135e6168fSJeff Roberson /*- 2e7d50326SJeff Roberson * Copyright (c) 2002-2007, Jeffrey Roberson <jeff@freebsd.org> 335e6168fSJeff Roberson * All rights reserved. 435e6168fSJeff Roberson * 535e6168fSJeff Roberson * Redistribution and use in source and binary forms, with or without 635e6168fSJeff Roberson * modification, are permitted provided that the following conditions 735e6168fSJeff Roberson * are met: 835e6168fSJeff Roberson * 1. Redistributions of source code must retain the above copyright 935e6168fSJeff Roberson * notice unmodified, this list of conditions, and the following 1035e6168fSJeff Roberson * disclaimer. 1135e6168fSJeff Roberson * 2. Redistributions in binary form must reproduce the above copyright 1235e6168fSJeff Roberson * notice, this list of conditions and the following disclaimer in the 1335e6168fSJeff Roberson * documentation and/or other materials provided with the distribution. 1435e6168fSJeff Roberson * 1535e6168fSJeff Roberson * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR 1635e6168fSJeff Roberson * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES 1735e6168fSJeff Roberson * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. 1835e6168fSJeff Roberson * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, 1935e6168fSJeff Roberson * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT 2035e6168fSJeff Roberson * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 2135e6168fSJeff Roberson * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 2235e6168fSJeff Roberson * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 2335e6168fSJeff Roberson * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF 2435e6168fSJeff Roberson * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 2535e6168fSJeff Roberson */ 2635e6168fSJeff Roberson 27ae7a6b38SJeff Roberson /* 28ae7a6b38SJeff Roberson * This file implements the ULE scheduler. ULE supports independent CPU 29ae7a6b38SJeff Roberson * run queues and fine grain locking. It has superior interactive 30ae7a6b38SJeff Roberson * performance under load even on uni-processor systems. 31ae7a6b38SJeff Roberson * 32ae7a6b38SJeff Roberson * etymology: 33ae7a6b38SJeff Roberson * ULE is the last three letters in schedule. It owes it's name to a 34ae7a6b38SJeff Roberson * generic user created for a scheduling system by Paul Mikesell at 35ae7a6b38SJeff Roberson * Isilon Systems and a general lack of creativity on the part of the author. 36ae7a6b38SJeff Roberson */ 37ae7a6b38SJeff Roberson 38677b542eSDavid E. O'Brien #include <sys/cdefs.h> 39677b542eSDavid E. O'Brien __FBSDID("$FreeBSD$"); 40677b542eSDavid E. O'Brien 414da0d332SPeter Wemm #include "opt_hwpmc_hooks.h" 424da0d332SPeter Wemm #include "opt_sched.h" 439923b511SScott Long 4435e6168fSJeff Roberson #include <sys/param.h> 4535e6168fSJeff Roberson #include <sys/systm.h> 462c3490b1SMarcel Moolenaar #include <sys/kdb.h> 4735e6168fSJeff Roberson #include <sys/kernel.h> 4835e6168fSJeff Roberson #include <sys/ktr.h> 4935e6168fSJeff Roberson #include <sys/lock.h> 5035e6168fSJeff Roberson #include <sys/mutex.h> 5135e6168fSJeff Roberson #include <sys/proc.h> 52245f3abfSJeff Roberson #include <sys/resource.h> 539bacd788SJeff Roberson #include <sys/resourcevar.h> 5435e6168fSJeff Roberson #include <sys/sched.h> 5535e6168fSJeff Roberson #include <sys/smp.h> 5635e6168fSJeff Roberson #include <sys/sx.h> 5735e6168fSJeff Roberson #include <sys/sysctl.h> 5835e6168fSJeff Roberson #include <sys/sysproto.h> 59f5c157d9SJohn Baldwin #include <sys/turnstile.h> 603db720fdSDavid Xu #include <sys/umtx.h> 6135e6168fSJeff Roberson #include <sys/vmmeter.h> 6235e6168fSJeff Roberson #ifdef KTRACE 6335e6168fSJeff Roberson #include <sys/uio.h> 6435e6168fSJeff Roberson #include <sys/ktrace.h> 6535e6168fSJeff Roberson #endif 6635e6168fSJeff Roberson 67ebccf1e3SJoseph Koshy #ifdef HWPMC_HOOKS 68ebccf1e3SJoseph Koshy #include <sys/pmckern.h> 69ebccf1e3SJoseph Koshy #endif 70ebccf1e3SJoseph Koshy 7135e6168fSJeff Roberson #include <machine/cpu.h> 7222bf7d9aSJeff Roberson #include <machine/smp.h> 7335e6168fSJeff Roberson 747a5e5e2aSJeff Roberson #ifndef PREEMPTION 757a5e5e2aSJeff Roberson #error "SCHED_ULE requires options PREEMPTION" 767a5e5e2aSJeff Roberson #endif 777a5e5e2aSJeff Roberson 78ae7a6b38SJeff Roberson #define KTR_ULE 0 7914618990SJeff Roberson 806b2f763fSJeff Roberson /* 81ae7a6b38SJeff Roberson * Thread scheduler specific section. All fields are protected 82ae7a6b38SJeff Roberson * by the thread lock. 83ed062c8dSJulian Elischer */ 84ad1e7d28SJulian Elischer struct td_sched { 85ae7a6b38SJeff Roberson TAILQ_ENTRY(td_sched) ts_procq; /* Run queue. */ 86ae7a6b38SJeff Roberson struct thread *ts_thread; /* Active associated thread. */ 87ae7a6b38SJeff Roberson struct runq *ts_runq; /* Run-queue we're queued on. */ 88ae7a6b38SJeff Roberson short ts_flags; /* TSF_* flags. */ 89ae7a6b38SJeff Roberson u_char ts_rqindex; /* Run queue index. */ 90ad1e7d28SJulian Elischer u_char ts_cpu; /* CPU that we have affinity for. */ 91ae7a6b38SJeff Roberson int ts_slptick; /* Tick when we went to sleep. */ 92ae7a6b38SJeff Roberson int ts_slice; /* Ticks of slice remaining. */ 93ae7a6b38SJeff Roberson u_int ts_slptime; /* Number of ticks we vol. slept */ 94ae7a6b38SJeff Roberson u_int ts_runtime; /* Number of ticks we were running */ 95ed062c8dSJulian Elischer /* The following variables are only used for pctcpu calculation */ 96ad1e7d28SJulian Elischer int ts_ltick; /* Last tick that we were running on */ 97ad1e7d28SJulian Elischer int ts_ftick; /* First tick that we were running on */ 98ad1e7d28SJulian Elischer int ts_ticks; /* Tick count */ 997b8bfa0dSJeff Roberson #ifdef SMP 1007b8bfa0dSJeff Roberson int ts_rltick; /* Real last tick, for affinity. */ 1017b8bfa0dSJeff Roberson #endif 102ed062c8dSJulian Elischer }; 103ad1e7d28SJulian Elischer /* flags kept in ts_flags */ 1047b8bfa0dSJeff Roberson #define TSF_BOUND 0x0001 /* Thread can not migrate. */ 1057b8bfa0dSJeff Roberson #define TSF_XFERABLE 0x0002 /* Thread was added as transferable. */ 10635e6168fSJeff Roberson 107ad1e7d28SJulian Elischer static struct td_sched td_sched0; 10835e6168fSJeff Roberson 10935e6168fSJeff Roberson /* 110e7d50326SJeff Roberson * Cpu percentage computation macros and defines. 111e1f89c22SJeff Roberson * 112e7d50326SJeff Roberson * SCHED_TICK_SECS: Number of seconds to average the cpu usage across. 113e7d50326SJeff Roberson * SCHED_TICK_TARG: Number of hz ticks to average the cpu usage across. 1148ab80cf0SJeff Roberson * SCHED_TICK_MAX: Maximum number of ticks before scaling back. 115e7d50326SJeff Roberson * SCHED_TICK_SHIFT: Shift factor to avoid rounding away results. 116e7d50326SJeff Roberson * SCHED_TICK_HZ: Compute the number of hz ticks for a given ticks count. 117e7d50326SJeff Roberson * SCHED_TICK_TOTAL: Gives the amount of time we've been recording ticks. 11835e6168fSJeff Roberson */ 119e7d50326SJeff Roberson #define SCHED_TICK_SECS 10 120e7d50326SJeff Roberson #define SCHED_TICK_TARG (hz * SCHED_TICK_SECS) 1218ab80cf0SJeff Roberson #define SCHED_TICK_MAX (SCHED_TICK_TARG + hz) 122e7d50326SJeff Roberson #define SCHED_TICK_SHIFT 10 123e7d50326SJeff Roberson #define SCHED_TICK_HZ(ts) ((ts)->ts_ticks >> SCHED_TICK_SHIFT) 124eddb4efaSJeff Roberson #define SCHED_TICK_TOTAL(ts) (max((ts)->ts_ltick - (ts)->ts_ftick, hz)) 12535e6168fSJeff Roberson 12635e6168fSJeff Roberson /* 127e7d50326SJeff Roberson * These macros determine priorities for non-interactive threads. They are 128e7d50326SJeff Roberson * assigned a priority based on their recent cpu utilization as expressed 129e7d50326SJeff Roberson * by the ratio of ticks to the tick total. NHALF priorities at the start 130e7d50326SJeff Roberson * and end of the MIN to MAX timeshare range are only reachable with negative 131e7d50326SJeff Roberson * or positive nice respectively. 132e7d50326SJeff Roberson * 133e7d50326SJeff Roberson * PRI_RANGE: Priority range for utilization dependent priorities. 134e7d50326SJeff Roberson * PRI_NRESV: Number of nice values. 135e7d50326SJeff Roberson * PRI_TICKS: Compute a priority in PRI_RANGE from the ticks count and total. 136e7d50326SJeff Roberson * PRI_NICE: Determines the part of the priority inherited from nice. 137e7d50326SJeff Roberson */ 138e7d50326SJeff Roberson #define SCHED_PRI_NRESV (PRIO_MAX - PRIO_MIN) 139e7d50326SJeff Roberson #define SCHED_PRI_NHALF (SCHED_PRI_NRESV / 2) 140e7d50326SJeff Roberson #define SCHED_PRI_MIN (PRI_MIN_TIMESHARE + SCHED_PRI_NHALF) 141e7d50326SJeff Roberson #define SCHED_PRI_MAX (PRI_MAX_TIMESHARE - SCHED_PRI_NHALF) 142dda713dfSJeff Roberson #define SCHED_PRI_RANGE (SCHED_PRI_MAX - SCHED_PRI_MIN) 143e7d50326SJeff Roberson #define SCHED_PRI_TICKS(ts) \ 144e7d50326SJeff Roberson (SCHED_TICK_HZ((ts)) / \ 1451e516cf5SJeff Roberson (roundup(SCHED_TICK_TOTAL((ts)), SCHED_PRI_RANGE) / SCHED_PRI_RANGE)) 146e7d50326SJeff Roberson #define SCHED_PRI_NICE(nice) (nice) 147e7d50326SJeff Roberson 148e7d50326SJeff Roberson /* 149e7d50326SJeff Roberson * These determine the interactivity of a process. Interactivity differs from 150e7d50326SJeff Roberson * cpu utilization in that it expresses the voluntary time slept vs time ran 151e7d50326SJeff Roberson * while cpu utilization includes all time not running. This more accurately 152e7d50326SJeff Roberson * models the intent of the thread. 15335e6168fSJeff Roberson * 154407b0157SJeff Roberson * SLP_RUN_MAX: Maximum amount of sleep time + run time we'll accumulate 155407b0157SJeff Roberson * before throttling back. 156d322132cSJeff Roberson * SLP_RUN_FORK: Maximum slp+run time to inherit at fork time. 157210491d3SJeff Roberson * INTERACT_MAX: Maximum interactivity value. Smaller is better. 158e1f89c22SJeff Roberson * INTERACT_THRESH: Threshhold for placement on the current runq. 15935e6168fSJeff Roberson */ 160e7d50326SJeff Roberson #define SCHED_SLP_RUN_MAX ((hz * 5) << SCHED_TICK_SHIFT) 161e7d50326SJeff Roberson #define SCHED_SLP_RUN_FORK ((hz / 2) << SCHED_TICK_SHIFT) 162210491d3SJeff Roberson #define SCHED_INTERACT_MAX (100) 163210491d3SJeff Roberson #define SCHED_INTERACT_HALF (SCHED_INTERACT_MAX / 2) 1644c9612c6SJeff Roberson #define SCHED_INTERACT_THRESH (30) 165e1f89c22SJeff Roberson 16635e6168fSJeff Roberson /* 167e7d50326SJeff Roberson * tickincr: Converts a stathz tick into a hz domain scaled by 168e7d50326SJeff Roberson * the shift factor. Without the shift the error rate 169e7d50326SJeff Roberson * due to rounding would be unacceptably high. 170e7d50326SJeff Roberson * realstathz: stathz is sometimes 0 and run off of hz. 171e7d50326SJeff Roberson * sched_slice: Runtime of each thread before rescheduling. 172ae7a6b38SJeff Roberson * preempt_thresh: Priority threshold for preemption and remote IPIs. 17335e6168fSJeff Roberson */ 174e7d50326SJeff Roberson static int sched_interact = SCHED_INTERACT_THRESH; 175e7d50326SJeff Roberson static int realstathz; 176e7d50326SJeff Roberson static int tickincr; 177e7d50326SJeff Roberson static int sched_slice; 178ae7a6b38SJeff Roberson static int preempt_thresh = PRI_MIN_KERN; 179ae7a6b38SJeff Roberson 18035e6168fSJeff Roberson /* 181ae7a6b38SJeff Roberson * tdq - per processor runqs and statistics. All fields are protected by the 182ae7a6b38SJeff Roberson * tdq_lock. The load and lowpri may be accessed without to avoid excess 183ae7a6b38SJeff Roberson * locking in sched_pickcpu(); 18435e6168fSJeff Roberson */ 185ad1e7d28SJulian Elischer struct tdq { 186c47f202bSJeff Roberson struct mtx *tdq_lock; /* Pointer to group lock. */ 187e7d50326SJeff Roberson struct runq tdq_realtime; /* real-time run queue. */ 188ae7a6b38SJeff Roberson struct runq tdq_timeshare; /* timeshare run queue. */ 189ae7a6b38SJeff Roberson struct runq tdq_idle; /* Queue of IDLE threads. */ 190ae7a6b38SJeff Roberson int tdq_load; /* Aggregate load. */ 191ed0e8f2fSJeff Roberson u_char tdq_idx; /* Current insert index. */ 192ed0e8f2fSJeff Roberson u_char tdq_ridx; /* Current removal index. */ 1935d7ef00cSJeff Roberson #ifdef SMP 194ae7a6b38SJeff Roberson u_char tdq_lowpri; /* Lowest priority thread. */ 195ae7a6b38SJeff Roberson int tdq_transferable; /* Transferable thread count. */ 196d2ad694cSJeff Roberson LIST_ENTRY(tdq) tdq_siblings; /* Next in tdq group. */ 197d2ad694cSJeff Roberson struct tdq_group *tdq_group; /* Our processor group. */ 19833916c36SJeff Roberson #else 199d2ad694cSJeff Roberson int tdq_sysload; /* For loadavg, !ITHD load. */ 2005d7ef00cSJeff Roberson #endif 201ae7a6b38SJeff Roberson } __aligned(64); 20235e6168fSJeff Roberson 2037b8bfa0dSJeff Roberson 20480f86c9fSJeff Roberson #ifdef SMP 20580f86c9fSJeff Roberson /* 206ad1e7d28SJulian Elischer * tdq groups are groups of processors which can cheaply share threads. When 20780f86c9fSJeff Roberson * one processor in the group goes idle it will check the runqs of the other 20880f86c9fSJeff Roberson * processors in its group prior to halting and waiting for an interrupt. 20980f86c9fSJeff Roberson * These groups are suitable for SMT (Symetric Multi-Threading) and not NUMA. 21080f86c9fSJeff Roberson * In a numa environment we'd want an idle bitmap per group and a two tiered 21180f86c9fSJeff Roberson * load balancer. 21280f86c9fSJeff Roberson */ 213ad1e7d28SJulian Elischer struct tdq_group { 214c47f202bSJeff Roberson struct mtx tdg_lock; /* Protects all fields below. */ 215d2ad694cSJeff Roberson int tdg_cpus; /* Count of CPUs in this tdq group. */ 216d2ad694cSJeff Roberson cpumask_t tdg_cpumask; /* Mask of cpus in this group. */ 217d2ad694cSJeff Roberson cpumask_t tdg_idlemask; /* Idle cpus in this group. */ 218d2ad694cSJeff Roberson cpumask_t tdg_mask; /* Bit mask for first cpu. */ 219d2ad694cSJeff Roberson int tdg_load; /* Total load of this group. */ 220d2ad694cSJeff Roberson int tdg_transferable; /* Transferable load of this group. */ 221d2ad694cSJeff Roberson LIST_HEAD(, tdq) tdg_members; /* Linked list of all members. */ 222c47f202bSJeff Roberson char tdg_name[16]; /* lock name. */ 223ae7a6b38SJeff Roberson } __aligned(64); 2247b8bfa0dSJeff Roberson 225ae7a6b38SJeff Roberson #define SCHED_AFFINITY_DEFAULT (max(1, hz / 300)) 2267b8bfa0dSJeff Roberson #define SCHED_AFFINITY(ts) ((ts)->ts_rltick > ticks - affinity) 2277b8bfa0dSJeff Roberson 2287b8bfa0dSJeff Roberson /* 2297b8bfa0dSJeff Roberson * Run-time tunables. 2307b8bfa0dSJeff Roberson */ 23128994a58SJeff Roberson static int rebalance = 1; 23228994a58SJeff Roberson static int balance_secs = 1; 23328994a58SJeff Roberson static int pick_pri = 1; 2347b8bfa0dSJeff Roberson static int affinity; 2357b8bfa0dSJeff Roberson static int tryself = 1; 236ae7a6b38SJeff Roberson static int steal_htt = 0; 23728994a58SJeff Roberson static int steal_idle = 1; 23828994a58SJeff Roberson static int steal_thresh = 2; 2397b20fb19SJeff Roberson static int topology = 0; 24080f86c9fSJeff Roberson 24135e6168fSJeff Roberson /* 242d2ad694cSJeff Roberson * One thread queue per processor. 24335e6168fSJeff Roberson */ 2447b8bfa0dSJeff Roberson static volatile cpumask_t tdq_idle; 245d2ad694cSJeff Roberson static int tdg_maxid; 246ad1e7d28SJulian Elischer static struct tdq tdq_cpu[MAXCPU]; 247ad1e7d28SJulian Elischer static struct tdq_group tdq_groups[MAXCPU]; 248ae7a6b38SJeff Roberson static struct callout balco; 249ae7a6b38SJeff Roberson static struct callout gbalco; 250dc03363dSJeff Roberson 251ad1e7d28SJulian Elischer #define TDQ_SELF() (&tdq_cpu[PCPU_GET(cpuid)]) 252ad1e7d28SJulian Elischer #define TDQ_CPU(x) (&tdq_cpu[(x)]) 253c47f202bSJeff Roberson #define TDQ_ID(x) ((int)((x) - tdq_cpu)) 254ad1e7d28SJulian Elischer #define TDQ_GROUP(x) (&tdq_groups[(x)]) 255c47f202bSJeff Roberson #define TDG_ID(x) ((int)((x) - tdq_groups)) 25680f86c9fSJeff Roberson #else /* !SMP */ 257ad1e7d28SJulian Elischer static struct tdq tdq_cpu; 258c47f202bSJeff Roberson static struct mtx tdq_lock; 259dc03363dSJeff Roberson 26036b36916SJeff Roberson #define TDQ_ID(x) (0) 261ad1e7d28SJulian Elischer #define TDQ_SELF() (&tdq_cpu) 262ad1e7d28SJulian Elischer #define TDQ_CPU(x) (&tdq_cpu) 2630a016a05SJeff Roberson #endif 26435e6168fSJeff Roberson 265ae7a6b38SJeff Roberson #define TDQ_LOCK_ASSERT(t, type) mtx_assert(TDQ_LOCKPTR((t)), (type)) 266ae7a6b38SJeff Roberson #define TDQ_LOCK(t) mtx_lock_spin(TDQ_LOCKPTR((t))) 267ae7a6b38SJeff Roberson #define TDQ_LOCK_FLAGS(t, f) mtx_lock_spin_flags(TDQ_LOCKPTR((t)), (f)) 268ae7a6b38SJeff Roberson #define TDQ_UNLOCK(t) mtx_unlock_spin(TDQ_LOCKPTR((t))) 269c47f202bSJeff Roberson #define TDQ_LOCKPTR(t) ((t)->tdq_lock) 270ae7a6b38SJeff Roberson 2718460a577SJohn Birrell static void sched_priority(struct thread *); 27221381d1bSJeff Roberson static void sched_thread_priority(struct thread *, u_char); 2738460a577SJohn Birrell static int sched_interact_score(struct thread *); 2748460a577SJohn Birrell static void sched_interact_update(struct thread *); 2758460a577SJohn Birrell static void sched_interact_fork(struct thread *); 276ad1e7d28SJulian Elischer static void sched_pctcpu_update(struct td_sched *); 27735e6168fSJeff Roberson 2785d7ef00cSJeff Roberson /* Operations on per processor queues */ 279ad1e7d28SJulian Elischer static struct td_sched * tdq_choose(struct tdq *); 280ad1e7d28SJulian Elischer static void tdq_setup(struct tdq *); 281ad1e7d28SJulian Elischer static void tdq_load_add(struct tdq *, struct td_sched *); 282ad1e7d28SJulian Elischer static void tdq_load_rem(struct tdq *, struct td_sched *); 283ad1e7d28SJulian Elischer static __inline void tdq_runq_add(struct tdq *, struct td_sched *, int); 284ad1e7d28SJulian Elischer static __inline void tdq_runq_rem(struct tdq *, struct td_sched *); 285ad1e7d28SJulian Elischer void tdq_print(int cpu); 286e7d50326SJeff Roberson static void runq_print(struct runq *rq); 287ae7a6b38SJeff Roberson static void tdq_add(struct tdq *, struct thread *, int); 2885d7ef00cSJeff Roberson #ifdef SMP 289ae7a6b38SJeff Roberson static void tdq_move(struct tdq *, struct tdq *); 290ad1e7d28SJulian Elischer static int tdq_idled(struct tdq *); 2917b8bfa0dSJeff Roberson static void tdq_notify(struct td_sched *); 292ad1e7d28SJulian Elischer static struct td_sched *tdq_steal(struct tdq *, int); 293ae7a6b38SJeff Roberson static struct td_sched *runq_steal(struct runq *); 294ae7a6b38SJeff Roberson static int sched_pickcpu(struct td_sched *, int); 295ae7a6b38SJeff Roberson static void sched_balance(void *); 296ae7a6b38SJeff Roberson static void sched_balance_groups(void *); 297ae7a6b38SJeff Roberson static void sched_balance_group(struct tdq_group *); 298ae7a6b38SJeff Roberson static void sched_balance_pair(struct tdq *, struct tdq *); 299ae7a6b38SJeff Roberson static inline struct tdq *sched_setcpu(struct td_sched *, int, int); 300c47f202bSJeff Roberson static inline struct tdq *sched_switchcpu(struct td_sched *, int, int); 301ae7a6b38SJeff Roberson static inline struct mtx *thread_block_switch(struct thread *); 302ae7a6b38SJeff Roberson static inline void thread_unblock_switch(struct thread *, struct mtx *); 303c47f202bSJeff Roberson static struct mtx *sched_switch_migrate(struct tdq *, struct thread *, int); 3041e516cf5SJeff Roberson 3057b8bfa0dSJeff Roberson #define THREAD_CAN_MIGRATE(td) ((td)->td_pinned == 0) 3065d7ef00cSJeff Roberson #endif 3075d7ef00cSJeff Roberson 308e7d50326SJeff Roberson static void sched_setup(void *dummy); 309e7d50326SJeff Roberson SYSINIT(sched_setup, SI_SUB_RUN_QUEUE, SI_ORDER_FIRST, sched_setup, NULL) 310e7d50326SJeff Roberson 311e7d50326SJeff Roberson static void sched_initticks(void *dummy); 312e7d50326SJeff Roberson SYSINIT(sched_initticks, SI_SUB_CLOCKS, SI_ORDER_THIRD, sched_initticks, NULL) 313e7d50326SJeff Roberson 314ae7a6b38SJeff Roberson /* 315ae7a6b38SJeff Roberson * Print the threads waiting on a run-queue. 316ae7a6b38SJeff Roberson */ 317e7d50326SJeff Roberson static void 318e7d50326SJeff Roberson runq_print(struct runq *rq) 319e7d50326SJeff Roberson { 320e7d50326SJeff Roberson struct rqhead *rqh; 321e7d50326SJeff Roberson struct td_sched *ts; 322e7d50326SJeff Roberson int pri; 323e7d50326SJeff Roberson int j; 324e7d50326SJeff Roberson int i; 325e7d50326SJeff Roberson 326e7d50326SJeff Roberson for (i = 0; i < RQB_LEN; i++) { 327e7d50326SJeff Roberson printf("\t\trunq bits %d 0x%zx\n", 328e7d50326SJeff Roberson i, rq->rq_status.rqb_bits[i]); 329e7d50326SJeff Roberson for (j = 0; j < RQB_BPW; j++) 330e7d50326SJeff Roberson if (rq->rq_status.rqb_bits[i] & (1ul << j)) { 331e7d50326SJeff Roberson pri = j + (i << RQB_L2BPW); 332e7d50326SJeff Roberson rqh = &rq->rq_queues[pri]; 333e7d50326SJeff Roberson TAILQ_FOREACH(ts, rqh, ts_procq) { 334e7d50326SJeff Roberson printf("\t\t\ttd %p(%s) priority %d rqindex %d pri %d\n", 335e7d50326SJeff Roberson ts->ts_thread, ts->ts_thread->td_proc->p_comm, ts->ts_thread->td_priority, ts->ts_rqindex, pri); 336e7d50326SJeff Roberson } 337e7d50326SJeff Roberson } 338e7d50326SJeff Roberson } 339e7d50326SJeff Roberson } 340e7d50326SJeff Roberson 341ae7a6b38SJeff Roberson /* 342ae7a6b38SJeff Roberson * Print the status of a per-cpu thread queue. Should be a ddb show cmd. 343ae7a6b38SJeff Roberson */ 34415dc847eSJeff Roberson void 345ad1e7d28SJulian Elischer tdq_print(int cpu) 34615dc847eSJeff Roberson { 347ad1e7d28SJulian Elischer struct tdq *tdq; 34815dc847eSJeff Roberson 349ad1e7d28SJulian Elischer tdq = TDQ_CPU(cpu); 35015dc847eSJeff Roberson 351c47f202bSJeff Roberson printf("tdq %d:\n", TDQ_ID(tdq)); 352ae7a6b38SJeff Roberson printf("\tlockptr %p\n", TDQ_LOCKPTR(tdq)); 353d2ad694cSJeff Roberson printf("\tload: %d\n", tdq->tdq_load); 354e7d50326SJeff Roberson printf("\ttimeshare idx: %d\n", tdq->tdq_idx); 3553f872f85SJeff Roberson printf("\ttimeshare ridx: %d\n", tdq->tdq_ridx); 356e7d50326SJeff Roberson printf("\trealtime runq:\n"); 357e7d50326SJeff Roberson runq_print(&tdq->tdq_realtime); 358e7d50326SJeff Roberson printf("\ttimeshare runq:\n"); 359e7d50326SJeff Roberson runq_print(&tdq->tdq_timeshare); 360e7d50326SJeff Roberson printf("\tidle runq:\n"); 361e7d50326SJeff Roberson runq_print(&tdq->tdq_idle); 362ef1134c9SJeff Roberson #ifdef SMP 363d2ad694cSJeff Roberson printf("\tload transferable: %d\n", tdq->tdq_transferable); 364ae7a6b38SJeff Roberson printf("\tlowest priority: %d\n", tdq->tdq_lowpri); 365c47f202bSJeff Roberson printf("\tgroup: %d\n", TDG_ID(tdq->tdq_group)); 366c47f202bSJeff Roberson printf("\tLock name: %s\n", tdq->tdq_group->tdg_name); 367ef1134c9SJeff Roberson #endif 36815dc847eSJeff Roberson } 36915dc847eSJeff Roberson 370ae7a6b38SJeff Roberson #define TS_RQ_PPQ (((PRI_MAX_TIMESHARE - PRI_MIN_TIMESHARE) + 1) / RQ_NQS) 371ae7a6b38SJeff Roberson /* 372ae7a6b38SJeff Roberson * Add a thread to the actual run-queue. Keeps transferable counts up to 373ae7a6b38SJeff Roberson * date with what is actually on the run-queue. Selects the correct 374ae7a6b38SJeff Roberson * queue position for timeshare threads. 375ae7a6b38SJeff Roberson */ 376155b9987SJeff Roberson static __inline void 377ad1e7d28SJulian Elischer tdq_runq_add(struct tdq *tdq, struct td_sched *ts, int flags) 378155b9987SJeff Roberson { 379ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 380ae7a6b38SJeff Roberson THREAD_LOCK_ASSERT(ts->ts_thread, MA_OWNED); 381155b9987SJeff Roberson #ifdef SMP 382e7d50326SJeff Roberson if (THREAD_CAN_MIGRATE(ts->ts_thread)) { 383d2ad694cSJeff Roberson tdq->tdq_transferable++; 384d2ad694cSJeff Roberson tdq->tdq_group->tdg_transferable++; 385ad1e7d28SJulian Elischer ts->ts_flags |= TSF_XFERABLE; 38680f86c9fSJeff Roberson } 387155b9987SJeff Roberson #endif 388e7d50326SJeff Roberson if (ts->ts_runq == &tdq->tdq_timeshare) { 389ed0e8f2fSJeff Roberson u_char pri; 390e7d50326SJeff Roberson 391e7d50326SJeff Roberson pri = ts->ts_thread->td_priority; 392e7d50326SJeff Roberson KASSERT(pri <= PRI_MAX_TIMESHARE && pri >= PRI_MIN_TIMESHARE, 393e7d50326SJeff Roberson ("Invalid priority %d on timeshare runq", pri)); 394e7d50326SJeff Roberson /* 395e7d50326SJeff Roberson * This queue contains only priorities between MIN and MAX 396e7d50326SJeff Roberson * realtime. Use the whole queue to represent these values. 397e7d50326SJeff Roberson */ 398c47f202bSJeff Roberson if ((flags & (SRQ_BORROWING|SRQ_PREEMPTED)) == 0) { 399e7d50326SJeff Roberson pri = (pri - PRI_MIN_TIMESHARE) / TS_RQ_PPQ; 400e7d50326SJeff Roberson pri = (pri + tdq->tdq_idx) % RQ_NQS; 4013f872f85SJeff Roberson /* 4023f872f85SJeff Roberson * This effectively shortens the queue by one so we 4033f872f85SJeff Roberson * can have a one slot difference between idx and 4043f872f85SJeff Roberson * ridx while we wait for threads to drain. 4053f872f85SJeff Roberson */ 4063f872f85SJeff Roberson if (tdq->tdq_ridx != tdq->tdq_idx && 4073f872f85SJeff Roberson pri == tdq->tdq_ridx) 4084499aff6SJeff Roberson pri = (unsigned char)(pri - 1) % RQ_NQS; 409e7d50326SJeff Roberson } else 4103f872f85SJeff Roberson pri = tdq->tdq_ridx; 411e7d50326SJeff Roberson runq_add_pri(ts->ts_runq, ts, pri, flags); 412e7d50326SJeff Roberson } else 413ad1e7d28SJulian Elischer runq_add(ts->ts_runq, ts, flags); 414155b9987SJeff Roberson } 415155b9987SJeff Roberson 416ae7a6b38SJeff Roberson /* 417ae7a6b38SJeff Roberson * Remove a thread from a run-queue. This typically happens when a thread 418ae7a6b38SJeff Roberson * is selected to run. Running threads are not on the queue and the 419ae7a6b38SJeff Roberson * transferable count does not reflect them. 420ae7a6b38SJeff Roberson */ 421155b9987SJeff Roberson static __inline void 422ad1e7d28SJulian Elischer tdq_runq_rem(struct tdq *tdq, struct td_sched *ts) 423155b9987SJeff Roberson { 424ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 425ae7a6b38SJeff Roberson KASSERT(ts->ts_runq != NULL, 426ae7a6b38SJeff Roberson ("tdq_runq_remove: thread %p null ts_runq", ts->ts_thread)); 427155b9987SJeff Roberson #ifdef SMP 428ad1e7d28SJulian Elischer if (ts->ts_flags & TSF_XFERABLE) { 429d2ad694cSJeff Roberson tdq->tdq_transferable--; 430d2ad694cSJeff Roberson tdq->tdq_group->tdg_transferable--; 431ad1e7d28SJulian Elischer ts->ts_flags &= ~TSF_XFERABLE; 43280f86c9fSJeff Roberson } 433155b9987SJeff Roberson #endif 4343f872f85SJeff Roberson if (ts->ts_runq == &tdq->tdq_timeshare) { 4353f872f85SJeff Roberson if (tdq->tdq_idx != tdq->tdq_ridx) 4363f872f85SJeff Roberson runq_remove_idx(ts->ts_runq, ts, &tdq->tdq_ridx); 437e7d50326SJeff Roberson else 4383f872f85SJeff Roberson runq_remove_idx(ts->ts_runq, ts, NULL); 4398ab80cf0SJeff Roberson /* 4408ab80cf0SJeff Roberson * For timeshare threads we update the priority here so 4418ab80cf0SJeff Roberson * the priority reflects the time we've been sleeping. 4428ab80cf0SJeff Roberson */ 4438ab80cf0SJeff Roberson ts->ts_ltick = ticks; 4448ab80cf0SJeff Roberson sched_pctcpu_update(ts); 4458ab80cf0SJeff Roberson sched_priority(ts->ts_thread); 4463f872f85SJeff Roberson } else 447ad1e7d28SJulian Elischer runq_remove(ts->ts_runq, ts); 448155b9987SJeff Roberson } 449155b9987SJeff Roberson 450ae7a6b38SJeff Roberson /* 451ae7a6b38SJeff Roberson * Load is maintained for all threads RUNNING and ON_RUNQ. Add the load 452ae7a6b38SJeff Roberson * for this thread to the referenced thread queue. 453ae7a6b38SJeff Roberson */ 454a8949de2SJeff Roberson static void 455ad1e7d28SJulian Elischer tdq_load_add(struct tdq *tdq, struct td_sched *ts) 4565d7ef00cSJeff Roberson { 457ef1134c9SJeff Roberson int class; 458ae7a6b38SJeff Roberson 459ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 460ae7a6b38SJeff Roberson THREAD_LOCK_ASSERT(ts->ts_thread, MA_OWNED); 461ad1e7d28SJulian Elischer class = PRI_BASE(ts->ts_thread->td_pri_class); 462d2ad694cSJeff Roberson tdq->tdq_load++; 463c47f202bSJeff Roberson CTR2(KTR_SCHED, "cpu %d load: %d", TDQ_ID(tdq), tdq->tdq_load); 4647b8bfa0dSJeff Roberson if (class != PRI_ITHD && 4657b8bfa0dSJeff Roberson (ts->ts_thread->td_proc->p_flag & P_NOLOAD) == 0) 46633916c36SJeff Roberson #ifdef SMP 467d2ad694cSJeff Roberson tdq->tdq_group->tdg_load++; 46833916c36SJeff Roberson #else 469d2ad694cSJeff Roberson tdq->tdq_sysload++; 470cac77d04SJeff Roberson #endif 4715d7ef00cSJeff Roberson } 47215dc847eSJeff Roberson 473ae7a6b38SJeff Roberson /* 474ae7a6b38SJeff Roberson * Remove the load from a thread that is transitioning to a sleep state or 475ae7a6b38SJeff Roberson * exiting. 476ae7a6b38SJeff Roberson */ 477a8949de2SJeff Roberson static void 478ad1e7d28SJulian Elischer tdq_load_rem(struct tdq *tdq, struct td_sched *ts) 4795d7ef00cSJeff Roberson { 480ef1134c9SJeff Roberson int class; 481ae7a6b38SJeff Roberson 482ae7a6b38SJeff Roberson THREAD_LOCK_ASSERT(ts->ts_thread, MA_OWNED); 483ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 484ad1e7d28SJulian Elischer class = PRI_BASE(ts->ts_thread->td_pri_class); 4857b8bfa0dSJeff Roberson if (class != PRI_ITHD && 4867b8bfa0dSJeff Roberson (ts->ts_thread->td_proc->p_flag & P_NOLOAD) == 0) 48733916c36SJeff Roberson #ifdef SMP 488d2ad694cSJeff Roberson tdq->tdq_group->tdg_load--; 48933916c36SJeff Roberson #else 490d2ad694cSJeff Roberson tdq->tdq_sysload--; 491cac77d04SJeff Roberson #endif 492ae7a6b38SJeff Roberson KASSERT(tdq->tdq_load != 0, 493c47f202bSJeff Roberson ("tdq_load_rem: Removing with 0 load on queue %d", TDQ_ID(tdq))); 494d2ad694cSJeff Roberson tdq->tdq_load--; 495d2ad694cSJeff Roberson CTR1(KTR_SCHED, "load: %d", tdq->tdq_load); 496ad1e7d28SJulian Elischer ts->ts_runq = NULL; 49715dc847eSJeff Roberson } 49815dc847eSJeff Roberson 4995d7ef00cSJeff Roberson #ifdef SMP 500356500a3SJeff Roberson /* 501155b9987SJeff Roberson * sched_balance is a simple CPU load balancing algorithm. It operates by 502356500a3SJeff Roberson * finding the least loaded and most loaded cpu and equalizing their load 503356500a3SJeff Roberson * by migrating some processes. 504356500a3SJeff Roberson * 505356500a3SJeff Roberson * Dealing only with two CPUs at a time has two advantages. Firstly, most 506356500a3SJeff Roberson * installations will only have 2 cpus. Secondly, load balancing too much at 507356500a3SJeff Roberson * once can have an unpleasant effect on the system. The scheduler rarely has 508356500a3SJeff Roberson * enough information to make perfect decisions. So this algorithm chooses 509ae7a6b38SJeff Roberson * simplicity and more gradual effects on load in larger systems. 510356500a3SJeff Roberson * 511356500a3SJeff Roberson */ 51222bf7d9aSJeff Roberson static void 513ae7a6b38SJeff Roberson sched_balance(void *arg) 514356500a3SJeff Roberson { 515ad1e7d28SJulian Elischer struct tdq_group *high; 516ad1e7d28SJulian Elischer struct tdq_group *low; 517d2ad694cSJeff Roberson struct tdq_group *tdg; 518cac77d04SJeff Roberson int cnt; 519356500a3SJeff Roberson int i; 520356500a3SJeff Roberson 52128994a58SJeff Roberson callout_reset(&balco, max(hz / 2, random() % (hz * balance_secs)), 522ae7a6b38SJeff Roberson sched_balance, NULL); 523ae7a6b38SJeff Roberson if (smp_started == 0 || rebalance == 0) 524598b368dSJeff Roberson return; 525cac77d04SJeff Roberson low = high = NULL; 526d2ad694cSJeff Roberson i = random() % (tdg_maxid + 1); 527d2ad694cSJeff Roberson for (cnt = 0; cnt <= tdg_maxid; cnt++) { 528d2ad694cSJeff Roberson tdg = TDQ_GROUP(i); 529cac77d04SJeff Roberson /* 530cac77d04SJeff Roberson * Find the CPU with the highest load that has some 531cac77d04SJeff Roberson * threads to transfer. 532cac77d04SJeff Roberson */ 533d2ad694cSJeff Roberson if ((high == NULL || tdg->tdg_load > high->tdg_load) 534d2ad694cSJeff Roberson && tdg->tdg_transferable) 535d2ad694cSJeff Roberson high = tdg; 536d2ad694cSJeff Roberson if (low == NULL || tdg->tdg_load < low->tdg_load) 537d2ad694cSJeff Roberson low = tdg; 538d2ad694cSJeff Roberson if (++i > tdg_maxid) 539cac77d04SJeff Roberson i = 0; 540cac77d04SJeff Roberson } 541cac77d04SJeff Roberson if (low != NULL && high != NULL && high != low) 542d2ad694cSJeff Roberson sched_balance_pair(LIST_FIRST(&high->tdg_members), 543d2ad694cSJeff Roberson LIST_FIRST(&low->tdg_members)); 544cac77d04SJeff Roberson } 54586f8ae96SJeff Roberson 546ae7a6b38SJeff Roberson /* 547ae7a6b38SJeff Roberson * Balance load between CPUs in a group. Will only migrate within the group. 548ae7a6b38SJeff Roberson */ 549cac77d04SJeff Roberson static void 550ae7a6b38SJeff Roberson sched_balance_groups(void *arg) 551cac77d04SJeff Roberson { 552cac77d04SJeff Roberson int i; 553cac77d04SJeff Roberson 55428994a58SJeff Roberson callout_reset(&gbalco, max(hz / 2, random() % (hz * balance_secs)), 555ae7a6b38SJeff Roberson sched_balance_groups, NULL); 556ae7a6b38SJeff Roberson if (smp_started == 0 || rebalance == 0) 557ae7a6b38SJeff Roberson return; 558d2ad694cSJeff Roberson for (i = 0; i <= tdg_maxid; i++) 559ad1e7d28SJulian Elischer sched_balance_group(TDQ_GROUP(i)); 560356500a3SJeff Roberson } 561cac77d04SJeff Roberson 562ae7a6b38SJeff Roberson /* 563ae7a6b38SJeff Roberson * Finds the greatest imbalance between two tdqs in a group. 564ae7a6b38SJeff Roberson */ 565cac77d04SJeff Roberson static void 566d2ad694cSJeff Roberson sched_balance_group(struct tdq_group *tdg) 567cac77d04SJeff Roberson { 568ad1e7d28SJulian Elischer struct tdq *tdq; 569ad1e7d28SJulian Elischer struct tdq *high; 570ad1e7d28SJulian Elischer struct tdq *low; 571cac77d04SJeff Roberson int load; 572cac77d04SJeff Roberson 573d2ad694cSJeff Roberson if (tdg->tdg_transferable == 0) 574cac77d04SJeff Roberson return; 575cac77d04SJeff Roberson low = NULL; 576cac77d04SJeff Roberson high = NULL; 577d2ad694cSJeff Roberson LIST_FOREACH(tdq, &tdg->tdg_members, tdq_siblings) { 578d2ad694cSJeff Roberson load = tdq->tdq_load; 579d2ad694cSJeff Roberson if (high == NULL || load > high->tdq_load) 580ad1e7d28SJulian Elischer high = tdq; 581d2ad694cSJeff Roberson if (low == NULL || load < low->tdq_load) 582ad1e7d28SJulian Elischer low = tdq; 583356500a3SJeff Roberson } 584cac77d04SJeff Roberson if (high != NULL && low != NULL && high != low) 585cac77d04SJeff Roberson sched_balance_pair(high, low); 586356500a3SJeff Roberson } 587cac77d04SJeff Roberson 588ae7a6b38SJeff Roberson /* 589ae7a6b38SJeff Roberson * Lock two thread queues using their address to maintain lock order. 590ae7a6b38SJeff Roberson */ 591ae7a6b38SJeff Roberson static void 592ae7a6b38SJeff Roberson tdq_lock_pair(struct tdq *one, struct tdq *two) 593ae7a6b38SJeff Roberson { 594ae7a6b38SJeff Roberson if (one < two) { 595ae7a6b38SJeff Roberson TDQ_LOCK(one); 596ae7a6b38SJeff Roberson TDQ_LOCK_FLAGS(two, MTX_DUPOK); 597ae7a6b38SJeff Roberson } else { 598ae7a6b38SJeff Roberson TDQ_LOCK(two); 599ae7a6b38SJeff Roberson TDQ_LOCK_FLAGS(one, MTX_DUPOK); 600ae7a6b38SJeff Roberson } 601ae7a6b38SJeff Roberson } 602ae7a6b38SJeff Roberson 603ae7a6b38SJeff Roberson /* 604ae7a6b38SJeff Roberson * Transfer load between two imbalanced thread queues. 605ae7a6b38SJeff Roberson */ 606cac77d04SJeff Roberson static void 607ad1e7d28SJulian Elischer sched_balance_pair(struct tdq *high, struct tdq *low) 608cac77d04SJeff Roberson { 609cac77d04SJeff Roberson int transferable; 610cac77d04SJeff Roberson int high_load; 611cac77d04SJeff Roberson int low_load; 612cac77d04SJeff Roberson int move; 613cac77d04SJeff Roberson int diff; 614cac77d04SJeff Roberson int i; 615cac77d04SJeff Roberson 616ae7a6b38SJeff Roberson tdq_lock_pair(high, low); 61780f86c9fSJeff Roberson /* 61880f86c9fSJeff Roberson * If we're transfering within a group we have to use this specific 619ad1e7d28SJulian Elischer * tdq's transferable count, otherwise we can steal from other members 62080f86c9fSJeff Roberson * of the group. 62180f86c9fSJeff Roberson */ 622d2ad694cSJeff Roberson if (high->tdq_group == low->tdq_group) { 623d2ad694cSJeff Roberson transferable = high->tdq_transferable; 624d2ad694cSJeff Roberson high_load = high->tdq_load; 625d2ad694cSJeff Roberson low_load = low->tdq_load; 626cac77d04SJeff Roberson } else { 627d2ad694cSJeff Roberson transferable = high->tdq_group->tdg_transferable; 628d2ad694cSJeff Roberson high_load = high->tdq_group->tdg_load; 629d2ad694cSJeff Roberson low_load = low->tdq_group->tdg_load; 630cac77d04SJeff Roberson } 631155b9987SJeff Roberson /* 632155b9987SJeff Roberson * Determine what the imbalance is and then adjust that to how many 633d2ad694cSJeff Roberson * threads we actually have to give up (transferable). 634155b9987SJeff Roberson */ 635ae7a6b38SJeff Roberson if (transferable != 0) { 636cac77d04SJeff Roberson diff = high_load - low_load; 637356500a3SJeff Roberson move = diff / 2; 638356500a3SJeff Roberson if (diff & 0x1) 639356500a3SJeff Roberson move++; 64080f86c9fSJeff Roberson move = min(move, transferable); 641356500a3SJeff Roberson for (i = 0; i < move; i++) 642ae7a6b38SJeff Roberson tdq_move(high, low); 643ae7a6b38SJeff Roberson } 644ae7a6b38SJeff Roberson TDQ_UNLOCK(high); 645ae7a6b38SJeff Roberson TDQ_UNLOCK(low); 646356500a3SJeff Roberson return; 647356500a3SJeff Roberson } 648356500a3SJeff Roberson 649ae7a6b38SJeff Roberson /* 650ae7a6b38SJeff Roberson * Move a thread from one thread queue to another. 651ae7a6b38SJeff Roberson */ 65222bf7d9aSJeff Roberson static void 653ae7a6b38SJeff Roberson tdq_move(struct tdq *from, struct tdq *to) 654356500a3SJeff Roberson { 655ad1e7d28SJulian Elischer struct td_sched *ts; 656ae7a6b38SJeff Roberson struct thread *td; 657ae7a6b38SJeff Roberson struct tdq *tdq; 658ae7a6b38SJeff Roberson int cpu; 659356500a3SJeff Roberson 660ad1e7d28SJulian Elischer tdq = from; 661ae7a6b38SJeff Roberson cpu = TDQ_ID(to); 662ad1e7d28SJulian Elischer ts = tdq_steal(tdq, 1); 663ad1e7d28SJulian Elischer if (ts == NULL) { 664d2ad694cSJeff Roberson struct tdq_group *tdg; 66580f86c9fSJeff Roberson 666d2ad694cSJeff Roberson tdg = tdq->tdq_group; 667d2ad694cSJeff Roberson LIST_FOREACH(tdq, &tdg->tdg_members, tdq_siblings) { 668d2ad694cSJeff Roberson if (tdq == from || tdq->tdq_transferable == 0) 66980f86c9fSJeff Roberson continue; 670ad1e7d28SJulian Elischer ts = tdq_steal(tdq, 1); 67180f86c9fSJeff Roberson break; 67280f86c9fSJeff Roberson } 673ad1e7d28SJulian Elischer if (ts == NULL) 674ae7a6b38SJeff Roberson return; 67580f86c9fSJeff Roberson } 676ad1e7d28SJulian Elischer if (tdq == to) 67780f86c9fSJeff Roberson return; 678ae7a6b38SJeff Roberson td = ts->ts_thread; 679ae7a6b38SJeff Roberson /* 680ae7a6b38SJeff Roberson * Although the run queue is locked the thread may be blocked. Lock 681ae7a6b38SJeff Roberson * it to clear this. 682ae7a6b38SJeff Roberson */ 683ae7a6b38SJeff Roberson thread_lock(td); 684ae7a6b38SJeff Roberson /* Drop recursive lock on from. */ 685ae7a6b38SJeff Roberson TDQ_UNLOCK(from); 686ae7a6b38SJeff Roberson sched_rem(td); 6877b8bfa0dSJeff Roberson ts->ts_cpu = cpu; 688ae7a6b38SJeff Roberson td->td_lock = TDQ_LOCKPTR(to); 689ae7a6b38SJeff Roberson tdq_add(to, td, SRQ_YIELDING); 69008c9a16cSJeff Roberson tdq_notify(ts); 691356500a3SJeff Roberson } 69222bf7d9aSJeff Roberson 693ae7a6b38SJeff Roberson /* 694ae7a6b38SJeff Roberson * This tdq has idled. Try to steal a thread from another cpu and switch 695ae7a6b38SJeff Roberson * to it. 696ae7a6b38SJeff Roberson */ 69780f86c9fSJeff Roberson static int 698ad1e7d28SJulian Elischer tdq_idled(struct tdq *tdq) 69922bf7d9aSJeff Roberson { 700d2ad694cSJeff Roberson struct tdq_group *tdg; 701ad1e7d28SJulian Elischer struct tdq *steal; 702ad1e7d28SJulian Elischer struct td_sched *ts; 703ae7a6b38SJeff Roberson struct thread *td; 704ae7a6b38SJeff Roberson int highload; 705ae7a6b38SJeff Roberson int highcpu; 706ae7a6b38SJeff Roberson int load; 707ae7a6b38SJeff Roberson int cpu; 70880f86c9fSJeff Roberson 709ae7a6b38SJeff Roberson /* We don't want to be preempted while we're iterating over tdqs */ 710ae7a6b38SJeff Roberson spinlock_enter(); 711d2ad694cSJeff Roberson tdg = tdq->tdq_group; 71280f86c9fSJeff Roberson /* 713d2ad694cSJeff Roberson * If we're in a cpu group, try and steal threads from another cpu in 71480f86c9fSJeff Roberson * the group before idling. 71580f86c9fSJeff Roberson */ 7167b8bfa0dSJeff Roberson if (steal_htt && tdg->tdg_cpus > 1 && tdg->tdg_transferable) { 717d2ad694cSJeff Roberson LIST_FOREACH(steal, &tdg->tdg_members, tdq_siblings) { 718d2ad694cSJeff Roberson if (steal == tdq || steal->tdq_transferable == 0) 71980f86c9fSJeff Roberson continue; 720ae7a6b38SJeff Roberson TDQ_LOCK(steal); 721ad1e7d28SJulian Elischer ts = tdq_steal(steal, 0); 7227b8bfa0dSJeff Roberson if (ts) 7237b8bfa0dSJeff Roberson goto steal; 724ae7a6b38SJeff Roberson TDQ_UNLOCK(steal); 7257b8bfa0dSJeff Roberson } 7267b8bfa0dSJeff Roberson } 727ae7a6b38SJeff Roberson for (;;) { 728ae7a6b38SJeff Roberson if (steal_idle == 0) 7297b8bfa0dSJeff Roberson break; 730ae7a6b38SJeff Roberson highcpu = 0; 731ae7a6b38SJeff Roberson highload = 0; 732ae7a6b38SJeff Roberson for (cpu = 0; cpu <= mp_maxid; cpu++) { 733ae7a6b38SJeff Roberson if (CPU_ABSENT(cpu)) 734ae7a6b38SJeff Roberson continue; 7357b8bfa0dSJeff Roberson steal = TDQ_CPU(cpu); 736ae7a6b38SJeff Roberson load = TDQ_CPU(cpu)->tdq_transferable; 737ae7a6b38SJeff Roberson if (load < highload) 7387b8bfa0dSJeff Roberson continue; 739ae7a6b38SJeff Roberson highload = load; 740ae7a6b38SJeff Roberson highcpu = cpu; 741ae7a6b38SJeff Roberson } 74228994a58SJeff Roberson if (highload < steal_thresh) 743ae7a6b38SJeff Roberson break; 744ae7a6b38SJeff Roberson steal = TDQ_CPU(highcpu); 745ae7a6b38SJeff Roberson TDQ_LOCK(steal); 74628994a58SJeff Roberson if (steal->tdq_transferable >= steal_thresh && 747ae7a6b38SJeff Roberson (ts = tdq_steal(steal, 1)) != NULL) 7487b8bfa0dSJeff Roberson goto steal; 749ae7a6b38SJeff Roberson TDQ_UNLOCK(steal); 750ae7a6b38SJeff Roberson break; 75180f86c9fSJeff Roberson } 752ae7a6b38SJeff Roberson spinlock_exit(); 75380f86c9fSJeff Roberson return (1); 7547b8bfa0dSJeff Roberson steal: 755ae7a6b38SJeff Roberson td = ts->ts_thread; 756ae7a6b38SJeff Roberson thread_lock(td); 757ae7a6b38SJeff Roberson spinlock_exit(); 758ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(steal)); 759ae7a6b38SJeff Roberson TDQ_UNLOCK(steal); 760ae7a6b38SJeff Roberson sched_rem(td); 761ae7a6b38SJeff Roberson sched_setcpu(ts, PCPU_GET(cpuid), SRQ_YIELDING); 762ae7a6b38SJeff Roberson tdq_add(tdq, td, SRQ_YIELDING); 763ae7a6b38SJeff Roberson MPASS(td->td_lock == curthread->td_lock); 764ae7a6b38SJeff Roberson mi_switch(SW_VOL, NULL); 765ae7a6b38SJeff Roberson thread_unlock(curthread); 7667b8bfa0dSJeff Roberson 7677b8bfa0dSJeff Roberson return (0); 76822bf7d9aSJeff Roberson } 76922bf7d9aSJeff Roberson 770ae7a6b38SJeff Roberson /* 771ae7a6b38SJeff Roberson * Notify a remote cpu of new work. Sends an IPI if criteria are met. 772ae7a6b38SJeff Roberson */ 77322bf7d9aSJeff Roberson static void 7747b8bfa0dSJeff Roberson tdq_notify(struct td_sched *ts) 77522bf7d9aSJeff Roberson { 776fc3a97dcSJeff Roberson struct thread *ctd; 77722bf7d9aSJeff Roberson struct pcpu *pcpu; 778fc3a97dcSJeff Roberson int cpri; 779fc3a97dcSJeff Roberson int pri; 7807b8bfa0dSJeff Roberson int cpu; 78122bf7d9aSJeff Roberson 7827b8bfa0dSJeff Roberson cpu = ts->ts_cpu; 783fc3a97dcSJeff Roberson pri = ts->ts_thread->td_priority; 78422bf7d9aSJeff Roberson pcpu = pcpu_find(cpu); 785fc3a97dcSJeff Roberson ctd = pcpu->pc_curthread; 786fc3a97dcSJeff Roberson cpri = ctd->td_priority; 7876b2f763fSJeff Roberson 7886b2f763fSJeff Roberson /* 7896b2f763fSJeff Roberson * If our priority is not better than the current priority there is 7906b2f763fSJeff Roberson * nothing to do. 7916b2f763fSJeff Roberson */ 792fc3a97dcSJeff Roberson if (pri > cpri) 7936b2f763fSJeff Roberson return; 7947b8bfa0dSJeff Roberson /* 795fc3a97dcSJeff Roberson * Always IPI idle. 7967b8bfa0dSJeff Roberson */ 797fc3a97dcSJeff Roberson if (cpri > PRI_MIN_IDLE) 798fc3a97dcSJeff Roberson goto sendipi; 799fc3a97dcSJeff Roberson /* 800fc3a97dcSJeff Roberson * If we're realtime or better and there is timeshare or worse running 801fc3a97dcSJeff Roberson * send an IPI. 802fc3a97dcSJeff Roberson */ 803fc3a97dcSJeff Roberson if (pri < PRI_MAX_REALTIME && cpri > PRI_MAX_REALTIME) 804fc3a97dcSJeff Roberson goto sendipi; 805fc3a97dcSJeff Roberson /* 806fc3a97dcSJeff Roberson * Otherwise only IPI if we exceed the threshold. 807fc3a97dcSJeff Roberson */ 808ae7a6b38SJeff Roberson if (pri > preempt_thresh) 8097b8bfa0dSJeff Roberson return; 810fc3a97dcSJeff Roberson sendipi: 811fc3a97dcSJeff Roberson ctd->td_flags |= TDF_NEEDRESCHED; 81214618990SJeff Roberson ipi_selected(1 << cpu, IPI_PREEMPT); 81322bf7d9aSJeff Roberson } 81422bf7d9aSJeff Roberson 815ae7a6b38SJeff Roberson /* 816ae7a6b38SJeff Roberson * Steals load from a timeshare queue. Honors the rotating queue head 817ae7a6b38SJeff Roberson * index. 818ae7a6b38SJeff Roberson */ 819ae7a6b38SJeff Roberson static struct td_sched * 820ae7a6b38SJeff Roberson runq_steal_from(struct runq *rq, u_char start) 821ae7a6b38SJeff Roberson { 822ae7a6b38SJeff Roberson struct td_sched *ts; 823ae7a6b38SJeff Roberson struct rqbits *rqb; 824ae7a6b38SJeff Roberson struct rqhead *rqh; 825ae7a6b38SJeff Roberson int first; 826ae7a6b38SJeff Roberson int bit; 827ae7a6b38SJeff Roberson int pri; 828ae7a6b38SJeff Roberson int i; 829ae7a6b38SJeff Roberson 830ae7a6b38SJeff Roberson rqb = &rq->rq_status; 831ae7a6b38SJeff Roberson bit = start & (RQB_BPW -1); 832ae7a6b38SJeff Roberson pri = 0; 833ae7a6b38SJeff Roberson first = 0; 834ae7a6b38SJeff Roberson again: 835ae7a6b38SJeff Roberson for (i = RQB_WORD(start); i < RQB_LEN; bit = 0, i++) { 836ae7a6b38SJeff Roberson if (rqb->rqb_bits[i] == 0) 837ae7a6b38SJeff Roberson continue; 838ae7a6b38SJeff Roberson if (bit != 0) { 839ae7a6b38SJeff Roberson for (pri = bit; pri < RQB_BPW; pri++) 840ae7a6b38SJeff Roberson if (rqb->rqb_bits[i] & (1ul << pri)) 841ae7a6b38SJeff Roberson break; 842ae7a6b38SJeff Roberson if (pri >= RQB_BPW) 843ae7a6b38SJeff Roberson continue; 844ae7a6b38SJeff Roberson } else 845ae7a6b38SJeff Roberson pri = RQB_FFS(rqb->rqb_bits[i]); 846ae7a6b38SJeff Roberson pri += (i << RQB_L2BPW); 847ae7a6b38SJeff Roberson rqh = &rq->rq_queues[pri]; 848ae7a6b38SJeff Roberson TAILQ_FOREACH(ts, rqh, ts_procq) { 849ae7a6b38SJeff Roberson if (first && THREAD_CAN_MIGRATE(ts->ts_thread)) 850ae7a6b38SJeff Roberson return (ts); 851ae7a6b38SJeff Roberson first = 1; 852ae7a6b38SJeff Roberson } 853ae7a6b38SJeff Roberson } 854ae7a6b38SJeff Roberson if (start != 0) { 855ae7a6b38SJeff Roberson start = 0; 856ae7a6b38SJeff Roberson goto again; 857ae7a6b38SJeff Roberson } 858ae7a6b38SJeff Roberson 859ae7a6b38SJeff Roberson return (NULL); 860ae7a6b38SJeff Roberson } 861ae7a6b38SJeff Roberson 862ae7a6b38SJeff Roberson /* 863ae7a6b38SJeff Roberson * Steals load from a standard linear queue. 864ae7a6b38SJeff Roberson */ 865ad1e7d28SJulian Elischer static struct td_sched * 86622bf7d9aSJeff Roberson runq_steal(struct runq *rq) 86722bf7d9aSJeff Roberson { 86822bf7d9aSJeff Roberson struct rqhead *rqh; 86922bf7d9aSJeff Roberson struct rqbits *rqb; 870ad1e7d28SJulian Elischer struct td_sched *ts; 87122bf7d9aSJeff Roberson int word; 87222bf7d9aSJeff Roberson int bit; 87322bf7d9aSJeff Roberson 87422bf7d9aSJeff Roberson rqb = &rq->rq_status; 87522bf7d9aSJeff Roberson for (word = 0; word < RQB_LEN; word++) { 87622bf7d9aSJeff Roberson if (rqb->rqb_bits[word] == 0) 87722bf7d9aSJeff Roberson continue; 87822bf7d9aSJeff Roberson for (bit = 0; bit < RQB_BPW; bit++) { 879a2640c9bSPeter Wemm if ((rqb->rqb_bits[word] & (1ul << bit)) == 0) 88022bf7d9aSJeff Roberson continue; 88122bf7d9aSJeff Roberson rqh = &rq->rq_queues[bit + (word << RQB_L2BPW)]; 88228994a58SJeff Roberson TAILQ_FOREACH(ts, rqh, ts_procq) 88328994a58SJeff Roberson if (THREAD_CAN_MIGRATE(ts->ts_thread)) 884ad1e7d28SJulian Elischer return (ts); 88522bf7d9aSJeff Roberson } 88622bf7d9aSJeff Roberson } 88722bf7d9aSJeff Roberson return (NULL); 88822bf7d9aSJeff Roberson } 88922bf7d9aSJeff Roberson 890ae7a6b38SJeff Roberson /* 891ae7a6b38SJeff Roberson * Attempt to steal a thread in priority order from a thread queue. 892ae7a6b38SJeff Roberson */ 893ad1e7d28SJulian Elischer static struct td_sched * 894ad1e7d28SJulian Elischer tdq_steal(struct tdq *tdq, int stealidle) 89522bf7d9aSJeff Roberson { 896ad1e7d28SJulian Elischer struct td_sched *ts; 89722bf7d9aSJeff Roberson 898ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 899e7d50326SJeff Roberson if ((ts = runq_steal(&tdq->tdq_realtime)) != NULL) 900ad1e7d28SJulian Elischer return (ts); 901ae7a6b38SJeff Roberson if ((ts = runq_steal_from(&tdq->tdq_timeshare, tdq->tdq_ridx)) != NULL) 902ad1e7d28SJulian Elischer return (ts); 90380f86c9fSJeff Roberson if (stealidle) 904d2ad694cSJeff Roberson return (runq_steal(&tdq->tdq_idle)); 90580f86c9fSJeff Roberson return (NULL); 90622bf7d9aSJeff Roberson } 90780f86c9fSJeff Roberson 908ae7a6b38SJeff Roberson /* 909ae7a6b38SJeff Roberson * Sets the thread lock and ts_cpu to match the requested cpu. Unlocks the 910ae7a6b38SJeff Roberson * current lock and returns with the assigned queue locked. If this is 911ae7a6b38SJeff Roberson * via sched_switch() we leave the thread in a blocked state as an 912ae7a6b38SJeff Roberson * optimization. 913ae7a6b38SJeff Roberson */ 914ae7a6b38SJeff Roberson static inline struct tdq * 915ae7a6b38SJeff Roberson sched_setcpu(struct td_sched *ts, int cpu, int flags) 91680f86c9fSJeff Roberson { 917ae7a6b38SJeff Roberson struct thread *td; 918ae7a6b38SJeff Roberson struct tdq *tdq; 91980f86c9fSJeff Roberson 920ae7a6b38SJeff Roberson THREAD_LOCK_ASSERT(ts->ts_thread, MA_OWNED); 921ae7a6b38SJeff Roberson 922ae7a6b38SJeff Roberson tdq = TDQ_CPU(cpu); 923ae7a6b38SJeff Roberson td = ts->ts_thread; 924ae7a6b38SJeff Roberson ts->ts_cpu = cpu; 925c47f202bSJeff Roberson 926c47f202bSJeff Roberson /* If the lock matches just return the queue. */ 927ae7a6b38SJeff Roberson if (td->td_lock == TDQ_LOCKPTR(tdq)) 928ae7a6b38SJeff Roberson return (tdq); 929ae7a6b38SJeff Roberson #ifdef notyet 93080f86c9fSJeff Roberson /* 931ae7a6b38SJeff Roberson * If the thread isn't running it's lockptr is a 932ae7a6b38SJeff Roberson * turnstile or a sleepqueue. We can just lock_set without 933ae7a6b38SJeff Roberson * blocking. 934670c524fSJeff Roberson */ 935ae7a6b38SJeff Roberson if (TD_CAN_RUN(td)) { 936ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 937ae7a6b38SJeff Roberson thread_lock_set(td, TDQ_LOCKPTR(tdq)); 938ae7a6b38SJeff Roberson return (tdq); 939ae7a6b38SJeff Roberson } 940ae7a6b38SJeff Roberson #endif 94180f86c9fSJeff Roberson /* 942ae7a6b38SJeff Roberson * The hard case, migration, we need to block the thread first to 943ae7a6b38SJeff Roberson * prevent order reversals with other cpus locks. 9447b8bfa0dSJeff Roberson */ 945ae7a6b38SJeff Roberson thread_lock_block(td); 946ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 947ae7a6b38SJeff Roberson thread_lock_unblock(td, TDQ_LOCKPTR(tdq)); 948ae7a6b38SJeff Roberson return (tdq); 94980f86c9fSJeff Roberson } 9502454aaf5SJeff Roberson 951ae7a6b38SJeff Roberson /* 952ae7a6b38SJeff Roberson * Find the thread queue running the lowest priority thread. 953ae7a6b38SJeff Roberson */ 9547b8bfa0dSJeff Roberson static int 955ae7a6b38SJeff Roberson tdq_lowestpri(void) 9567b8bfa0dSJeff Roberson { 957ae7a6b38SJeff Roberson struct tdq *tdq; 9587b8bfa0dSJeff Roberson int lowpri; 9597b8bfa0dSJeff Roberson int lowcpu; 9607b8bfa0dSJeff Roberson int lowload; 9617b8bfa0dSJeff Roberson int load; 962ae7a6b38SJeff Roberson int cpu; 963ae7a6b38SJeff Roberson int pri; 964ae7a6b38SJeff Roberson 965ae7a6b38SJeff Roberson lowload = 0; 966ae7a6b38SJeff Roberson lowpri = lowcpu = 0; 967ae7a6b38SJeff Roberson for (cpu = 0; cpu <= mp_maxid; cpu++) { 968ae7a6b38SJeff Roberson if (CPU_ABSENT(cpu)) 969ae7a6b38SJeff Roberson continue; 970ae7a6b38SJeff Roberson tdq = TDQ_CPU(cpu); 971ae7a6b38SJeff Roberson pri = tdq->tdq_lowpri; 972ae7a6b38SJeff Roberson load = TDQ_CPU(cpu)->tdq_load; 973ae7a6b38SJeff Roberson CTR4(KTR_ULE, 974ae7a6b38SJeff Roberson "cpu %d pri %d lowcpu %d lowpri %d", 975ae7a6b38SJeff Roberson cpu, pri, lowcpu, lowpri); 976ae7a6b38SJeff Roberson if (pri < lowpri) 977ae7a6b38SJeff Roberson continue; 978ae7a6b38SJeff Roberson if (lowpri && lowpri == pri && load > lowload) 979ae7a6b38SJeff Roberson continue; 980ae7a6b38SJeff Roberson lowpri = pri; 981ae7a6b38SJeff Roberson lowcpu = cpu; 982ae7a6b38SJeff Roberson lowload = load; 983ae7a6b38SJeff Roberson } 984ae7a6b38SJeff Roberson 985ae7a6b38SJeff Roberson return (lowcpu); 986ae7a6b38SJeff Roberson } 987ae7a6b38SJeff Roberson 988ae7a6b38SJeff Roberson /* 989ae7a6b38SJeff Roberson * Find the thread queue with the least load. 990ae7a6b38SJeff Roberson */ 991ae7a6b38SJeff Roberson static int 992ae7a6b38SJeff Roberson tdq_lowestload(void) 993ae7a6b38SJeff Roberson { 994ae7a6b38SJeff Roberson struct tdq *tdq; 995ae7a6b38SJeff Roberson int lowload; 996ae7a6b38SJeff Roberson int lowpri; 997ae7a6b38SJeff Roberson int lowcpu; 998ae7a6b38SJeff Roberson int load; 999ae7a6b38SJeff Roberson int cpu; 1000ae7a6b38SJeff Roberson int pri; 1001ae7a6b38SJeff Roberson 1002ae7a6b38SJeff Roberson lowcpu = 0; 1003ae7a6b38SJeff Roberson lowload = TDQ_CPU(0)->tdq_load; 1004ae7a6b38SJeff Roberson lowpri = TDQ_CPU(0)->tdq_lowpri; 1005ae7a6b38SJeff Roberson for (cpu = 1; cpu <= mp_maxid; cpu++) { 1006ae7a6b38SJeff Roberson if (CPU_ABSENT(cpu)) 1007ae7a6b38SJeff Roberson continue; 1008ae7a6b38SJeff Roberson tdq = TDQ_CPU(cpu); 1009ae7a6b38SJeff Roberson load = tdq->tdq_load; 1010ae7a6b38SJeff Roberson pri = tdq->tdq_lowpri; 1011ae7a6b38SJeff Roberson CTR4(KTR_ULE, "cpu %d load %d lowcpu %d lowload %d", 1012ae7a6b38SJeff Roberson cpu, load, lowcpu, lowload); 1013ae7a6b38SJeff Roberson if (load > lowload) 1014ae7a6b38SJeff Roberson continue; 1015ae7a6b38SJeff Roberson if (load == lowload && pri < lowpri) 1016ae7a6b38SJeff Roberson continue; 1017ae7a6b38SJeff Roberson lowcpu = cpu; 1018ae7a6b38SJeff Roberson lowload = load; 1019ae7a6b38SJeff Roberson lowpri = pri; 1020ae7a6b38SJeff Roberson } 1021ae7a6b38SJeff Roberson 1022ae7a6b38SJeff Roberson return (lowcpu); 1023ae7a6b38SJeff Roberson } 1024ae7a6b38SJeff Roberson 1025ae7a6b38SJeff Roberson /* 1026ae7a6b38SJeff Roberson * Pick the destination cpu for sched_add(). Respects affinity and makes 1027ae7a6b38SJeff Roberson * a determination based on load or priority of available processors. 1028ae7a6b38SJeff Roberson */ 1029ae7a6b38SJeff Roberson static int 1030ae7a6b38SJeff Roberson sched_pickcpu(struct td_sched *ts, int flags) 1031ae7a6b38SJeff Roberson { 1032ae7a6b38SJeff Roberson struct tdq *tdq; 10337b8bfa0dSJeff Roberson int self; 10347b8bfa0dSJeff Roberson int pri; 10357b8bfa0dSJeff Roberson int cpu; 10367b8bfa0dSJeff Roberson 1037ae7a6b38SJeff Roberson cpu = self = PCPU_GET(cpuid); 10387b8bfa0dSJeff Roberson if (smp_started == 0) 10397b8bfa0dSJeff Roberson return (self); 104028994a58SJeff Roberson /* 104128994a58SJeff Roberson * Don't migrate a running thread from sched_switch(). 104228994a58SJeff Roberson */ 104328994a58SJeff Roberson if (flags & SRQ_OURSELF) { 104428994a58SJeff Roberson CTR1(KTR_ULE, "YIELDING %d", 104528994a58SJeff Roberson curthread->td_priority); 104628994a58SJeff Roberson return (self); 104728994a58SJeff Roberson } 10487b8bfa0dSJeff Roberson pri = ts->ts_thread->td_priority; 1049ae7a6b38SJeff Roberson cpu = ts->ts_cpu; 10507b8bfa0dSJeff Roberson /* 10517b8bfa0dSJeff Roberson * Regardless of affinity, if the last cpu is idle send it there. 10527b8bfa0dSJeff Roberson */ 1053ae7a6b38SJeff Roberson tdq = TDQ_CPU(cpu); 1054ae7a6b38SJeff Roberson if (tdq->tdq_lowpri > PRI_MIN_IDLE) { 105514618990SJeff Roberson CTR5(KTR_ULE, 10567b8bfa0dSJeff Roberson "ts_cpu %d idle, ltick %d ticks %d pri %d curthread %d", 10577b8bfa0dSJeff Roberson ts->ts_cpu, ts->ts_rltick, ticks, pri, 1058ae7a6b38SJeff Roberson tdq->tdq_lowpri); 10597b8bfa0dSJeff Roberson return (ts->ts_cpu); 10607b8bfa0dSJeff Roberson } 10617b8bfa0dSJeff Roberson /* 10627b8bfa0dSJeff Roberson * If we have affinity, try to place it on the cpu we last ran on. 10637b8bfa0dSJeff Roberson */ 1064ae7a6b38SJeff Roberson if (SCHED_AFFINITY(ts) && tdq->tdq_lowpri > pri) { 106514618990SJeff Roberson CTR5(KTR_ULE, 10667b8bfa0dSJeff Roberson "affinity for %d, ltick %d ticks %d pri %d curthread %d", 10677b8bfa0dSJeff Roberson ts->ts_cpu, ts->ts_rltick, ticks, pri, 1068ae7a6b38SJeff Roberson tdq->tdq_lowpri); 10697b8bfa0dSJeff Roberson return (ts->ts_cpu); 10707b8bfa0dSJeff Roberson } 10717b8bfa0dSJeff Roberson /* 10727b8bfa0dSJeff Roberson * Look for an idle group. 10737b8bfa0dSJeff Roberson */ 107414618990SJeff Roberson CTR1(KTR_ULE, "tdq_idle %X", tdq_idle); 10757b8bfa0dSJeff Roberson cpu = ffs(tdq_idle); 10767b8bfa0dSJeff Roberson if (cpu) 1077ae7a6b38SJeff Roberson return (--cpu); 107828994a58SJeff Roberson /* 107928994a58SJeff Roberson * If there are no idle cores see if we can run the thread locally. This may 108028994a58SJeff Roberson * improve locality among sleepers and wakers when there is shared data. 108128994a58SJeff Roberson */ 108228994a58SJeff Roberson if (tryself && pri < curthread->td_priority) { 108328994a58SJeff Roberson CTR1(KTR_ULE, "tryself %d", 10847b8bfa0dSJeff Roberson curthread->td_priority); 10857b8bfa0dSJeff Roberson return (self); 10867b8bfa0dSJeff Roberson } 10877b8bfa0dSJeff Roberson /* 10887b8bfa0dSJeff Roberson * Now search for the cpu running the lowest priority thread with 10897b8bfa0dSJeff Roberson * the least load. 10907b8bfa0dSJeff Roberson */ 1091ae7a6b38SJeff Roberson if (pick_pri) 1092ae7a6b38SJeff Roberson cpu = tdq_lowestpri(); 1093ae7a6b38SJeff Roberson else 1094ae7a6b38SJeff Roberson cpu = tdq_lowestload(); 1095ae7a6b38SJeff Roberson return (cpu); 109680f86c9fSJeff Roberson } 109780f86c9fSJeff Roberson 109822bf7d9aSJeff Roberson #endif /* SMP */ 109922bf7d9aSJeff Roberson 110022bf7d9aSJeff Roberson /* 110122bf7d9aSJeff Roberson * Pick the highest priority task we have and return it. 11020c0a98b2SJeff Roberson */ 1103ad1e7d28SJulian Elischer static struct td_sched * 1104ad1e7d28SJulian Elischer tdq_choose(struct tdq *tdq) 11055d7ef00cSJeff Roberson { 1106ad1e7d28SJulian Elischer struct td_sched *ts; 11075d7ef00cSJeff Roberson 1108ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 1109e7d50326SJeff Roberson ts = runq_choose(&tdq->tdq_realtime); 1110dda713dfSJeff Roberson if (ts != NULL) 1111e7d50326SJeff Roberson return (ts); 11123f872f85SJeff Roberson ts = runq_choose_from(&tdq->tdq_timeshare, tdq->tdq_ridx); 1113e7d50326SJeff Roberson if (ts != NULL) { 1114dda713dfSJeff Roberson KASSERT(ts->ts_thread->td_priority >= PRI_MIN_TIMESHARE, 1115e7d50326SJeff Roberson ("tdq_choose: Invalid priority on timeshare queue %d", 1116e7d50326SJeff Roberson ts->ts_thread->td_priority)); 1117ad1e7d28SJulian Elischer return (ts); 111815dc847eSJeff Roberson } 111915dc847eSJeff Roberson 1120e7d50326SJeff Roberson ts = runq_choose(&tdq->tdq_idle); 1121e7d50326SJeff Roberson if (ts != NULL) { 1122e7d50326SJeff Roberson KASSERT(ts->ts_thread->td_priority >= PRI_MIN_IDLE, 1123e7d50326SJeff Roberson ("tdq_choose: Invalid priority on idle queue %d", 1124e7d50326SJeff Roberson ts->ts_thread->td_priority)); 1125e7d50326SJeff Roberson return (ts); 1126e7d50326SJeff Roberson } 1127e7d50326SJeff Roberson 1128e7d50326SJeff Roberson return (NULL); 1129245f3abfSJeff Roberson } 11300a016a05SJeff Roberson 1131ae7a6b38SJeff Roberson /* 1132ae7a6b38SJeff Roberson * Initialize a thread queue. 1133ae7a6b38SJeff Roberson */ 11340a016a05SJeff Roberson static void 1135ad1e7d28SJulian Elischer tdq_setup(struct tdq *tdq) 11360a016a05SJeff Roberson { 1137ae7a6b38SJeff Roberson 1138c47f202bSJeff Roberson if (bootverbose) 1139c47f202bSJeff Roberson printf("ULE: setup cpu %d\n", TDQ_ID(tdq)); 1140e7d50326SJeff Roberson runq_init(&tdq->tdq_realtime); 1141e7d50326SJeff Roberson runq_init(&tdq->tdq_timeshare); 1142d2ad694cSJeff Roberson runq_init(&tdq->tdq_idle); 1143d2ad694cSJeff Roberson tdq->tdq_load = 0; 11440a016a05SJeff Roberson } 11450a016a05SJeff Roberson 1146c47f202bSJeff Roberson #ifdef SMP 1147c47f202bSJeff Roberson static void 1148c47f202bSJeff Roberson tdg_setup(struct tdq_group *tdg) 1149c47f202bSJeff Roberson { 1150c47f202bSJeff Roberson if (bootverbose) 1151c47f202bSJeff Roberson printf("ULE: setup cpu group %d\n", TDG_ID(tdg)); 1152c47f202bSJeff Roberson snprintf(tdg->tdg_name, sizeof(tdg->tdg_name), 1153c47f202bSJeff Roberson "sched lock %d", (int)TDG_ID(tdg)); 1154c47f202bSJeff Roberson mtx_init(&tdg->tdg_lock, tdg->tdg_name, "sched lock", 1155c47f202bSJeff Roberson MTX_SPIN | MTX_RECURSE); 1156c47f202bSJeff Roberson LIST_INIT(&tdg->tdg_members); 1157c47f202bSJeff Roberson tdg->tdg_load = 0; 1158c47f202bSJeff Roberson tdg->tdg_transferable = 0; 1159c47f202bSJeff Roberson tdg->tdg_cpus = 0; 1160c47f202bSJeff Roberson tdg->tdg_mask = 0; 1161c47f202bSJeff Roberson tdg->tdg_cpumask = 0; 1162c47f202bSJeff Roberson tdg->tdg_idlemask = 0; 1163c47f202bSJeff Roberson } 1164c47f202bSJeff Roberson 1165c47f202bSJeff Roberson static void 1166c47f202bSJeff Roberson tdg_add(struct tdq_group *tdg, struct tdq *tdq) 1167c47f202bSJeff Roberson { 1168c47f202bSJeff Roberson if (tdg->tdg_mask == 0) 1169c47f202bSJeff Roberson tdg->tdg_mask |= 1 << TDQ_ID(tdq); 1170c47f202bSJeff Roberson tdg->tdg_cpumask |= 1 << TDQ_ID(tdq); 1171c47f202bSJeff Roberson tdg->tdg_cpus++; 1172c47f202bSJeff Roberson tdq->tdq_group = tdg; 1173c47f202bSJeff Roberson tdq->tdq_lock = &tdg->tdg_lock; 1174c47f202bSJeff Roberson LIST_INSERT_HEAD(&tdg->tdg_members, tdq, tdq_siblings); 1175c47f202bSJeff Roberson if (bootverbose) 1176c47f202bSJeff Roberson printf("ULE: adding cpu %d to group %d: cpus %d mask 0x%X\n", 1177c47f202bSJeff Roberson TDQ_ID(tdq), TDG_ID(tdg), tdg->tdg_cpus, tdg->tdg_cpumask); 1178c47f202bSJeff Roberson } 1179c47f202bSJeff Roberson 1180c47f202bSJeff Roberson static void 1181c47f202bSJeff Roberson sched_setup_topology(void) 1182c47f202bSJeff Roberson { 1183c47f202bSJeff Roberson struct tdq_group *tdg; 1184c47f202bSJeff Roberson struct cpu_group *cg; 1185c47f202bSJeff Roberson int balance_groups; 1186c47f202bSJeff Roberson struct tdq *tdq; 1187c47f202bSJeff Roberson int i; 1188c47f202bSJeff Roberson int j; 1189c47f202bSJeff Roberson 1190c47f202bSJeff Roberson topology = 1; 1191c47f202bSJeff Roberson balance_groups = 0; 1192c47f202bSJeff Roberson for (i = 0; i < smp_topology->ct_count; i++) { 1193c47f202bSJeff Roberson cg = &smp_topology->ct_group[i]; 1194c47f202bSJeff Roberson tdg = &tdq_groups[i]; 1195c47f202bSJeff Roberson /* 1196c47f202bSJeff Roberson * Initialize the group. 1197c47f202bSJeff Roberson */ 1198c47f202bSJeff Roberson tdg_setup(tdg); 1199c47f202bSJeff Roberson /* 1200c47f202bSJeff Roberson * Find all of the group members and add them. 1201c47f202bSJeff Roberson */ 1202c47f202bSJeff Roberson for (j = 0; j < MAXCPU; j++) { 1203c47f202bSJeff Roberson if ((cg->cg_mask & (1 << j)) != 0) { 1204c47f202bSJeff Roberson tdq = TDQ_CPU(j); 1205c47f202bSJeff Roberson tdq_setup(tdq); 1206c47f202bSJeff Roberson tdg_add(tdg, tdq); 1207c47f202bSJeff Roberson } 1208c47f202bSJeff Roberson } 1209c47f202bSJeff Roberson if (tdg->tdg_cpus > 1) 1210c47f202bSJeff Roberson balance_groups = 1; 1211c47f202bSJeff Roberson } 1212c47f202bSJeff Roberson tdg_maxid = smp_topology->ct_count - 1; 1213c47f202bSJeff Roberson if (balance_groups) 1214c47f202bSJeff Roberson sched_balance_groups(NULL); 1215c47f202bSJeff Roberson } 1216c47f202bSJeff Roberson 1217c47f202bSJeff Roberson static void 1218c47f202bSJeff Roberson sched_setup_smp(void) 1219c47f202bSJeff Roberson { 1220c47f202bSJeff Roberson struct tdq_group *tdg; 1221c47f202bSJeff Roberson struct tdq *tdq; 1222c47f202bSJeff Roberson int cpus; 1223c47f202bSJeff Roberson int i; 1224c47f202bSJeff Roberson 1225c47f202bSJeff Roberson for (cpus = 0, i = 0; i < MAXCPU; i++) { 1226c47f202bSJeff Roberson if (CPU_ABSENT(i)) 1227c47f202bSJeff Roberson continue; 1228c47f202bSJeff Roberson tdq = &tdq_cpu[i]; 1229c47f202bSJeff Roberson tdg = &tdq_groups[i]; 1230c47f202bSJeff Roberson /* 1231c47f202bSJeff Roberson * Setup a tdq group with one member. 1232c47f202bSJeff Roberson */ 1233c47f202bSJeff Roberson tdg_setup(tdg); 1234c47f202bSJeff Roberson tdq_setup(tdq); 1235c47f202bSJeff Roberson tdg_add(tdg, tdq); 1236c47f202bSJeff Roberson cpus++; 1237c47f202bSJeff Roberson } 1238c47f202bSJeff Roberson tdg_maxid = cpus - 1; 1239c47f202bSJeff Roberson } 1240c47f202bSJeff Roberson 1241c47f202bSJeff Roberson /* 1242c47f202bSJeff Roberson * Fake a topology with one group containing all CPUs. 1243c47f202bSJeff Roberson */ 1244c47f202bSJeff Roberson static void 1245c47f202bSJeff Roberson sched_fake_topo(void) 1246c47f202bSJeff Roberson { 1247c47f202bSJeff Roberson #ifdef SCHED_FAKE_TOPOLOGY 1248c47f202bSJeff Roberson static struct cpu_top top; 1249c47f202bSJeff Roberson static struct cpu_group group; 1250c47f202bSJeff Roberson 1251c47f202bSJeff Roberson top.ct_count = 1; 1252c47f202bSJeff Roberson top.ct_group = &group; 1253c47f202bSJeff Roberson group.cg_mask = all_cpus; 1254c47f202bSJeff Roberson group.cg_count = mp_ncpus; 1255c47f202bSJeff Roberson group.cg_children = 0; 1256c47f202bSJeff Roberson smp_topology = ⊤ 1257c47f202bSJeff Roberson #endif 1258c47f202bSJeff Roberson } 1259c47f202bSJeff Roberson #endif 1260c47f202bSJeff Roberson 1261ae7a6b38SJeff Roberson /* 1262ae7a6b38SJeff Roberson * Setup the thread queues and initialize the topology based on MD 1263ae7a6b38SJeff Roberson * information. 1264ae7a6b38SJeff Roberson */ 126535e6168fSJeff Roberson static void 126635e6168fSJeff Roberson sched_setup(void *dummy) 126735e6168fSJeff Roberson { 1268ae7a6b38SJeff Roberson struct tdq *tdq; 1269c47f202bSJeff Roberson 1270c47f202bSJeff Roberson tdq = TDQ_SELF(); 12710ec896fdSJeff Roberson #ifdef SMP 1272cac77d04SJeff Roberson /* 1273ae7a6b38SJeff Roberson * Initialize long-term cpu balancing algorithm. 1274cac77d04SJeff Roberson */ 1275ae7a6b38SJeff Roberson callout_init(&balco, CALLOUT_MPSAFE); 1276ae7a6b38SJeff Roberson callout_init(&gbalco, CALLOUT_MPSAFE); 1277c47f202bSJeff Roberson sched_fake_topo(); 1278c47f202bSJeff Roberson /* 1279c47f202bSJeff Roberson * Setup tdqs based on a topology configuration or vanilla SMP based 1280c47f202bSJeff Roberson * on mp_maxid. 1281c47f202bSJeff Roberson */ 1282c47f202bSJeff Roberson if (smp_topology == NULL) 1283c47f202bSJeff Roberson sched_setup_smp(); 1284c47f202bSJeff Roberson else 1285c47f202bSJeff Roberson sched_setup_topology(); 1286ae7a6b38SJeff Roberson sched_balance(NULL); 1287749d01b0SJeff Roberson #else 1288c47f202bSJeff Roberson tdq_setup(tdq); 1289c47f202bSJeff Roberson mtx_init(&tdq_lock, "sched lock", "sched lock", MTX_SPIN | MTX_RECURSE); 1290c47f202bSJeff Roberson tdq->tdq_lock = &tdq_lock; 1291356500a3SJeff Roberson #endif 1292ae7a6b38SJeff Roberson /* 1293ae7a6b38SJeff Roberson * To avoid divide-by-zero, we set realstathz a dummy value 1294ae7a6b38SJeff Roberson * in case which sched_clock() called before sched_initticks(). 1295ae7a6b38SJeff Roberson */ 1296ae7a6b38SJeff Roberson realstathz = hz; 1297ae7a6b38SJeff Roberson sched_slice = (realstathz/10); /* ~100ms */ 1298ae7a6b38SJeff Roberson tickincr = 1 << SCHED_TICK_SHIFT; 1299ae7a6b38SJeff Roberson 1300ae7a6b38SJeff Roberson /* Add thread0's load since it's running. */ 1301ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 1302c47f202bSJeff Roberson thread0.td_lock = TDQ_LOCKPTR(TDQ_SELF()); 1303ae7a6b38SJeff Roberson tdq_load_add(tdq, &td_sched0); 1304ae7a6b38SJeff Roberson TDQ_UNLOCK(tdq); 130535e6168fSJeff Roberson } 130635e6168fSJeff Roberson 1307ae7a6b38SJeff Roberson /* 1308ae7a6b38SJeff Roberson * This routine determines the tickincr after stathz and hz are setup. 1309ae7a6b38SJeff Roberson */ 1310a1d4fe69SDavid Xu /* ARGSUSED */ 1311a1d4fe69SDavid Xu static void 1312a1d4fe69SDavid Xu sched_initticks(void *dummy) 1313a1d4fe69SDavid Xu { 1314ae7a6b38SJeff Roberson int incr; 1315ae7a6b38SJeff Roberson 1316a1d4fe69SDavid Xu realstathz = stathz ? stathz : hz; 131714618990SJeff Roberson sched_slice = (realstathz/10); /* ~100ms */ 1318a1d4fe69SDavid Xu 1319a1d4fe69SDavid Xu /* 1320e7d50326SJeff Roberson * tickincr is shifted out by 10 to avoid rounding errors due to 13213f872f85SJeff Roberson * hz not being evenly divisible by stathz on all platforms. 1322e7d50326SJeff Roberson */ 1323ae7a6b38SJeff Roberson incr = (hz << SCHED_TICK_SHIFT) / realstathz; 1324e7d50326SJeff Roberson /* 1325e7d50326SJeff Roberson * This does not work for values of stathz that are more than 1326e7d50326SJeff Roberson * 1 << SCHED_TICK_SHIFT * hz. In practice this does not happen. 1327a1d4fe69SDavid Xu */ 1328ae7a6b38SJeff Roberson if (incr == 0) 1329ae7a6b38SJeff Roberson incr = 1; 1330ae7a6b38SJeff Roberson tickincr = incr; 13317b8bfa0dSJeff Roberson #ifdef SMP 13327b8bfa0dSJeff Roberson affinity = SCHED_AFFINITY_DEFAULT; 13337b8bfa0dSJeff Roberson #endif 1334a1d4fe69SDavid Xu } 1335a1d4fe69SDavid Xu 1336a1d4fe69SDavid Xu 133735e6168fSJeff Roberson /* 1338ae7a6b38SJeff Roberson * This is the core of the interactivity algorithm. Determines a score based 1339ae7a6b38SJeff Roberson * on past behavior. It is the ratio of sleep time to run time scaled to 1340ae7a6b38SJeff Roberson * a [0, 100] integer. This is the voluntary sleep time of a process, which 1341ae7a6b38SJeff Roberson * differs from the cpu usage because it does not account for time spent 1342ae7a6b38SJeff Roberson * waiting on a run-queue. Would be prettier if we had floating point. 1343ae7a6b38SJeff Roberson */ 1344ae7a6b38SJeff Roberson static int 1345ae7a6b38SJeff Roberson sched_interact_score(struct thread *td) 1346ae7a6b38SJeff Roberson { 1347ae7a6b38SJeff Roberson struct td_sched *ts; 1348ae7a6b38SJeff Roberson int div; 1349ae7a6b38SJeff Roberson 1350ae7a6b38SJeff Roberson ts = td->td_sched; 1351ae7a6b38SJeff Roberson /* 1352ae7a6b38SJeff Roberson * The score is only needed if this is likely to be an interactive 1353ae7a6b38SJeff Roberson * task. Don't go through the expense of computing it if there's 1354ae7a6b38SJeff Roberson * no chance. 1355ae7a6b38SJeff Roberson */ 1356ae7a6b38SJeff Roberson if (sched_interact <= SCHED_INTERACT_HALF && 1357ae7a6b38SJeff Roberson ts->ts_runtime >= ts->ts_slptime) 1358ae7a6b38SJeff Roberson return (SCHED_INTERACT_HALF); 1359ae7a6b38SJeff Roberson 1360ae7a6b38SJeff Roberson if (ts->ts_runtime > ts->ts_slptime) { 1361ae7a6b38SJeff Roberson div = max(1, ts->ts_runtime / SCHED_INTERACT_HALF); 1362ae7a6b38SJeff Roberson return (SCHED_INTERACT_HALF + 1363ae7a6b38SJeff Roberson (SCHED_INTERACT_HALF - (ts->ts_slptime / div))); 1364ae7a6b38SJeff Roberson } 1365ae7a6b38SJeff Roberson if (ts->ts_slptime > ts->ts_runtime) { 1366ae7a6b38SJeff Roberson div = max(1, ts->ts_slptime / SCHED_INTERACT_HALF); 1367ae7a6b38SJeff Roberson return (ts->ts_runtime / div); 1368ae7a6b38SJeff Roberson } 1369ae7a6b38SJeff Roberson /* runtime == slptime */ 1370ae7a6b38SJeff Roberson if (ts->ts_runtime) 1371ae7a6b38SJeff Roberson return (SCHED_INTERACT_HALF); 1372ae7a6b38SJeff Roberson 1373ae7a6b38SJeff Roberson /* 1374ae7a6b38SJeff Roberson * This can happen if slptime and runtime are 0. 1375ae7a6b38SJeff Roberson */ 1376ae7a6b38SJeff Roberson return (0); 1377ae7a6b38SJeff Roberson 1378ae7a6b38SJeff Roberson } 1379ae7a6b38SJeff Roberson 1380ae7a6b38SJeff Roberson /* 138135e6168fSJeff Roberson * Scale the scheduling priority according to the "interactivity" of this 138235e6168fSJeff Roberson * process. 138335e6168fSJeff Roberson */ 138415dc847eSJeff Roberson static void 13858460a577SJohn Birrell sched_priority(struct thread *td) 138635e6168fSJeff Roberson { 1387e7d50326SJeff Roberson int score; 138835e6168fSJeff Roberson int pri; 138935e6168fSJeff Roberson 13908460a577SJohn Birrell if (td->td_pri_class != PRI_TIMESHARE) 139115dc847eSJeff Roberson return; 1392e7d50326SJeff Roberson /* 1393e7d50326SJeff Roberson * If the score is interactive we place the thread in the realtime 1394e7d50326SJeff Roberson * queue with a priority that is less than kernel and interrupt 1395e7d50326SJeff Roberson * priorities. These threads are not subject to nice restrictions. 1396e7d50326SJeff Roberson * 1397ae7a6b38SJeff Roberson * Scores greater than this are placed on the normal timeshare queue 1398e7d50326SJeff Roberson * where the priority is partially decided by the most recent cpu 1399e7d50326SJeff Roberson * utilization and the rest is decided by nice value. 1400e7d50326SJeff Roberson */ 1401e7d50326SJeff Roberson score = sched_interact_score(td); 1402e7d50326SJeff Roberson if (score < sched_interact) { 1403e7d50326SJeff Roberson pri = PRI_MIN_REALTIME; 1404e7d50326SJeff Roberson pri += ((PRI_MAX_REALTIME - PRI_MIN_REALTIME) / sched_interact) 1405e7d50326SJeff Roberson * score; 1406e7d50326SJeff Roberson KASSERT(pri >= PRI_MIN_REALTIME && pri <= PRI_MAX_REALTIME, 14079a93305aSJeff Roberson ("sched_priority: invalid interactive priority %d score %d", 14089a93305aSJeff Roberson pri, score)); 1409e7d50326SJeff Roberson } else { 1410e7d50326SJeff Roberson pri = SCHED_PRI_MIN; 1411e7d50326SJeff Roberson if (td->td_sched->ts_ticks) 1412e7d50326SJeff Roberson pri += SCHED_PRI_TICKS(td->td_sched); 1413e7d50326SJeff Roberson pri += SCHED_PRI_NICE(td->td_proc->p_nice); 1414ae7a6b38SJeff Roberson KASSERT(pri >= PRI_MIN_TIMESHARE && pri <= PRI_MAX_TIMESHARE, 1415ae7a6b38SJeff Roberson ("sched_priority: invalid priority %d: nice %d, " 1416ae7a6b38SJeff Roberson "ticks %d ftick %d ltick %d tick pri %d", 1417ae7a6b38SJeff Roberson pri, td->td_proc->p_nice, td->td_sched->ts_ticks, 1418ae7a6b38SJeff Roberson td->td_sched->ts_ftick, td->td_sched->ts_ltick, 1419ae7a6b38SJeff Roberson SCHED_PRI_TICKS(td->td_sched))); 1420e7d50326SJeff Roberson } 14218460a577SJohn Birrell sched_user_prio(td, pri); 142235e6168fSJeff Roberson 142315dc847eSJeff Roberson return; 142435e6168fSJeff Roberson } 142535e6168fSJeff Roberson 142635e6168fSJeff Roberson /* 1427d322132cSJeff Roberson * This routine enforces a maximum limit on the amount of scheduling history 1428ae7a6b38SJeff Roberson * kept. It is called after either the slptime or runtime is adjusted. This 1429ae7a6b38SJeff Roberson * function is ugly due to integer math. 1430d322132cSJeff Roberson */ 14314b60e324SJeff Roberson static void 14328460a577SJohn Birrell sched_interact_update(struct thread *td) 14334b60e324SJeff Roberson { 1434155b6ca1SJeff Roberson struct td_sched *ts; 14359a93305aSJeff Roberson u_int sum; 14363f741ca1SJeff Roberson 1437155b6ca1SJeff Roberson ts = td->td_sched; 1438ae7a6b38SJeff Roberson sum = ts->ts_runtime + ts->ts_slptime; 1439d322132cSJeff Roberson if (sum < SCHED_SLP_RUN_MAX) 1440d322132cSJeff Roberson return; 1441d322132cSJeff Roberson /* 1442155b6ca1SJeff Roberson * This only happens from two places: 1443155b6ca1SJeff Roberson * 1) We have added an unusual amount of run time from fork_exit. 1444155b6ca1SJeff Roberson * 2) We have added an unusual amount of sleep time from sched_sleep(). 1445155b6ca1SJeff Roberson */ 1446155b6ca1SJeff Roberson if (sum > SCHED_SLP_RUN_MAX * 2) { 1447ae7a6b38SJeff Roberson if (ts->ts_runtime > ts->ts_slptime) { 1448ae7a6b38SJeff Roberson ts->ts_runtime = SCHED_SLP_RUN_MAX; 1449ae7a6b38SJeff Roberson ts->ts_slptime = 1; 1450155b6ca1SJeff Roberson } else { 1451ae7a6b38SJeff Roberson ts->ts_slptime = SCHED_SLP_RUN_MAX; 1452ae7a6b38SJeff Roberson ts->ts_runtime = 1; 1453155b6ca1SJeff Roberson } 1454155b6ca1SJeff Roberson return; 1455155b6ca1SJeff Roberson } 1456155b6ca1SJeff Roberson /* 1457d322132cSJeff Roberson * If we have exceeded by more than 1/5th then the algorithm below 1458d322132cSJeff Roberson * will not bring us back into range. Dividing by two here forces 14592454aaf5SJeff Roberson * us into the range of [4/5 * SCHED_INTERACT_MAX, SCHED_INTERACT_MAX] 1460d322132cSJeff Roberson */ 146137a35e4aSJeff Roberson if (sum > (SCHED_SLP_RUN_MAX / 5) * 6) { 1462ae7a6b38SJeff Roberson ts->ts_runtime /= 2; 1463ae7a6b38SJeff Roberson ts->ts_slptime /= 2; 1464d322132cSJeff Roberson return; 1465d322132cSJeff Roberson } 1466ae7a6b38SJeff Roberson ts->ts_runtime = (ts->ts_runtime / 5) * 4; 1467ae7a6b38SJeff Roberson ts->ts_slptime = (ts->ts_slptime / 5) * 4; 1468d322132cSJeff Roberson } 1469d322132cSJeff Roberson 1470ae7a6b38SJeff Roberson /* 1471ae7a6b38SJeff Roberson * Scale back the interactivity history when a child thread is created. The 1472ae7a6b38SJeff Roberson * history is inherited from the parent but the thread may behave totally 1473ae7a6b38SJeff Roberson * differently. For example, a shell spawning a compiler process. We want 1474ae7a6b38SJeff Roberson * to learn that the compiler is behaving badly very quickly. 1475ae7a6b38SJeff Roberson */ 1476d322132cSJeff Roberson static void 14778460a577SJohn Birrell sched_interact_fork(struct thread *td) 1478d322132cSJeff Roberson { 1479d322132cSJeff Roberson int ratio; 1480d322132cSJeff Roberson int sum; 1481d322132cSJeff Roberson 1482ae7a6b38SJeff Roberson sum = td->td_sched->ts_runtime + td->td_sched->ts_slptime; 1483d322132cSJeff Roberson if (sum > SCHED_SLP_RUN_FORK) { 1484d322132cSJeff Roberson ratio = sum / SCHED_SLP_RUN_FORK; 1485ae7a6b38SJeff Roberson td->td_sched->ts_runtime /= ratio; 1486ae7a6b38SJeff Roberson td->td_sched->ts_slptime /= ratio; 14874b60e324SJeff Roberson } 14884b60e324SJeff Roberson } 14894b60e324SJeff Roberson 149015dc847eSJeff Roberson /* 1491ae7a6b38SJeff Roberson * Called from proc0_init() to setup the scheduler fields. 1492ed062c8dSJulian Elischer */ 1493ed062c8dSJulian Elischer void 1494ed062c8dSJulian Elischer schedinit(void) 1495ed062c8dSJulian Elischer { 1496e7d50326SJeff Roberson 1497ed062c8dSJulian Elischer /* 1498ed062c8dSJulian Elischer * Set up the scheduler specific parts of proc0. 1499ed062c8dSJulian Elischer */ 1500ed062c8dSJulian Elischer proc0.p_sched = NULL; /* XXX */ 1501ad1e7d28SJulian Elischer thread0.td_sched = &td_sched0; 1502e7d50326SJeff Roberson td_sched0.ts_ltick = ticks; 15038ab80cf0SJeff Roberson td_sched0.ts_ftick = ticks; 1504ad1e7d28SJulian Elischer td_sched0.ts_thread = &thread0; 1505ed062c8dSJulian Elischer } 1506ed062c8dSJulian Elischer 1507ed062c8dSJulian Elischer /* 150815dc847eSJeff Roberson * This is only somewhat accurate since given many processes of the same 150915dc847eSJeff Roberson * priority they will switch when their slices run out, which will be 1510e7d50326SJeff Roberson * at most sched_slice stathz ticks. 151115dc847eSJeff Roberson */ 151235e6168fSJeff Roberson int 151335e6168fSJeff Roberson sched_rr_interval(void) 151435e6168fSJeff Roberson { 1515e7d50326SJeff Roberson 1516e7d50326SJeff Roberson /* Convert sched_slice to hz */ 1517e7d50326SJeff Roberson return (hz/(realstathz/sched_slice)); 151835e6168fSJeff Roberson } 151935e6168fSJeff Roberson 1520ae7a6b38SJeff Roberson /* 1521ae7a6b38SJeff Roberson * Update the percent cpu tracking information when it is requested or 1522ae7a6b38SJeff Roberson * the total history exceeds the maximum. We keep a sliding history of 1523ae7a6b38SJeff Roberson * tick counts that slowly decays. This is less precise than the 4BSD 1524ae7a6b38SJeff Roberson * mechanism since it happens with less regular and frequent events. 1525ae7a6b38SJeff Roberson */ 152622bf7d9aSJeff Roberson static void 1527ad1e7d28SJulian Elischer sched_pctcpu_update(struct td_sched *ts) 152835e6168fSJeff Roberson { 1529e7d50326SJeff Roberson 1530e7d50326SJeff Roberson if (ts->ts_ticks == 0) 1531e7d50326SJeff Roberson return; 15328ab80cf0SJeff Roberson if (ticks - (hz / 10) < ts->ts_ltick && 15338ab80cf0SJeff Roberson SCHED_TICK_TOTAL(ts) < SCHED_TICK_MAX) 15348ab80cf0SJeff Roberson return; 153535e6168fSJeff Roberson /* 153635e6168fSJeff Roberson * Adjust counters and watermark for pctcpu calc. 1537210491d3SJeff Roberson */ 1538e7d50326SJeff Roberson if (ts->ts_ltick > ticks - SCHED_TICK_TARG) 1539ad1e7d28SJulian Elischer ts->ts_ticks = (ts->ts_ticks / (ticks - ts->ts_ftick)) * 1540e7d50326SJeff Roberson SCHED_TICK_TARG; 1541e7d50326SJeff Roberson else 1542ad1e7d28SJulian Elischer ts->ts_ticks = 0; 1543ad1e7d28SJulian Elischer ts->ts_ltick = ticks; 1544e7d50326SJeff Roberson ts->ts_ftick = ts->ts_ltick - SCHED_TICK_TARG; 154535e6168fSJeff Roberson } 154635e6168fSJeff Roberson 1547ae7a6b38SJeff Roberson /* 1548ae7a6b38SJeff Roberson * Adjust the priority of a thread. Move it to the appropriate run-queue 1549ae7a6b38SJeff Roberson * if necessary. This is the back-end for several priority related 1550ae7a6b38SJeff Roberson * functions. 1551ae7a6b38SJeff Roberson */ 1552e7d50326SJeff Roberson static void 1553f5c157d9SJohn Baldwin sched_thread_priority(struct thread *td, u_char prio) 155435e6168fSJeff Roberson { 1555ad1e7d28SJulian Elischer struct td_sched *ts; 155635e6168fSJeff Roberson 155781d47d3fSJeff Roberson CTR6(KTR_SCHED, "sched_prio: %p(%s) prio %d newprio %d by %p(%s)", 155881d47d3fSJeff Roberson td, td->td_proc->p_comm, td->td_priority, prio, curthread, 155981d47d3fSJeff Roberson curthread->td_proc->p_comm); 1560ad1e7d28SJulian Elischer ts = td->td_sched; 15617b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 1562f5c157d9SJohn Baldwin if (td->td_priority == prio) 1563f5c157d9SJohn Baldwin return; 1564e7d50326SJeff Roberson 15653f872f85SJeff Roberson if (TD_ON_RUNQ(td) && prio < td->td_priority) { 15663f741ca1SJeff Roberson /* 15673f741ca1SJeff Roberson * If the priority has been elevated due to priority 15683f741ca1SJeff Roberson * propagation, we may have to move ourselves to a new 1569e7d50326SJeff Roberson * queue. This could be optimized to not re-add in some 1570e7d50326SJeff Roberson * cases. 1571f2b74cbfSJeff Roberson */ 1572e7d50326SJeff Roberson sched_rem(td); 1573e7d50326SJeff Roberson td->td_priority = prio; 1574ae7a6b38SJeff Roberson sched_add(td, SRQ_BORROWING); 1575ae7a6b38SJeff Roberson } else { 1576ae7a6b38SJeff Roberson #ifdef SMP 1577ae7a6b38SJeff Roberson struct tdq *tdq; 1578ae7a6b38SJeff Roberson 1579ae7a6b38SJeff Roberson tdq = TDQ_CPU(ts->ts_cpu); 1580ae7a6b38SJeff Roberson if (prio < tdq->tdq_lowpri) 1581ae7a6b38SJeff Roberson tdq->tdq_lowpri = prio; 1582ae7a6b38SJeff Roberson #endif 15833f741ca1SJeff Roberson td->td_priority = prio; 158435e6168fSJeff Roberson } 1585ae7a6b38SJeff Roberson } 158635e6168fSJeff Roberson 1587f5c157d9SJohn Baldwin /* 1588f5c157d9SJohn Baldwin * Update a thread's priority when it is lent another thread's 1589f5c157d9SJohn Baldwin * priority. 1590f5c157d9SJohn Baldwin */ 1591f5c157d9SJohn Baldwin void 1592f5c157d9SJohn Baldwin sched_lend_prio(struct thread *td, u_char prio) 1593f5c157d9SJohn Baldwin { 1594f5c157d9SJohn Baldwin 1595f5c157d9SJohn Baldwin td->td_flags |= TDF_BORROWING; 1596f5c157d9SJohn Baldwin sched_thread_priority(td, prio); 1597f5c157d9SJohn Baldwin } 1598f5c157d9SJohn Baldwin 1599f5c157d9SJohn Baldwin /* 1600f5c157d9SJohn Baldwin * Restore a thread's priority when priority propagation is 1601f5c157d9SJohn Baldwin * over. The prio argument is the minimum priority the thread 1602f5c157d9SJohn Baldwin * needs to have to satisfy other possible priority lending 1603f5c157d9SJohn Baldwin * requests. If the thread's regular priority is less 1604f5c157d9SJohn Baldwin * important than prio, the thread will keep a priority boost 1605f5c157d9SJohn Baldwin * of prio. 1606f5c157d9SJohn Baldwin */ 1607f5c157d9SJohn Baldwin void 1608f5c157d9SJohn Baldwin sched_unlend_prio(struct thread *td, u_char prio) 1609f5c157d9SJohn Baldwin { 1610f5c157d9SJohn Baldwin u_char base_pri; 1611f5c157d9SJohn Baldwin 1612f5c157d9SJohn Baldwin if (td->td_base_pri >= PRI_MIN_TIMESHARE && 1613f5c157d9SJohn Baldwin td->td_base_pri <= PRI_MAX_TIMESHARE) 16148460a577SJohn Birrell base_pri = td->td_user_pri; 1615f5c157d9SJohn Baldwin else 1616f5c157d9SJohn Baldwin base_pri = td->td_base_pri; 1617f5c157d9SJohn Baldwin if (prio >= base_pri) { 1618f5c157d9SJohn Baldwin td->td_flags &= ~TDF_BORROWING; 1619f5c157d9SJohn Baldwin sched_thread_priority(td, base_pri); 1620f5c157d9SJohn Baldwin } else 1621f5c157d9SJohn Baldwin sched_lend_prio(td, prio); 1622f5c157d9SJohn Baldwin } 1623f5c157d9SJohn Baldwin 1624ae7a6b38SJeff Roberson /* 1625ae7a6b38SJeff Roberson * Standard entry for setting the priority to an absolute value. 1626ae7a6b38SJeff Roberson */ 1627f5c157d9SJohn Baldwin void 1628f5c157d9SJohn Baldwin sched_prio(struct thread *td, u_char prio) 1629f5c157d9SJohn Baldwin { 1630f5c157d9SJohn Baldwin u_char oldprio; 1631f5c157d9SJohn Baldwin 1632f5c157d9SJohn Baldwin /* First, update the base priority. */ 1633f5c157d9SJohn Baldwin td->td_base_pri = prio; 1634f5c157d9SJohn Baldwin 1635f5c157d9SJohn Baldwin /* 163650aaa791SJohn Baldwin * If the thread is borrowing another thread's priority, don't 1637f5c157d9SJohn Baldwin * ever lower the priority. 1638f5c157d9SJohn Baldwin */ 1639f5c157d9SJohn Baldwin if (td->td_flags & TDF_BORROWING && td->td_priority < prio) 1640f5c157d9SJohn Baldwin return; 1641f5c157d9SJohn Baldwin 1642f5c157d9SJohn Baldwin /* Change the real priority. */ 1643f5c157d9SJohn Baldwin oldprio = td->td_priority; 1644f5c157d9SJohn Baldwin sched_thread_priority(td, prio); 1645f5c157d9SJohn Baldwin 1646f5c157d9SJohn Baldwin /* 1647f5c157d9SJohn Baldwin * If the thread is on a turnstile, then let the turnstile update 1648f5c157d9SJohn Baldwin * its state. 1649f5c157d9SJohn Baldwin */ 1650f5c157d9SJohn Baldwin if (TD_ON_LOCK(td) && oldprio != prio) 1651f5c157d9SJohn Baldwin turnstile_adjust(td, oldprio); 1652f5c157d9SJohn Baldwin } 1653f5c157d9SJohn Baldwin 1654ae7a6b38SJeff Roberson /* 1655ae7a6b38SJeff Roberson * Set the base user priority, does not effect current running priority. 1656ae7a6b38SJeff Roberson */ 165735e6168fSJeff Roberson void 16588460a577SJohn Birrell sched_user_prio(struct thread *td, u_char prio) 16593db720fdSDavid Xu { 16603db720fdSDavid Xu u_char oldprio; 16613db720fdSDavid Xu 16628460a577SJohn Birrell td->td_base_user_pri = prio; 1663fc6c30f6SJulian Elischer if (td->td_flags & TDF_UBORROWING && td->td_user_pri <= prio) 1664fc6c30f6SJulian Elischer return; 16658460a577SJohn Birrell oldprio = td->td_user_pri; 16668460a577SJohn Birrell td->td_user_pri = prio; 16673db720fdSDavid Xu 16683db720fdSDavid Xu if (TD_ON_UPILOCK(td) && oldprio != prio) 16693db720fdSDavid Xu umtx_pi_adjust(td, oldprio); 16703db720fdSDavid Xu } 16713db720fdSDavid Xu 16723db720fdSDavid Xu void 16733db720fdSDavid Xu sched_lend_user_prio(struct thread *td, u_char prio) 16743db720fdSDavid Xu { 16753db720fdSDavid Xu u_char oldprio; 16763db720fdSDavid Xu 16773db720fdSDavid Xu td->td_flags |= TDF_UBORROWING; 16783db720fdSDavid Xu 1679f645b5daSMaxim Konovalov oldprio = td->td_user_pri; 16808460a577SJohn Birrell td->td_user_pri = prio; 16813db720fdSDavid Xu 16823db720fdSDavid Xu if (TD_ON_UPILOCK(td) && oldprio != prio) 16833db720fdSDavid Xu umtx_pi_adjust(td, oldprio); 16843db720fdSDavid Xu } 16853db720fdSDavid Xu 16863db720fdSDavid Xu void 16873db720fdSDavid Xu sched_unlend_user_prio(struct thread *td, u_char prio) 16883db720fdSDavid Xu { 16893db720fdSDavid Xu u_char base_pri; 16903db720fdSDavid Xu 16918460a577SJohn Birrell base_pri = td->td_base_user_pri; 16923db720fdSDavid Xu if (prio >= base_pri) { 16933db720fdSDavid Xu td->td_flags &= ~TDF_UBORROWING; 16948460a577SJohn Birrell sched_user_prio(td, base_pri); 16953db720fdSDavid Xu } else 16963db720fdSDavid Xu sched_lend_user_prio(td, prio); 16973db720fdSDavid Xu } 16983db720fdSDavid Xu 1699ae7a6b38SJeff Roberson /* 170008c9a16cSJeff Roberson * Add the thread passed as 'newtd' to the run queue before selecting 170108c9a16cSJeff Roberson * the next thread to run. This is only used for KSE. 170208c9a16cSJeff Roberson */ 170308c9a16cSJeff Roberson static void 170408c9a16cSJeff Roberson sched_switchin(struct tdq *tdq, struct thread *td) 170508c9a16cSJeff Roberson { 170608c9a16cSJeff Roberson #ifdef SMP 170708c9a16cSJeff Roberson spinlock_enter(); 170808c9a16cSJeff Roberson TDQ_UNLOCK(tdq); 170908c9a16cSJeff Roberson thread_lock(td); 171008c9a16cSJeff Roberson spinlock_exit(); 171108c9a16cSJeff Roberson sched_setcpu(td->td_sched, TDQ_ID(tdq), SRQ_YIELDING); 171208c9a16cSJeff Roberson #else 171308c9a16cSJeff Roberson td->td_lock = TDQ_LOCKPTR(tdq); 171408c9a16cSJeff Roberson #endif 171508c9a16cSJeff Roberson tdq_add(tdq, td, SRQ_YIELDING); 171608c9a16cSJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 171708c9a16cSJeff Roberson } 171808c9a16cSJeff Roberson 171908c9a16cSJeff Roberson /* 1720c47f202bSJeff Roberson * Handle migration from sched_switch(). This happens only for 1721c47f202bSJeff Roberson * cpu binding. 1722c47f202bSJeff Roberson */ 1723c47f202bSJeff Roberson static struct mtx * 1724c47f202bSJeff Roberson sched_switch_migrate(struct tdq *tdq, struct thread *td, int flags) 1725c47f202bSJeff Roberson { 1726c47f202bSJeff Roberson struct tdq *tdn; 1727c47f202bSJeff Roberson 1728c47f202bSJeff Roberson tdn = TDQ_CPU(td->td_sched->ts_cpu); 1729c47f202bSJeff Roberson #ifdef SMP 1730c47f202bSJeff Roberson /* 1731c47f202bSJeff Roberson * Do the lock dance required to avoid LOR. We grab an extra 1732c47f202bSJeff Roberson * spinlock nesting to prevent preemption while we're 1733c47f202bSJeff Roberson * not holding either run-queue lock. 1734c47f202bSJeff Roberson */ 1735c47f202bSJeff Roberson spinlock_enter(); 1736c47f202bSJeff Roberson thread_block_switch(td); /* This releases the lock on tdq. */ 1737c47f202bSJeff Roberson TDQ_LOCK(tdn); 1738c47f202bSJeff Roberson tdq_add(tdn, td, flags); 1739c47f202bSJeff Roberson tdq_notify(td->td_sched); 1740c47f202bSJeff Roberson /* 1741c47f202bSJeff Roberson * After we unlock tdn the new cpu still can't switch into this 1742c47f202bSJeff Roberson * thread until we've unblocked it in cpu_switch(). The lock 1743c47f202bSJeff Roberson * pointers may match in the case of HTT cores. Don't unlock here 1744c47f202bSJeff Roberson * or we can deadlock when the other CPU runs the IPI handler. 1745c47f202bSJeff Roberson */ 1746c47f202bSJeff Roberson if (TDQ_LOCKPTR(tdn) != TDQ_LOCKPTR(tdq)) { 1747c47f202bSJeff Roberson TDQ_UNLOCK(tdn); 1748c47f202bSJeff Roberson TDQ_LOCK(tdq); 1749c47f202bSJeff Roberson } 1750c47f202bSJeff Roberson spinlock_exit(); 1751c47f202bSJeff Roberson #endif 1752c47f202bSJeff Roberson return (TDQ_LOCKPTR(tdn)); 1753c47f202bSJeff Roberson } 1754c47f202bSJeff Roberson 1755c47f202bSJeff Roberson /* 1756ae7a6b38SJeff Roberson * Block a thread for switching. Similar to thread_block() but does not 1757ae7a6b38SJeff Roberson * bump the spin count. 1758ae7a6b38SJeff Roberson */ 1759ae7a6b38SJeff Roberson static inline struct mtx * 1760ae7a6b38SJeff Roberson thread_block_switch(struct thread *td) 1761ae7a6b38SJeff Roberson { 1762ae7a6b38SJeff Roberson struct mtx *lock; 1763ae7a6b38SJeff Roberson 1764ae7a6b38SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 1765ae7a6b38SJeff Roberson lock = td->td_lock; 1766ae7a6b38SJeff Roberson td->td_lock = &blocked_lock; 1767ae7a6b38SJeff Roberson mtx_unlock_spin(lock); 1768ae7a6b38SJeff Roberson 1769ae7a6b38SJeff Roberson return (lock); 1770ae7a6b38SJeff Roberson } 1771ae7a6b38SJeff Roberson 1772ae7a6b38SJeff Roberson /* 1773ae7a6b38SJeff Roberson * Release a thread that was blocked with thread_block_switch(). 1774ae7a6b38SJeff Roberson */ 1775ae7a6b38SJeff Roberson static inline void 1776ae7a6b38SJeff Roberson thread_unblock_switch(struct thread *td, struct mtx *mtx) 1777ae7a6b38SJeff Roberson { 1778ae7a6b38SJeff Roberson atomic_store_rel_ptr((volatile uintptr_t *)&td->td_lock, 1779ae7a6b38SJeff Roberson (uintptr_t)mtx); 1780ae7a6b38SJeff Roberson } 1781ae7a6b38SJeff Roberson 1782ae7a6b38SJeff Roberson /* 1783ae7a6b38SJeff Roberson * Switch threads. This function has to handle threads coming in while 1784ae7a6b38SJeff Roberson * blocked for some reason, running, or idle. It also must deal with 1785ae7a6b38SJeff Roberson * migrating a thread from one queue to another as running threads may 1786ae7a6b38SJeff Roberson * be assigned elsewhere via binding. 1787ae7a6b38SJeff Roberson */ 17883db720fdSDavid Xu void 17893389af30SJulian Elischer sched_switch(struct thread *td, struct thread *newtd, int flags) 179035e6168fSJeff Roberson { 1791c02bbb43SJeff Roberson struct tdq *tdq; 1792ad1e7d28SJulian Elischer struct td_sched *ts; 1793ae7a6b38SJeff Roberson struct mtx *mtx; 1794c47f202bSJeff Roberson int srqflag; 1795ae7a6b38SJeff Roberson int cpuid; 179635e6168fSJeff Roberson 17977b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 179835e6168fSJeff Roberson 1799ae7a6b38SJeff Roberson cpuid = PCPU_GET(cpuid); 1800ae7a6b38SJeff Roberson tdq = TDQ_CPU(cpuid); 1801e7d50326SJeff Roberson ts = td->td_sched; 1802c47f202bSJeff Roberson mtx = td->td_lock; 1803ae7a6b38SJeff Roberson #ifdef SMP 1804ae7a6b38SJeff Roberson ts->ts_rltick = ticks; 1805ae7a6b38SJeff Roberson if (newtd && newtd->td_priority < tdq->tdq_lowpri) 1806ae7a6b38SJeff Roberson tdq->tdq_lowpri = newtd->td_priority; 1807ae7a6b38SJeff Roberson #endif 1808060563ecSJulian Elischer td->td_lastcpu = td->td_oncpu; 1809060563ecSJulian Elischer td->td_oncpu = NOCPU; 181052eb8464SJohn Baldwin td->td_flags &= ~TDF_NEEDRESCHED; 181177918643SStephan Uphoff td->td_owepreempt = 0; 1812b11fdad0SJeff Roberson /* 1813ae7a6b38SJeff Roberson * The lock pointer in an idle thread should never change. Reset it 1814ae7a6b38SJeff Roberson * to CAN_RUN as well. 1815b11fdad0SJeff Roberson */ 1816486a9414SJulian Elischer if (TD_IS_IDLETHREAD(td)) { 1817ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 1818bf0acc27SJohn Baldwin TD_SET_CAN_RUN(td); 18197b20fb19SJeff Roberson } else if (TD_IS_RUNNING(td)) { 1820ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 18217b20fb19SJeff Roberson tdq_load_rem(tdq, ts); 1822c47f202bSJeff Roberson srqflag = (flags & SW_PREEMPT) ? 1823598b368dSJeff Roberson SRQ_OURSELF|SRQ_YIELDING|SRQ_PREEMPTED : 1824c47f202bSJeff Roberson SRQ_OURSELF|SRQ_YIELDING; 1825c47f202bSJeff Roberson if (ts->ts_cpu == cpuid) 1826c47f202bSJeff Roberson tdq_add(tdq, td, srqflag); 1827c47f202bSJeff Roberson else 1828c47f202bSJeff Roberson mtx = sched_switch_migrate(tdq, td, srqflag); 1829ae7a6b38SJeff Roberson } else { 1830ae7a6b38SJeff Roberson /* This thread must be going to sleep. */ 1831ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 1832ae7a6b38SJeff Roberson mtx = thread_block_switch(td); 1833ae7a6b38SJeff Roberson tdq_load_rem(tdq, ts); 1834ae7a6b38SJeff Roberson } 1835ae7a6b38SJeff Roberson /* 1836ae7a6b38SJeff Roberson * We enter here with the thread blocked and assigned to the 1837ae7a6b38SJeff Roberson * appropriate cpu run-queue or sleep-queue and with the current 1838ae7a6b38SJeff Roberson * thread-queue locked. 1839ae7a6b38SJeff Roberson */ 1840ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED | MA_NOTRECURSED); 1841ae7a6b38SJeff Roberson /* 184208c9a16cSJeff Roberson * If KSE assigned a new thread just add it here and let choosethread 184308c9a16cSJeff Roberson * select the best one. 1844ae7a6b38SJeff Roberson */ 184508c9a16cSJeff Roberson if (newtd != NULL) 184608c9a16cSJeff Roberson sched_switchin(tdq, newtd); 18472454aaf5SJeff Roberson newtd = choosethread(); 1848ae7a6b38SJeff Roberson /* 1849ae7a6b38SJeff Roberson * Call the MD code to switch contexts if necessary. 1850ae7a6b38SJeff Roberson */ 1851ebccf1e3SJoseph Koshy if (td != newtd) { 1852ebccf1e3SJoseph Koshy #ifdef HWPMC_HOOKS 1853ebccf1e3SJoseph Koshy if (PMC_PROC_IS_USING_PMCS(td->td_proc)) 1854ebccf1e3SJoseph Koshy PMC_SWITCH_CONTEXT(td, PMC_FN_CSW_OUT); 1855ebccf1e3SJoseph Koshy #endif 1856ae7a6b38SJeff Roberson cpu_switch(td, newtd, mtx); 1857ae7a6b38SJeff Roberson /* 1858ae7a6b38SJeff Roberson * We may return from cpu_switch on a different cpu. However, 1859ae7a6b38SJeff Roberson * we always return with td_lock pointing to the current cpu's 1860ae7a6b38SJeff Roberson * run queue lock. 1861ae7a6b38SJeff Roberson */ 1862ae7a6b38SJeff Roberson cpuid = PCPU_GET(cpuid); 1863ae7a6b38SJeff Roberson tdq = TDQ_CPU(cpuid); 1864ae7a6b38SJeff Roberson TDQ_LOCKPTR(tdq)->mtx_lock = (uintptr_t)td; 1865ebccf1e3SJoseph Koshy #ifdef HWPMC_HOOKS 1866ebccf1e3SJoseph Koshy if (PMC_PROC_IS_USING_PMCS(td->td_proc)) 1867ebccf1e3SJoseph Koshy PMC_SWITCH_CONTEXT(td, PMC_FN_CSW_IN); 1868ebccf1e3SJoseph Koshy #endif 1869ae7a6b38SJeff Roberson } else 1870ae7a6b38SJeff Roberson thread_unblock_switch(td, mtx); 1871ae7a6b38SJeff Roberson /* 1872ae7a6b38SJeff Roberson * Assert that all went well and return. 1873ae7a6b38SJeff Roberson */ 1874ae7a6b38SJeff Roberson #ifdef SMP 1875ae7a6b38SJeff Roberson /* We should always get here with the lowest priority td possible */ 1876ae7a6b38SJeff Roberson tdq->tdq_lowpri = td->td_priority; 1877ae7a6b38SJeff Roberson #endif 1878ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED|MA_NOTRECURSED); 1879ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 1880ae7a6b38SJeff Roberson td->td_oncpu = cpuid; 188135e6168fSJeff Roberson } 188235e6168fSJeff Roberson 1883ae7a6b38SJeff Roberson /* 1884ae7a6b38SJeff Roberson * Adjust thread priorities as a result of a nice request. 1885ae7a6b38SJeff Roberson */ 188635e6168fSJeff Roberson void 1887fa885116SJulian Elischer sched_nice(struct proc *p, int nice) 188835e6168fSJeff Roberson { 188935e6168fSJeff Roberson struct thread *td; 189035e6168fSJeff Roberson 1891fa885116SJulian Elischer PROC_LOCK_ASSERT(p, MA_OWNED); 18927b20fb19SJeff Roberson PROC_SLOCK_ASSERT(p, MA_OWNED); 1893e7d50326SJeff Roberson 1894fa885116SJulian Elischer p->p_nice = nice; 18958460a577SJohn Birrell FOREACH_THREAD_IN_PROC(p, td) { 18967b20fb19SJeff Roberson thread_lock(td); 18978460a577SJohn Birrell sched_priority(td); 1898e7d50326SJeff Roberson sched_prio(td, td->td_base_user_pri); 18997b20fb19SJeff Roberson thread_unlock(td); 190035e6168fSJeff Roberson } 1901fa885116SJulian Elischer } 190235e6168fSJeff Roberson 1903ae7a6b38SJeff Roberson /* 1904ae7a6b38SJeff Roberson * Record the sleep time for the interactivity scorer. 1905ae7a6b38SJeff Roberson */ 190635e6168fSJeff Roberson void 190744f3b092SJohn Baldwin sched_sleep(struct thread *td) 190835e6168fSJeff Roberson { 1909e7d50326SJeff Roberson 19107b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 191135e6168fSJeff Roberson 1912ae7a6b38SJeff Roberson td->td_sched->ts_slptick = ticks; 191335e6168fSJeff Roberson } 191435e6168fSJeff Roberson 1915ae7a6b38SJeff Roberson /* 1916ae7a6b38SJeff Roberson * Schedule a thread to resume execution and record how long it voluntarily 1917ae7a6b38SJeff Roberson * slept. We also update the pctcpu, interactivity, and priority. 1918ae7a6b38SJeff Roberson */ 191935e6168fSJeff Roberson void 192035e6168fSJeff Roberson sched_wakeup(struct thread *td) 192135e6168fSJeff Roberson { 192214618990SJeff Roberson struct td_sched *ts; 1923ae7a6b38SJeff Roberson int slptick; 1924e7d50326SJeff Roberson 19257b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 192614618990SJeff Roberson ts = td->td_sched; 192735e6168fSJeff Roberson /* 1928e7d50326SJeff Roberson * If we slept for more than a tick update our interactivity and 1929e7d50326SJeff Roberson * priority. 193035e6168fSJeff Roberson */ 1931ae7a6b38SJeff Roberson slptick = ts->ts_slptick; 1932ae7a6b38SJeff Roberson ts->ts_slptick = 0; 1933ae7a6b38SJeff Roberson if (slptick && slptick != ticks) { 19349a93305aSJeff Roberson u_int hzticks; 1935f1e8dc4aSJeff Roberson 1936ae7a6b38SJeff Roberson hzticks = (ticks - slptick) << SCHED_TICK_SHIFT; 1937ae7a6b38SJeff Roberson ts->ts_slptime += hzticks; 19388460a577SJohn Birrell sched_interact_update(td); 193914618990SJeff Roberson sched_pctcpu_update(ts); 19408460a577SJohn Birrell sched_priority(td); 1941f1e8dc4aSJeff Roberson } 194214618990SJeff Roberson /* Reset the slice value after we sleep. */ 194314618990SJeff Roberson ts->ts_slice = sched_slice; 19447a5e5e2aSJeff Roberson sched_add(td, SRQ_BORING); 194535e6168fSJeff Roberson } 194635e6168fSJeff Roberson 194735e6168fSJeff Roberson /* 194835e6168fSJeff Roberson * Penalize the parent for creating a new child and initialize the child's 194935e6168fSJeff Roberson * priority. 195035e6168fSJeff Roberson */ 195135e6168fSJeff Roberson void 19528460a577SJohn Birrell sched_fork(struct thread *td, struct thread *child) 195315dc847eSJeff Roberson { 19547b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 1955ad1e7d28SJulian Elischer sched_fork_thread(td, child); 1956e7d50326SJeff Roberson /* 1957e7d50326SJeff Roberson * Penalize the parent and child for forking. 1958e7d50326SJeff Roberson */ 1959e7d50326SJeff Roberson sched_interact_fork(child); 1960e7d50326SJeff Roberson sched_priority(child); 1961ae7a6b38SJeff Roberson td->td_sched->ts_runtime += tickincr; 1962e7d50326SJeff Roberson sched_interact_update(td); 1963e7d50326SJeff Roberson sched_priority(td); 1964ad1e7d28SJulian Elischer } 1965ad1e7d28SJulian Elischer 1966ae7a6b38SJeff Roberson /* 1967ae7a6b38SJeff Roberson * Fork a new thread, may be within the same process. 1968ae7a6b38SJeff Roberson */ 1969ad1e7d28SJulian Elischer void 1970ad1e7d28SJulian Elischer sched_fork_thread(struct thread *td, struct thread *child) 1971ad1e7d28SJulian Elischer { 1972ad1e7d28SJulian Elischer struct td_sched *ts; 1973ad1e7d28SJulian Elischer struct td_sched *ts2; 19748460a577SJohn Birrell 1975e7d50326SJeff Roberson /* 1976e7d50326SJeff Roberson * Initialize child. 1977e7d50326SJeff Roberson */ 19787b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 1979ed062c8dSJulian Elischer sched_newthread(child); 1980ae7a6b38SJeff Roberson child->td_lock = TDQ_LOCKPTR(TDQ_SELF()); 1981ad1e7d28SJulian Elischer ts = td->td_sched; 1982ad1e7d28SJulian Elischer ts2 = child->td_sched; 1983ad1e7d28SJulian Elischer ts2->ts_cpu = ts->ts_cpu; 1984ad1e7d28SJulian Elischer ts2->ts_runq = NULL; 1985e7d50326SJeff Roberson /* 1986e7d50326SJeff Roberson * Grab our parents cpu estimation information and priority. 1987e7d50326SJeff Roberson */ 1988ad1e7d28SJulian Elischer ts2->ts_ticks = ts->ts_ticks; 1989ad1e7d28SJulian Elischer ts2->ts_ltick = ts->ts_ltick; 1990ad1e7d28SJulian Elischer ts2->ts_ftick = ts->ts_ftick; 1991e7d50326SJeff Roberson child->td_user_pri = td->td_user_pri; 1992e7d50326SJeff Roberson child->td_base_user_pri = td->td_base_user_pri; 1993e7d50326SJeff Roberson /* 1994e7d50326SJeff Roberson * And update interactivity score. 1995e7d50326SJeff Roberson */ 1996ae7a6b38SJeff Roberson ts2->ts_slptime = ts->ts_slptime; 1997ae7a6b38SJeff Roberson ts2->ts_runtime = ts->ts_runtime; 1998e7d50326SJeff Roberson ts2->ts_slice = 1; /* Attempt to quickly learn interactivity. */ 199915dc847eSJeff Roberson } 200015dc847eSJeff Roberson 2001ae7a6b38SJeff Roberson /* 2002ae7a6b38SJeff Roberson * Adjust the priority class of a thread. 2003ae7a6b38SJeff Roberson */ 200415dc847eSJeff Roberson void 20058460a577SJohn Birrell sched_class(struct thread *td, int class) 200615dc847eSJeff Roberson { 200715dc847eSJeff Roberson 20087b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 20098460a577SJohn Birrell if (td->td_pri_class == class) 201015dc847eSJeff Roberson return; 201115dc847eSJeff Roberson 2012ef1134c9SJeff Roberson #ifdef SMP 2013155b9987SJeff Roberson /* 2014155b9987SJeff Roberson * On SMP if we're on the RUNQ we must adjust the transferable 2015155b9987SJeff Roberson * count because could be changing to or from an interrupt 2016155b9987SJeff Roberson * class. 2017155b9987SJeff Roberson */ 20187a5e5e2aSJeff Roberson if (TD_ON_RUNQ(td)) { 20191e516cf5SJeff Roberson struct tdq *tdq; 20201e516cf5SJeff Roberson 20211e516cf5SJeff Roberson tdq = TDQ_CPU(td->td_sched->ts_cpu); 20221e516cf5SJeff Roberson if (THREAD_CAN_MIGRATE(td)) { 2023d2ad694cSJeff Roberson tdq->tdq_transferable--; 2024d2ad694cSJeff Roberson tdq->tdq_group->tdg_transferable--; 202580f86c9fSJeff Roberson } 20261e516cf5SJeff Roberson td->td_pri_class = class; 20271e516cf5SJeff Roberson if (THREAD_CAN_MIGRATE(td)) { 2028d2ad694cSJeff Roberson tdq->tdq_transferable++; 2029d2ad694cSJeff Roberson tdq->tdq_group->tdg_transferable++; 203080f86c9fSJeff Roberson } 2031155b9987SJeff Roberson } 2032ef1134c9SJeff Roberson #endif 20338460a577SJohn Birrell td->td_pri_class = class; 203435e6168fSJeff Roberson } 203535e6168fSJeff Roberson 203635e6168fSJeff Roberson /* 203735e6168fSJeff Roberson * Return some of the child's priority and interactivity to the parent. 203835e6168fSJeff Roberson */ 203935e6168fSJeff Roberson void 2040fc6c30f6SJulian Elischer sched_exit(struct proc *p, struct thread *child) 204135e6168fSJeff Roberson { 2042e7d50326SJeff Roberson struct thread *td; 2043141ad61cSJeff Roberson 20448460a577SJohn Birrell CTR3(KTR_SCHED, "sched_exit: %p(%s) prio %d", 2045fc6c30f6SJulian Elischer child, child->td_proc->p_comm, child->td_priority); 20468460a577SJohn Birrell 20477b20fb19SJeff Roberson PROC_SLOCK_ASSERT(p, MA_OWNED); 2048e7d50326SJeff Roberson td = FIRST_THREAD_IN_PROC(p); 2049e7d50326SJeff Roberson sched_exit_thread(td, child); 2050ad1e7d28SJulian Elischer } 2051ad1e7d28SJulian Elischer 2052ae7a6b38SJeff Roberson /* 2053ae7a6b38SJeff Roberson * Penalize another thread for the time spent on this one. This helps to 2054ae7a6b38SJeff Roberson * worsen the priority and interactivity of processes which schedule batch 2055ae7a6b38SJeff Roberson * jobs such as make. This has little effect on the make process itself but 2056ae7a6b38SJeff Roberson * causes new processes spawned by it to receive worse scores immediately. 2057ae7a6b38SJeff Roberson */ 2058ad1e7d28SJulian Elischer void 2059fc6c30f6SJulian Elischer sched_exit_thread(struct thread *td, struct thread *child) 2060ad1e7d28SJulian Elischer { 2061fc6c30f6SJulian Elischer 2062e7d50326SJeff Roberson CTR3(KTR_SCHED, "sched_exit_thread: %p(%s) prio %d", 2063e7d50326SJeff Roberson child, child->td_proc->p_comm, child->td_priority); 2064e7d50326SJeff Roberson 2065e7d50326SJeff Roberson #ifdef KSE 2066e7d50326SJeff Roberson /* 2067e7d50326SJeff Roberson * KSE forks and exits so often that this penalty causes short-lived 2068e7d50326SJeff Roberson * threads to always be non-interactive. This causes mozilla to 2069e7d50326SJeff Roberson * crawl under load. 2070e7d50326SJeff Roberson */ 2071e7d50326SJeff Roberson if ((td->td_pflags & TDP_SA) && td->td_proc == child->td_proc) 2072e7d50326SJeff Roberson return; 2073e7d50326SJeff Roberson #endif 2074e7d50326SJeff Roberson /* 2075e7d50326SJeff Roberson * Give the child's runtime to the parent without returning the 2076e7d50326SJeff Roberson * sleep time as a penalty to the parent. This causes shells that 2077e7d50326SJeff Roberson * launch expensive things to mark their children as expensive. 2078e7d50326SJeff Roberson */ 20797b20fb19SJeff Roberson thread_lock(td); 2080ae7a6b38SJeff Roberson td->td_sched->ts_runtime += child->td_sched->ts_runtime; 2081fc6c30f6SJulian Elischer sched_interact_update(td); 2082e7d50326SJeff Roberson sched_priority(td); 20837b20fb19SJeff Roberson thread_unlock(td); 2084ad1e7d28SJulian Elischer } 2085ad1e7d28SJulian Elischer 2086ae7a6b38SJeff Roberson /* 2087ae7a6b38SJeff Roberson * Fix priorities on return to user-space. Priorities may be elevated due 2088ae7a6b38SJeff Roberson * to static priorities in msleep() or similar. 2089ae7a6b38SJeff Roberson */ 2090ad1e7d28SJulian Elischer void 2091ad1e7d28SJulian Elischer sched_userret(struct thread *td) 2092ad1e7d28SJulian Elischer { 2093ad1e7d28SJulian Elischer /* 2094ad1e7d28SJulian Elischer * XXX we cheat slightly on the locking here to avoid locking in 2095ad1e7d28SJulian Elischer * the usual case. Setting td_priority here is essentially an 2096ad1e7d28SJulian Elischer * incomplete workaround for not setting it properly elsewhere. 2097ad1e7d28SJulian Elischer * Now that some interrupt handlers are threads, not setting it 2098ad1e7d28SJulian Elischer * properly elsewhere can clobber it in the window between setting 2099ad1e7d28SJulian Elischer * it here and returning to user mode, so don't waste time setting 2100ad1e7d28SJulian Elischer * it perfectly here. 2101ad1e7d28SJulian Elischer */ 2102ad1e7d28SJulian Elischer KASSERT((td->td_flags & TDF_BORROWING) == 0, 2103ad1e7d28SJulian Elischer ("thread with borrowed priority returning to userland")); 2104ad1e7d28SJulian Elischer if (td->td_priority != td->td_user_pri) { 21057b20fb19SJeff Roberson thread_lock(td); 2106ad1e7d28SJulian Elischer td->td_priority = td->td_user_pri; 2107ad1e7d28SJulian Elischer td->td_base_pri = td->td_user_pri; 21087b20fb19SJeff Roberson thread_unlock(td); 2109ad1e7d28SJulian Elischer } 211035e6168fSJeff Roberson } 211135e6168fSJeff Roberson 2112ae7a6b38SJeff Roberson /* 2113ae7a6b38SJeff Roberson * Handle a stathz tick. This is really only relevant for timeshare 2114ae7a6b38SJeff Roberson * threads. 2115ae7a6b38SJeff Roberson */ 211635e6168fSJeff Roberson void 21177cf90fb3SJeff Roberson sched_clock(struct thread *td) 211835e6168fSJeff Roberson { 2119ad1e7d28SJulian Elischer struct tdq *tdq; 2120ad1e7d28SJulian Elischer struct td_sched *ts; 212135e6168fSJeff Roberson 2122ae7a6b38SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 21233f872f85SJeff Roberson tdq = TDQ_SELF(); 21243f872f85SJeff Roberson /* 21253f872f85SJeff Roberson * Advance the insert index once for each tick to ensure that all 21263f872f85SJeff Roberson * threads get a chance to run. 21273f872f85SJeff Roberson */ 21283f872f85SJeff Roberson if (tdq->tdq_idx == tdq->tdq_ridx) { 21293f872f85SJeff Roberson tdq->tdq_idx = (tdq->tdq_idx + 1) % RQ_NQS; 21303f872f85SJeff Roberson if (TAILQ_EMPTY(&tdq->tdq_timeshare.rq_queues[tdq->tdq_ridx])) 21313f872f85SJeff Roberson tdq->tdq_ridx = tdq->tdq_idx; 21323f872f85SJeff Roberson } 21333f872f85SJeff Roberson ts = td->td_sched; 21343f741ca1SJeff Roberson /* 21358460a577SJohn Birrell * We only do slicing code for TIMESHARE threads. 2136a8949de2SJeff Roberson */ 21378460a577SJohn Birrell if (td->td_pri_class != PRI_TIMESHARE) 2138a8949de2SJeff Roberson return; 2139a8949de2SJeff Roberson /* 21403f872f85SJeff Roberson * We used a tick; charge it to the thread so that we can compute our 214115dc847eSJeff Roberson * interactivity. 214215dc847eSJeff Roberson */ 2143ae7a6b38SJeff Roberson td->td_sched->ts_runtime += tickincr; 21448460a577SJohn Birrell sched_interact_update(td); 214535e6168fSJeff Roberson /* 214635e6168fSJeff Roberson * We used up one time slice. 214735e6168fSJeff Roberson */ 2148ad1e7d28SJulian Elischer if (--ts->ts_slice > 0) 214915dc847eSJeff Roberson return; 215035e6168fSJeff Roberson /* 215115dc847eSJeff Roberson * We're out of time, recompute priorities and requeue. 215235e6168fSJeff Roberson */ 21538460a577SJohn Birrell sched_priority(td); 21544a338afdSJulian Elischer td->td_flags |= TDF_NEEDRESCHED; 215535e6168fSJeff Roberson } 215635e6168fSJeff Roberson 2157ae7a6b38SJeff Roberson /* 2158ae7a6b38SJeff Roberson * Called once per hz tick. Used for cpu utilization information. This 2159ae7a6b38SJeff Roberson * is easier than trying to scale based on stathz. 2160ae7a6b38SJeff Roberson */ 2161ae7a6b38SJeff Roberson void 2162ae7a6b38SJeff Roberson sched_tick(void) 2163ae7a6b38SJeff Roberson { 2164ae7a6b38SJeff Roberson struct td_sched *ts; 2165ae7a6b38SJeff Roberson 2166ae7a6b38SJeff Roberson ts = curthread->td_sched; 2167ae7a6b38SJeff Roberson /* Adjust ticks for pctcpu */ 2168ae7a6b38SJeff Roberson ts->ts_ticks += 1 << SCHED_TICK_SHIFT; 2169ae7a6b38SJeff Roberson ts->ts_ltick = ticks; 2170ae7a6b38SJeff Roberson /* 2171ae7a6b38SJeff Roberson * Update if we've exceeded our desired tick threshhold by over one 2172ae7a6b38SJeff Roberson * second. 2173ae7a6b38SJeff Roberson */ 2174ae7a6b38SJeff Roberson if (ts->ts_ftick + SCHED_TICK_MAX < ts->ts_ltick) 2175ae7a6b38SJeff Roberson sched_pctcpu_update(ts); 2176ae7a6b38SJeff Roberson } 2177ae7a6b38SJeff Roberson 2178ae7a6b38SJeff Roberson /* 2179ae7a6b38SJeff Roberson * Return whether the current CPU has runnable tasks. Used for in-kernel 2180ae7a6b38SJeff Roberson * cooperative idle threads. 2181ae7a6b38SJeff Roberson */ 218235e6168fSJeff Roberson int 218335e6168fSJeff Roberson sched_runnable(void) 218435e6168fSJeff Roberson { 2185ad1e7d28SJulian Elischer struct tdq *tdq; 2186b90816f1SJeff Roberson int load; 218735e6168fSJeff Roberson 2188b90816f1SJeff Roberson load = 1; 2189b90816f1SJeff Roberson 2190ad1e7d28SJulian Elischer tdq = TDQ_SELF(); 21913f741ca1SJeff Roberson if ((curthread->td_flags & TDF_IDLETD) != 0) { 2192d2ad694cSJeff Roberson if (tdq->tdq_load > 0) 21933f741ca1SJeff Roberson goto out; 21943f741ca1SJeff Roberson } else 2195d2ad694cSJeff Roberson if (tdq->tdq_load - 1 > 0) 2196b90816f1SJeff Roberson goto out; 2197b90816f1SJeff Roberson load = 0; 2198b90816f1SJeff Roberson out: 2199b90816f1SJeff Roberson return (load); 220035e6168fSJeff Roberson } 220135e6168fSJeff Roberson 2202ae7a6b38SJeff Roberson /* 2203ae7a6b38SJeff Roberson * Choose the highest priority thread to run. The thread is removed from 2204ae7a6b38SJeff Roberson * the run-queue while running however the load remains. For SMP we set 2205ae7a6b38SJeff Roberson * the tdq in the global idle bitmask if it idles here. 2206ae7a6b38SJeff Roberson */ 22077a5e5e2aSJeff Roberson struct thread * 2208c9f25d8fSJeff Roberson sched_choose(void) 2209c9f25d8fSJeff Roberson { 221015dc847eSJeff Roberson #ifdef SMP 2211ae7a6b38SJeff Roberson struct tdq_group *tdg; 221215dc847eSJeff Roberson #endif 2213ae7a6b38SJeff Roberson struct td_sched *ts; 2214ae7a6b38SJeff Roberson struct tdq *tdq; 2215ae7a6b38SJeff Roberson 2216ae7a6b38SJeff Roberson tdq = TDQ_SELF(); 2217ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 2218ad1e7d28SJulian Elischer ts = tdq_choose(tdq); 2219ad1e7d28SJulian Elischer if (ts) { 2220ad1e7d28SJulian Elischer tdq_runq_rem(tdq, ts); 22217a5e5e2aSJeff Roberson return (ts->ts_thread); 222235e6168fSJeff Roberson } 2223c9f25d8fSJeff Roberson #ifdef SMP 2224ae7a6b38SJeff Roberson /* 2225ae7a6b38SJeff Roberson * We only set the idled bit when all of the cpus in the group are 2226ae7a6b38SJeff Roberson * idle. Otherwise we could get into a situation where a thread bounces 2227ae7a6b38SJeff Roberson * back and forth between two idle cores on seperate physical CPUs. 2228ae7a6b38SJeff Roberson */ 2229ae7a6b38SJeff Roberson tdg = tdq->tdq_group; 2230ae7a6b38SJeff Roberson tdg->tdg_idlemask |= PCPU_GET(cpumask); 2231ae7a6b38SJeff Roberson if (tdg->tdg_idlemask == tdg->tdg_cpumask) 2232ae7a6b38SJeff Roberson atomic_set_int(&tdq_idle, tdg->tdg_mask); 2233ae7a6b38SJeff Roberson tdq->tdq_lowpri = PRI_MAX_IDLE; 2234c9f25d8fSJeff Roberson #endif 22357a5e5e2aSJeff Roberson return (PCPU_GET(idlethread)); 22367a5e5e2aSJeff Roberson } 22377a5e5e2aSJeff Roberson 2238ae7a6b38SJeff Roberson /* 2239ae7a6b38SJeff Roberson * Set owepreempt if necessary. Preemption never happens directly in ULE, 2240ae7a6b38SJeff Roberson * we always request it once we exit a critical section. 2241ae7a6b38SJeff Roberson */ 2242ae7a6b38SJeff Roberson static inline void 2243ae7a6b38SJeff Roberson sched_setpreempt(struct thread *td) 22447a5e5e2aSJeff Roberson { 22457a5e5e2aSJeff Roberson struct thread *ctd; 22467a5e5e2aSJeff Roberson int cpri; 22477a5e5e2aSJeff Roberson int pri; 22487a5e5e2aSJeff Roberson 22497a5e5e2aSJeff Roberson ctd = curthread; 22507a5e5e2aSJeff Roberson pri = td->td_priority; 22517a5e5e2aSJeff Roberson cpri = ctd->td_priority; 2252ae7a6b38SJeff Roberson if (td->td_priority < ctd->td_priority) 2253ae7a6b38SJeff Roberson curthread->td_flags |= TDF_NEEDRESCHED; 22547a5e5e2aSJeff Roberson if (panicstr != NULL || pri >= cpri || cold || TD_IS_INHIBITED(ctd)) 2255ae7a6b38SJeff Roberson return; 22567a5e5e2aSJeff Roberson /* 22577a5e5e2aSJeff Roberson * Always preempt IDLE threads. Otherwise only if the preempting 22587a5e5e2aSJeff Roberson * thread is an ithread. 22597a5e5e2aSJeff Roberson */ 2260ae7a6b38SJeff Roberson if (pri > preempt_thresh && cpri < PRI_MIN_IDLE) 2261ae7a6b38SJeff Roberson return; 22627a5e5e2aSJeff Roberson ctd->td_owepreempt = 1; 2263ae7a6b38SJeff Roberson return; 226435e6168fSJeff Roberson } 226535e6168fSJeff Roberson 2266ae7a6b38SJeff Roberson /* 2267ae7a6b38SJeff Roberson * Add a thread to a thread queue. Initializes priority, slice, runq, and 2268ae7a6b38SJeff Roberson * add it to the appropriate queue. This is the internal function called 2269ae7a6b38SJeff Roberson * when the tdq is predetermined. 2270ae7a6b38SJeff Roberson */ 227135e6168fSJeff Roberson void 2272ae7a6b38SJeff Roberson tdq_add(struct tdq *tdq, struct thread *td, int flags) 227335e6168fSJeff Roberson { 2274ad1e7d28SJulian Elischer struct td_sched *ts; 227522bf7d9aSJeff Roberson int class; 22767b8bfa0dSJeff Roberson #ifdef SMP 22777b8bfa0dSJeff Roberson int cpumask; 22787b8bfa0dSJeff Roberson #endif 2279c9f25d8fSJeff Roberson 2280ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 22817a5e5e2aSJeff Roberson KASSERT((td->td_inhibitors == 0), 22827a5e5e2aSJeff Roberson ("sched_add: trying to run inhibited thread")); 22837a5e5e2aSJeff Roberson KASSERT((TD_CAN_RUN(td) || TD_IS_RUNNING(td)), 22847a5e5e2aSJeff Roberson ("sched_add: bad thread state")); 22858460a577SJohn Birrell KASSERT(td->td_proc->p_sflag & PS_INMEM, 22865d7ef00cSJeff Roberson ("sched_add: process swapped out")); 2287ae7a6b38SJeff Roberson 2288ae7a6b38SJeff Roberson ts = td->td_sched; 22897a5e5e2aSJeff Roberson class = PRI_BASE(td->td_pri_class); 2290ae7a6b38SJeff Roberson TD_SET_RUNQ(td); 22917a5e5e2aSJeff Roberson if (ts->ts_slice == 0) 22927a5e5e2aSJeff Roberson ts->ts_slice = sched_slice; 22932454aaf5SJeff Roberson /* 2294ae7a6b38SJeff Roberson * Pick the run queue based on priority. 22952454aaf5SJeff Roberson */ 2296ae7a6b38SJeff Roberson if (td->td_priority <= PRI_MAX_REALTIME) 2297ae7a6b38SJeff Roberson ts->ts_runq = &tdq->tdq_realtime; 2298ae7a6b38SJeff Roberson else if (td->td_priority <= PRI_MAX_TIMESHARE) 2299ae7a6b38SJeff Roberson ts->ts_runq = &tdq->tdq_timeshare; 23007b8bfa0dSJeff Roberson else 2301ae7a6b38SJeff Roberson ts->ts_runq = &tdq->tdq_idle; 2302ae7a6b38SJeff Roberson #ifdef SMP 23037b8bfa0dSJeff Roberson cpumask = 1 << ts->ts_cpu; 230422bf7d9aSJeff Roberson /* 2305670c524fSJeff Roberson * If we had been idle, clear our bit in the group and potentially 23067b8bfa0dSJeff Roberson * the global bitmap. 230722bf7d9aSJeff Roberson */ 2308e7d50326SJeff Roberson if ((class != PRI_IDLE && class != PRI_ITHD) && 23097b8bfa0dSJeff Roberson (tdq->tdq_group->tdg_idlemask & cpumask) != 0) { 231080f86c9fSJeff Roberson /* 231180f86c9fSJeff Roberson * Check to see if our group is unidling, and if so, remove it 231280f86c9fSJeff Roberson * from the global idle mask. 231380f86c9fSJeff Roberson */ 2314d2ad694cSJeff Roberson if (tdq->tdq_group->tdg_idlemask == 2315d2ad694cSJeff Roberson tdq->tdq_group->tdg_cpumask) 2316d2ad694cSJeff Roberson atomic_clear_int(&tdq_idle, tdq->tdq_group->tdg_mask); 231780f86c9fSJeff Roberson /* 231880f86c9fSJeff Roberson * Now remove ourselves from the group specific idle mask. 231980f86c9fSJeff Roberson */ 23207b8bfa0dSJeff Roberson tdq->tdq_group->tdg_idlemask &= ~cpumask; 23217b8bfa0dSJeff Roberson } 2322ae7a6b38SJeff Roberson if (td->td_priority < tdq->tdq_lowpri) 2323ae7a6b38SJeff Roberson tdq->tdq_lowpri = td->td_priority; 232422bf7d9aSJeff Roberson #endif 2325ad1e7d28SJulian Elischer tdq_runq_add(tdq, ts, flags); 2326ad1e7d28SJulian Elischer tdq_load_add(tdq, ts); 2327ae7a6b38SJeff Roberson } 2328ae7a6b38SJeff Roberson 2329ae7a6b38SJeff Roberson /* 2330ae7a6b38SJeff Roberson * Select the target thread queue and add a thread to it. Request 2331ae7a6b38SJeff Roberson * preemption or IPI a remote processor if required. 2332ae7a6b38SJeff Roberson */ 2333ae7a6b38SJeff Roberson void 2334ae7a6b38SJeff Roberson sched_add(struct thread *td, int flags) 2335ae7a6b38SJeff Roberson { 2336ae7a6b38SJeff Roberson struct td_sched *ts; 2337ae7a6b38SJeff Roberson struct tdq *tdq; 23387b8bfa0dSJeff Roberson #ifdef SMP 2339ae7a6b38SJeff Roberson int cpuid; 2340ae7a6b38SJeff Roberson int cpu; 2341ae7a6b38SJeff Roberson #endif 2342ae7a6b38SJeff Roberson CTR5(KTR_SCHED, "sched_add: %p(%s) prio %d by %p(%s)", 2343ae7a6b38SJeff Roberson td, td->td_proc->p_comm, td->td_priority, curthread, 2344ae7a6b38SJeff Roberson curthread->td_proc->p_comm); 2345ae7a6b38SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 2346ae7a6b38SJeff Roberson ts = td->td_sched; 2347ae7a6b38SJeff Roberson /* 2348ae7a6b38SJeff Roberson * Recalculate the priority before we select the target cpu or 2349ae7a6b38SJeff Roberson * run-queue. 2350ae7a6b38SJeff Roberson */ 2351ae7a6b38SJeff Roberson if (PRI_BASE(td->td_pri_class) == PRI_TIMESHARE) 2352ae7a6b38SJeff Roberson sched_priority(td); 2353ae7a6b38SJeff Roberson #ifdef SMP 2354ae7a6b38SJeff Roberson cpuid = PCPU_GET(cpuid); 2355ae7a6b38SJeff Roberson /* 2356ae7a6b38SJeff Roberson * Pick the destination cpu and if it isn't ours transfer to the 2357ae7a6b38SJeff Roberson * target cpu. 2358ae7a6b38SJeff Roberson */ 2359ae7a6b38SJeff Roberson if (td->td_priority <= PRI_MAX_ITHD && THREAD_CAN_MIGRATE(td)) 2360ae7a6b38SJeff Roberson cpu = cpuid; 2361ae7a6b38SJeff Roberson else if (!THREAD_CAN_MIGRATE(td)) 2362ae7a6b38SJeff Roberson cpu = ts->ts_cpu; 2363ae7a6b38SJeff Roberson else 2364ae7a6b38SJeff Roberson cpu = sched_pickcpu(ts, flags); 2365ae7a6b38SJeff Roberson tdq = sched_setcpu(ts, cpu, flags); 2366ae7a6b38SJeff Roberson tdq_add(tdq, td, flags); 2367ae7a6b38SJeff Roberson if (cpu != cpuid) { 23687b8bfa0dSJeff Roberson tdq_notify(ts); 23697b8bfa0dSJeff Roberson return; 23707b8bfa0dSJeff Roberson } 2371ae7a6b38SJeff Roberson #else 2372ae7a6b38SJeff Roberson tdq = TDQ_SELF(); 2373ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 2374ae7a6b38SJeff Roberson /* 2375ae7a6b38SJeff Roberson * Now that the thread is moving to the run-queue, set the lock 2376ae7a6b38SJeff Roberson * to the scheduler's lock. 2377ae7a6b38SJeff Roberson */ 2378ae7a6b38SJeff Roberson thread_lock_set(td, TDQ_LOCKPTR(tdq)); 2379ae7a6b38SJeff Roberson tdq_add(tdq, td, flags); 23807b8bfa0dSJeff Roberson #endif 2381ae7a6b38SJeff Roberson if (!(flags & SRQ_YIELDING)) 2382ae7a6b38SJeff Roberson sched_setpreempt(td); 238335e6168fSJeff Roberson } 238435e6168fSJeff Roberson 2385ae7a6b38SJeff Roberson /* 2386ae7a6b38SJeff Roberson * Remove a thread from a run-queue without running it. This is used 2387ae7a6b38SJeff Roberson * when we're stealing a thread from a remote queue. Otherwise all threads 2388ae7a6b38SJeff Roberson * exit by calling sched_exit_thread() and sched_throw() themselves. 2389ae7a6b38SJeff Roberson */ 239035e6168fSJeff Roberson void 23917cf90fb3SJeff Roberson sched_rem(struct thread *td) 239235e6168fSJeff Roberson { 2393ad1e7d28SJulian Elischer struct tdq *tdq; 2394ad1e7d28SJulian Elischer struct td_sched *ts; 23957cf90fb3SJeff Roberson 239681d47d3fSJeff Roberson CTR5(KTR_SCHED, "sched_rem: %p(%s) prio %d by %p(%s)", 239781d47d3fSJeff Roberson td, td->td_proc->p_comm, td->td_priority, curthread, 239881d47d3fSJeff Roberson curthread->td_proc->p_comm); 2399ad1e7d28SJulian Elischer ts = td->td_sched; 2400ae7a6b38SJeff Roberson tdq = TDQ_CPU(ts->ts_cpu); 2401ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 2402ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 24037a5e5e2aSJeff Roberson KASSERT(TD_ON_RUNQ(td), 2404ad1e7d28SJulian Elischer ("sched_rem: thread not on run queue")); 2405ad1e7d28SJulian Elischer tdq_runq_rem(tdq, ts); 2406ad1e7d28SJulian Elischer tdq_load_rem(tdq, ts); 24077a5e5e2aSJeff Roberson TD_SET_CAN_RUN(td); 240835e6168fSJeff Roberson } 240935e6168fSJeff Roberson 2410ae7a6b38SJeff Roberson /* 2411ae7a6b38SJeff Roberson * Fetch cpu utilization information. Updates on demand. 2412ae7a6b38SJeff Roberson */ 241335e6168fSJeff Roberson fixpt_t 24147cf90fb3SJeff Roberson sched_pctcpu(struct thread *td) 241535e6168fSJeff Roberson { 241635e6168fSJeff Roberson fixpt_t pctcpu; 2417ad1e7d28SJulian Elischer struct td_sched *ts; 241835e6168fSJeff Roberson 241935e6168fSJeff Roberson pctcpu = 0; 2420ad1e7d28SJulian Elischer ts = td->td_sched; 2421ad1e7d28SJulian Elischer if (ts == NULL) 2422484288deSJeff Roberson return (0); 242335e6168fSJeff Roberson 24247b20fb19SJeff Roberson thread_lock(td); 2425ad1e7d28SJulian Elischer if (ts->ts_ticks) { 242635e6168fSJeff Roberson int rtick; 242735e6168fSJeff Roberson 2428ad1e7d28SJulian Elischer sched_pctcpu_update(ts); 242935e6168fSJeff Roberson /* How many rtick per second ? */ 2430e7d50326SJeff Roberson rtick = min(SCHED_TICK_HZ(ts) / SCHED_TICK_SECS, hz); 2431e7d50326SJeff Roberson pctcpu = (FSCALE * ((FSCALE * rtick)/hz)) >> FSHIFT; 243235e6168fSJeff Roberson } 2433ad1e7d28SJulian Elischer td->td_proc->p_swtime = ts->ts_ltick - ts->ts_ftick; 24347b20fb19SJeff Roberson thread_unlock(td); 243535e6168fSJeff Roberson 243635e6168fSJeff Roberson return (pctcpu); 243735e6168fSJeff Roberson } 243835e6168fSJeff Roberson 2439ae7a6b38SJeff Roberson /* 2440ae7a6b38SJeff Roberson * Bind a thread to a target cpu. 2441ae7a6b38SJeff Roberson */ 24429bacd788SJeff Roberson void 24439bacd788SJeff Roberson sched_bind(struct thread *td, int cpu) 24449bacd788SJeff Roberson { 2445ad1e7d28SJulian Elischer struct td_sched *ts; 24469bacd788SJeff Roberson 2447c47f202bSJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED|MA_NOTRECURSED); 2448ad1e7d28SJulian Elischer ts = td->td_sched; 24496b2f763fSJeff Roberson if (ts->ts_flags & TSF_BOUND) 2450c95d2db2SJeff Roberson sched_unbind(td); 2451ad1e7d28SJulian Elischer ts->ts_flags |= TSF_BOUND; 245280f86c9fSJeff Roberson #ifdef SMP 24536b2f763fSJeff Roberson sched_pin(); 245480f86c9fSJeff Roberson if (PCPU_GET(cpuid) == cpu) 24559bacd788SJeff Roberson return; 24566b2f763fSJeff Roberson ts->ts_cpu = cpu; 24579bacd788SJeff Roberson /* When we return from mi_switch we'll be on the correct cpu. */ 2458279f949eSPoul-Henning Kamp mi_switch(SW_VOL, NULL); 24599bacd788SJeff Roberson #endif 24609bacd788SJeff Roberson } 24619bacd788SJeff Roberson 2462ae7a6b38SJeff Roberson /* 2463ae7a6b38SJeff Roberson * Release a bound thread. 2464ae7a6b38SJeff Roberson */ 24659bacd788SJeff Roberson void 24669bacd788SJeff Roberson sched_unbind(struct thread *td) 24679bacd788SJeff Roberson { 2468e7d50326SJeff Roberson struct td_sched *ts; 2469e7d50326SJeff Roberson 24707b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 2471e7d50326SJeff Roberson ts = td->td_sched; 24726b2f763fSJeff Roberson if ((ts->ts_flags & TSF_BOUND) == 0) 24736b2f763fSJeff Roberson return; 2474e7d50326SJeff Roberson ts->ts_flags &= ~TSF_BOUND; 2475e7d50326SJeff Roberson #ifdef SMP 2476e7d50326SJeff Roberson sched_unpin(); 2477e7d50326SJeff Roberson #endif 24789bacd788SJeff Roberson } 24799bacd788SJeff Roberson 248035e6168fSJeff Roberson int 2481ebccf1e3SJoseph Koshy sched_is_bound(struct thread *td) 2482ebccf1e3SJoseph Koshy { 24837b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 2484ad1e7d28SJulian Elischer return (td->td_sched->ts_flags & TSF_BOUND); 2485ebccf1e3SJoseph Koshy } 2486ebccf1e3SJoseph Koshy 2487ae7a6b38SJeff Roberson /* 2488ae7a6b38SJeff Roberson * Basic yield call. 2489ae7a6b38SJeff Roberson */ 249036ec198bSDavid Xu void 249136ec198bSDavid Xu sched_relinquish(struct thread *td) 249236ec198bSDavid Xu { 24937b20fb19SJeff Roberson thread_lock(td); 24948460a577SJohn Birrell if (td->td_pri_class == PRI_TIMESHARE) 249536ec198bSDavid Xu sched_prio(td, PRI_MAX_TIMESHARE); 24967b20fb19SJeff Roberson SCHED_STAT_INC(switch_relinquish); 249736ec198bSDavid Xu mi_switch(SW_VOL, NULL); 24987b20fb19SJeff Roberson thread_unlock(td); 249936ec198bSDavid Xu } 250036ec198bSDavid Xu 2501ae7a6b38SJeff Roberson /* 2502ae7a6b38SJeff Roberson * Return the total system load. 2503ae7a6b38SJeff Roberson */ 2504ebccf1e3SJoseph Koshy int 250533916c36SJeff Roberson sched_load(void) 250633916c36SJeff Roberson { 250733916c36SJeff Roberson #ifdef SMP 250833916c36SJeff Roberson int total; 250933916c36SJeff Roberson int i; 251033916c36SJeff Roberson 251133916c36SJeff Roberson total = 0; 2512d2ad694cSJeff Roberson for (i = 0; i <= tdg_maxid; i++) 2513d2ad694cSJeff Roberson total += TDQ_GROUP(i)->tdg_load; 251433916c36SJeff Roberson return (total); 251533916c36SJeff Roberson #else 2516d2ad694cSJeff Roberson return (TDQ_SELF()->tdq_sysload); 251733916c36SJeff Roberson #endif 251833916c36SJeff Roberson } 251933916c36SJeff Roberson 252033916c36SJeff Roberson int 252135e6168fSJeff Roberson sched_sizeof_proc(void) 252235e6168fSJeff Roberson { 252335e6168fSJeff Roberson return (sizeof(struct proc)); 252435e6168fSJeff Roberson } 252535e6168fSJeff Roberson 252635e6168fSJeff Roberson int 252735e6168fSJeff Roberson sched_sizeof_thread(void) 252835e6168fSJeff Roberson { 252935e6168fSJeff Roberson return (sizeof(struct thread) + sizeof(struct td_sched)); 253035e6168fSJeff Roberson } 2531b41f1452SDavid Xu 25327a5e5e2aSJeff Roberson /* 25337a5e5e2aSJeff Roberson * The actual idle process. 25347a5e5e2aSJeff Roberson */ 25357a5e5e2aSJeff Roberson void 25367a5e5e2aSJeff Roberson sched_idletd(void *dummy) 25377a5e5e2aSJeff Roberson { 25387a5e5e2aSJeff Roberson struct thread *td; 2539ae7a6b38SJeff Roberson struct tdq *tdq; 25407a5e5e2aSJeff Roberson 25417a5e5e2aSJeff Roberson td = curthread; 2542ae7a6b38SJeff Roberson tdq = TDQ_SELF(); 25437a5e5e2aSJeff Roberson mtx_assert(&Giant, MA_NOTOWNED); 2544ae7a6b38SJeff Roberson /* ULE relies on preemption for idle interruption. */ 2545ae7a6b38SJeff Roberson for (;;) { 2546ae7a6b38SJeff Roberson #ifdef SMP 2547ae7a6b38SJeff Roberson if (tdq_idled(tdq)) 25487a5e5e2aSJeff Roberson cpu_idle(); 2549ae7a6b38SJeff Roberson #else 2550ae7a6b38SJeff Roberson cpu_idle(); 2551ae7a6b38SJeff Roberson #endif 2552ae7a6b38SJeff Roberson } 2553b41f1452SDavid Xu } 2554e7d50326SJeff Roberson 25557b20fb19SJeff Roberson /* 25567b20fb19SJeff Roberson * A CPU is entering for the first time or a thread is exiting. 25577b20fb19SJeff Roberson */ 25587b20fb19SJeff Roberson void 25597b20fb19SJeff Roberson sched_throw(struct thread *td) 25607b20fb19SJeff Roberson { 2561ae7a6b38SJeff Roberson struct tdq *tdq; 2562ae7a6b38SJeff Roberson 2563ae7a6b38SJeff Roberson tdq = TDQ_SELF(); 25647b20fb19SJeff Roberson if (td == NULL) { 2565ae7a6b38SJeff Roberson /* Correct spinlock nesting and acquire the correct lock. */ 2566ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 25677b20fb19SJeff Roberson spinlock_exit(); 25687b20fb19SJeff Roberson } else { 2569ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 2570ae7a6b38SJeff Roberson tdq_load_rem(tdq, td->td_sched); 25717b20fb19SJeff Roberson } 25727b20fb19SJeff Roberson KASSERT(curthread->td_md.md_spinlock_count == 1, ("invalid count")); 25737b20fb19SJeff Roberson PCPU_SET(switchtime, cpu_ticks()); 25747b20fb19SJeff Roberson PCPU_SET(switchticks, ticks); 25757b20fb19SJeff Roberson cpu_throw(td, choosethread()); /* doesn't return */ 25767b20fb19SJeff Roberson } 25777b20fb19SJeff Roberson 2578ae7a6b38SJeff Roberson /* 2579ae7a6b38SJeff Roberson * This is called from fork_exit(). Just acquire the correct locks and 2580ae7a6b38SJeff Roberson * let fork do the rest of the work. 2581ae7a6b38SJeff Roberson */ 25827b20fb19SJeff Roberson void 2583fe54587fSJeff Roberson sched_fork_exit(struct thread *td) 25847b20fb19SJeff Roberson { 2585ae7a6b38SJeff Roberson struct td_sched *ts; 2586ae7a6b38SJeff Roberson struct tdq *tdq; 2587ae7a6b38SJeff Roberson int cpuid; 25887b20fb19SJeff Roberson 25897b20fb19SJeff Roberson /* 25907b20fb19SJeff Roberson * Finish setting up thread glue so that it begins execution in a 2591ae7a6b38SJeff Roberson * non-nested critical section with the scheduler lock held. 25927b20fb19SJeff Roberson */ 2593ae7a6b38SJeff Roberson cpuid = PCPU_GET(cpuid); 2594ae7a6b38SJeff Roberson tdq = TDQ_CPU(cpuid); 2595ae7a6b38SJeff Roberson ts = td->td_sched; 2596ae7a6b38SJeff Roberson if (TD_IS_IDLETHREAD(td)) 2597ae7a6b38SJeff Roberson td->td_lock = TDQ_LOCKPTR(tdq); 2598ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 2599ae7a6b38SJeff Roberson td->td_oncpu = cpuid; 2600ae7a6b38SJeff Roberson TDQ_LOCKPTR(tdq)->mtx_lock = (uintptr_t)td; 2601fe54587fSJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED | MA_NOTRECURSED); 26027b20fb19SJeff Roberson } 26037b20fb19SJeff Roberson 2604ae7a6b38SJeff Roberson static SYSCTL_NODE(_kern, OID_AUTO, sched, CTLFLAG_RW, 0, 2605ae7a6b38SJeff Roberson "Scheduler"); 2606ae7a6b38SJeff Roberson SYSCTL_STRING(_kern_sched, OID_AUTO, name, CTLFLAG_RD, "ULE", 0, 2607e7d50326SJeff Roberson "Scheduler name"); 2608ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, slice, CTLFLAG_RW, &sched_slice, 0, 2609ae7a6b38SJeff Roberson "Slice size for timeshare threads"); 2610ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, interact, CTLFLAG_RW, &sched_interact, 0, 2611ae7a6b38SJeff Roberson "Interactivity score threshold"); 2612ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, preempt_thresh, CTLFLAG_RW, &preempt_thresh, 2613ae7a6b38SJeff Roberson 0,"Min priority for preemption, lower priorities have greater precedence"); 26147b8bfa0dSJeff Roberson #ifdef SMP 2615ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, pick_pri, CTLFLAG_RW, &pick_pri, 0, 2616ae7a6b38SJeff Roberson "Pick the target cpu based on priority rather than load."); 2617ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, affinity, CTLFLAG_RW, &affinity, 0, 2618ae7a6b38SJeff Roberson "Number of hz ticks to keep thread affinity for"); 2619ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, tryself, CTLFLAG_RW, &tryself, 0, ""); 2620ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, balance, CTLFLAG_RW, &rebalance, 0, 2621ae7a6b38SJeff Roberson "Enables the long-term load balancer"); 262228994a58SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, balance_secs, CTLFLAG_RW, &balance_secs, 0, 262328994a58SJeff Roberson "Average frequence in seconds to run the long-term balancer"); 2624ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, steal_htt, CTLFLAG_RW, &steal_htt, 0, 2625ae7a6b38SJeff Roberson "Steals work from another hyper-threaded core on idle"); 2626ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, steal_idle, CTLFLAG_RW, &steal_idle, 0, 2627ae7a6b38SJeff Roberson "Attempts to steal work from other cores before idling"); 262828994a58SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, steal_thresh, CTLFLAG_RW, &steal_thresh, 0, 262928994a58SJeff Roberson "Minimum load on remote cpu before we'll steal"); 2630ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, topology, CTLFLAG_RD, &topology, 0, 2631ae7a6b38SJeff Roberson "True when a topology has been specified by the MD code."); 26327b8bfa0dSJeff Roberson #endif 2633e7d50326SJeff Roberson 2634e7d50326SJeff Roberson /* ps compat */ 2635e7d50326SJeff Roberson static fixpt_t ccpu = 0.95122942450071400909 * FSCALE; /* exp(-1/20) */ 2636e7d50326SJeff Roberson SYSCTL_INT(_kern, OID_AUTO, ccpu, CTLFLAG_RD, &ccpu, 0, ""); 2637e7d50326SJeff Roberson 2638e7d50326SJeff Roberson 2639ed062c8dSJulian Elischer #define KERN_SWITCH_INCLUDE 1 2640ed062c8dSJulian Elischer #include "kern/kern_switch.c" 2641