberson 			 * If there are ANY running threads in this KSEGRP,
312b43179fbSJeff Roberson 			 * then don't count it as sleeping.
313b43179fbSJeff Roberson 			 */
314b43179fbSJeff Roberson 			if (awake) {
315b43179fbSJeff Roberson 				if (kg->kg_slptime > 1) {
316b43179fbSJeff Roberson 					/*
317b43179fbSJeff Roberson 					 * In an ideal world, this should not
318b43179fbSJeff Roberson 					 * happen, because whoever woke us
319b43179fbSJeff Roberson 					 * up from the long sleep should have
320b43179fbSJeff Roberson 					 * unwound the slptime and reset our
321b43179fbSJeff Roberson 					 * priority before we run at the stale
322b43179fbSJeff Roberson 					 * priority.  Should KASSERT at some
323b43179fbSJeff Roberson 					 * point when all the cases are fixed.
324b43179fbSJeff Roberson 					 */
325b43179fbSJeff Roberson 					updatepri(kg);
326b43179fbSJeff Roberson 				}
327b43179fbSJeff Roberson 				kg->kg_slptime = 0;
328b43179fbSJeff Roberson 			} else {
329b43179fbSJeff Roberson 				kg->kg_slptime++;
330b43179fbSJeff Roberson 			}
331b43179fbSJeff Roberson 			if (kg->kg_slptime > 1)
332b43179fbSJeff Roberson 				continue;
333b43179fbSJeff Roberson 			kg->kg_estcpu = decay_cpu(loadfac, kg->kg_estcpu);
334b43179fbSJeff Roberson 		      	resetpriority(kg);
335b43179fbSJeff Roberson 			FOREACH_THREAD_IN_GROUP(kg, td) {
336b43179fbSJeff Roberson 				if (td->td_priority >= PUSER) {
3371f955e2dSJulian Elischer 					sched_prio(td, kg->kg_user_pri);
338b43179fbSJeff Roberson 				}
339b43179fbSJeff Roberson 			}
340b43179fbSJeff Roberson 		} /* end of ksegrp loop */
341b43179fbSJeff Roberson 		mtx_unlock_spin(&sched_lock);
342b43179fbSJeff Roberson 	} /* end of process loop */
343b43179fbSJeff Roberson 	sx_sunlock(&allproc_lock);
344b43179fbSJeff Roberson 	callout_reset(&schedcpu_callout, hz, schedcpu, NULL);
345b43179fbSJeff Roberson }
346b43179fbSJeff Roberson 
347b43179fbSJeff Roberson /*
348b43179fbSJeff Roberson  * Recalculate the priority of a process after it has slept for a while.
349b43179fbSJeff Roberson  * For all load averages >= 1 and max p_estcpu of 255, sleeping for at
350b43179fbSJeff Roberson  * least six times the loadfactor will decay p_estcpu to zero.
351b43179fbSJeff Roberson  */
352b43179fbSJeff Roberson static void
353b43179fbSJeff Roberson updatepri(struct ksegrp *kg)
354b43179fbSJeff Roberson {
355b43179fbSJeff Roberson 	register unsigned int newcpu;
356b43179fbSJeff Roberson 	register fixpt_t loadfac = loadfactor(averunnable.ldavg[0]);
357b43179fbSJeff Roberson 
358b43179fbSJeff Roberson 	newcpu = kg->kg_estcpu;
359b43179fbSJeff Roberson 	if (kg->kg_slptime > 5 * loadfac)
360b43179fbSJeff Roberson 		kg->kg_estcpu = 0;
361b43179fbSJeff Roberson 	else {
362b43179fbSJeff Roberson 		kg->kg_slptime--;	/* the first time was done in schedcpu */
363b43179fbSJeff Roberson 		while (newcpu && --kg->kg_slptime)
364b43179fbSJeff Roberson 			newcpu = decay_cpu(loadfac, newcpu);
365b43179fbSJeff Roberson 		kg->kg_estcpu = newcpu;
366b43179fbSJeff Roberson 	}
367b43179fbSJeff Roberson 	resetpriority(kg);
368b43179fbSJeff Roberson }
369b43179fbSJeff Roberson 
370b43179fbSJeff Roberson /*
371b43179fbSJeff Roberson  * Compute the priority of a process when running in user mode.
372b43179fbSJeff Roberson  * Arrange to reschedule if the resulting priority is better
373b43179fbSJeff Roberson  * than that of the current process.
374b43179fbSJeff Roberson  */
375b43179fbSJeff Roberson static void
376b43179fbSJeff Roberson resetpriority(struct ksegrp *kg)
377b43179fbSJeff Roberson {
378b43179fbSJeff Roberson 	register unsigned int newpriority;
379b43179fbSJeff Roberson 	struct thread *td;
380b43179fbSJeff Roberson 
381b43179fbSJeff Roberson 	if (kg->kg_pri_class == PRI_TIMESHARE) {
382b43179fbSJeff Roberson 		newpriority = PUSER + kg->kg_estcpu / INVERSE_ESTCPU_WEIGHT +
383b43179fbSJeff Roberson 		    NICE_WEIGHT * (kg->kg_nice - PRIO_MIN);
384b43179fbSJeff Roberson 		newpriority = min(max(newpriority, PRI_MIN_TIMESHARE),
385b43179fbSJeff Roberson 		    PRI_MAX_TIMESHARE);
386b43179fbSJeff Roberson 		kg->kg_user_pri = newpriority;
387b43179fbSJeff Roberson 	}
388b43179fbSJeff Roberson 	FOREACH_THREAD_IN_GROUP(kg, td) {
389b43179fbSJeff Roberson 		maybe_resched(td);			/* XXXKSE silly */
390b43179fbSJeff Roberson 	}
391b43179fbSJeff Roberson }
392b43179fbSJeff Roberson 
393b43179fbSJeff Roberson /* ARGSUSED */
394b43179fbSJeff Roberson static void
395b43179fbSJeff Roberson sched_setup(void *dummy)
396b43179fbSJeff Roberson {
397b43179fbSJeff Roberson 	if (sched_quantum == 0)
398b43179fbSJeff Roberson 		sched_quantum = SCHED_QUANTUM;
399b43179fbSJeff Roberson 	hogticks = 2 * sched_quantum;
400b43179fbSJeff Roberson 
401b43179fbSJeff Roberson 	callout_init(&schedcpu_callout, 1);
402b43179fbSJeff Roberson 	callout_init(&roundrobin_callout, 0);
403b43179fbSJeff Roberson 
404b43179fbSJeff Roberson 	/* Kick off timeout driven events by calling first time. */
405b43179fbSJeff Roberson 	roundrobin(NULL);
406b43179fbSJeff Roberson 	schedcpu(NULL);
407b43179fbSJeff Roberson }
408b43179fbSJeff Roberson 
409b43179fbSJeff Roberson /* External interfaces start here */
410b43179fbSJeff Roberson int
411b43179fbSJeff Roberson sched_runnable(void)
412b43179fbSJeff Roberson {
413b43179fbSJeff Roberson         return runq_check(&runq);
414b43179fbSJeff Roberson }
415b43179fbSJeff Roberson 
416b43179fbSJeff Roberson int
417b43179fbSJeff Roberson sched_rr_interval(void)
418b43179fbSJeff Roberson {
419b43179fbSJeff Roberson 	if (sched_quantum == 0)
420b43179fbSJeff Roberson 		sched_quantum = SCHED_QUANTUM;
421b43179fbSJeff Roberson 	return (sched_quantum);
422b43179fbSJeff Roberson }
423b43179fbSJeff Roberson 
424b43179fbSJeff Roberson /*
425b43179fbSJeff Roberson  * We adjust the priority of the current process.  The priority of
426b43179fbSJeff Roberson  * a process gets worse as it accumulates CPU time.  The cpu usage
427b43179fbSJeff Roberson  * estimator (p_estcpu) is increased here.  resetpriority() will
428b43179fbSJeff Roberson  * compute a different priority each time p_estcpu increases by
429b43179fbSJeff Roberson  * INVERSE_ESTCPU_WEIGHT
430b43179fbSJeff Roberson  * (until MAXPRI is reached).  The cpu usage estimator ramps up
431b43179fbSJeff Roberson  * quite quickly when the process is running (linearly), and decays
432b43179fbSJeff Roberson  * away exponentially, at a rate which is proportionally slower when
433b43179fbSJeff Roberson  * the system is busy.  The basic principle is that the system will
434b43179fbSJeff Roberson  * 90% forget that the process used a lot of CPU time in 5 * loadav
435b43179fbSJeff Roberson  * seconds.  This causes the system to favor processes which haven't
436b43179fbSJeff Roberson  * run much recently, and to round-robin among other processes.
437b43179fbSJeff Roberson  */
438b43179fbSJeff Roberson void
439f7f9e7f3SJeff Roberson sched_clock(struct kse *ke)
440b43179fbSJeff Roberson {
441b43179fbSJeff Roberson 	struct ksegrp *kg;
442f7f9e7f3SJeff Roberson 	struct thread *td;
443b43179fbSJeff Roberson 
4442056d0a1SJohn Baldwin 	mtx_assert(&sched_lock, MA_OWNED);
445f7f9e7f3SJeff Roberson 	kg = ke->ke_ksegrp;
446f7f9e7f3SJeff Roberson 	td = ke->ke_thread;
447f7f9e7f3SJeff Roberson 
448bcb06d59SJeff Roberson 	ke->ke_sched->ske_cpticks++;
449b43179fbSJeff Roberson 	kg->kg_estcpu = ESTCPULIM(kg->kg_estcpu + 1);
450b43179fbSJeff Roberson 	if ((kg->kg_estcpu % INVERSE_ESTCPU_WEIGHT) == 0) {
451b43179fbSJeff Roberson 		resetpriority(kg);
452b43179fbSJeff Roberson 		if (td->td_priority >= PUSER)
453b43179fbSJeff Roberson 			td->td_priority = kg->kg_user_pri;
454b43179fbSJeff Roberson 	}
455b43179fbSJeff Roberson }
456b43179fbSJeff Roberson /*
457b43179fbSJeff Roberson  * charge childs scheduling cpu usage to parent.
458b43179fbSJeff Roberson  *
459b43179fbSJeff Roberson  * XXXKSE assume only one thread & kse & ksegrp keep estcpu in each ksegrp.
460b43179fbSJeff Roberson  * Charge it to the ksegrp that did the wait since process estcpu is sum of
461b43179fbSJeff Roberson  * all ksegrps, this is strictly as expected.  Assume that the child process
462b43179fbSJeff Roberson  * aggregated all the estcpu into the 'built-in' ksegrp.
463b43179fbSJeff Roberson  */
464b43179fbSJeff Roberson void
465f7f9e7f3SJeff Roberson sched_exit(struct proc *p, struct proc *p1)
466f7f9e7f3SJeff Roberson {
467f7f9e7f3SJeff Roberson 	sched_exit_kse(FIRST_KSE_IN_PROC(p), FIRST_KSE_IN_PROC(p1));
468f7f9e7f3SJeff Roberson 	sched_exit_ksegrp(FIRST_KSEGRP_IN_PROC(p), FIRST_KSEGRP_IN_PROC(p1));
469f7f9e7f3SJeff Roberson 	sched_exit_thread(FIRST_THREAD_IN_PROC(p), FIRST_THREAD_IN_PROC(p1));
470f7f9e7f3SJeff Roberson }
471f7f9e7f3SJeff Roberson 
472f7f9e7f3SJeff Roberson void
473f7f9e7f3SJeff Roberson sched_exit_kse(struct kse *ke, struct kse *child)
474f7f9e7f3SJeff Roberson {
475f7f9e7f3SJeff Roberson }
476f7f9e7f3SJeff Roberson 
477f7f9e7f3SJeff Roberson void
478f7f9e7f3SJeff Roberson sched_exit_ksegrp(struct ksegrp *kg, struct ksegrp *child)
479b43179fbSJeff Roberson {
4802056d0a1SJohn Baldwin 
4812056d0a1SJohn Baldwin 	mtx_assert(&sched_lock, MA_OWNED);
482b43179fbSJeff Roberson 	kg->kg_estcpu = ESTCPULIM(kg->kg_estcpu + child->kg_estcpu);
483b43179fbSJeff Roberson }
484b43179fbSJeff Roberson 
485b43179fbSJeff Roberson void
486f7f9e7f3SJeff Roberson sched_exit_thread(struct thread *td, struct thread *child)
487b43179fbSJeff Roberson {
488f7f9e7f3SJeff Roberson }
489bcb06d59SJeff Roberson 
490f7f9e7f3SJeff Roberson void
491f7f9e7f3SJeff Roberson sched_fork(struct proc *p, struct proc *p1)
492f7f9e7f3SJeff Roberson {
493f7f9e7f3SJeff Roberson 	sched_fork_kse(FIRST_KSE_IN_PROC(p), FIRST_KSE_IN_PROC(p1));
494f7f9e7f3SJeff Roberson 	sched_fork_ksegrp(FIRST_KSEGRP_IN_PROC(p), FIRST_KSEGRP_IN_PROC(p1));
495f7f9e7f3SJeff Roberson 	sched_fork_thread(FIRST_THREAD_IN_PROC(p), FIRST_THREAD_IN_PROC(p1));
496f7f9e7f3SJeff Roberson }
497f7f9e7f3SJeff Roberson 
498f7f9e7f3SJeff Roberson void
499f7f9e7f3SJeff Roberson sched_fork_kse(struct kse *ke, struct kse *child)
500f7f9e7f3SJeff Roberson {
501f7f9e7f3SJeff Roberson 	child->ke_sched->ske_cpticks = 0;
502f7f9e7f3SJeff Roberson }
503f7f9e7f3SJeff Roberson 
504f7f9e7f3SJeff Roberson void
505f7f9e7f3SJeff Roberson sched_fork_ksegrp(struct ksegrp *kg, struct ksegrp *child)
506f7f9e7f3SJeff Roberson {
5072056d0a1SJohn Baldwin 	mtx_assert(&sched_lock, MA_OWNED);
508b43179fbSJeff Roberson 	child->kg_estcpu = kg->kg_estcpu;
509f7f9e7f3SJeff Roberson }
510bcb06d59SJeff Roberson 
511f7f9e7f3SJeff Roberson void
512f7f9e7f3SJeff Roberson sched_fork_thread(struct thread *td, struct thread *child)
513f7f9e7f3SJeff Roberson {
514b43179fbSJeff Roberson }
515b43179fbSJeff Roberson 
516b43179fbSJeff Roberson void
517b43179fbSJeff Roberson sched_nice(struct ksegrp *kg, int nice)
518b43179fbSJeff Roberson {
5190b5318c8SJohn Baldwin 
5200b5318c8SJohn Baldwin 	PROC_LOCK_ASSERT(kg->kg_proc, MA_OWNED);
5210b5318c8SJohn Baldwin 	mtx_assert(&sched_lock, MA_OWNED);
522b43179fbSJeff Roberson 	kg->kg_nice = nice;
523b43179fbSJeff Roberson 	resetpriority(kg);
524b43179fbSJeff Roberson }
525b43179fbSJeff Roberson 
526f7f9e7f3SJeff Roberson void
527f7f9e7f3SJeff Roberson sched_class(struct ksegrp *kg, int class)
528f7f9e7f3SJeff Roberson {
5292056d0a1SJohn Baldwin 	mtx_assert(&sched_lock, MA_OWNED);
530f7f9e7f3SJeff Roberson 	kg->kg_pri_class = class;
531f7f9e7f3SJeff Roberson }
532f7f9e7f3SJeff Roberson 
5331f955e2dSJulian Elischer /*
5341f955e2dSJulian Elischer  * Adjust the priority of a thread.
5351f955e2dSJulian Elischer  * This may include moving the thread within the KSEGRP,
5361f955e2dSJulian Elischer  * changing the assignment of a kse to the thread,
5371f955e2dSJulian Elischer  * and moving a KSE in the system run queue.
5381f955e2dSJulian Elischer  */
539b43179fbSJeff Roberson void
540b43179fbSJeff Roberson sched_prio(struct thread *td, u_char prio)
541b43179fbSJeff Roberson {
542b43179fbSJeff Roberson 
5432056d0a1SJohn Baldwin 	mtx_assert(&sched_lock, MA_OWNED);
544b43179fbSJeff Roberson 	if (TD_ON_RUNQ(td)) {
5451f955e2dSJulian Elischer 		adjustrunqueue(td, prio);
5461f955e2dSJulian Elischer 	} else {
5471f955e2dSJulian Elischer 		td->td_priority = prio;
548b43179fbSJeff Roberson 	}
549b43179fbSJeff Roberson }
550b43179fbSJeff Roberson 
551b43179fbSJeff Roberson void
552b43179fbSJeff Roberson sched_sleep(struct thread *td, u_char prio)
553b43179fbSJeff Roberson {
5542056d0a1SJohn Baldwin 
5552056d0a1SJohn Baldwin 	mtx_assert(&sched_lock, MA_OWNED);
556b43179fbSJeff Roberson 	td->td_ksegrp->kg_slptime = 0;
557b43179fbSJeff Roberson 	td->td_priority = prio;
558b43179fbSJeff Roberson }
559b43179fbSJeff Roberson 
560b43179fbSJeff Roberson void
561b43179fbSJeff Roberson sched_switchin(struct thread *td)
562b43179fbSJeff Roberson {
5632056d0a1SJohn Baldwin 
5642056d0a1SJohn Baldwin 	mtx_assert(&sched_lock, MA_OWNED);
565060563ecSJulian Elischer 	td->td_oncpu = PCPU_GET(cpuid);
566b43179fbSJeff Roberson }
567b43179fbSJeff Roberson 
568b43179fbSJeff Roberson void
569b43179fbSJeff Roberson sched_switchout(struct thread *td)
570b43179fbSJeff Roberson {
571b43179fbSJeff Roberson 	struct kse *ke;
572b43179fbSJeff Roberson 	struct proc *p;
573b43179fbSJeff Roberson 
574b43179fbSJeff Roberson 	ke = td->td_kse;
575b43179fbSJeff Roberson 	p = td->td_proc;
576b43179fbSJeff Roberson 
5772056d0a1SJohn Baldwin 	mtx_assert(&sched_lock, MA_OWNED);
578b43179fbSJeff Roberson 	KASSERT((ke->ke_state == KES_THREAD), ("mi_switch: kse state?"));
579b43179fbSJeff Roberson 
580060563ecSJulian Elischer 	td->td_lastcpu = td->td_oncpu;
5811f955e2dSJulian Elischer 	td->td_last_kse = ke;
582060563ecSJulian Elischer 	td->td_oncpu = NOCPU;
5834a338afdSJulian Elischer 	td->td_flags &= ~TDF_NEEDRESCHED;
584b43179fbSJeff Roberson 	/*
585b43179fbSJeff Roberson 	 * At the last moment, if this thread is still marked RUNNING,
586b43179fbSJeff Roberson 	 * then put it back on the run queue as it has not been suspended
587b43179fbSJeff Roberson 	 * or stopped or any thing else similar.
588b43179fbSJeff Roberson 	 */
589b43179fbSJeff Roberson 	if (TD_IS_RUNNING(td)) {
590b43179fbSJeff Roberson 		/* Put us back on the run queue (kse and all). */
591b43179fbSJeff Roberson 		setrunqueue(td);
592ac2e4153SJulian Elischer 	} else if (p->p_flag & P_THREADED) {
593b43179fbSJeff Roberson 		/*
594b43179fbSJeff Roberson 		 * We will not be on the run queue. So we must be
595b43179fbSJeff Roberson 		 * sleeping or similar. As it's available,
596b43179fbSJeff Roberson 		 * someone else can use the KSE if they need it.
597b43179fbSJeff Roberson 		 */
598b43179fbSJeff Roberson 		kse_reassign(ke);
599b43179fbSJeff Roberson 	}
600b43179fbSJeff Roberson }
601b43179fbSJeff Roberson 
602b43179fbSJeff Roberson void
603b43179fbSJeff Roberson sched_wakeup(struct thread *td)
604b43179fbSJeff Roberson {
605b43179fbSJeff Roberson 	struct ksegrp *kg;
606b43179fbSJeff Roberson 
6072056d0a1SJohn Baldwin 	mtx_assert(&sched_lock, MA_OWNED);
608b43179fbSJeff Roberson 	kg = td->td_ksegrp;
609b43179fbSJeff Roberson 	if (kg->kg_slptime > 1)
610b43179fbSJeff Roberson 		updatepri(kg);
611b43179fbSJeff Roberson 	kg->kg_slptime = 0;
612b43179fbSJeff Roberson 	setrunqueue(td);
613b43179fbSJeff Roberson 	maybe_resched(td);
614b43179fbSJeff Roberson }
615b43179fbSJeff Roberson 
616b43179fbSJeff Roberson void
617b43179fbSJeff Roberson sched_add(struct kse *ke)
618b43179fbSJeff Roberson {
619b43179fbSJeff Roberson 	mtx_assert(&sched_lock, MA_OWNED);
620b43179fbSJeff Roberson 	KASSERT((ke->ke_thread != NULL), ("runq_add: No thread on KSE"));
621b43179fbSJeff Roberson 	KASSERT((ke->ke_thread->td_kse != NULL),
622b43179fbSJeff Roberson 	    ("runq_add: No KSE on thread"));
623b43179fbSJeff Roberson 	KASSERT(ke->ke_state != KES_ONRUNQ,
624b43179fbSJeff Roberson 	    ("runq_add: kse %p (%s) already in run queue", ke,
625b43179fbSJeff Roberson 	    ke->ke_proc->p_comm));
626b43179fbSJeff Roberson 	KASSERT(ke->ke_proc->p_sflag & PS_INMEM,
627b43179fbSJeff Roberson 	    ("runq_add: process swapped out"));
628b43179fbSJeff Roberson 	ke->ke_ksegrp->kg_runq_kses++;
629b43179fbSJeff Roberson 	ke->ke_state = KES_ONRUNQ;
630b43179fbSJeff Roberson 
631b43179fbSJeff Roberson 	runq_add(&runq, ke);
632b43179fbSJeff Roberson }
633b43179fbSJeff Roberson 
634b43179fbSJeff Roberson void
635b43179fbSJeff Roberson sched_rem(struct kse *ke)
636b43179fbSJeff Roberson {
637b43179fbSJeff Roberson 	KASSERT(ke->ke_proc->p_sflag & PS_INMEM,
638b43179fbSJeff Roberson 	    ("runq_remove: process swapped out"));
639b43179fbSJeff Roberson 	KASSERT((ke->ke_state == KES_ONRUNQ), ("KSE not on run queue"));
640b43179fbSJeff Roberson 	mtx_assert(&sched_lock, MA_OWNED);
641b43179fbSJeff Roberson 
642b43179fbSJeff Roberson 	runq_remove(&runq, ke);
643b43179fbSJeff Roberson 	ke->ke_state = KES_THREAD;
644b43179fbSJeff Roberson 	ke->ke_ksegrp->kg_runq_kses--;
645b43179fbSJeff Roberson }
646b43179fbSJeff Roberson 
647b43179fbSJeff Roberson struct kse *
648b43179fbSJeff Roberson sched_choose(void)
649b43179fbSJeff Roberson {
650b43179fbSJeff Roberson 	struct kse *ke;
651b43179fbSJeff Roberson 
652b43179fbSJeff Roberson 	ke = runq_choose(&runq);
653b43179fbSJeff Roberson 
654b43179fbSJeff Roberson 	if (ke != NULL) {
655b43179fbSJeff Roberson 		runq_remove(&runq, ke);
656b43179fbSJeff Roberson 		ke->ke_state = KES_THREAD;
657b43179fbSJeff Roberson 
658b43179fbSJeff Roberson 		KASSERT((ke->ke_thread != NULL),
659b43179fbSJeff Roberson 		    ("runq_choose: No thread on KSE"));
660b43179fbSJeff Roberson 		KASSERT((ke->ke_thread->td_kse != NULL),
661b43179fbSJeff Roberson 		    ("runq_choose: No KSE on thread"));
662b43179fbSJeff Roberson 		KASSERT(ke->ke_proc->p_sflag & PS_INMEM,
663b43179fbSJeff Roberson 		    ("runq_choose: process swapped out"));
664b43179fbSJeff Roberson 	}
665b43179fbSJeff Roberson 	return (ke);
666b43179fbSJeff Roberson }
667b43179fbSJeff Roberson 
668b43179fbSJeff Roberson void
669b43179fbSJeff Roberson sched_userret(struct thread *td)
670b43179fbSJeff Roberson {
671b43179fbSJeff Roberson 	struct ksegrp *kg;
672b43179fbSJeff Roberson 	/*
673b43179fbSJeff Roberson 	 * XXX we cheat slightly on the locking here to avoid locking in
674b43179fbSJeff Roberson 	 * the usual case.  Setting td_priority here is essentially an
675b43179fbSJeff Roberson 	 * incomplete workaround for not setting it properly elsewhere.
676b43179fbSJeff Roberson 	 * Now that some interrupt handlers are threads, not setting it
677b43179fbSJeff Roberson 	 * properly elsewhere can clobber it in the window between setting
678b43179fbSJeff Roberson 	 * it here and returning to user mode, so don't waste time setting
679b43179fbSJeff Roberson 	 * it perfectly here.
680b43179fbSJeff Roberson 	 */
681b43179fbSJeff Roberson 	kg = td->td_ksegrp;
682b43179fbSJeff Roberson 	if (td->td_priority != kg->kg_user_pri) {
683b43179fbSJeff Roberson 		mtx_lock_spin(&sched_lock);
684b43179fbSJeff Roberson 		td->td_priority = kg->kg_user_pri;
685b43179fbSJeff Roberson 		mtx_unlock_spin(&sched_lock);
686b43179fbSJeff Roberson 	}
687b43179fbSJeff Roberson }
688de028f5aSJeff Roberson 
689de028f5aSJeff Roberson int
690de028f5aSJeff Roberson sched_sizeof_kse(void)
691de028f5aSJeff Roberson {
692bcb06d59SJeff Roberson 	return (sizeof(struct kse) + sizeof(struct ke_sched));
693de028f5aSJeff Roberson }
694de028f5aSJeff Roberson int
695de028f5aSJeff Roberson sched_sizeof_ksegrp(void)
696de028f5aSJeff Roberson {
697de028f5aSJeff Roberson 	return (sizeof(struct ksegrp));
698de028f5aSJeff Roberson }
699de028f5aSJeff Roberson int
700de028f5aSJeff Roberson sched_sizeof_proc(void)
701de028f5aSJeff Roberson {
702de028f5aSJeff Roberson 	return (sizeof(struct proc));
703de028f5aSJeff Roberson }
704de028f5aSJeff Roberson int
705de028f5aSJeff Roberson sched_sizeof_thread(void)
706de028f5aSJeff Roberson {
707de028f5aSJeff Roberson 	return (sizeof(struct thread));
708de028f5aSJeff Roberson }
70979acfc49SJeff Roberson 
71079acfc49SJeff Roberson fixpt_t
71179acfc49SJeff Roberson sched_pctcpu(struct kse *ke)
71279acfc49SJeff Roberson {
7138fb913faSJeff Roberson 	return (ke->ke_pctcpu);
71479acfc49SJeff Roberson }
715