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: 33a5423ea3SJeff Roberson * ULE is the last three letters in schedule. It owes its 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> 39113dda8aSJeff Roberson __FBSDID("$FreeBSD$"); 40677b542eSDavid E. O'Brien 414da0d332SPeter Wemm #include "opt_hwpmc_hooks.h" 426f5f25e5SJohn Birrell #include "opt_kdtrace.h" 434da0d332SPeter Wemm #include "opt_sched.h" 449923b511SScott Long 4535e6168fSJeff Roberson #include <sys/param.h> 4635e6168fSJeff Roberson #include <sys/systm.h> 472c3490b1SMarcel Moolenaar #include <sys/kdb.h> 4835e6168fSJeff Roberson #include <sys/kernel.h> 4935e6168fSJeff Roberson #include <sys/ktr.h> 5035e6168fSJeff Roberson #include <sys/lock.h> 5135e6168fSJeff Roberson #include <sys/mutex.h> 5235e6168fSJeff Roberson #include <sys/proc.h> 53245f3abfSJeff Roberson #include <sys/resource.h> 549bacd788SJeff Roberson #include <sys/resourcevar.h> 5535e6168fSJeff Roberson #include <sys/sched.h> 56b3e9e682SRyan Stone #include <sys/sdt.h> 5735e6168fSJeff Roberson #include <sys/smp.h> 5835e6168fSJeff Roberson #include <sys/sx.h> 5935e6168fSJeff Roberson #include <sys/sysctl.h> 6035e6168fSJeff Roberson #include <sys/sysproto.h> 61f5c157d9SJohn Baldwin #include <sys/turnstile.h> 623db720fdSDavid Xu #include <sys/umtx.h> 6335e6168fSJeff Roberson #include <sys/vmmeter.h> 6462fa74d9SJeff Roberson #include <sys/cpuset.h> 6507095abfSIvan Voras #include <sys/sbuf.h> 6635e6168fSJeff Roberson 67ebccf1e3SJoseph Koshy #ifdef HWPMC_HOOKS 68ebccf1e3SJoseph Koshy #include <sys/pmckern.h> 69ebccf1e3SJoseph Koshy #endif 70ebccf1e3SJoseph Koshy 716f5f25e5SJohn Birrell #ifdef KDTRACE_HOOKS 726f5f25e5SJohn Birrell #include <sys/dtrace_bsd.h> 736f5f25e5SJohn Birrell int dtrace_vtime_active; 746f5f25e5SJohn Birrell dtrace_vtime_switch_func_t dtrace_vtime_switch_func; 756f5f25e5SJohn Birrell #endif 766f5f25e5SJohn Birrell 7735e6168fSJeff Roberson #include <machine/cpu.h> 7822bf7d9aSJeff Roberson #include <machine/smp.h> 7935e6168fSJeff Roberson 8017f4cae4SRafal Jaworowski #if defined(__powerpc__) && defined(BOOKE_E500) 8102e2d6b4SJeff Roberson #error "This architecture is not currently compatible with ULE" 827a5e5e2aSJeff Roberson #endif 837a5e5e2aSJeff Roberson 84ae7a6b38SJeff Roberson #define KTR_ULE 0 8514618990SJeff Roberson 860d2cf837SJeff Roberson #define TS_NAME_LEN (MAXCOMLEN + sizeof(" td ") + sizeof(__XSTRING(UINT_MAX))) 870d2cf837SJeff Roberson #define TDQ_NAME_LEN (sizeof("sched lock ") + sizeof(__XSTRING(MAXCPU))) 886338c579SAttilio Rao #define TDQ_LOADNAME_LEN (sizeof("CPU ") + sizeof(__XSTRING(MAXCPU)) - 1 + sizeof(" load")) 898f51ad55SJeff Roberson 906b2f763fSJeff Roberson /* 91ae7a6b38SJeff Roberson * Thread scheduler specific section. All fields are protected 92ae7a6b38SJeff Roberson * by the thread lock. 93ed062c8dSJulian Elischer */ 94ad1e7d28SJulian Elischer struct td_sched { 95ae7a6b38SJeff Roberson struct runq *ts_runq; /* Run-queue we're queued on. */ 96ae7a6b38SJeff Roberson short ts_flags; /* TSF_* flags. */ 97ad1e7d28SJulian Elischer u_char ts_cpu; /* CPU that we have affinity for. */ 9873daf66fSJeff Roberson int ts_rltick; /* Real last tick, for affinity. */ 99ae7a6b38SJeff Roberson int ts_slice; /* Ticks of slice remaining. */ 100ae7a6b38SJeff Roberson u_int ts_slptime; /* Number of ticks we vol. slept */ 101ae7a6b38SJeff Roberson u_int ts_runtime; /* Number of ticks we were running */ 102ad1e7d28SJulian Elischer int ts_ltick; /* Last tick that we were running on */ 103ad1e7d28SJulian Elischer int ts_ftick; /* First tick that we were running on */ 104ad1e7d28SJulian Elischer int ts_ticks; /* Tick count */ 1058f51ad55SJeff Roberson #ifdef KTR 1068f51ad55SJeff Roberson char ts_name[TS_NAME_LEN]; 1078f51ad55SJeff Roberson #endif 108ed062c8dSJulian Elischer }; 109ad1e7d28SJulian Elischer /* flags kept in ts_flags */ 1107b8bfa0dSJeff Roberson #define TSF_BOUND 0x0001 /* Thread can not migrate. */ 1117b8bfa0dSJeff Roberson #define TSF_XFERABLE 0x0002 /* Thread was added as transferable. */ 11235e6168fSJeff Roberson 113ad1e7d28SJulian Elischer static struct td_sched td_sched0; 11435e6168fSJeff Roberson 11562fa74d9SJeff Roberson #define THREAD_CAN_MIGRATE(td) ((td)->td_pinned == 0) 11662fa74d9SJeff Roberson #define THREAD_CAN_SCHED(td, cpu) \ 11762fa74d9SJeff Roberson CPU_ISSET((cpu), &(td)->td_cpuset->cs_mask) 11862fa74d9SJeff Roberson 11935e6168fSJeff Roberson /* 12012d56c0fSJohn Baldwin * Priority ranges used for interactive and non-interactive timeshare 1212dc29adbSJohn Baldwin * threads. The timeshare priorities are split up into four ranges. 1222dc29adbSJohn Baldwin * The first range handles interactive threads. The last three ranges 1232dc29adbSJohn Baldwin * (NHALF, x, and NHALF) handle non-interactive threads with the outer 1242dc29adbSJohn Baldwin * ranges supporting nice values. 12512d56c0fSJohn Baldwin */ 1262dc29adbSJohn Baldwin #define PRI_TIMESHARE_RANGE (PRI_MAX_TIMESHARE - PRI_MIN_TIMESHARE + 1) 1272dc29adbSJohn Baldwin #define PRI_INTERACT_RANGE ((PRI_TIMESHARE_RANGE - SCHED_PRI_NRESV) / 2) 12816705791SAndriy Gapon #define PRI_BATCH_RANGE (PRI_TIMESHARE_RANGE - PRI_INTERACT_RANGE) 1292dc29adbSJohn Baldwin 1302dc29adbSJohn Baldwin #define PRI_MIN_INTERACT PRI_MIN_TIMESHARE 1312dc29adbSJohn Baldwin #define PRI_MAX_INTERACT (PRI_MIN_TIMESHARE + PRI_INTERACT_RANGE - 1) 1322dc29adbSJohn Baldwin #define PRI_MIN_BATCH (PRI_MIN_TIMESHARE + PRI_INTERACT_RANGE) 13312d56c0fSJohn Baldwin #define PRI_MAX_BATCH PRI_MAX_TIMESHARE 13412d56c0fSJohn Baldwin 13512d56c0fSJohn Baldwin /* 136e7d50326SJeff Roberson * Cpu percentage computation macros and defines. 137e1f89c22SJeff Roberson * 138e7d50326SJeff Roberson * SCHED_TICK_SECS: Number of seconds to average the cpu usage across. 139e7d50326SJeff Roberson * SCHED_TICK_TARG: Number of hz ticks to average the cpu usage across. 1408ab80cf0SJeff Roberson * SCHED_TICK_MAX: Maximum number of ticks before scaling back. 141e7d50326SJeff Roberson * SCHED_TICK_SHIFT: Shift factor to avoid rounding away results. 142e7d50326SJeff Roberson * SCHED_TICK_HZ: Compute the number of hz ticks for a given ticks count. 143e7d50326SJeff Roberson * SCHED_TICK_TOTAL: Gives the amount of time we've been recording ticks. 14435e6168fSJeff Roberson */ 145e7d50326SJeff Roberson #define SCHED_TICK_SECS 10 146e7d50326SJeff Roberson #define SCHED_TICK_TARG (hz * SCHED_TICK_SECS) 1478ab80cf0SJeff Roberson #define SCHED_TICK_MAX (SCHED_TICK_TARG + hz) 148e7d50326SJeff Roberson #define SCHED_TICK_SHIFT 10 149e7d50326SJeff Roberson #define SCHED_TICK_HZ(ts) ((ts)->ts_ticks >> SCHED_TICK_SHIFT) 150eddb4efaSJeff Roberson #define SCHED_TICK_TOTAL(ts) (max((ts)->ts_ltick - (ts)->ts_ftick, hz)) 15135e6168fSJeff Roberson 15235e6168fSJeff Roberson /* 153e7d50326SJeff Roberson * These macros determine priorities for non-interactive threads. They are 154e7d50326SJeff Roberson * assigned a priority based on their recent cpu utilization as expressed 155e7d50326SJeff Roberson * by the ratio of ticks to the tick total. NHALF priorities at the start 156e7d50326SJeff Roberson * and end of the MIN to MAX timeshare range are only reachable with negative 157e7d50326SJeff Roberson * or positive nice respectively. 158e7d50326SJeff Roberson * 159e7d50326SJeff Roberson * PRI_RANGE: Priority range for utilization dependent priorities. 160e7d50326SJeff Roberson * PRI_NRESV: Number of nice values. 161e7d50326SJeff Roberson * PRI_TICKS: Compute a priority in PRI_RANGE from the ticks count and total. 162e7d50326SJeff Roberson * PRI_NICE: Determines the part of the priority inherited from nice. 163e7d50326SJeff Roberson */ 164e7d50326SJeff Roberson #define SCHED_PRI_NRESV (PRIO_MAX - PRIO_MIN) 165e7d50326SJeff Roberson #define SCHED_PRI_NHALF (SCHED_PRI_NRESV / 2) 16612d56c0fSJohn Baldwin #define SCHED_PRI_MIN (PRI_MIN_BATCH + SCHED_PRI_NHALF) 16712d56c0fSJohn Baldwin #define SCHED_PRI_MAX (PRI_MAX_BATCH - SCHED_PRI_NHALF) 16878920008SJohn Baldwin #define SCHED_PRI_RANGE (SCHED_PRI_MAX - SCHED_PRI_MIN + 1) 169e7d50326SJeff Roberson #define SCHED_PRI_TICKS(ts) \ 170e7d50326SJeff Roberson (SCHED_TICK_HZ((ts)) / \ 1711e516cf5SJeff Roberson (roundup(SCHED_TICK_TOTAL((ts)), SCHED_PRI_RANGE) / SCHED_PRI_RANGE)) 172e7d50326SJeff Roberson #define SCHED_PRI_NICE(nice) (nice) 173e7d50326SJeff Roberson 174e7d50326SJeff Roberson /* 175e7d50326SJeff Roberson * These determine the interactivity of a process. Interactivity differs from 176e7d50326SJeff Roberson * cpu utilization in that it expresses the voluntary time slept vs time ran 177e7d50326SJeff Roberson * while cpu utilization includes all time not running. This more accurately 178e7d50326SJeff Roberson * models the intent of the thread. 17935e6168fSJeff Roberson * 180407b0157SJeff Roberson * SLP_RUN_MAX: Maximum amount of sleep time + run time we'll accumulate 181407b0157SJeff Roberson * before throttling back. 182d322132cSJeff Roberson * SLP_RUN_FORK: Maximum slp+run time to inherit at fork time. 183210491d3SJeff Roberson * INTERACT_MAX: Maximum interactivity value. Smaller is better. 1849f518f20SAttilio Rao * INTERACT_THRESH: Threshold for placement on the current runq. 18535e6168fSJeff Roberson */ 186e7d50326SJeff Roberson #define SCHED_SLP_RUN_MAX ((hz * 5) << SCHED_TICK_SHIFT) 187e7d50326SJeff Roberson #define SCHED_SLP_RUN_FORK ((hz / 2) << SCHED_TICK_SHIFT) 188210491d3SJeff Roberson #define SCHED_INTERACT_MAX (100) 189210491d3SJeff Roberson #define SCHED_INTERACT_HALF (SCHED_INTERACT_MAX / 2) 1904c9612c6SJeff Roberson #define SCHED_INTERACT_THRESH (30) 191e1f89c22SJeff Roberson 1923d7f4117SAlexander Motin /* Flags kept in td_flags. */ 1933d7f4117SAlexander Motin #define TDF_SLICEEND TDF_SCHED2 /* Thread time slice is over. */ 1943d7f4117SAlexander Motin 19535e6168fSJeff Roberson /* 196e7d50326SJeff Roberson * tickincr: Converts a stathz tick into a hz domain scaled by 197e7d50326SJeff Roberson * the shift factor. Without the shift the error rate 198e7d50326SJeff Roberson * due to rounding would be unacceptably high. 199e7d50326SJeff Roberson * realstathz: stathz is sometimes 0 and run off of hz. 200e7d50326SJeff Roberson * sched_slice: Runtime of each thread before rescheduling. 201ae7a6b38SJeff Roberson * preempt_thresh: Priority threshold for preemption and remote IPIs. 20235e6168fSJeff Roberson */ 203e7d50326SJeff Roberson static int sched_interact = SCHED_INTERACT_THRESH; 204579895dfSAlexander Motin static int realstathz = 127; 205db702c59SEitan Adler static int tickincr = 8 << SCHED_TICK_SHIFT; 206579895dfSAlexander Motin static int sched_slice = 12; 20702e2d6b4SJeff Roberson #ifdef PREEMPTION 20802e2d6b4SJeff Roberson #ifdef FULL_PREEMPTION 20902e2d6b4SJeff Roberson static int preempt_thresh = PRI_MAX_IDLE; 21002e2d6b4SJeff Roberson #else 211ae7a6b38SJeff Roberson static int preempt_thresh = PRI_MIN_KERN; 21202e2d6b4SJeff Roberson #endif 21302e2d6b4SJeff Roberson #else 21402e2d6b4SJeff Roberson static int preempt_thresh = 0; 21502e2d6b4SJeff Roberson #endif 21612d56c0fSJohn Baldwin static int static_boost = PRI_MIN_BATCH; 2171690c6c1SJeff Roberson static int sched_idlespins = 10000; 218b3f40a41SAlexander Motin static int sched_idlespinthresh = -1; 219ae7a6b38SJeff Roberson 22035e6168fSJeff Roberson /* 221ae7a6b38SJeff Roberson * tdq - per processor runqs and statistics. All fields are protected by the 222ae7a6b38SJeff Roberson * tdq_lock. The load and lowpri may be accessed without to avoid excess 223ae7a6b38SJeff Roberson * locking in sched_pickcpu(); 22435e6168fSJeff Roberson */ 225ad1e7d28SJulian Elischer struct tdq { 226*39f819e2SJim Harris /* 227*39f819e2SJim Harris * Ordered to improve efficiency of cpu_search() and switch(). 228*39f819e2SJim Harris * tdq_lock is padded to avoid false sharing with tdq_load and 229*39f819e2SJim Harris * tdq_cpu_idle. 230*39f819e2SJim Harris */ 23162fa74d9SJeff Roberson struct mtx tdq_lock; /* run queue lock. */ 232*39f819e2SJim Harris char pad[64 - sizeof(struct mtx)]; 23373daf66fSJeff Roberson struct cpu_group *tdq_cg; /* Pointer to cpu topology. */ 2341690c6c1SJeff Roberson volatile int tdq_load; /* Aggregate load. */ 2359f9ad565SAlexander Motin volatile int tdq_cpu_idle; /* cpu_idle() is active. */ 23673daf66fSJeff Roberson int tdq_sysload; /* For loadavg, !ITHD load. */ 23773daf66fSJeff Roberson int tdq_transferable; /* Transferable thread count. */ 2381690c6c1SJeff Roberson short tdq_switchcnt; /* Switches this tick. */ 2391690c6c1SJeff Roberson short tdq_oldswitchcnt; /* Switches last tick. */ 24073daf66fSJeff Roberson u_char tdq_lowpri; /* Lowest priority thread. */ 24173daf66fSJeff Roberson u_char tdq_ipipending; /* IPI pending. */ 24273daf66fSJeff Roberson u_char tdq_idx; /* Current insert index. */ 24373daf66fSJeff Roberson u_char tdq_ridx; /* Current removal index. */ 244e7d50326SJeff Roberson struct runq tdq_realtime; /* real-time run queue. */ 245ae7a6b38SJeff Roberson struct runq tdq_timeshare; /* timeshare run queue. */ 246ae7a6b38SJeff Roberson struct runq tdq_idle; /* Queue of IDLE threads. */ 2478f51ad55SJeff Roberson char tdq_name[TDQ_NAME_LEN]; 2488f51ad55SJeff Roberson #ifdef KTR 2498f51ad55SJeff Roberson char tdq_loadname[TDQ_LOADNAME_LEN]; 2508f51ad55SJeff Roberson #endif 251ae7a6b38SJeff Roberson } __aligned(64); 25235e6168fSJeff Roberson 2531690c6c1SJeff Roberson /* Idle thread states and config. */ 2541690c6c1SJeff Roberson #define TDQ_RUNNING 1 2551690c6c1SJeff Roberson #define TDQ_IDLE 2 2567b8bfa0dSJeff Roberson 25780f86c9fSJeff Roberson #ifdef SMP 25807095abfSIvan Voras struct cpu_group *cpu_top; /* CPU topology */ 2597b8bfa0dSJeff Roberson 26062fa74d9SJeff Roberson #define SCHED_AFFINITY_DEFAULT (max(1, hz / 1000)) 26162fa74d9SJeff Roberson #define SCHED_AFFINITY(ts, t) ((ts)->ts_rltick > ticks - ((t) * affinity)) 2627b8bfa0dSJeff Roberson 2637b8bfa0dSJeff Roberson /* 2647b8bfa0dSJeff Roberson * Run-time tunables. 2657b8bfa0dSJeff Roberson */ 26628994a58SJeff Roberson static int rebalance = 1; 2677fcf154aSJeff Roberson static int balance_interval = 128; /* Default set in sched_initticks(). */ 2687b8bfa0dSJeff Roberson static int affinity; 26928994a58SJeff Roberson static int steal_idle = 1; 27028994a58SJeff Roberson static int steal_thresh = 2; 27180f86c9fSJeff Roberson 27235e6168fSJeff Roberson /* 273d2ad694cSJeff Roberson * One thread queue per processor. 27435e6168fSJeff Roberson */ 275ad1e7d28SJulian Elischer static struct tdq tdq_cpu[MAXCPU]; 2767fcf154aSJeff Roberson static struct tdq *balance_tdq; 2777fcf154aSJeff Roberson static int balance_ticks; 27836acfc65SAlexander Motin static DPCPU_DEFINE(uint32_t, randomval); 279dc03363dSJeff Roberson 280ad1e7d28SJulian Elischer #define TDQ_SELF() (&tdq_cpu[PCPU_GET(cpuid)]) 281ad1e7d28SJulian Elischer #define TDQ_CPU(x) (&tdq_cpu[(x)]) 282c47f202bSJeff Roberson #define TDQ_ID(x) ((int)((x) - tdq_cpu)) 28380f86c9fSJeff Roberson #else /* !SMP */ 284ad1e7d28SJulian Elischer static struct tdq tdq_cpu; 285dc03363dSJeff Roberson 28636b36916SJeff Roberson #define TDQ_ID(x) (0) 287ad1e7d28SJulian Elischer #define TDQ_SELF() (&tdq_cpu) 288ad1e7d28SJulian Elischer #define TDQ_CPU(x) (&tdq_cpu) 2890a016a05SJeff Roberson #endif 29035e6168fSJeff Roberson 291ae7a6b38SJeff Roberson #define TDQ_LOCK_ASSERT(t, type) mtx_assert(TDQ_LOCKPTR((t)), (type)) 292ae7a6b38SJeff Roberson #define TDQ_LOCK(t) mtx_lock_spin(TDQ_LOCKPTR((t))) 293ae7a6b38SJeff Roberson #define TDQ_LOCK_FLAGS(t, f) mtx_lock_spin_flags(TDQ_LOCKPTR((t)), (f)) 294ae7a6b38SJeff Roberson #define TDQ_UNLOCK(t) mtx_unlock_spin(TDQ_LOCKPTR((t))) 29562fa74d9SJeff Roberson #define TDQ_LOCKPTR(t) (&(t)->tdq_lock) 296ae7a6b38SJeff Roberson 2978460a577SJohn Birrell static void sched_priority(struct thread *); 29821381d1bSJeff Roberson static void sched_thread_priority(struct thread *, u_char); 2998460a577SJohn Birrell static int sched_interact_score(struct thread *); 3008460a577SJohn Birrell static void sched_interact_update(struct thread *); 3018460a577SJohn Birrell static void sched_interact_fork(struct thread *); 3027295465eSAlexander Motin static void sched_pctcpu_update(struct td_sched *, int); 30335e6168fSJeff Roberson 3045d7ef00cSJeff Roberson /* Operations on per processor queues */ 3059727e637SJeff Roberson static struct thread *tdq_choose(struct tdq *); 306ad1e7d28SJulian Elischer static void tdq_setup(struct tdq *); 3079727e637SJeff Roberson static void tdq_load_add(struct tdq *, struct thread *); 3089727e637SJeff Roberson static void tdq_load_rem(struct tdq *, struct thread *); 3099727e637SJeff Roberson static __inline void tdq_runq_add(struct tdq *, struct thread *, int); 3109727e637SJeff Roberson static __inline void tdq_runq_rem(struct tdq *, struct thread *); 311ff256d9cSJeff Roberson static inline int sched_shouldpreempt(int, int, int); 312ad1e7d28SJulian Elischer void tdq_print(int cpu); 313e7d50326SJeff Roberson static void runq_print(struct runq *rq); 314ae7a6b38SJeff Roberson static void tdq_add(struct tdq *, struct thread *, int); 3155d7ef00cSJeff Roberson #ifdef SMP 31662fa74d9SJeff Roberson static int tdq_move(struct tdq *, struct tdq *); 317ad1e7d28SJulian Elischer static int tdq_idled(struct tdq *); 3189727e637SJeff Roberson static void tdq_notify(struct tdq *, struct thread *); 3199727e637SJeff Roberson static struct thread *tdq_steal(struct tdq *, int); 3209727e637SJeff Roberson static struct thread *runq_steal(struct runq *, int); 3219727e637SJeff Roberson static int sched_pickcpu(struct thread *, int); 3227fcf154aSJeff Roberson static void sched_balance(void); 32362fa74d9SJeff Roberson static int sched_balance_pair(struct tdq *, struct tdq *); 3249727e637SJeff Roberson static inline struct tdq *sched_setcpu(struct thread *, int, int); 325ae7a6b38SJeff Roberson static inline void thread_unblock_switch(struct thread *, struct mtx *); 326c47f202bSJeff Roberson static struct mtx *sched_switch_migrate(struct tdq *, struct thread *, int); 32707095abfSIvan Voras static int sysctl_kern_sched_topology_spec(SYSCTL_HANDLER_ARGS); 32807095abfSIvan Voras static int sysctl_kern_sched_topology_spec_internal(struct sbuf *sb, 32907095abfSIvan Voras struct cpu_group *cg, int indent); 3305d7ef00cSJeff Roberson #endif 3315d7ef00cSJeff Roberson 332e7d50326SJeff Roberson static void sched_setup(void *dummy); 333237fdd78SRobert Watson SYSINIT(sched_setup, SI_SUB_RUN_QUEUE, SI_ORDER_FIRST, sched_setup, NULL); 334e7d50326SJeff Roberson 335e7d50326SJeff Roberson static void sched_initticks(void *dummy); 336237fdd78SRobert Watson SYSINIT(sched_initticks, SI_SUB_CLOCKS, SI_ORDER_THIRD, sched_initticks, 337237fdd78SRobert Watson NULL); 338e7d50326SJeff Roberson 339b3e9e682SRyan Stone SDT_PROVIDER_DEFINE(sched); 340b3e9e682SRyan Stone 341b3e9e682SRyan Stone SDT_PROBE_DEFINE3(sched, , , change_pri, change-pri, "struct thread *", 342b3e9e682SRyan Stone "struct proc *", "uint8_t"); 343b3e9e682SRyan Stone SDT_PROBE_DEFINE3(sched, , , dequeue, dequeue, "struct thread *", 344b3e9e682SRyan Stone "struct proc *", "void *"); 345b3e9e682SRyan Stone SDT_PROBE_DEFINE4(sched, , , enqueue, enqueue, "struct thread *", 346b3e9e682SRyan Stone "struct proc *", "void *", "int"); 347b3e9e682SRyan Stone SDT_PROBE_DEFINE4(sched, , , lend_pri, lend-pri, "struct thread *", 348b3e9e682SRyan Stone "struct proc *", "uint8_t", "struct thread *"); 349b3e9e682SRyan Stone SDT_PROBE_DEFINE2(sched, , , load_change, load-change, "int", "int"); 350b3e9e682SRyan Stone SDT_PROBE_DEFINE2(sched, , , off_cpu, off-cpu, "struct thread *", 351b3e9e682SRyan Stone "struct proc *"); 352b3e9e682SRyan Stone SDT_PROBE_DEFINE(sched, , , on_cpu, on-cpu); 353b3e9e682SRyan Stone SDT_PROBE_DEFINE(sched, , , remain_cpu, remain-cpu); 354b3e9e682SRyan Stone SDT_PROBE_DEFINE2(sched, , , surrender, surrender, "struct thread *", 355b3e9e682SRyan Stone "struct proc *"); 356b3e9e682SRyan Stone 357ae7a6b38SJeff Roberson /* 358ae7a6b38SJeff Roberson * Print the threads waiting on a run-queue. 359ae7a6b38SJeff Roberson */ 360e7d50326SJeff Roberson static void 361e7d50326SJeff Roberson runq_print(struct runq *rq) 362e7d50326SJeff Roberson { 363e7d50326SJeff Roberson struct rqhead *rqh; 3649727e637SJeff Roberson struct thread *td; 365e7d50326SJeff Roberson int pri; 366e7d50326SJeff Roberson int j; 367e7d50326SJeff Roberson int i; 368e7d50326SJeff Roberson 369e7d50326SJeff Roberson for (i = 0; i < RQB_LEN; i++) { 370e7d50326SJeff Roberson printf("\t\trunq bits %d 0x%zx\n", 371e7d50326SJeff Roberson i, rq->rq_status.rqb_bits[i]); 372e7d50326SJeff Roberson for (j = 0; j < RQB_BPW; j++) 373e7d50326SJeff Roberson if (rq->rq_status.rqb_bits[i] & (1ul << j)) { 374e7d50326SJeff Roberson pri = j + (i << RQB_L2BPW); 375e7d50326SJeff Roberson rqh = &rq->rq_queues[pri]; 3769727e637SJeff Roberson TAILQ_FOREACH(td, rqh, td_runq) { 377e7d50326SJeff Roberson printf("\t\t\ttd %p(%s) priority %d rqindex %d pri %d\n", 3789727e637SJeff Roberson td, td->td_name, td->td_priority, 3799727e637SJeff Roberson td->td_rqindex, pri); 380e7d50326SJeff Roberson } 381e7d50326SJeff Roberson } 382e7d50326SJeff Roberson } 383e7d50326SJeff Roberson } 384e7d50326SJeff Roberson 385ae7a6b38SJeff Roberson /* 386ae7a6b38SJeff Roberson * Print the status of a per-cpu thread queue. Should be a ddb show cmd. 387ae7a6b38SJeff Roberson */ 38815dc847eSJeff Roberson void 389ad1e7d28SJulian Elischer tdq_print(int cpu) 39015dc847eSJeff Roberson { 391ad1e7d28SJulian Elischer struct tdq *tdq; 39215dc847eSJeff Roberson 393ad1e7d28SJulian Elischer tdq = TDQ_CPU(cpu); 39415dc847eSJeff Roberson 395c47f202bSJeff Roberson printf("tdq %d:\n", TDQ_ID(tdq)); 39662fa74d9SJeff Roberson printf("\tlock %p\n", TDQ_LOCKPTR(tdq)); 39762fa74d9SJeff Roberson printf("\tLock name: %s\n", tdq->tdq_name); 398d2ad694cSJeff Roberson printf("\tload: %d\n", tdq->tdq_load); 3991690c6c1SJeff Roberson printf("\tswitch cnt: %d\n", tdq->tdq_switchcnt); 4001690c6c1SJeff Roberson printf("\told switch cnt: %d\n", tdq->tdq_oldswitchcnt); 401e7d50326SJeff Roberson printf("\ttimeshare idx: %d\n", tdq->tdq_idx); 4023f872f85SJeff Roberson printf("\ttimeshare ridx: %d\n", tdq->tdq_ridx); 4031690c6c1SJeff Roberson printf("\tload transferable: %d\n", tdq->tdq_transferable); 4041690c6c1SJeff Roberson printf("\tlowest priority: %d\n", tdq->tdq_lowpri); 405e7d50326SJeff Roberson printf("\trealtime runq:\n"); 406e7d50326SJeff Roberson runq_print(&tdq->tdq_realtime); 407e7d50326SJeff Roberson printf("\ttimeshare runq:\n"); 408e7d50326SJeff Roberson runq_print(&tdq->tdq_timeshare); 409e7d50326SJeff Roberson printf("\tidle runq:\n"); 410e7d50326SJeff Roberson runq_print(&tdq->tdq_idle); 41115dc847eSJeff Roberson } 41215dc847eSJeff Roberson 413ff256d9cSJeff Roberson static inline int 414ff256d9cSJeff Roberson sched_shouldpreempt(int pri, int cpri, int remote) 415ff256d9cSJeff Roberson { 416ff256d9cSJeff Roberson /* 417ff256d9cSJeff Roberson * If the new priority is not better than the current priority there is 418ff256d9cSJeff Roberson * nothing to do. 419ff256d9cSJeff Roberson */ 420ff256d9cSJeff Roberson if (pri >= cpri) 421ff256d9cSJeff Roberson return (0); 422ff256d9cSJeff Roberson /* 423ff256d9cSJeff Roberson * Always preempt idle. 424ff256d9cSJeff Roberson */ 425ff256d9cSJeff Roberson if (cpri >= PRI_MIN_IDLE) 426ff256d9cSJeff Roberson return (1); 427ff256d9cSJeff Roberson /* 428ff256d9cSJeff Roberson * If preemption is disabled don't preempt others. 429ff256d9cSJeff Roberson */ 430ff256d9cSJeff Roberson if (preempt_thresh == 0) 431ff256d9cSJeff Roberson return (0); 432ff256d9cSJeff Roberson /* 433ff256d9cSJeff Roberson * Preempt if we exceed the threshold. 434ff256d9cSJeff Roberson */ 435ff256d9cSJeff Roberson if (pri <= preempt_thresh) 436ff256d9cSJeff Roberson return (1); 437ff256d9cSJeff Roberson /* 43812d56c0fSJohn Baldwin * If we're interactive or better and there is non-interactive 43912d56c0fSJohn Baldwin * or worse running preempt only remote processors. 440ff256d9cSJeff Roberson */ 44112d56c0fSJohn Baldwin if (remote && pri <= PRI_MAX_INTERACT && cpri > PRI_MAX_INTERACT) 442ff256d9cSJeff Roberson return (1); 443ff256d9cSJeff Roberson return (0); 444ff256d9cSJeff Roberson } 445ff256d9cSJeff Roberson 446ae7a6b38SJeff Roberson /* 447ae7a6b38SJeff Roberson * Add a thread to the actual run-queue. Keeps transferable counts up to 448ae7a6b38SJeff Roberson * date with what is actually on the run-queue. Selects the correct 449ae7a6b38SJeff Roberson * queue position for timeshare threads. 450ae7a6b38SJeff Roberson */ 451155b9987SJeff Roberson static __inline void 4529727e637SJeff Roberson tdq_runq_add(struct tdq *tdq, struct thread *td, int flags) 453155b9987SJeff Roberson { 4549727e637SJeff Roberson struct td_sched *ts; 455c143ac21SJeff Roberson u_char pri; 456c143ac21SJeff Roberson 457ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 4589727e637SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 45973daf66fSJeff Roberson 4609727e637SJeff Roberson pri = td->td_priority; 4619727e637SJeff Roberson ts = td->td_sched; 4629727e637SJeff Roberson TD_SET_RUNQ(td); 4639727e637SJeff Roberson if (THREAD_CAN_MIGRATE(td)) { 464d2ad694cSJeff Roberson tdq->tdq_transferable++; 465ad1e7d28SJulian Elischer ts->ts_flags |= TSF_XFERABLE; 46680f86c9fSJeff Roberson } 46712d56c0fSJohn Baldwin if (pri < PRI_MIN_BATCH) { 468c143ac21SJeff Roberson ts->ts_runq = &tdq->tdq_realtime; 46912d56c0fSJohn Baldwin } else if (pri <= PRI_MAX_BATCH) { 470c143ac21SJeff Roberson ts->ts_runq = &tdq->tdq_timeshare; 47112d56c0fSJohn Baldwin KASSERT(pri <= PRI_MAX_BATCH && pri >= PRI_MIN_BATCH, 472e7d50326SJeff Roberson ("Invalid priority %d on timeshare runq", pri)); 473e7d50326SJeff Roberson /* 474e7d50326SJeff Roberson * This queue contains only priorities between MIN and MAX 475e7d50326SJeff Roberson * realtime. Use the whole queue to represent these values. 476e7d50326SJeff Roberson */ 477c47f202bSJeff Roberson if ((flags & (SRQ_BORROWING|SRQ_PREEMPTED)) == 0) { 47816705791SAndriy Gapon pri = RQ_NQS * (pri - PRI_MIN_BATCH) / PRI_BATCH_RANGE; 479e7d50326SJeff Roberson pri = (pri + tdq->tdq_idx) % RQ_NQS; 4803f872f85SJeff Roberson /* 4813f872f85SJeff Roberson * This effectively shortens the queue by one so we 4823f872f85SJeff Roberson * can have a one slot difference between idx and 4833f872f85SJeff Roberson * ridx while we wait for threads to drain. 4843f872f85SJeff Roberson */ 4853f872f85SJeff Roberson if (tdq->tdq_ridx != tdq->tdq_idx && 4863f872f85SJeff Roberson pri == tdq->tdq_ridx) 4874499aff6SJeff Roberson pri = (unsigned char)(pri - 1) % RQ_NQS; 488e7d50326SJeff Roberson } else 4893f872f85SJeff Roberson pri = tdq->tdq_ridx; 4909727e637SJeff Roberson runq_add_pri(ts->ts_runq, td, pri, flags); 491c143ac21SJeff Roberson return; 492e7d50326SJeff Roberson } else 49373daf66fSJeff Roberson ts->ts_runq = &tdq->tdq_idle; 4949727e637SJeff Roberson runq_add(ts->ts_runq, td, flags); 49573daf66fSJeff Roberson } 49673daf66fSJeff Roberson 49773daf66fSJeff Roberson /* 498ae7a6b38SJeff Roberson * Remove a thread from a run-queue. This typically happens when a thread 499ae7a6b38SJeff Roberson * is selected to run. Running threads are not on the queue and the 500ae7a6b38SJeff Roberson * transferable count does not reflect them. 501ae7a6b38SJeff Roberson */ 502155b9987SJeff Roberson static __inline void 5039727e637SJeff Roberson tdq_runq_rem(struct tdq *tdq, struct thread *td) 504155b9987SJeff Roberson { 5059727e637SJeff Roberson struct td_sched *ts; 5069727e637SJeff Roberson 5079727e637SJeff Roberson ts = td->td_sched; 508ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 509ae7a6b38SJeff Roberson KASSERT(ts->ts_runq != NULL, 5109727e637SJeff Roberson ("tdq_runq_remove: thread %p null ts_runq", td)); 511ad1e7d28SJulian Elischer if (ts->ts_flags & TSF_XFERABLE) { 512d2ad694cSJeff Roberson tdq->tdq_transferable--; 513ad1e7d28SJulian Elischer ts->ts_flags &= ~TSF_XFERABLE; 51480f86c9fSJeff Roberson } 5153f872f85SJeff Roberson if (ts->ts_runq == &tdq->tdq_timeshare) { 5163f872f85SJeff Roberson if (tdq->tdq_idx != tdq->tdq_ridx) 5179727e637SJeff Roberson runq_remove_idx(ts->ts_runq, td, &tdq->tdq_ridx); 518e7d50326SJeff Roberson else 5199727e637SJeff Roberson runq_remove_idx(ts->ts_runq, td, NULL); 5203f872f85SJeff Roberson } else 5219727e637SJeff Roberson runq_remove(ts->ts_runq, td); 522155b9987SJeff Roberson } 523155b9987SJeff Roberson 524ae7a6b38SJeff Roberson /* 525ae7a6b38SJeff Roberson * Load is maintained for all threads RUNNING and ON_RUNQ. Add the load 526ae7a6b38SJeff Roberson * for this thread to the referenced thread queue. 527ae7a6b38SJeff Roberson */ 528a8949de2SJeff Roberson static void 5299727e637SJeff Roberson tdq_load_add(struct tdq *tdq, struct thread *td) 5305d7ef00cSJeff Roberson { 531ae7a6b38SJeff Roberson 532ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 5339727e637SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 53403d17db7SJeff Roberson 535d2ad694cSJeff Roberson tdq->tdq_load++; 5361b9d701fSAttilio Rao if ((td->td_flags & TDF_NOLOAD) == 0) 537d2ad694cSJeff Roberson tdq->tdq_sysload++; 5388f51ad55SJeff Roberson KTR_COUNTER0(KTR_SCHED, "load", tdq->tdq_loadname, tdq->tdq_load); 539b3e9e682SRyan Stone SDT_PROBE2(sched, , , load_change, (int)TDQ_ID(tdq), tdq->tdq_load); 5405d7ef00cSJeff Roberson } 54115dc847eSJeff Roberson 542ae7a6b38SJeff Roberson /* 543ae7a6b38SJeff Roberson * Remove the load from a thread that is transitioning to a sleep state or 544ae7a6b38SJeff Roberson * exiting. 545ae7a6b38SJeff Roberson */ 546a8949de2SJeff Roberson static void 5479727e637SJeff Roberson tdq_load_rem(struct tdq *tdq, struct thread *td) 5485d7ef00cSJeff Roberson { 549ae7a6b38SJeff Roberson 5509727e637SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 551ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 552ae7a6b38SJeff Roberson KASSERT(tdq->tdq_load != 0, 553c47f202bSJeff Roberson ("tdq_load_rem: Removing with 0 load on queue %d", TDQ_ID(tdq))); 55403d17db7SJeff Roberson 555d2ad694cSJeff Roberson tdq->tdq_load--; 5561b9d701fSAttilio Rao if ((td->td_flags & TDF_NOLOAD) == 0) 55703d17db7SJeff Roberson tdq->tdq_sysload--; 5588f51ad55SJeff Roberson KTR_COUNTER0(KTR_SCHED, "load", tdq->tdq_loadname, tdq->tdq_load); 559b3e9e682SRyan Stone SDT_PROBE2(sched, , , load_change, (int)TDQ_ID(tdq), tdq->tdq_load); 56015dc847eSJeff Roberson } 56115dc847eSJeff Roberson 562356500a3SJeff Roberson /* 56362fa74d9SJeff Roberson * Set lowpri to its exact value by searching the run-queue and 56462fa74d9SJeff Roberson * evaluating curthread. curthread may be passed as an optimization. 565356500a3SJeff Roberson */ 56622bf7d9aSJeff Roberson static void 56762fa74d9SJeff Roberson tdq_setlowpri(struct tdq *tdq, struct thread *ctd) 56862fa74d9SJeff Roberson { 56962fa74d9SJeff Roberson struct thread *td; 57062fa74d9SJeff Roberson 57162fa74d9SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 57262fa74d9SJeff Roberson if (ctd == NULL) 57362fa74d9SJeff Roberson ctd = pcpu_find(TDQ_ID(tdq))->pc_curthread; 5749727e637SJeff Roberson td = tdq_choose(tdq); 5759727e637SJeff Roberson if (td == NULL || td->td_priority > ctd->td_priority) 57662fa74d9SJeff Roberson tdq->tdq_lowpri = ctd->td_priority; 57762fa74d9SJeff Roberson else 57862fa74d9SJeff Roberson tdq->tdq_lowpri = td->td_priority; 57962fa74d9SJeff Roberson } 58062fa74d9SJeff Roberson 58162fa74d9SJeff Roberson #ifdef SMP 58262fa74d9SJeff Roberson struct cpu_search { 583c76ee827SJeff Roberson cpuset_t cs_mask; 58436acfc65SAlexander Motin u_int cs_prefer; 58536acfc65SAlexander Motin int cs_pri; /* Min priority for low. */ 58636acfc65SAlexander Motin int cs_limit; /* Max load for low, min load for high. */ 58736acfc65SAlexander Motin int cs_cpu; 58836acfc65SAlexander Motin int cs_load; 58962fa74d9SJeff Roberson }; 59062fa74d9SJeff Roberson 59162fa74d9SJeff Roberson #define CPU_SEARCH_LOWEST 0x1 59262fa74d9SJeff Roberson #define CPU_SEARCH_HIGHEST 0x2 59362fa74d9SJeff Roberson #define CPU_SEARCH_BOTH (CPU_SEARCH_LOWEST|CPU_SEARCH_HIGHEST) 59462fa74d9SJeff Roberson 595c76ee827SJeff Roberson #define CPUSET_FOREACH(cpu, mask) \ 596c76ee827SJeff Roberson for ((cpu) = 0; (cpu) <= mp_maxid; (cpu)++) \ 59771a19bdcSAttilio Rao if (CPU_ISSET(cpu, &mask)) 59862fa74d9SJeff Roberson 59936acfc65SAlexander Motin static __inline int cpu_search(const struct cpu_group *cg, struct cpu_search *low, 60062fa74d9SJeff Roberson struct cpu_search *high, const int match); 60136acfc65SAlexander Motin int cpu_search_lowest(const struct cpu_group *cg, struct cpu_search *low); 60236acfc65SAlexander Motin int cpu_search_highest(const struct cpu_group *cg, struct cpu_search *high); 60336acfc65SAlexander Motin int cpu_search_both(const struct cpu_group *cg, struct cpu_search *low, 60462fa74d9SJeff Roberson struct cpu_search *high); 60562fa74d9SJeff Roberson 60662fa74d9SJeff Roberson /* 60762fa74d9SJeff Roberson * Search the tree of cpu_groups for the lowest or highest loaded cpu 60862fa74d9SJeff Roberson * according to the match argument. This routine actually compares the 60962fa74d9SJeff Roberson * load on all paths through the tree and finds the least loaded cpu on 61062fa74d9SJeff Roberson * the least loaded path, which may differ from the least loaded cpu in 61162fa74d9SJeff Roberson * the system. This balances work among caches and busses. 61262fa74d9SJeff Roberson * 61362fa74d9SJeff Roberson * This inline is instantiated in three forms below using constants for the 61462fa74d9SJeff Roberson * match argument. It is reduced to the minimum set for each case. It is 61562fa74d9SJeff Roberson * also recursive to the depth of the tree. 61662fa74d9SJeff Roberson */ 617d628fbfaSJohn Baldwin static __inline int 61836acfc65SAlexander Motin cpu_search(const struct cpu_group *cg, struct cpu_search *low, 61962fa74d9SJeff Roberson struct cpu_search *high, const int match) 62062fa74d9SJeff Roberson { 62162fa74d9SJeff Roberson struct cpu_search lgroup; 62262fa74d9SJeff Roberson struct cpu_search hgroup; 62336acfc65SAlexander Motin cpuset_t cpumask; 62462fa74d9SJeff Roberson struct cpu_group *child; 62536acfc65SAlexander Motin struct tdq *tdq; 62670801abeSAlexander Motin int cpu, i, hload, lload, load, total, rnd, *rndptr; 62762fa74d9SJeff Roberson 62836acfc65SAlexander Motin total = 0; 62936acfc65SAlexander Motin cpumask = cg->cg_mask; 63062fa74d9SJeff Roberson if (match & CPU_SEARCH_LOWEST) { 63136acfc65SAlexander Motin lload = INT_MAX; 63262fa74d9SJeff Roberson lgroup = *low; 63362fa74d9SJeff Roberson } 63462fa74d9SJeff Roberson if (match & CPU_SEARCH_HIGHEST) { 63570801abeSAlexander Motin hload = INT_MIN; 63662fa74d9SJeff Roberson hgroup = *high; 63762fa74d9SJeff Roberson } 63836acfc65SAlexander Motin 63936acfc65SAlexander Motin /* Iterate through the child CPU groups and then remaining CPUs. */ 64070801abeSAlexander Motin for (i = cg->cg_children, cpu = mp_maxid; i >= 0; ) { 64170801abeSAlexander Motin if (i == 0) { 64270801abeSAlexander Motin while (cpu >= 0 && !CPU_ISSET(cpu, &cpumask)) 64370801abeSAlexander Motin cpu--; 64470801abeSAlexander Motin if (cpu < 0) 64536acfc65SAlexander Motin break; 64636acfc65SAlexander Motin child = NULL; 64736acfc65SAlexander Motin } else 64870801abeSAlexander Motin child = &cg->cg_child[i - 1]; 64936acfc65SAlexander Motin 65070801abeSAlexander Motin if (match & CPU_SEARCH_LOWEST) 65170801abeSAlexander Motin lgroup.cs_cpu = -1; 65270801abeSAlexander Motin if (match & CPU_SEARCH_HIGHEST) 65370801abeSAlexander Motin hgroup.cs_cpu = -1; 65436acfc65SAlexander Motin if (child) { /* Handle child CPU group. */ 65536acfc65SAlexander Motin CPU_NAND(&cpumask, &child->cg_mask); 65662fa74d9SJeff Roberson switch (match) { 65762fa74d9SJeff Roberson case CPU_SEARCH_LOWEST: 65862fa74d9SJeff Roberson load = cpu_search_lowest(child, &lgroup); 65962fa74d9SJeff Roberson break; 66062fa74d9SJeff Roberson case CPU_SEARCH_HIGHEST: 66162fa74d9SJeff Roberson load = cpu_search_highest(child, &hgroup); 66262fa74d9SJeff Roberson break; 66362fa74d9SJeff Roberson case CPU_SEARCH_BOTH: 66462fa74d9SJeff Roberson load = cpu_search_both(child, &lgroup, &hgroup); 66562fa74d9SJeff Roberson break; 66662fa74d9SJeff Roberson } 66736acfc65SAlexander Motin } else { /* Handle child CPU. */ 66836acfc65SAlexander Motin tdq = TDQ_CPU(cpu); 66936acfc65SAlexander Motin load = tdq->tdq_load * 256; 67070801abeSAlexander Motin rndptr = DPCPU_PTR(randomval); 67170801abeSAlexander Motin rnd = (*rndptr = *rndptr * 69069 + 5) >> 26; 67236acfc65SAlexander Motin if (match & CPU_SEARCH_LOWEST) { 67336acfc65SAlexander Motin if (cpu == low->cs_prefer) 67436acfc65SAlexander Motin load -= 64; 67536acfc65SAlexander Motin /* If that CPU is allowed and get data. */ 67670801abeSAlexander Motin if (tdq->tdq_lowpri > lgroup.cs_pri && 67770801abeSAlexander Motin tdq->tdq_load <= lgroup.cs_limit && 67870801abeSAlexander Motin CPU_ISSET(cpu, &lgroup.cs_mask)) { 67936acfc65SAlexander Motin lgroup.cs_cpu = cpu; 68036acfc65SAlexander Motin lgroup.cs_load = load - rnd; 68136acfc65SAlexander Motin } 68262fa74d9SJeff Roberson } 68362fa74d9SJeff Roberson if (match & CPU_SEARCH_HIGHEST) 68470801abeSAlexander Motin if (tdq->tdq_load >= hgroup.cs_limit && 68570801abeSAlexander Motin tdq->tdq_transferable && 68670801abeSAlexander Motin CPU_ISSET(cpu, &hgroup.cs_mask)) { 68736acfc65SAlexander Motin hgroup.cs_cpu = cpu; 68836acfc65SAlexander Motin hgroup.cs_load = load - rnd; 68962fa74d9SJeff Roberson } 69062fa74d9SJeff Roberson } 69136acfc65SAlexander Motin total += load; 69262fa74d9SJeff Roberson 69336acfc65SAlexander Motin /* We have info about child item. Compare it. */ 69436acfc65SAlexander Motin if (match & CPU_SEARCH_LOWEST) { 69570801abeSAlexander Motin if (lgroup.cs_cpu >= 0 && 6966022f0bcSAlexander Motin (load < lload || 6976022f0bcSAlexander Motin (load == lload && lgroup.cs_load < low->cs_load))) { 69836acfc65SAlexander Motin lload = load; 69936acfc65SAlexander Motin low->cs_cpu = lgroup.cs_cpu; 70036acfc65SAlexander Motin low->cs_load = lgroup.cs_load; 70136acfc65SAlexander Motin } 70236acfc65SAlexander Motin } 70336acfc65SAlexander Motin if (match & CPU_SEARCH_HIGHEST) 70470801abeSAlexander Motin if (hgroup.cs_cpu >= 0 && 7056022f0bcSAlexander Motin (load > hload || 7066022f0bcSAlexander Motin (load == hload && hgroup.cs_load > high->cs_load))) { 70736acfc65SAlexander Motin hload = load; 70836acfc65SAlexander Motin high->cs_cpu = hgroup.cs_cpu; 70936acfc65SAlexander Motin high->cs_load = hgroup.cs_load; 71036acfc65SAlexander Motin } 71170801abeSAlexander Motin if (child) { 71270801abeSAlexander Motin i--; 71370801abeSAlexander Motin if (i == 0 && CPU_EMPTY(&cpumask)) 71470801abeSAlexander Motin break; 71570801abeSAlexander Motin } else 71670801abeSAlexander Motin cpu--; 71762fa74d9SJeff Roberson } 71862fa74d9SJeff Roberson return (total); 71962fa74d9SJeff Roberson } 72062fa74d9SJeff Roberson 72162fa74d9SJeff Roberson /* 72262fa74d9SJeff Roberson * cpu_search instantiations must pass constants to maintain the inline 72362fa74d9SJeff Roberson * optimization. 72462fa74d9SJeff Roberson */ 72562fa74d9SJeff Roberson int 72636acfc65SAlexander Motin cpu_search_lowest(const struct cpu_group *cg, struct cpu_search *low) 72762fa74d9SJeff Roberson { 72862fa74d9SJeff Roberson return cpu_search(cg, low, NULL, CPU_SEARCH_LOWEST); 72962fa74d9SJeff Roberson } 73062fa74d9SJeff Roberson 73162fa74d9SJeff Roberson int 73236acfc65SAlexander Motin cpu_search_highest(const struct cpu_group *cg, struct cpu_search *high) 73362fa74d9SJeff Roberson { 73462fa74d9SJeff Roberson return cpu_search(cg, NULL, high, CPU_SEARCH_HIGHEST); 73562fa74d9SJeff Roberson } 73662fa74d9SJeff Roberson 73762fa74d9SJeff Roberson int 73836acfc65SAlexander Motin cpu_search_both(const struct cpu_group *cg, struct cpu_search *low, 73962fa74d9SJeff Roberson struct cpu_search *high) 74062fa74d9SJeff Roberson { 74162fa74d9SJeff Roberson return cpu_search(cg, low, high, CPU_SEARCH_BOTH); 74262fa74d9SJeff Roberson } 74362fa74d9SJeff Roberson 74462fa74d9SJeff Roberson /* 74562fa74d9SJeff Roberson * Find the cpu with the least load via the least loaded path that has a 74662fa74d9SJeff Roberson * lowpri greater than pri pri. A pri of -1 indicates any priority is 74762fa74d9SJeff Roberson * acceptable. 74862fa74d9SJeff Roberson */ 74962fa74d9SJeff Roberson static inline int 75036acfc65SAlexander Motin sched_lowest(const struct cpu_group *cg, cpuset_t mask, int pri, int maxload, 75136acfc65SAlexander Motin int prefer) 75262fa74d9SJeff Roberson { 75362fa74d9SJeff Roberson struct cpu_search low; 75462fa74d9SJeff Roberson 75562fa74d9SJeff Roberson low.cs_cpu = -1; 75636acfc65SAlexander Motin low.cs_prefer = prefer; 75762fa74d9SJeff Roberson low.cs_mask = mask; 75836acfc65SAlexander Motin low.cs_pri = pri; 75936acfc65SAlexander Motin low.cs_limit = maxload; 76062fa74d9SJeff Roberson cpu_search_lowest(cg, &low); 76162fa74d9SJeff Roberson return low.cs_cpu; 76262fa74d9SJeff Roberson } 76362fa74d9SJeff Roberson 76462fa74d9SJeff Roberson /* 76562fa74d9SJeff Roberson * Find the cpu with the highest load via the highest loaded path. 76662fa74d9SJeff Roberson */ 76762fa74d9SJeff Roberson static inline int 76836acfc65SAlexander Motin sched_highest(const struct cpu_group *cg, cpuset_t mask, int minload) 76962fa74d9SJeff Roberson { 77062fa74d9SJeff Roberson struct cpu_search high; 77162fa74d9SJeff Roberson 77262fa74d9SJeff Roberson high.cs_cpu = -1; 77362fa74d9SJeff Roberson high.cs_mask = mask; 77462fa74d9SJeff Roberson high.cs_limit = minload; 77562fa74d9SJeff Roberson cpu_search_highest(cg, &high); 77662fa74d9SJeff Roberson return high.cs_cpu; 77762fa74d9SJeff Roberson } 77862fa74d9SJeff Roberson 77962fa74d9SJeff Roberson /* 78062fa74d9SJeff Roberson * Simultaneously find the highest and lowest loaded cpu reachable via 78162fa74d9SJeff Roberson * cg. 78262fa74d9SJeff Roberson */ 78362fa74d9SJeff Roberson static inline void 78436acfc65SAlexander Motin sched_both(const struct cpu_group *cg, cpuset_t mask, int *lowcpu, int *highcpu) 78562fa74d9SJeff Roberson { 78662fa74d9SJeff Roberson struct cpu_search high; 78762fa74d9SJeff Roberson struct cpu_search low; 78862fa74d9SJeff Roberson 78962fa74d9SJeff Roberson low.cs_cpu = -1; 79036acfc65SAlexander Motin low.cs_prefer = -1; 79136acfc65SAlexander Motin low.cs_pri = -1; 79236acfc65SAlexander Motin low.cs_limit = INT_MAX; 79362fa74d9SJeff Roberson low.cs_mask = mask; 79462fa74d9SJeff Roberson high.cs_cpu = -1; 79562fa74d9SJeff Roberson high.cs_limit = -1; 79662fa74d9SJeff Roberson high.cs_mask = mask; 79762fa74d9SJeff Roberson cpu_search_both(cg, &low, &high); 79862fa74d9SJeff Roberson *lowcpu = low.cs_cpu; 79962fa74d9SJeff Roberson *highcpu = high.cs_cpu; 80062fa74d9SJeff Roberson return; 80162fa74d9SJeff Roberson } 80262fa74d9SJeff Roberson 80362fa74d9SJeff Roberson static void 80462fa74d9SJeff Roberson sched_balance_group(struct cpu_group *cg) 80562fa74d9SJeff Roberson { 80636acfc65SAlexander Motin cpuset_t hmask, lmask; 80736acfc65SAlexander Motin int high, low, anylow; 80862fa74d9SJeff Roberson 80936acfc65SAlexander Motin CPU_FILL(&hmask); 81062fa74d9SJeff Roberson for (;;) { 81136acfc65SAlexander Motin high = sched_highest(cg, hmask, 1); 81236acfc65SAlexander Motin /* Stop if there is no more CPU with transferrable threads. */ 81336acfc65SAlexander Motin if (high == -1) 81462fa74d9SJeff Roberson break; 81536acfc65SAlexander Motin CPU_CLR(high, &hmask); 81636acfc65SAlexander Motin CPU_COPY(&hmask, &lmask); 81736acfc65SAlexander Motin /* Stop if there is no more CPU left for low. */ 81836acfc65SAlexander Motin if (CPU_EMPTY(&lmask)) 81962fa74d9SJeff Roberson break; 82036acfc65SAlexander Motin anylow = 1; 82136acfc65SAlexander Motin nextlow: 82236acfc65SAlexander Motin low = sched_lowest(cg, lmask, -1, 82336acfc65SAlexander Motin TDQ_CPU(high)->tdq_load - 1, high); 82436acfc65SAlexander Motin /* Stop if we looked well and found no less loaded CPU. */ 82536acfc65SAlexander Motin if (anylow && low == -1) 82636acfc65SAlexander Motin break; 82736acfc65SAlexander Motin /* Go to next high if we found no less loaded CPU. */ 82836acfc65SAlexander Motin if (low == -1) 82936acfc65SAlexander Motin continue; 83036acfc65SAlexander Motin /* Transfer thread from high to low. */ 83136acfc65SAlexander Motin if (sched_balance_pair(TDQ_CPU(high), TDQ_CPU(low))) { 83236acfc65SAlexander Motin /* CPU that got thread can no longer be a donor. */ 83336acfc65SAlexander Motin CPU_CLR(low, &hmask); 83436acfc65SAlexander Motin } else { 83562fa74d9SJeff Roberson /* 83636acfc65SAlexander Motin * If failed, then there is no threads on high 83736acfc65SAlexander Motin * that can run on this low. Drop low from low 83836acfc65SAlexander Motin * mask and look for different one. 83962fa74d9SJeff Roberson */ 84036acfc65SAlexander Motin CPU_CLR(low, &lmask); 84136acfc65SAlexander Motin anylow = 0; 84236acfc65SAlexander Motin goto nextlow; 84362fa74d9SJeff Roberson } 84436acfc65SAlexander Motin } 84562fa74d9SJeff Roberson } 84662fa74d9SJeff Roberson 84762fa74d9SJeff Roberson static void 84862375ca8SEd Schouten sched_balance(void) 849356500a3SJeff Roberson { 8507fcf154aSJeff Roberson struct tdq *tdq; 851356500a3SJeff Roberson 8527fcf154aSJeff Roberson /* 8537fcf154aSJeff Roberson * Select a random time between .5 * balance_interval and 8547fcf154aSJeff Roberson * 1.5 * balance_interval. 8557fcf154aSJeff Roberson */ 8567fcf154aSJeff Roberson balance_ticks = max(balance_interval / 2, 1); 8577fcf154aSJeff Roberson balance_ticks += random() % balance_interval; 858ae7a6b38SJeff Roberson if (smp_started == 0 || rebalance == 0) 859598b368dSJeff Roberson return; 8607fcf154aSJeff Roberson tdq = TDQ_SELF(); 8617fcf154aSJeff Roberson TDQ_UNLOCK(tdq); 86262fa74d9SJeff Roberson sched_balance_group(cpu_top); 8637fcf154aSJeff Roberson TDQ_LOCK(tdq); 864cac77d04SJeff Roberson } 86586f8ae96SJeff Roberson 866ae7a6b38SJeff Roberson /* 867ae7a6b38SJeff Roberson * Lock two thread queues using their address to maintain lock order. 868ae7a6b38SJeff Roberson */ 869ae7a6b38SJeff Roberson static void 870ae7a6b38SJeff Roberson tdq_lock_pair(struct tdq *one, struct tdq *two) 871ae7a6b38SJeff Roberson { 872ae7a6b38SJeff Roberson if (one < two) { 873ae7a6b38SJeff Roberson TDQ_LOCK(one); 874ae7a6b38SJeff Roberson TDQ_LOCK_FLAGS(two, MTX_DUPOK); 875ae7a6b38SJeff Roberson } else { 876ae7a6b38SJeff Roberson TDQ_LOCK(two); 877ae7a6b38SJeff Roberson TDQ_LOCK_FLAGS(one, MTX_DUPOK); 878ae7a6b38SJeff Roberson } 879ae7a6b38SJeff Roberson } 880ae7a6b38SJeff Roberson 881ae7a6b38SJeff Roberson /* 8827fcf154aSJeff Roberson * Unlock two thread queues. Order is not important here. 8837fcf154aSJeff Roberson */ 8847fcf154aSJeff Roberson static void 8857fcf154aSJeff Roberson tdq_unlock_pair(struct tdq *one, struct tdq *two) 8867fcf154aSJeff Roberson { 8877fcf154aSJeff Roberson TDQ_UNLOCK(one); 8887fcf154aSJeff Roberson TDQ_UNLOCK(two); 8897fcf154aSJeff Roberson } 8907fcf154aSJeff Roberson 8917fcf154aSJeff Roberson /* 892ae7a6b38SJeff Roberson * Transfer load between two imbalanced thread queues. 893ae7a6b38SJeff Roberson */ 89462fa74d9SJeff Roberson static int 895ad1e7d28SJulian Elischer sched_balance_pair(struct tdq *high, struct tdq *low) 896cac77d04SJeff Roberson { 89762fa74d9SJeff Roberson int moved; 898880bf8b9SMarius Strobl int cpu; 899cac77d04SJeff Roberson 900ae7a6b38SJeff Roberson tdq_lock_pair(high, low); 90162fa74d9SJeff Roberson moved = 0; 902155b9987SJeff Roberson /* 903155b9987SJeff Roberson * Determine what the imbalance is and then adjust that to how many 904d2ad694cSJeff Roberson * threads we actually have to give up (transferable). 905155b9987SJeff Roberson */ 90636acfc65SAlexander Motin if (high->tdq_transferable != 0 && high->tdq_load > low->tdq_load && 90736acfc65SAlexander Motin (moved = tdq_move(high, low)) > 0) { 908a5423ea3SJeff Roberson /* 909880bf8b9SMarius Strobl * In case the target isn't the current cpu IPI it to force a 910880bf8b9SMarius Strobl * reschedule with the new workload. 911a5423ea3SJeff Roberson */ 912880bf8b9SMarius Strobl cpu = TDQ_ID(low); 913880bf8b9SMarius Strobl sched_pin(); 914880bf8b9SMarius Strobl if (cpu != PCPU_GET(cpuid)) 915880bf8b9SMarius Strobl ipi_cpu(cpu, IPI_PREEMPT); 916880bf8b9SMarius Strobl sched_unpin(); 917ae7a6b38SJeff Roberson } 9187fcf154aSJeff Roberson tdq_unlock_pair(high, low); 91962fa74d9SJeff Roberson return (moved); 920356500a3SJeff Roberson } 921356500a3SJeff Roberson 922ae7a6b38SJeff Roberson /* 923ae7a6b38SJeff Roberson * Move a thread from one thread queue to another. 924ae7a6b38SJeff Roberson */ 92562fa74d9SJeff Roberson static int 926ae7a6b38SJeff Roberson tdq_move(struct tdq *from, struct tdq *to) 927356500a3SJeff Roberson { 928ad1e7d28SJulian Elischer struct td_sched *ts; 929ae7a6b38SJeff Roberson struct thread *td; 930ae7a6b38SJeff Roberson struct tdq *tdq; 931ae7a6b38SJeff Roberson int cpu; 932356500a3SJeff Roberson 9337fcf154aSJeff Roberson TDQ_LOCK_ASSERT(from, MA_OWNED); 9347fcf154aSJeff Roberson TDQ_LOCK_ASSERT(to, MA_OWNED); 9357fcf154aSJeff Roberson 936ad1e7d28SJulian Elischer tdq = from; 937ae7a6b38SJeff Roberson cpu = TDQ_ID(to); 9389727e637SJeff Roberson td = tdq_steal(tdq, cpu); 9399727e637SJeff Roberson if (td == NULL) 94062fa74d9SJeff Roberson return (0); 9419727e637SJeff Roberson ts = td->td_sched; 942ae7a6b38SJeff Roberson /* 943ae7a6b38SJeff Roberson * Although the run queue is locked the thread may be blocked. Lock 9447fcf154aSJeff Roberson * it to clear this and acquire the run-queue lock. 945ae7a6b38SJeff Roberson */ 946ae7a6b38SJeff Roberson thread_lock(td); 9477fcf154aSJeff Roberson /* Drop recursive lock on from acquired via thread_lock(). */ 948ae7a6b38SJeff Roberson TDQ_UNLOCK(from); 949ae7a6b38SJeff Roberson sched_rem(td); 9507b8bfa0dSJeff Roberson ts->ts_cpu = cpu; 951ae7a6b38SJeff Roberson td->td_lock = TDQ_LOCKPTR(to); 952ae7a6b38SJeff Roberson tdq_add(to, td, SRQ_YIELDING); 95362fa74d9SJeff Roberson return (1); 954356500a3SJeff Roberson } 95522bf7d9aSJeff Roberson 956ae7a6b38SJeff Roberson /* 957ae7a6b38SJeff Roberson * This tdq has idled. Try to steal a thread from another cpu and switch 958ae7a6b38SJeff Roberson * to it. 959ae7a6b38SJeff Roberson */ 96080f86c9fSJeff Roberson static int 961ad1e7d28SJulian Elischer tdq_idled(struct tdq *tdq) 96222bf7d9aSJeff Roberson { 96362fa74d9SJeff Roberson struct cpu_group *cg; 964ad1e7d28SJulian Elischer struct tdq *steal; 965c76ee827SJeff Roberson cpuset_t mask; 96662fa74d9SJeff Roberson int thresh; 967ae7a6b38SJeff Roberson int cpu; 96880f86c9fSJeff Roberson 96988f530ccSJeff Roberson if (smp_started == 0 || steal_idle == 0) 97088f530ccSJeff Roberson return (1); 971c76ee827SJeff Roberson CPU_FILL(&mask); 972c76ee827SJeff Roberson CPU_CLR(PCPU_GET(cpuid), &mask); 97362fa74d9SJeff Roberson /* We don't want to be preempted while we're iterating. */ 974ae7a6b38SJeff Roberson spinlock_enter(); 97562fa74d9SJeff Roberson for (cg = tdq->tdq_cg; cg != NULL; ) { 9767b55ab05SJeff Roberson if ((cg->cg_flags & CG_FLAG_THREAD) == 0) 97762fa74d9SJeff Roberson thresh = steal_thresh; 97862fa74d9SJeff Roberson else 97962fa74d9SJeff Roberson thresh = 1; 98062fa74d9SJeff Roberson cpu = sched_highest(cg, mask, thresh); 98162fa74d9SJeff Roberson if (cpu == -1) { 98262fa74d9SJeff Roberson cg = cg->cg_parent; 98380f86c9fSJeff Roberson continue; 9847b8bfa0dSJeff Roberson } 9857b8bfa0dSJeff Roberson steal = TDQ_CPU(cpu); 986c76ee827SJeff Roberson CPU_CLR(cpu, &mask); 9877fcf154aSJeff Roberson tdq_lock_pair(tdq, steal); 98862fa74d9SJeff Roberson if (steal->tdq_load < thresh || steal->tdq_transferable == 0) { 9897fcf154aSJeff Roberson tdq_unlock_pair(tdq, steal); 99062fa74d9SJeff Roberson continue; 99162fa74d9SJeff Roberson } 99262fa74d9SJeff Roberson /* 99362fa74d9SJeff Roberson * If a thread was added while interrupts were disabled don't 99462fa74d9SJeff Roberson * steal one here. If we fail to acquire one due to affinity 99562fa74d9SJeff Roberson * restrictions loop again with this cpu removed from the 99662fa74d9SJeff Roberson * set. 99762fa74d9SJeff Roberson */ 99862fa74d9SJeff Roberson if (tdq->tdq_load == 0 && tdq_move(steal, tdq) == 0) { 99962fa74d9SJeff Roberson tdq_unlock_pair(tdq, steal); 100062fa74d9SJeff Roberson continue; 100180f86c9fSJeff Roberson } 1002ae7a6b38SJeff Roberson spinlock_exit(); 1003ae7a6b38SJeff Roberson TDQ_UNLOCK(steal); 10048df78c41SJeff Roberson mi_switch(SW_VOL | SWT_IDLE, NULL); 1005ae7a6b38SJeff Roberson thread_unlock(curthread); 10067b8bfa0dSJeff Roberson 10077b8bfa0dSJeff Roberson return (0); 100822bf7d9aSJeff Roberson } 100962fa74d9SJeff Roberson spinlock_exit(); 101062fa74d9SJeff Roberson return (1); 101162fa74d9SJeff Roberson } 101222bf7d9aSJeff Roberson 1013ae7a6b38SJeff Roberson /* 1014ae7a6b38SJeff Roberson * Notify a remote cpu of new work. Sends an IPI if criteria are met. 1015ae7a6b38SJeff Roberson */ 101622bf7d9aSJeff Roberson static void 10179727e637SJeff Roberson tdq_notify(struct tdq *tdq, struct thread *td) 101822bf7d9aSJeff Roberson { 101902f0ff6dSJohn Baldwin struct thread *ctd; 1020fc3a97dcSJeff Roberson int pri; 10217b8bfa0dSJeff Roberson int cpu; 102222bf7d9aSJeff Roberson 1023ff256d9cSJeff Roberson if (tdq->tdq_ipipending) 1024ff256d9cSJeff Roberson return; 10259727e637SJeff Roberson cpu = td->td_sched->ts_cpu; 10269727e637SJeff Roberson pri = td->td_priority; 102702f0ff6dSJohn Baldwin ctd = pcpu_find(cpu)->pc_curthread; 102802f0ff6dSJohn Baldwin if (!sched_shouldpreempt(pri, ctd->td_priority, 1)) 10296b2f763fSJeff Roberson return; 103002f0ff6dSJohn Baldwin if (TD_IS_IDLETHREAD(ctd)) { 10311690c6c1SJeff Roberson /* 10326c47aaaeSJeff Roberson * If the MD code has an idle wakeup routine try that before 10336c47aaaeSJeff Roberson * falling back to IPI. 10346c47aaaeSJeff Roberson */ 10359f9ad565SAlexander Motin if (!tdq->tdq_cpu_idle || cpu_idle_wakeup(cpu)) 10366c47aaaeSJeff Roberson return; 10371690c6c1SJeff Roberson } 1038ff256d9cSJeff Roberson tdq->tdq_ipipending = 1; 1039d9d8d144SJohn Baldwin ipi_cpu(cpu, IPI_PREEMPT); 104022bf7d9aSJeff Roberson } 104122bf7d9aSJeff Roberson 1042ae7a6b38SJeff Roberson /* 1043ae7a6b38SJeff Roberson * Steals load from a timeshare queue. Honors the rotating queue head 1044ae7a6b38SJeff Roberson * index. 1045ae7a6b38SJeff Roberson */ 10469727e637SJeff Roberson static struct thread * 104762fa74d9SJeff Roberson runq_steal_from(struct runq *rq, int cpu, u_char start) 1048ae7a6b38SJeff Roberson { 1049ae7a6b38SJeff Roberson struct rqbits *rqb; 1050ae7a6b38SJeff Roberson struct rqhead *rqh; 105136acfc65SAlexander Motin struct thread *td, *first; 1052ae7a6b38SJeff Roberson int bit; 1053ae7a6b38SJeff Roberson int pri; 1054ae7a6b38SJeff Roberson int i; 1055ae7a6b38SJeff Roberson 1056ae7a6b38SJeff Roberson rqb = &rq->rq_status; 1057ae7a6b38SJeff Roberson bit = start & (RQB_BPW -1); 1058ae7a6b38SJeff Roberson pri = 0; 105936acfc65SAlexander Motin first = NULL; 1060ae7a6b38SJeff Roberson again: 1061ae7a6b38SJeff Roberson for (i = RQB_WORD(start); i < RQB_LEN; bit = 0, i++) { 1062ae7a6b38SJeff Roberson if (rqb->rqb_bits[i] == 0) 1063ae7a6b38SJeff Roberson continue; 1064ae7a6b38SJeff Roberson if (bit != 0) { 1065ae7a6b38SJeff Roberson for (pri = bit; pri < RQB_BPW; pri++) 1066ae7a6b38SJeff Roberson if (rqb->rqb_bits[i] & (1ul << pri)) 1067ae7a6b38SJeff Roberson break; 1068ae7a6b38SJeff Roberson if (pri >= RQB_BPW) 1069ae7a6b38SJeff Roberson continue; 1070ae7a6b38SJeff Roberson } else 1071ae7a6b38SJeff Roberson pri = RQB_FFS(rqb->rqb_bits[i]); 1072ae7a6b38SJeff Roberson pri += (i << RQB_L2BPW); 1073ae7a6b38SJeff Roberson rqh = &rq->rq_queues[pri]; 10749727e637SJeff Roberson TAILQ_FOREACH(td, rqh, td_runq) { 10759727e637SJeff Roberson if (first && THREAD_CAN_MIGRATE(td) && 10769727e637SJeff Roberson THREAD_CAN_SCHED(td, cpu)) 10779727e637SJeff Roberson return (td); 107836acfc65SAlexander Motin first = td; 1079ae7a6b38SJeff Roberson } 1080ae7a6b38SJeff Roberson } 1081ae7a6b38SJeff Roberson if (start != 0) { 1082ae7a6b38SJeff Roberson start = 0; 1083ae7a6b38SJeff Roberson goto again; 1084ae7a6b38SJeff Roberson } 1085ae7a6b38SJeff Roberson 108636acfc65SAlexander Motin if (first && THREAD_CAN_MIGRATE(first) && 108736acfc65SAlexander Motin THREAD_CAN_SCHED(first, cpu)) 108836acfc65SAlexander Motin return (first); 1089ae7a6b38SJeff Roberson return (NULL); 1090ae7a6b38SJeff Roberson } 1091ae7a6b38SJeff Roberson 1092ae7a6b38SJeff Roberson /* 1093ae7a6b38SJeff Roberson * Steals load from a standard linear queue. 1094ae7a6b38SJeff Roberson */ 10959727e637SJeff Roberson static struct thread * 109662fa74d9SJeff Roberson runq_steal(struct runq *rq, int cpu) 109722bf7d9aSJeff Roberson { 109822bf7d9aSJeff Roberson struct rqhead *rqh; 109922bf7d9aSJeff Roberson struct rqbits *rqb; 11009727e637SJeff Roberson struct thread *td; 110122bf7d9aSJeff Roberson int word; 110222bf7d9aSJeff Roberson int bit; 110322bf7d9aSJeff Roberson 110422bf7d9aSJeff Roberson rqb = &rq->rq_status; 110522bf7d9aSJeff Roberson for (word = 0; word < RQB_LEN; word++) { 110622bf7d9aSJeff Roberson if (rqb->rqb_bits[word] == 0) 110722bf7d9aSJeff Roberson continue; 110822bf7d9aSJeff Roberson for (bit = 0; bit < RQB_BPW; bit++) { 1109a2640c9bSPeter Wemm if ((rqb->rqb_bits[word] & (1ul << bit)) == 0) 111022bf7d9aSJeff Roberson continue; 111122bf7d9aSJeff Roberson rqh = &rq->rq_queues[bit + (word << RQB_L2BPW)]; 11129727e637SJeff Roberson TAILQ_FOREACH(td, rqh, td_runq) 11139727e637SJeff Roberson if (THREAD_CAN_MIGRATE(td) && 11149727e637SJeff Roberson THREAD_CAN_SCHED(td, cpu)) 11159727e637SJeff Roberson return (td); 111622bf7d9aSJeff Roberson } 111722bf7d9aSJeff Roberson } 111822bf7d9aSJeff Roberson return (NULL); 111922bf7d9aSJeff Roberson } 112022bf7d9aSJeff Roberson 1121ae7a6b38SJeff Roberson /* 1122ae7a6b38SJeff Roberson * Attempt to steal a thread in priority order from a thread queue. 1123ae7a6b38SJeff Roberson */ 11249727e637SJeff Roberson static struct thread * 112562fa74d9SJeff Roberson tdq_steal(struct tdq *tdq, int cpu) 112622bf7d9aSJeff Roberson { 11279727e637SJeff Roberson struct thread *td; 112822bf7d9aSJeff Roberson 1129ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 11309727e637SJeff Roberson if ((td = runq_steal(&tdq->tdq_realtime, cpu)) != NULL) 11319727e637SJeff Roberson return (td); 11329727e637SJeff Roberson if ((td = runq_steal_from(&tdq->tdq_timeshare, 11339727e637SJeff Roberson cpu, tdq->tdq_ridx)) != NULL) 11349727e637SJeff Roberson return (td); 113562fa74d9SJeff Roberson return (runq_steal(&tdq->tdq_idle, cpu)); 113622bf7d9aSJeff Roberson } 113780f86c9fSJeff Roberson 1138ae7a6b38SJeff Roberson /* 1139ae7a6b38SJeff Roberson * Sets the thread lock and ts_cpu to match the requested cpu. Unlocks the 11407fcf154aSJeff Roberson * current lock and returns with the assigned queue locked. 1141ae7a6b38SJeff Roberson */ 1142ae7a6b38SJeff Roberson static inline struct tdq * 11439727e637SJeff Roberson sched_setcpu(struct thread *td, int cpu, int flags) 114480f86c9fSJeff Roberson { 11459727e637SJeff Roberson 1146ae7a6b38SJeff Roberson struct tdq *tdq; 114780f86c9fSJeff Roberson 11489727e637SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 1149ae7a6b38SJeff Roberson tdq = TDQ_CPU(cpu); 11509727e637SJeff Roberson td->td_sched->ts_cpu = cpu; 11519727e637SJeff Roberson /* 11529727e637SJeff Roberson * If the lock matches just return the queue. 11539727e637SJeff Roberson */ 1154ae7a6b38SJeff Roberson if (td->td_lock == TDQ_LOCKPTR(tdq)) 1155ae7a6b38SJeff Roberson return (tdq); 1156ae7a6b38SJeff Roberson #ifdef notyet 115780f86c9fSJeff Roberson /* 1158a5423ea3SJeff Roberson * If the thread isn't running its lockptr is a 1159ae7a6b38SJeff Roberson * turnstile or a sleepqueue. We can just lock_set without 1160ae7a6b38SJeff Roberson * blocking. 1161670c524fSJeff Roberson */ 1162ae7a6b38SJeff Roberson if (TD_CAN_RUN(td)) { 1163ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 1164ae7a6b38SJeff Roberson thread_lock_set(td, TDQ_LOCKPTR(tdq)); 1165ae7a6b38SJeff Roberson return (tdq); 1166ae7a6b38SJeff Roberson } 1167ae7a6b38SJeff Roberson #endif 116880f86c9fSJeff Roberson /* 1169ae7a6b38SJeff Roberson * The hard case, migration, we need to block the thread first to 1170ae7a6b38SJeff Roberson * prevent order reversals with other cpus locks. 11717b8bfa0dSJeff Roberson */ 1172b0b9dee5SAttilio Rao spinlock_enter(); 1173ae7a6b38SJeff Roberson thread_lock_block(td); 1174ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 1175ae7a6b38SJeff Roberson thread_lock_unblock(td, TDQ_LOCKPTR(tdq)); 1176b0b9dee5SAttilio Rao spinlock_exit(); 1177ae7a6b38SJeff Roberson return (tdq); 117880f86c9fSJeff Roberson } 11792454aaf5SJeff Roberson 11808df78c41SJeff Roberson SCHED_STAT_DEFINE(pickcpu_intrbind, "Soft interrupt binding"); 11818df78c41SJeff Roberson SCHED_STAT_DEFINE(pickcpu_idle_affinity, "Picked idle cpu based on affinity"); 11828df78c41SJeff Roberson SCHED_STAT_DEFINE(pickcpu_affinity, "Picked cpu based on affinity"); 11838df78c41SJeff Roberson SCHED_STAT_DEFINE(pickcpu_lowest, "Selected lowest load"); 11848df78c41SJeff Roberson SCHED_STAT_DEFINE(pickcpu_local, "Migrated to current cpu"); 11858df78c41SJeff Roberson SCHED_STAT_DEFINE(pickcpu_migration, "Selection may have caused migration"); 11868df78c41SJeff Roberson 1187ae7a6b38SJeff Roberson static int 11889727e637SJeff Roberson sched_pickcpu(struct thread *td, int flags) 1189ae7a6b38SJeff Roberson { 119036acfc65SAlexander Motin struct cpu_group *cg, *ccg; 11919727e637SJeff Roberson struct td_sched *ts; 1192ae7a6b38SJeff Roberson struct tdq *tdq; 1193c76ee827SJeff Roberson cpuset_t mask; 119436acfc65SAlexander Motin int cpu, pri, self; 11957b8bfa0dSJeff Roberson 119662fa74d9SJeff Roberson self = PCPU_GET(cpuid); 11979727e637SJeff Roberson ts = td->td_sched; 11987b8bfa0dSJeff Roberson if (smp_started == 0) 11997b8bfa0dSJeff Roberson return (self); 120028994a58SJeff Roberson /* 120128994a58SJeff Roberson * Don't migrate a running thread from sched_switch(). 120228994a58SJeff Roberson */ 120362fa74d9SJeff Roberson if ((flags & SRQ_OURSELF) || !THREAD_CAN_MIGRATE(td)) 120462fa74d9SJeff Roberson return (ts->ts_cpu); 12057b8bfa0dSJeff Roberson /* 120662fa74d9SJeff Roberson * Prefer to run interrupt threads on the processors that generate 120762fa74d9SJeff Roberson * the interrupt. 12087b8bfa0dSJeff Roberson */ 120936acfc65SAlexander Motin pri = td->td_priority; 121062fa74d9SJeff Roberson if (td->td_priority <= PRI_MAX_ITHD && THREAD_CAN_SCHED(td, self) && 12118df78c41SJeff Roberson curthread->td_intr_nesting_level && ts->ts_cpu != self) { 12128df78c41SJeff Roberson SCHED_STAT_INC(pickcpu_intrbind); 121362fa74d9SJeff Roberson ts->ts_cpu = self; 121436acfc65SAlexander Motin if (TDQ_CPU(self)->tdq_lowpri > pri) { 12158df78c41SJeff Roberson SCHED_STAT_INC(pickcpu_affinity); 12167b8bfa0dSJeff Roberson return (ts->ts_cpu); 12177b8bfa0dSJeff Roberson } 12188df78c41SJeff Roberson } 12197b8bfa0dSJeff Roberson /* 122036acfc65SAlexander Motin * If the thread can run on the last cpu and the affinity has not 122136acfc65SAlexander Motin * expired or it is idle run it there. 12227b8bfa0dSJeff Roberson */ 122336acfc65SAlexander Motin tdq = TDQ_CPU(ts->ts_cpu); 122436acfc65SAlexander Motin cg = tdq->tdq_cg; 122536acfc65SAlexander Motin if (THREAD_CAN_SCHED(td, ts->ts_cpu) && 122636acfc65SAlexander Motin tdq->tdq_lowpri >= PRI_MIN_IDLE && 122736acfc65SAlexander Motin SCHED_AFFINITY(ts, CG_SHARE_L2)) { 122836acfc65SAlexander Motin if (cg->cg_flags & CG_FLAG_THREAD) { 122936acfc65SAlexander Motin CPUSET_FOREACH(cpu, cg->cg_mask) { 123036acfc65SAlexander Motin if (TDQ_CPU(cpu)->tdq_lowpri < PRI_MIN_IDLE) 123162fa74d9SJeff Roberson break; 123236acfc65SAlexander Motin } 123336acfc65SAlexander Motin } else 123436acfc65SAlexander Motin cpu = INT_MAX; 123536acfc65SAlexander Motin if (cpu > mp_maxid) { 123636acfc65SAlexander Motin SCHED_STAT_INC(pickcpu_idle_affinity); 123736acfc65SAlexander Motin return (ts->ts_cpu); 123836acfc65SAlexander Motin } 123936acfc65SAlexander Motin } 124036acfc65SAlexander Motin /* 124136acfc65SAlexander Motin * Search for the last level cache CPU group in the tree. 124236acfc65SAlexander Motin * Skip caches with expired affinity time and SMT groups. 124336acfc65SAlexander Motin * Affinity to higher level caches will be handled less aggressively. 124436acfc65SAlexander Motin */ 124536acfc65SAlexander Motin for (ccg = NULL; cg != NULL; cg = cg->cg_parent) { 124636acfc65SAlexander Motin if (cg->cg_flags & CG_FLAG_THREAD) 124736acfc65SAlexander Motin continue; 124836acfc65SAlexander Motin if (!SCHED_AFFINITY(ts, cg->cg_level)) 124936acfc65SAlexander Motin continue; 125036acfc65SAlexander Motin ccg = cg; 125136acfc65SAlexander Motin } 125236acfc65SAlexander Motin if (ccg != NULL) 125336acfc65SAlexander Motin cg = ccg; 125462fa74d9SJeff Roberson cpu = -1; 125536acfc65SAlexander Motin /* Search the group for the less loaded idle CPU we can run now. */ 1256c76ee827SJeff Roberson mask = td->td_cpuset->cs_mask; 125736acfc65SAlexander Motin if (cg != NULL && cg != cpu_top && 125836acfc65SAlexander Motin CPU_CMP(&cg->cg_mask, &cpu_top->cg_mask) != 0) 125936acfc65SAlexander Motin cpu = sched_lowest(cg, mask, max(pri, PRI_MAX_TIMESHARE), 126036acfc65SAlexander Motin INT_MAX, ts->ts_cpu); 126136acfc65SAlexander Motin /* Search globally for the less loaded CPU we can run now. */ 126262fa74d9SJeff Roberson if (cpu == -1) 126336acfc65SAlexander Motin cpu = sched_lowest(cpu_top, mask, pri, INT_MAX, ts->ts_cpu); 126436acfc65SAlexander Motin /* Search globally for the less loaded CPU. */ 126536acfc65SAlexander Motin if (cpu == -1) 126636acfc65SAlexander Motin cpu = sched_lowest(cpu_top, mask, -1, INT_MAX, ts->ts_cpu); 12676022f0bcSAlexander Motin KASSERT(cpu != -1, ("sched_pickcpu: Failed to find a cpu.")); 126862fa74d9SJeff Roberson /* 126962fa74d9SJeff Roberson * Compare the lowest loaded cpu to current cpu. 127062fa74d9SJeff Roberson */ 1271ff256d9cSJeff Roberson if (THREAD_CAN_SCHED(td, self) && TDQ_CPU(self)->tdq_lowpri > pri && 127236acfc65SAlexander Motin TDQ_CPU(cpu)->tdq_lowpri < PRI_MIN_IDLE && 127336acfc65SAlexander Motin TDQ_CPU(self)->tdq_load <= TDQ_CPU(cpu)->tdq_load + 1) { 12748df78c41SJeff Roberson SCHED_STAT_INC(pickcpu_local); 127562fa74d9SJeff Roberson cpu = self; 12768df78c41SJeff Roberson } else 12778df78c41SJeff Roberson SCHED_STAT_INC(pickcpu_lowest); 12788df78c41SJeff Roberson if (cpu != ts->ts_cpu) 12798df78c41SJeff Roberson SCHED_STAT_INC(pickcpu_migration); 1280ae7a6b38SJeff Roberson return (cpu); 128180f86c9fSJeff Roberson } 128262fa74d9SJeff Roberson #endif 128322bf7d9aSJeff Roberson 128422bf7d9aSJeff Roberson /* 128522bf7d9aSJeff Roberson * Pick the highest priority task we have and return it. 12860c0a98b2SJeff Roberson */ 12879727e637SJeff Roberson static struct thread * 1288ad1e7d28SJulian Elischer tdq_choose(struct tdq *tdq) 12895d7ef00cSJeff Roberson { 12909727e637SJeff Roberson struct thread *td; 12915d7ef00cSJeff Roberson 1292ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 12939727e637SJeff Roberson td = runq_choose(&tdq->tdq_realtime); 12949727e637SJeff Roberson if (td != NULL) 12959727e637SJeff Roberson return (td); 12969727e637SJeff Roberson td = runq_choose_from(&tdq->tdq_timeshare, tdq->tdq_ridx); 12979727e637SJeff Roberson if (td != NULL) { 129812d56c0fSJohn Baldwin KASSERT(td->td_priority >= PRI_MIN_BATCH, 1299e7d50326SJeff Roberson ("tdq_choose: Invalid priority on timeshare queue %d", 13009727e637SJeff Roberson td->td_priority)); 13019727e637SJeff Roberson return (td); 130215dc847eSJeff Roberson } 13039727e637SJeff Roberson td = runq_choose(&tdq->tdq_idle); 13049727e637SJeff Roberson if (td != NULL) { 13059727e637SJeff Roberson KASSERT(td->td_priority >= PRI_MIN_IDLE, 1306e7d50326SJeff Roberson ("tdq_choose: Invalid priority on idle queue %d", 13079727e637SJeff Roberson td->td_priority)); 13089727e637SJeff Roberson return (td); 1309e7d50326SJeff Roberson } 1310e7d50326SJeff Roberson 1311e7d50326SJeff Roberson return (NULL); 1312245f3abfSJeff Roberson } 13130a016a05SJeff Roberson 1314ae7a6b38SJeff Roberson /* 1315ae7a6b38SJeff Roberson * Initialize a thread queue. 1316ae7a6b38SJeff Roberson */ 13170a016a05SJeff Roberson static void 1318ad1e7d28SJulian Elischer tdq_setup(struct tdq *tdq) 13190a016a05SJeff Roberson { 1320ae7a6b38SJeff Roberson 1321c47f202bSJeff Roberson if (bootverbose) 1322c47f202bSJeff Roberson printf("ULE: setup cpu %d\n", TDQ_ID(tdq)); 1323e7d50326SJeff Roberson runq_init(&tdq->tdq_realtime); 1324e7d50326SJeff Roberson runq_init(&tdq->tdq_timeshare); 1325d2ad694cSJeff Roberson runq_init(&tdq->tdq_idle); 132662fa74d9SJeff Roberson snprintf(tdq->tdq_name, sizeof(tdq->tdq_name), 132762fa74d9SJeff Roberson "sched lock %d", (int)TDQ_ID(tdq)); 132862fa74d9SJeff Roberson mtx_init(&tdq->tdq_lock, tdq->tdq_name, "sched lock", 132962fa74d9SJeff Roberson MTX_SPIN | MTX_RECURSE); 13308f51ad55SJeff Roberson #ifdef KTR 13318f51ad55SJeff Roberson snprintf(tdq->tdq_loadname, sizeof(tdq->tdq_loadname), 13328f51ad55SJeff Roberson "CPU %d load", (int)TDQ_ID(tdq)); 13338f51ad55SJeff Roberson #endif 13340a016a05SJeff Roberson } 13350a016a05SJeff Roberson 1336c47f202bSJeff Roberson #ifdef SMP 1337c47f202bSJeff Roberson static void 1338c47f202bSJeff Roberson sched_setup_smp(void) 1339c47f202bSJeff Roberson { 1340c47f202bSJeff Roberson struct tdq *tdq; 1341c47f202bSJeff Roberson int i; 1342c47f202bSJeff Roberson 134362fa74d9SJeff Roberson cpu_top = smp_topo(); 13443aa6d94eSJohn Baldwin CPU_FOREACH(i) { 134562fa74d9SJeff Roberson tdq = TDQ_CPU(i); 1346c47f202bSJeff Roberson tdq_setup(tdq); 134762fa74d9SJeff Roberson tdq->tdq_cg = smp_topo_find(cpu_top, i); 134862fa74d9SJeff Roberson if (tdq->tdq_cg == NULL) 134962fa74d9SJeff Roberson panic("Can't find cpu group for %d\n", i); 1350c47f202bSJeff Roberson } 135162fa74d9SJeff Roberson balance_tdq = TDQ_SELF(); 135262fa74d9SJeff Roberson sched_balance(); 1353c47f202bSJeff Roberson } 1354c47f202bSJeff Roberson #endif 1355c47f202bSJeff Roberson 1356ae7a6b38SJeff Roberson /* 1357ae7a6b38SJeff Roberson * Setup the thread queues and initialize the topology based on MD 1358ae7a6b38SJeff Roberson * information. 1359ae7a6b38SJeff Roberson */ 136035e6168fSJeff Roberson static void 136135e6168fSJeff Roberson sched_setup(void *dummy) 136235e6168fSJeff Roberson { 1363ae7a6b38SJeff Roberson struct tdq *tdq; 1364c47f202bSJeff Roberson 1365c47f202bSJeff Roberson tdq = TDQ_SELF(); 13660ec896fdSJeff Roberson #ifdef SMP 1367c47f202bSJeff Roberson sched_setup_smp(); 1368749d01b0SJeff Roberson #else 1369c47f202bSJeff Roberson tdq_setup(tdq); 1370356500a3SJeff Roberson #endif 1371ae7a6b38SJeff Roberson 1372ae7a6b38SJeff Roberson /* Add thread0's load since it's running. */ 1373ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 1374c47f202bSJeff Roberson thread0.td_lock = TDQ_LOCKPTR(TDQ_SELF()); 13759727e637SJeff Roberson tdq_load_add(tdq, &thread0); 137662fa74d9SJeff Roberson tdq->tdq_lowpri = thread0.td_priority; 1377ae7a6b38SJeff Roberson TDQ_UNLOCK(tdq); 137835e6168fSJeff Roberson } 137935e6168fSJeff Roberson 1380ae7a6b38SJeff Roberson /* 1381579895dfSAlexander Motin * This routine determines time constants after stathz and hz are setup. 1382ae7a6b38SJeff Roberson */ 1383a1d4fe69SDavid Xu /* ARGSUSED */ 1384a1d4fe69SDavid Xu static void 1385a1d4fe69SDavid Xu sched_initticks(void *dummy) 1386a1d4fe69SDavid Xu { 1387ae7a6b38SJeff Roberson int incr; 1388ae7a6b38SJeff Roberson 1389a1d4fe69SDavid Xu realstathz = stathz ? stathz : hz; 1390579895dfSAlexander Motin sched_slice = realstathz / 10; /* ~100ms */ 139137f4e025SAlexander Motin hogticks = imax(1, (2 * hz * sched_slice + realstathz / 2) / 139237f4e025SAlexander Motin realstathz); 1393a1d4fe69SDavid Xu 1394a1d4fe69SDavid Xu /* 1395e7d50326SJeff Roberson * tickincr is shifted out by 10 to avoid rounding errors due to 13963f872f85SJeff Roberson * hz not being evenly divisible by stathz on all platforms. 1397e7d50326SJeff Roberson */ 1398ae7a6b38SJeff Roberson incr = (hz << SCHED_TICK_SHIFT) / realstathz; 1399e7d50326SJeff Roberson /* 1400e7d50326SJeff Roberson * This does not work for values of stathz that are more than 1401e7d50326SJeff Roberson * 1 << SCHED_TICK_SHIFT * hz. In practice this does not happen. 1402a1d4fe69SDavid Xu */ 1403ae7a6b38SJeff Roberson if (incr == 0) 1404ae7a6b38SJeff Roberson incr = 1; 1405ae7a6b38SJeff Roberson tickincr = incr; 14067b8bfa0dSJeff Roberson #ifdef SMP 14079862717aSJeff Roberson /* 14087fcf154aSJeff Roberson * Set the default balance interval now that we know 14097fcf154aSJeff Roberson * what realstathz is. 14107fcf154aSJeff Roberson */ 14117fcf154aSJeff Roberson balance_interval = realstathz; 14127b8bfa0dSJeff Roberson affinity = SCHED_AFFINITY_DEFAULT; 14137b8bfa0dSJeff Roberson #endif 1414b3f40a41SAlexander Motin if (sched_idlespinthresh < 0) 141537f4e025SAlexander Motin sched_idlespinthresh = imax(16, 2 * hz / realstathz); 1416a1d4fe69SDavid Xu } 1417a1d4fe69SDavid Xu 1418a1d4fe69SDavid Xu 141935e6168fSJeff Roberson /* 1420ae7a6b38SJeff Roberson * This is the core of the interactivity algorithm. Determines a score based 1421ae7a6b38SJeff Roberson * on past behavior. It is the ratio of sleep time to run time scaled to 1422ae7a6b38SJeff Roberson * a [0, 100] integer. This is the voluntary sleep time of a process, which 1423ae7a6b38SJeff Roberson * differs from the cpu usage because it does not account for time spent 1424ae7a6b38SJeff Roberson * waiting on a run-queue. Would be prettier if we had floating point. 1425ae7a6b38SJeff Roberson */ 1426ae7a6b38SJeff Roberson static int 1427ae7a6b38SJeff Roberson sched_interact_score(struct thread *td) 1428ae7a6b38SJeff Roberson { 1429ae7a6b38SJeff Roberson struct td_sched *ts; 1430ae7a6b38SJeff Roberson int div; 1431ae7a6b38SJeff Roberson 1432ae7a6b38SJeff Roberson ts = td->td_sched; 1433ae7a6b38SJeff Roberson /* 1434ae7a6b38SJeff Roberson * The score is only needed if this is likely to be an interactive 1435ae7a6b38SJeff Roberson * task. Don't go through the expense of computing it if there's 1436ae7a6b38SJeff Roberson * no chance. 1437ae7a6b38SJeff Roberson */ 1438ae7a6b38SJeff Roberson if (sched_interact <= SCHED_INTERACT_HALF && 1439ae7a6b38SJeff Roberson ts->ts_runtime >= ts->ts_slptime) 1440ae7a6b38SJeff Roberson return (SCHED_INTERACT_HALF); 1441ae7a6b38SJeff Roberson 1442ae7a6b38SJeff Roberson if (ts->ts_runtime > ts->ts_slptime) { 1443ae7a6b38SJeff Roberson div = max(1, ts->ts_runtime / SCHED_INTERACT_HALF); 1444ae7a6b38SJeff Roberson return (SCHED_INTERACT_HALF + 1445ae7a6b38SJeff Roberson (SCHED_INTERACT_HALF - (ts->ts_slptime / div))); 1446ae7a6b38SJeff Roberson } 1447ae7a6b38SJeff Roberson if (ts->ts_slptime > ts->ts_runtime) { 1448ae7a6b38SJeff Roberson div = max(1, ts->ts_slptime / SCHED_INTERACT_HALF); 1449ae7a6b38SJeff Roberson return (ts->ts_runtime / div); 1450ae7a6b38SJeff Roberson } 1451ae7a6b38SJeff Roberson /* runtime == slptime */ 1452ae7a6b38SJeff Roberson if (ts->ts_runtime) 1453ae7a6b38SJeff Roberson return (SCHED_INTERACT_HALF); 1454ae7a6b38SJeff Roberson 1455ae7a6b38SJeff Roberson /* 1456ae7a6b38SJeff Roberson * This can happen if slptime and runtime are 0. 1457ae7a6b38SJeff Roberson */ 1458ae7a6b38SJeff Roberson return (0); 1459ae7a6b38SJeff Roberson 1460ae7a6b38SJeff Roberson } 1461ae7a6b38SJeff Roberson 1462ae7a6b38SJeff Roberson /* 146335e6168fSJeff Roberson * Scale the scheduling priority according to the "interactivity" of this 146435e6168fSJeff Roberson * process. 146535e6168fSJeff Roberson */ 146615dc847eSJeff Roberson static void 14678460a577SJohn Birrell sched_priority(struct thread *td) 146835e6168fSJeff Roberson { 1469e7d50326SJeff Roberson int score; 147035e6168fSJeff Roberson int pri; 147135e6168fSJeff Roberson 1472c9a8cba4SJohn Baldwin if (PRI_BASE(td->td_pri_class) != PRI_TIMESHARE) 147315dc847eSJeff Roberson return; 1474e7d50326SJeff Roberson /* 1475e7d50326SJeff Roberson * If the score is interactive we place the thread in the realtime 1476e7d50326SJeff Roberson * queue with a priority that is less than kernel and interrupt 1477e7d50326SJeff Roberson * priorities. These threads are not subject to nice restrictions. 1478e7d50326SJeff Roberson * 1479ae7a6b38SJeff Roberson * Scores greater than this are placed on the normal timeshare queue 1480e7d50326SJeff Roberson * where the priority is partially decided by the most recent cpu 1481e7d50326SJeff Roberson * utilization and the rest is decided by nice value. 1482a5423ea3SJeff Roberson * 1483a5423ea3SJeff Roberson * The nice value of the process has a linear effect on the calculated 1484a5423ea3SJeff Roberson * score. Negative nice values make it easier for a thread to be 1485a5423ea3SJeff Roberson * considered interactive. 1486e7d50326SJeff Roberson */ 1487a0f15352SJohn Baldwin score = imax(0, sched_interact_score(td) + td->td_proc->p_nice); 1488e7d50326SJeff Roberson if (score < sched_interact) { 148912d56c0fSJohn Baldwin pri = PRI_MIN_INTERACT; 149012d56c0fSJohn Baldwin pri += ((PRI_MAX_INTERACT - PRI_MIN_INTERACT + 1) / 149178920008SJohn Baldwin sched_interact) * score; 149212d56c0fSJohn Baldwin KASSERT(pri >= PRI_MIN_INTERACT && pri <= PRI_MAX_INTERACT, 14939a93305aSJeff Roberson ("sched_priority: invalid interactive priority %d score %d", 14949a93305aSJeff Roberson pri, score)); 1495e7d50326SJeff Roberson } else { 1496e7d50326SJeff Roberson pri = SCHED_PRI_MIN; 1497e7d50326SJeff Roberson if (td->td_sched->ts_ticks) 14980c0d27d5SJohn Baldwin pri += min(SCHED_PRI_TICKS(td->td_sched), 14990c0d27d5SJohn Baldwin SCHED_PRI_RANGE); 1500e7d50326SJeff Roberson pri += SCHED_PRI_NICE(td->td_proc->p_nice); 150112d56c0fSJohn Baldwin KASSERT(pri >= PRI_MIN_BATCH && pri <= PRI_MAX_BATCH, 1502ae7a6b38SJeff Roberson ("sched_priority: invalid priority %d: nice %d, " 1503ae7a6b38SJeff Roberson "ticks %d ftick %d ltick %d tick pri %d", 1504ae7a6b38SJeff Roberson pri, td->td_proc->p_nice, td->td_sched->ts_ticks, 1505ae7a6b38SJeff Roberson td->td_sched->ts_ftick, td->td_sched->ts_ltick, 1506ae7a6b38SJeff Roberson SCHED_PRI_TICKS(td->td_sched))); 1507e7d50326SJeff Roberson } 15088460a577SJohn Birrell sched_user_prio(td, pri); 150935e6168fSJeff Roberson 151015dc847eSJeff Roberson return; 151135e6168fSJeff Roberson } 151235e6168fSJeff Roberson 151335e6168fSJeff Roberson /* 1514d322132cSJeff Roberson * This routine enforces a maximum limit on the amount of scheduling history 1515ae7a6b38SJeff Roberson * kept. It is called after either the slptime or runtime is adjusted. This 1516ae7a6b38SJeff Roberson * function is ugly due to integer math. 1517d322132cSJeff Roberson */ 15184b60e324SJeff Roberson static void 15198460a577SJohn Birrell sched_interact_update(struct thread *td) 15204b60e324SJeff Roberson { 1521155b6ca1SJeff Roberson struct td_sched *ts; 15229a93305aSJeff Roberson u_int sum; 15233f741ca1SJeff Roberson 1524155b6ca1SJeff Roberson ts = td->td_sched; 1525ae7a6b38SJeff Roberson sum = ts->ts_runtime + ts->ts_slptime; 1526d322132cSJeff Roberson if (sum < SCHED_SLP_RUN_MAX) 1527d322132cSJeff Roberson return; 1528d322132cSJeff Roberson /* 1529155b6ca1SJeff Roberson * This only happens from two places: 1530155b6ca1SJeff Roberson * 1) We have added an unusual amount of run time from fork_exit. 1531155b6ca1SJeff Roberson * 2) We have added an unusual amount of sleep time from sched_sleep(). 1532155b6ca1SJeff Roberson */ 1533155b6ca1SJeff Roberson if (sum > SCHED_SLP_RUN_MAX * 2) { 1534ae7a6b38SJeff Roberson if (ts->ts_runtime > ts->ts_slptime) { 1535ae7a6b38SJeff Roberson ts->ts_runtime = SCHED_SLP_RUN_MAX; 1536ae7a6b38SJeff Roberson ts->ts_slptime = 1; 1537155b6ca1SJeff Roberson } else { 1538ae7a6b38SJeff Roberson ts->ts_slptime = SCHED_SLP_RUN_MAX; 1539ae7a6b38SJeff Roberson ts->ts_runtime = 1; 1540155b6ca1SJeff Roberson } 1541155b6ca1SJeff Roberson return; 1542155b6ca1SJeff Roberson } 1543155b6ca1SJeff Roberson /* 1544d322132cSJeff Roberson * If we have exceeded by more than 1/5th then the algorithm below 1545d322132cSJeff Roberson * will not bring us back into range. Dividing by two here forces 15462454aaf5SJeff Roberson * us into the range of [4/5 * SCHED_INTERACT_MAX, SCHED_INTERACT_MAX] 1547d322132cSJeff Roberson */ 154837a35e4aSJeff Roberson if (sum > (SCHED_SLP_RUN_MAX / 5) * 6) { 1549ae7a6b38SJeff Roberson ts->ts_runtime /= 2; 1550ae7a6b38SJeff Roberson ts->ts_slptime /= 2; 1551d322132cSJeff Roberson return; 1552d322132cSJeff Roberson } 1553ae7a6b38SJeff Roberson ts->ts_runtime = (ts->ts_runtime / 5) * 4; 1554ae7a6b38SJeff Roberson ts->ts_slptime = (ts->ts_slptime / 5) * 4; 1555d322132cSJeff Roberson } 1556d322132cSJeff Roberson 1557ae7a6b38SJeff Roberson /* 1558ae7a6b38SJeff Roberson * Scale back the interactivity history when a child thread is created. The 1559ae7a6b38SJeff Roberson * history is inherited from the parent but the thread may behave totally 1560ae7a6b38SJeff Roberson * differently. For example, a shell spawning a compiler process. We want 1561ae7a6b38SJeff Roberson * to learn that the compiler is behaving badly very quickly. 1562ae7a6b38SJeff Roberson */ 1563d322132cSJeff Roberson static void 15648460a577SJohn Birrell sched_interact_fork(struct thread *td) 1565d322132cSJeff Roberson { 1566d322132cSJeff Roberson int ratio; 1567d322132cSJeff Roberson int sum; 1568d322132cSJeff Roberson 1569ae7a6b38SJeff Roberson sum = td->td_sched->ts_runtime + td->td_sched->ts_slptime; 1570d322132cSJeff Roberson if (sum > SCHED_SLP_RUN_FORK) { 1571d322132cSJeff Roberson ratio = sum / SCHED_SLP_RUN_FORK; 1572ae7a6b38SJeff Roberson td->td_sched->ts_runtime /= ratio; 1573ae7a6b38SJeff Roberson td->td_sched->ts_slptime /= ratio; 15744b60e324SJeff Roberson } 15754b60e324SJeff Roberson } 15764b60e324SJeff Roberson 157715dc847eSJeff Roberson /* 1578ae7a6b38SJeff Roberson * Called from proc0_init() to setup the scheduler fields. 1579ed062c8dSJulian Elischer */ 1580ed062c8dSJulian Elischer void 1581ed062c8dSJulian Elischer schedinit(void) 1582ed062c8dSJulian Elischer { 1583e7d50326SJeff Roberson 1584ed062c8dSJulian Elischer /* 1585ed062c8dSJulian Elischer * Set up the scheduler specific parts of proc0. 1586ed062c8dSJulian Elischer */ 1587ed062c8dSJulian Elischer proc0.p_sched = NULL; /* XXX */ 1588ad1e7d28SJulian Elischer thread0.td_sched = &td_sched0; 1589e7d50326SJeff Roberson td_sched0.ts_ltick = ticks; 15908ab80cf0SJeff Roberson td_sched0.ts_ftick = ticks; 159173daf66fSJeff Roberson td_sched0.ts_slice = sched_slice; 1592ed062c8dSJulian Elischer } 1593ed062c8dSJulian Elischer 1594ed062c8dSJulian Elischer /* 159515dc847eSJeff Roberson * This is only somewhat accurate since given many processes of the same 159615dc847eSJeff Roberson * priority they will switch when their slices run out, which will be 1597e7d50326SJeff Roberson * at most sched_slice stathz ticks. 159815dc847eSJeff Roberson */ 159935e6168fSJeff Roberson int 160035e6168fSJeff Roberson sched_rr_interval(void) 160135e6168fSJeff Roberson { 1602e7d50326SJeff Roberson 1603579895dfSAlexander Motin /* Convert sched_slice from stathz to hz. */ 160437f4e025SAlexander Motin return (imax(1, (sched_slice * hz + realstathz / 2) / realstathz)); 160535e6168fSJeff Roberson } 160635e6168fSJeff Roberson 1607ae7a6b38SJeff Roberson /* 1608ae7a6b38SJeff Roberson * Update the percent cpu tracking information when it is requested or 1609ae7a6b38SJeff Roberson * the total history exceeds the maximum. We keep a sliding history of 1610ae7a6b38SJeff Roberson * tick counts that slowly decays. This is less precise than the 4BSD 1611ae7a6b38SJeff Roberson * mechanism since it happens with less regular and frequent events. 1612ae7a6b38SJeff Roberson */ 161322bf7d9aSJeff Roberson static void 16147295465eSAlexander Motin sched_pctcpu_update(struct td_sched *ts, int run) 161535e6168fSJeff Roberson { 16167295465eSAlexander Motin int t = ticks; 1617e7d50326SJeff Roberson 16187295465eSAlexander Motin if (t - ts->ts_ltick >= SCHED_TICK_TARG) { 1619ad1e7d28SJulian Elischer ts->ts_ticks = 0; 16207295465eSAlexander Motin ts->ts_ftick = t - SCHED_TICK_TARG; 16217295465eSAlexander Motin } else if (t - ts->ts_ftick >= SCHED_TICK_MAX) { 16227295465eSAlexander Motin ts->ts_ticks = (ts->ts_ticks / (ts->ts_ltick - ts->ts_ftick)) * 16237295465eSAlexander Motin (ts->ts_ltick - (t - SCHED_TICK_TARG)); 16247295465eSAlexander Motin ts->ts_ftick = t - SCHED_TICK_TARG; 16257295465eSAlexander Motin } 16267295465eSAlexander Motin if (run) 16277295465eSAlexander Motin ts->ts_ticks += (t - ts->ts_ltick) << SCHED_TICK_SHIFT; 16287295465eSAlexander Motin ts->ts_ltick = t; 162935e6168fSJeff Roberson } 163035e6168fSJeff Roberson 1631ae7a6b38SJeff Roberson /* 1632ae7a6b38SJeff Roberson * Adjust the priority of a thread. Move it to the appropriate run-queue 1633ae7a6b38SJeff Roberson * if necessary. This is the back-end for several priority related 1634ae7a6b38SJeff Roberson * functions. 1635ae7a6b38SJeff Roberson */ 1636e7d50326SJeff Roberson static void 1637f5c157d9SJohn Baldwin sched_thread_priority(struct thread *td, u_char prio) 163835e6168fSJeff Roberson { 1639ad1e7d28SJulian Elischer struct td_sched *ts; 164073daf66fSJeff Roberson struct tdq *tdq; 164173daf66fSJeff Roberson int oldpri; 164235e6168fSJeff Roberson 16438f51ad55SJeff Roberson KTR_POINT3(KTR_SCHED, "thread", sched_tdname(td), "prio", 16448f51ad55SJeff Roberson "prio:%d", td->td_priority, "new prio:%d", prio, 16458f51ad55SJeff Roberson KTR_ATTR_LINKED, sched_tdname(curthread)); 1646b3e9e682SRyan Stone SDT_PROBE3(sched, , , change_pri, td, td->td_proc, prio); 1647e87fc7cfSAndriy Gapon if (td != curthread && prio < td->td_priority) { 16488f51ad55SJeff Roberson KTR_POINT3(KTR_SCHED, "thread", sched_tdname(curthread), 16498f51ad55SJeff Roberson "lend prio", "prio:%d", td->td_priority, "new prio:%d", 16508f51ad55SJeff Roberson prio, KTR_ATTR_LINKED, sched_tdname(td)); 1651b3e9e682SRyan Stone SDT_PROBE4(sched, , , lend_pri, td, td->td_proc, prio, 1652b3e9e682SRyan Stone curthread); 16538f51ad55SJeff Roberson } 1654ad1e7d28SJulian Elischer ts = td->td_sched; 16557b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 1656f5c157d9SJohn Baldwin if (td->td_priority == prio) 1657f5c157d9SJohn Baldwin return; 16583f741ca1SJeff Roberson /* 16593f741ca1SJeff Roberson * If the priority has been elevated due to priority 16603f741ca1SJeff Roberson * propagation, we may have to move ourselves to a new 1661e7d50326SJeff Roberson * queue. This could be optimized to not re-add in some 1662e7d50326SJeff Roberson * cases. 1663f2b74cbfSJeff Roberson */ 16646d55b3ecSJeff Roberson if (TD_ON_RUNQ(td) && prio < td->td_priority) { 1665e7d50326SJeff Roberson sched_rem(td); 1666e7d50326SJeff Roberson td->td_priority = prio; 1667ae7a6b38SJeff Roberson sched_add(td, SRQ_BORROWING); 166873daf66fSJeff Roberson return; 166973daf66fSJeff Roberson } 16706d55b3ecSJeff Roberson /* 16716d55b3ecSJeff Roberson * If the thread is currently running we may have to adjust the lowpri 16726d55b3ecSJeff Roberson * information so other cpus are aware of our current priority. 16736d55b3ecSJeff Roberson */ 16746d55b3ecSJeff Roberson if (TD_IS_RUNNING(td)) { 1675ae7a6b38SJeff Roberson tdq = TDQ_CPU(ts->ts_cpu); 167662fa74d9SJeff Roberson oldpri = td->td_priority; 16773f741ca1SJeff Roberson td->td_priority = prio; 167862fa74d9SJeff Roberson if (prio < tdq->tdq_lowpri) 167962fa74d9SJeff Roberson tdq->tdq_lowpri = prio; 168062fa74d9SJeff Roberson else if (tdq->tdq_lowpri == oldpri) 168162fa74d9SJeff Roberson tdq_setlowpri(tdq, td); 16826d55b3ecSJeff Roberson return; 168373daf66fSJeff Roberson } 16846d55b3ecSJeff Roberson td->td_priority = prio; 1685ae7a6b38SJeff Roberson } 168635e6168fSJeff Roberson 1687f5c157d9SJohn Baldwin /* 1688f5c157d9SJohn Baldwin * Update a thread's priority when it is lent another thread's 1689f5c157d9SJohn Baldwin * priority. 1690f5c157d9SJohn Baldwin */ 1691f5c157d9SJohn Baldwin void 1692f5c157d9SJohn Baldwin sched_lend_prio(struct thread *td, u_char prio) 1693f5c157d9SJohn Baldwin { 1694f5c157d9SJohn Baldwin 1695f5c157d9SJohn Baldwin td->td_flags |= TDF_BORROWING; 1696f5c157d9SJohn Baldwin sched_thread_priority(td, prio); 1697f5c157d9SJohn Baldwin } 1698f5c157d9SJohn Baldwin 1699f5c157d9SJohn Baldwin /* 1700f5c157d9SJohn Baldwin * Restore a thread's priority when priority propagation is 1701f5c157d9SJohn Baldwin * over. The prio argument is the minimum priority the thread 1702f5c157d9SJohn Baldwin * needs to have to satisfy other possible priority lending 1703f5c157d9SJohn Baldwin * requests. If the thread's regular priority is less 1704f5c157d9SJohn Baldwin * important than prio, the thread will keep a priority boost 1705f5c157d9SJohn Baldwin * of prio. 1706f5c157d9SJohn Baldwin */ 1707f5c157d9SJohn Baldwin void 1708f5c157d9SJohn Baldwin sched_unlend_prio(struct thread *td, u_char prio) 1709f5c157d9SJohn Baldwin { 1710f5c157d9SJohn Baldwin u_char base_pri; 1711f5c157d9SJohn Baldwin 1712f5c157d9SJohn Baldwin if (td->td_base_pri >= PRI_MIN_TIMESHARE && 1713f5c157d9SJohn Baldwin td->td_base_pri <= PRI_MAX_TIMESHARE) 17148460a577SJohn Birrell base_pri = td->td_user_pri; 1715f5c157d9SJohn Baldwin else 1716f5c157d9SJohn Baldwin base_pri = td->td_base_pri; 1717f5c157d9SJohn Baldwin if (prio >= base_pri) { 1718f5c157d9SJohn Baldwin td->td_flags &= ~TDF_BORROWING; 1719f5c157d9SJohn Baldwin sched_thread_priority(td, base_pri); 1720f5c157d9SJohn Baldwin } else 1721f5c157d9SJohn Baldwin sched_lend_prio(td, prio); 1722f5c157d9SJohn Baldwin } 1723f5c157d9SJohn Baldwin 1724ae7a6b38SJeff Roberson /* 1725ae7a6b38SJeff Roberson * Standard entry for setting the priority to an absolute value. 1726ae7a6b38SJeff Roberson */ 1727f5c157d9SJohn Baldwin void 1728f5c157d9SJohn Baldwin sched_prio(struct thread *td, u_char prio) 1729f5c157d9SJohn Baldwin { 1730f5c157d9SJohn Baldwin u_char oldprio; 1731f5c157d9SJohn Baldwin 1732f5c157d9SJohn Baldwin /* First, update the base priority. */ 1733f5c157d9SJohn Baldwin td->td_base_pri = prio; 1734f5c157d9SJohn Baldwin 1735f5c157d9SJohn Baldwin /* 173650aaa791SJohn Baldwin * If the thread is borrowing another thread's priority, don't 1737f5c157d9SJohn Baldwin * ever lower the priority. 1738f5c157d9SJohn Baldwin */ 1739f5c157d9SJohn Baldwin if (td->td_flags & TDF_BORROWING && td->td_priority < prio) 1740f5c157d9SJohn Baldwin return; 1741f5c157d9SJohn Baldwin 1742f5c157d9SJohn Baldwin /* Change the real priority. */ 1743f5c157d9SJohn Baldwin oldprio = td->td_priority; 1744f5c157d9SJohn Baldwin sched_thread_priority(td, prio); 1745f5c157d9SJohn Baldwin 1746f5c157d9SJohn Baldwin /* 1747f5c157d9SJohn Baldwin * If the thread is on a turnstile, then let the turnstile update 1748f5c157d9SJohn Baldwin * its state. 1749f5c157d9SJohn Baldwin */ 1750f5c157d9SJohn Baldwin if (TD_ON_LOCK(td) && oldprio != prio) 1751f5c157d9SJohn Baldwin turnstile_adjust(td, oldprio); 1752f5c157d9SJohn Baldwin } 1753f5c157d9SJohn Baldwin 1754ae7a6b38SJeff Roberson /* 1755ae7a6b38SJeff Roberson * Set the base user priority, does not effect current running priority. 1756ae7a6b38SJeff Roberson */ 175735e6168fSJeff Roberson void 17588460a577SJohn Birrell sched_user_prio(struct thread *td, u_char prio) 17593db720fdSDavid Xu { 17603db720fdSDavid Xu 17618460a577SJohn Birrell td->td_base_user_pri = prio; 1762acbe332aSDavid Xu if (td->td_lend_user_pri <= prio) 1763fc6c30f6SJulian Elischer return; 17648460a577SJohn Birrell td->td_user_pri = prio; 17653db720fdSDavid Xu } 17663db720fdSDavid Xu 17673db720fdSDavid Xu void 17683db720fdSDavid Xu sched_lend_user_prio(struct thread *td, u_char prio) 17693db720fdSDavid Xu { 17703db720fdSDavid Xu 1771435806d3SDavid Xu THREAD_LOCK_ASSERT(td, MA_OWNED); 1772acbe332aSDavid Xu td->td_lend_user_pri = prio; 1773c8e368a9SDavid Xu td->td_user_pri = min(prio, td->td_base_user_pri); 1774c8e368a9SDavid Xu if (td->td_priority > td->td_user_pri) 1775c8e368a9SDavid Xu sched_prio(td, td->td_user_pri); 1776c8e368a9SDavid Xu else if (td->td_priority != td->td_user_pri) 1777c8e368a9SDavid Xu td->td_flags |= TDF_NEEDRESCHED; 1778435806d3SDavid Xu } 17793db720fdSDavid Xu 1780ae7a6b38SJeff Roberson /* 1781c47f202bSJeff Roberson * Handle migration from sched_switch(). This happens only for 1782c47f202bSJeff Roberson * cpu binding. 1783c47f202bSJeff Roberson */ 1784c47f202bSJeff Roberson static struct mtx * 1785c47f202bSJeff Roberson sched_switch_migrate(struct tdq *tdq, struct thread *td, int flags) 1786c47f202bSJeff Roberson { 1787c47f202bSJeff Roberson struct tdq *tdn; 1788c47f202bSJeff Roberson 1789c47f202bSJeff Roberson tdn = TDQ_CPU(td->td_sched->ts_cpu); 1790c47f202bSJeff Roberson #ifdef SMP 17919727e637SJeff Roberson tdq_load_rem(tdq, td); 1792c47f202bSJeff Roberson /* 1793c47f202bSJeff Roberson * Do the lock dance required to avoid LOR. We grab an extra 1794c47f202bSJeff Roberson * spinlock nesting to prevent preemption while we're 1795c47f202bSJeff Roberson * not holding either run-queue lock. 1796c47f202bSJeff Roberson */ 1797c47f202bSJeff Roberson spinlock_enter(); 1798b0b9dee5SAttilio Rao thread_lock_block(td); /* This releases the lock on tdq. */ 1799435068aaSAttilio Rao 1800435068aaSAttilio Rao /* 1801435068aaSAttilio Rao * Acquire both run-queue locks before placing the thread on the new 1802435068aaSAttilio Rao * run-queue to avoid deadlocks created by placing a thread with a 1803435068aaSAttilio Rao * blocked lock on the run-queue of a remote processor. The deadlock 1804435068aaSAttilio Rao * occurs when a third processor attempts to lock the two queues in 1805435068aaSAttilio Rao * question while the target processor is spinning with its own 1806435068aaSAttilio Rao * run-queue lock held while waiting for the blocked lock to clear. 1807435068aaSAttilio Rao */ 1808435068aaSAttilio Rao tdq_lock_pair(tdn, tdq); 1809c47f202bSJeff Roberson tdq_add(tdn, td, flags); 18109727e637SJeff Roberson tdq_notify(tdn, td); 1811c47f202bSJeff Roberson TDQ_UNLOCK(tdn); 1812c47f202bSJeff Roberson spinlock_exit(); 1813c47f202bSJeff Roberson #endif 1814c47f202bSJeff Roberson return (TDQ_LOCKPTR(tdn)); 1815c47f202bSJeff Roberson } 1816c47f202bSJeff Roberson 1817c47f202bSJeff Roberson /* 1818b0b9dee5SAttilio Rao * Variadic version of thread_lock_unblock() that does not assume td_lock 1819b0b9dee5SAttilio Rao * is blocked. 1820ae7a6b38SJeff Roberson */ 1821ae7a6b38SJeff Roberson static inline void 1822ae7a6b38SJeff Roberson thread_unblock_switch(struct thread *td, struct mtx *mtx) 1823ae7a6b38SJeff Roberson { 1824ae7a6b38SJeff Roberson atomic_store_rel_ptr((volatile uintptr_t *)&td->td_lock, 1825ae7a6b38SJeff Roberson (uintptr_t)mtx); 1826ae7a6b38SJeff Roberson } 1827ae7a6b38SJeff Roberson 1828ae7a6b38SJeff Roberson /* 1829ae7a6b38SJeff Roberson * Switch threads. This function has to handle threads coming in while 1830ae7a6b38SJeff Roberson * blocked for some reason, running, or idle. It also must deal with 1831ae7a6b38SJeff Roberson * migrating a thread from one queue to another as running threads may 1832ae7a6b38SJeff Roberson * be assigned elsewhere via binding. 1833ae7a6b38SJeff Roberson */ 18343db720fdSDavid Xu void 18353389af30SJulian Elischer sched_switch(struct thread *td, struct thread *newtd, int flags) 183635e6168fSJeff Roberson { 1837c02bbb43SJeff Roberson struct tdq *tdq; 1838ad1e7d28SJulian Elischer struct td_sched *ts; 1839ae7a6b38SJeff Roberson struct mtx *mtx; 1840c47f202bSJeff Roberson int srqflag; 18413d7f4117SAlexander Motin int cpuid, preempted; 184235e6168fSJeff Roberson 18437b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 18446d55b3ecSJeff Roberson KASSERT(newtd == NULL, ("sched_switch: Unsupported newtd argument")); 184535e6168fSJeff Roberson 1846ae7a6b38SJeff Roberson cpuid = PCPU_GET(cpuid); 1847ae7a6b38SJeff Roberson tdq = TDQ_CPU(cpuid); 1848e7d50326SJeff Roberson ts = td->td_sched; 1849c47f202bSJeff Roberson mtx = td->td_lock; 18507295465eSAlexander Motin sched_pctcpu_update(ts, 1); 1851ae7a6b38SJeff Roberson ts->ts_rltick = ticks; 1852060563ecSJulian Elischer td->td_lastcpu = td->td_oncpu; 1853060563ecSJulian Elischer td->td_oncpu = NOCPU; 18543d7f4117SAlexander Motin preempted = !(td->td_flags & TDF_SLICEEND); 18553d7f4117SAlexander Motin td->td_flags &= ~(TDF_NEEDRESCHED | TDF_SLICEEND); 185677918643SStephan Uphoff td->td_owepreempt = 0; 18571690c6c1SJeff Roberson tdq->tdq_switchcnt++; 1858b11fdad0SJeff Roberson /* 1859ae7a6b38SJeff Roberson * The lock pointer in an idle thread should never change. Reset it 1860ae7a6b38SJeff Roberson * to CAN_RUN as well. 1861b11fdad0SJeff Roberson */ 1862486a9414SJulian Elischer if (TD_IS_IDLETHREAD(td)) { 1863ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 1864bf0acc27SJohn Baldwin TD_SET_CAN_RUN(td); 18657b20fb19SJeff Roberson } else if (TD_IS_RUNNING(td)) { 1866ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 18673d7f4117SAlexander Motin srqflag = preempted ? 1868598b368dSJeff Roberson SRQ_OURSELF|SRQ_YIELDING|SRQ_PREEMPTED : 1869c47f202bSJeff Roberson SRQ_OURSELF|SRQ_YIELDING; 1870ba4932b5SMatthew D Fleming #ifdef SMP 18710f7a0ebdSMatthew D Fleming if (THREAD_CAN_MIGRATE(td) && !THREAD_CAN_SCHED(td, ts->ts_cpu)) 18720f7a0ebdSMatthew D Fleming ts->ts_cpu = sched_pickcpu(td, 0); 1873ba4932b5SMatthew D Fleming #endif 1874c47f202bSJeff Roberson if (ts->ts_cpu == cpuid) 18759727e637SJeff Roberson tdq_runq_add(tdq, td, srqflag); 18760f7a0ebdSMatthew D Fleming else { 18770f7a0ebdSMatthew D Fleming KASSERT(THREAD_CAN_MIGRATE(td) || 18780f7a0ebdSMatthew D Fleming (ts->ts_flags & TSF_BOUND) != 0, 18790f7a0ebdSMatthew D Fleming ("Thread %p shouldn't migrate", td)); 1880c47f202bSJeff Roberson mtx = sched_switch_migrate(tdq, td, srqflag); 18810f7a0ebdSMatthew D Fleming } 1882ae7a6b38SJeff Roberson } else { 1883ae7a6b38SJeff Roberson /* This thread must be going to sleep. */ 1884ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 1885b0b9dee5SAttilio Rao mtx = thread_lock_block(td); 18869727e637SJeff Roberson tdq_load_rem(tdq, td); 1887ae7a6b38SJeff Roberson } 1888ae7a6b38SJeff Roberson /* 1889ae7a6b38SJeff Roberson * We enter here with the thread blocked and assigned to the 1890ae7a6b38SJeff Roberson * appropriate cpu run-queue or sleep-queue and with the current 1891ae7a6b38SJeff Roberson * thread-queue locked. 1892ae7a6b38SJeff Roberson */ 1893ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED | MA_NOTRECURSED); 18942454aaf5SJeff Roberson newtd = choosethread(); 1895ae7a6b38SJeff Roberson /* 1896ae7a6b38SJeff Roberson * Call the MD code to switch contexts if necessary. 1897ae7a6b38SJeff Roberson */ 1898ebccf1e3SJoseph Koshy if (td != newtd) { 1899ebccf1e3SJoseph Koshy #ifdef HWPMC_HOOKS 1900ebccf1e3SJoseph Koshy if (PMC_PROC_IS_USING_PMCS(td->td_proc)) 1901ebccf1e3SJoseph Koshy PMC_SWITCH_CONTEXT(td, PMC_FN_CSW_OUT); 1902ebccf1e3SJoseph Koshy #endif 1903b3e9e682SRyan Stone SDT_PROBE2(sched, , , off_cpu, td, td->td_proc); 1904eea4f254SJeff Roberson lock_profile_release_lock(&TDQ_LOCKPTR(tdq)->lock_object); 190559c68134SJeff Roberson TDQ_LOCKPTR(tdq)->mtx_lock = (uintptr_t)newtd; 19067295465eSAlexander Motin sched_pctcpu_update(newtd->td_sched, 0); 19076f5f25e5SJohn Birrell 19086f5f25e5SJohn Birrell #ifdef KDTRACE_HOOKS 19096f5f25e5SJohn Birrell /* 19106f5f25e5SJohn Birrell * If DTrace has set the active vtime enum to anything 19116f5f25e5SJohn Birrell * other than INACTIVE (0), then it should have set the 19126f5f25e5SJohn Birrell * function to call. 19136f5f25e5SJohn Birrell */ 19146f5f25e5SJohn Birrell if (dtrace_vtime_active) 19156f5f25e5SJohn Birrell (*dtrace_vtime_switch_func)(newtd); 19166f5f25e5SJohn Birrell #endif 19176f5f25e5SJohn Birrell 1918ae7a6b38SJeff Roberson cpu_switch(td, newtd, mtx); 1919ae7a6b38SJeff Roberson /* 1920ae7a6b38SJeff Roberson * We may return from cpu_switch on a different cpu. However, 1921ae7a6b38SJeff Roberson * we always return with td_lock pointing to the current cpu's 1922ae7a6b38SJeff Roberson * run queue lock. 1923ae7a6b38SJeff Roberson */ 1924ae7a6b38SJeff Roberson cpuid = PCPU_GET(cpuid); 1925ae7a6b38SJeff Roberson tdq = TDQ_CPU(cpuid); 1926eea4f254SJeff Roberson lock_profile_obtain_lock_success( 1927eea4f254SJeff Roberson &TDQ_LOCKPTR(tdq)->lock_object, 0, 0, __FILE__, __LINE__); 1928b3e9e682SRyan Stone 1929b3e9e682SRyan Stone SDT_PROBE0(sched, , , on_cpu); 1930ebccf1e3SJoseph Koshy #ifdef HWPMC_HOOKS 1931ebccf1e3SJoseph Koshy if (PMC_PROC_IS_USING_PMCS(td->td_proc)) 1932ebccf1e3SJoseph Koshy PMC_SWITCH_CONTEXT(td, PMC_FN_CSW_IN); 1933ebccf1e3SJoseph Koshy #endif 1934b3e9e682SRyan Stone } else { 1935ae7a6b38SJeff Roberson thread_unblock_switch(td, mtx); 1936b3e9e682SRyan Stone SDT_PROBE0(sched, , , remain_cpu); 1937b3e9e682SRyan Stone } 1938ae7a6b38SJeff Roberson /* 1939ae7a6b38SJeff Roberson * Assert that all went well and return. 1940ae7a6b38SJeff Roberson */ 1941ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED|MA_NOTRECURSED); 1942ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 1943ae7a6b38SJeff Roberson td->td_oncpu = cpuid; 194435e6168fSJeff Roberson } 194535e6168fSJeff Roberson 1946ae7a6b38SJeff Roberson /* 1947ae7a6b38SJeff Roberson * Adjust thread priorities as a result of a nice request. 1948ae7a6b38SJeff Roberson */ 194935e6168fSJeff Roberson void 1950fa885116SJulian Elischer sched_nice(struct proc *p, int nice) 195135e6168fSJeff Roberson { 195235e6168fSJeff Roberson struct thread *td; 195335e6168fSJeff Roberson 1954fa885116SJulian Elischer PROC_LOCK_ASSERT(p, MA_OWNED); 1955e7d50326SJeff Roberson 1956fa885116SJulian Elischer p->p_nice = nice; 19578460a577SJohn Birrell FOREACH_THREAD_IN_PROC(p, td) { 19587b20fb19SJeff Roberson thread_lock(td); 19598460a577SJohn Birrell sched_priority(td); 1960e7d50326SJeff Roberson sched_prio(td, td->td_base_user_pri); 19617b20fb19SJeff Roberson thread_unlock(td); 196235e6168fSJeff Roberson } 1963fa885116SJulian Elischer } 196435e6168fSJeff Roberson 1965ae7a6b38SJeff Roberson /* 1966ae7a6b38SJeff Roberson * Record the sleep time for the interactivity scorer. 1967ae7a6b38SJeff Roberson */ 196835e6168fSJeff Roberson void 1969c5aa6b58SJeff Roberson sched_sleep(struct thread *td, int prio) 197035e6168fSJeff Roberson { 1971e7d50326SJeff Roberson 19727b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 197335e6168fSJeff Roberson 197454b0e65fSJeff Roberson td->td_slptick = ticks; 197517c4c356SKonstantin Belousov if (TD_IS_SUSPENDED(td) || prio >= PSOCK) 1976c5aa6b58SJeff Roberson td->td_flags |= TDF_CANSWAP; 19772dc29adbSJohn Baldwin if (PRI_BASE(td->td_pri_class) != PRI_TIMESHARE) 19782dc29adbSJohn Baldwin return; 19790502fe2eSJeff Roberson if (static_boost == 1 && prio) 1980c5aa6b58SJeff Roberson sched_prio(td, prio); 19810502fe2eSJeff Roberson else if (static_boost && td->td_priority > static_boost) 19820502fe2eSJeff Roberson sched_prio(td, static_boost); 198335e6168fSJeff Roberson } 198435e6168fSJeff Roberson 1985ae7a6b38SJeff Roberson /* 1986ae7a6b38SJeff Roberson * Schedule a thread to resume execution and record how long it voluntarily 1987ae7a6b38SJeff Roberson * slept. We also update the pctcpu, interactivity, and priority. 1988ae7a6b38SJeff Roberson */ 198935e6168fSJeff Roberson void 199035e6168fSJeff Roberson sched_wakeup(struct thread *td) 199135e6168fSJeff Roberson { 199214618990SJeff Roberson struct td_sched *ts; 1993ae7a6b38SJeff Roberson int slptick; 1994e7d50326SJeff Roberson 19957b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 199614618990SJeff Roberson ts = td->td_sched; 1997c5aa6b58SJeff Roberson td->td_flags &= ~TDF_CANSWAP; 199835e6168fSJeff Roberson /* 1999e7d50326SJeff Roberson * If we slept for more than a tick update our interactivity and 2000e7d50326SJeff Roberson * priority. 200135e6168fSJeff Roberson */ 200254b0e65fSJeff Roberson slptick = td->td_slptick; 200354b0e65fSJeff Roberson td->td_slptick = 0; 2004ae7a6b38SJeff Roberson if (slptick && slptick != ticks) { 20057295465eSAlexander Motin ts->ts_slptime += (ticks - slptick) << SCHED_TICK_SHIFT; 20068460a577SJohn Birrell sched_interact_update(td); 20077295465eSAlexander Motin sched_pctcpu_update(ts, 0); 2008f1e8dc4aSJeff Roberson } 200914618990SJeff Roberson /* Reset the slice value after we sleep. */ 201014618990SJeff Roberson ts->ts_slice = sched_slice; 20117a5e5e2aSJeff Roberson sched_add(td, SRQ_BORING); 201235e6168fSJeff Roberson } 201335e6168fSJeff Roberson 201435e6168fSJeff Roberson /* 201535e6168fSJeff Roberson * Penalize the parent for creating a new child and initialize the child's 201635e6168fSJeff Roberson * priority. 201735e6168fSJeff Roberson */ 201835e6168fSJeff Roberson void 20198460a577SJohn Birrell sched_fork(struct thread *td, struct thread *child) 202015dc847eSJeff Roberson { 20217b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 20227295465eSAlexander Motin sched_pctcpu_update(td->td_sched, 1); 2023ad1e7d28SJulian Elischer sched_fork_thread(td, child); 2024e7d50326SJeff Roberson /* 2025e7d50326SJeff Roberson * Penalize the parent and child for forking. 2026e7d50326SJeff Roberson */ 2027e7d50326SJeff Roberson sched_interact_fork(child); 2028e7d50326SJeff Roberson sched_priority(child); 2029ae7a6b38SJeff Roberson td->td_sched->ts_runtime += tickincr; 2030e7d50326SJeff Roberson sched_interact_update(td); 2031e7d50326SJeff Roberson sched_priority(td); 2032ad1e7d28SJulian Elischer } 2033ad1e7d28SJulian Elischer 2034ae7a6b38SJeff Roberson /* 2035ae7a6b38SJeff Roberson * Fork a new thread, may be within the same process. 2036ae7a6b38SJeff Roberson */ 2037ad1e7d28SJulian Elischer void 2038ad1e7d28SJulian Elischer sched_fork_thread(struct thread *td, struct thread *child) 2039ad1e7d28SJulian Elischer { 2040ad1e7d28SJulian Elischer struct td_sched *ts; 2041ad1e7d28SJulian Elischer struct td_sched *ts2; 20428460a577SJohn Birrell 20438b16c208SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 2044e7d50326SJeff Roberson /* 2045e7d50326SJeff Roberson * Initialize child. 2046e7d50326SJeff Roberson */ 2047ad1e7d28SJulian Elischer ts = td->td_sched; 2048ad1e7d28SJulian Elischer ts2 = child->td_sched; 20498b16c208SJeff Roberson child->td_lock = TDQ_LOCKPTR(TDQ_SELF()); 20508b16c208SJeff Roberson child->td_cpuset = cpuset_ref(td->td_cpuset); 2051ad1e7d28SJulian Elischer ts2->ts_cpu = ts->ts_cpu; 20528b16c208SJeff Roberson ts2->ts_flags = 0; 2053e7d50326SJeff Roberson /* 205422d19207SJohn Baldwin * Grab our parents cpu estimation information. 2055e7d50326SJeff Roberson */ 2056ad1e7d28SJulian Elischer ts2->ts_ticks = ts->ts_ticks; 2057ad1e7d28SJulian Elischer ts2->ts_ltick = ts->ts_ltick; 2058ad1e7d28SJulian Elischer ts2->ts_ftick = ts->ts_ftick; 205922d19207SJohn Baldwin /* 206022d19207SJohn Baldwin * Do not inherit any borrowed priority from the parent. 206122d19207SJohn Baldwin */ 206222d19207SJohn Baldwin child->td_priority = child->td_base_pri; 2063e7d50326SJeff Roberson /* 2064e7d50326SJeff Roberson * And update interactivity score. 2065e7d50326SJeff Roberson */ 2066ae7a6b38SJeff Roberson ts2->ts_slptime = ts->ts_slptime; 2067ae7a6b38SJeff Roberson ts2->ts_runtime = ts->ts_runtime; 2068e7d50326SJeff Roberson ts2->ts_slice = 1; /* Attempt to quickly learn interactivity. */ 20698f51ad55SJeff Roberson #ifdef KTR 20708f51ad55SJeff Roberson bzero(ts2->ts_name, sizeof(ts2->ts_name)); 20718f51ad55SJeff Roberson #endif 207215dc847eSJeff Roberson } 207315dc847eSJeff Roberson 2074ae7a6b38SJeff Roberson /* 2075ae7a6b38SJeff Roberson * Adjust the priority class of a thread. 2076ae7a6b38SJeff Roberson */ 207715dc847eSJeff Roberson void 20788460a577SJohn Birrell sched_class(struct thread *td, int class) 207915dc847eSJeff Roberson { 208015dc847eSJeff Roberson 20817b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 20828460a577SJohn Birrell if (td->td_pri_class == class) 208315dc847eSJeff Roberson return; 20848460a577SJohn Birrell td->td_pri_class = class; 208535e6168fSJeff Roberson } 208635e6168fSJeff Roberson 208735e6168fSJeff Roberson /* 208835e6168fSJeff Roberson * Return some of the child's priority and interactivity to the parent. 208935e6168fSJeff Roberson */ 209035e6168fSJeff Roberson void 2091fc6c30f6SJulian Elischer sched_exit(struct proc *p, struct thread *child) 209235e6168fSJeff Roberson { 2093e7d50326SJeff Roberson struct thread *td; 2094141ad61cSJeff Roberson 20958f51ad55SJeff Roberson KTR_STATE1(KTR_SCHED, "thread", sched_tdname(child), "proc exit", 2096cd39bb09SXin LI "prio:%d", child->td_priority); 2097374ae2a3SJeff Roberson PROC_LOCK_ASSERT(p, MA_OWNED); 2098e7d50326SJeff Roberson td = FIRST_THREAD_IN_PROC(p); 2099e7d50326SJeff Roberson sched_exit_thread(td, child); 2100ad1e7d28SJulian Elischer } 2101ad1e7d28SJulian Elischer 2102ae7a6b38SJeff Roberson /* 2103ae7a6b38SJeff Roberson * Penalize another thread for the time spent on this one. This helps to 2104ae7a6b38SJeff Roberson * worsen the priority and interactivity of processes which schedule batch 2105ae7a6b38SJeff Roberson * jobs such as make. This has little effect on the make process itself but 2106ae7a6b38SJeff Roberson * causes new processes spawned by it to receive worse scores immediately. 2107ae7a6b38SJeff Roberson */ 2108ad1e7d28SJulian Elischer void 2109fc6c30f6SJulian Elischer sched_exit_thread(struct thread *td, struct thread *child) 2110ad1e7d28SJulian Elischer { 2111fc6c30f6SJulian Elischer 21128f51ad55SJeff Roberson KTR_STATE1(KTR_SCHED, "thread", sched_tdname(child), "thread exit", 2113cd39bb09SXin LI "prio:%d", child->td_priority); 2114e7d50326SJeff Roberson /* 2115e7d50326SJeff Roberson * Give the child's runtime to the parent without returning the 2116e7d50326SJeff Roberson * sleep time as a penalty to the parent. This causes shells that 2117e7d50326SJeff Roberson * launch expensive things to mark their children as expensive. 2118e7d50326SJeff Roberson */ 21197b20fb19SJeff Roberson thread_lock(td); 2120ae7a6b38SJeff Roberson td->td_sched->ts_runtime += child->td_sched->ts_runtime; 2121fc6c30f6SJulian Elischer sched_interact_update(td); 2122e7d50326SJeff Roberson sched_priority(td); 21237b20fb19SJeff Roberson thread_unlock(td); 2124ad1e7d28SJulian Elischer } 2125ad1e7d28SJulian Elischer 2126ff256d9cSJeff Roberson void 2127ff256d9cSJeff Roberson sched_preempt(struct thread *td) 2128ff256d9cSJeff Roberson { 2129ff256d9cSJeff Roberson struct tdq *tdq; 2130ff256d9cSJeff Roberson 2131b3e9e682SRyan Stone SDT_PROBE2(sched, , , surrender, td, td->td_proc); 2132b3e9e682SRyan Stone 2133ff256d9cSJeff Roberson thread_lock(td); 2134ff256d9cSJeff Roberson tdq = TDQ_SELF(); 2135ff256d9cSJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 2136ff256d9cSJeff Roberson tdq->tdq_ipipending = 0; 2137ff256d9cSJeff Roberson if (td->td_priority > tdq->tdq_lowpri) { 21388df78c41SJeff Roberson int flags; 21398df78c41SJeff Roberson 21408df78c41SJeff Roberson flags = SW_INVOL | SW_PREEMPT; 2141ff256d9cSJeff Roberson if (td->td_critnest > 1) 2142ff256d9cSJeff Roberson td->td_owepreempt = 1; 21438df78c41SJeff Roberson else if (TD_IS_IDLETHREAD(td)) 21448df78c41SJeff Roberson mi_switch(flags | SWT_REMOTEWAKEIDLE, NULL); 2145ff256d9cSJeff Roberson else 21468df78c41SJeff Roberson mi_switch(flags | SWT_REMOTEPREEMPT, NULL); 2147ff256d9cSJeff Roberson } 2148ff256d9cSJeff Roberson thread_unlock(td); 2149ff256d9cSJeff Roberson } 2150ff256d9cSJeff Roberson 2151ae7a6b38SJeff Roberson /* 2152ae7a6b38SJeff Roberson * Fix priorities on return to user-space. Priorities may be elevated due 2153ae7a6b38SJeff Roberson * to static priorities in msleep() or similar. 2154ae7a6b38SJeff Roberson */ 2155ad1e7d28SJulian Elischer void 2156ad1e7d28SJulian Elischer sched_userret(struct thread *td) 2157ad1e7d28SJulian Elischer { 2158ad1e7d28SJulian Elischer /* 2159ad1e7d28SJulian Elischer * XXX we cheat slightly on the locking here to avoid locking in 2160ad1e7d28SJulian Elischer * the usual case. Setting td_priority here is essentially an 2161ad1e7d28SJulian Elischer * incomplete workaround for not setting it properly elsewhere. 2162ad1e7d28SJulian Elischer * Now that some interrupt handlers are threads, not setting it 2163ad1e7d28SJulian Elischer * properly elsewhere can clobber it in the window between setting 2164ad1e7d28SJulian Elischer * it here and returning to user mode, so don't waste time setting 2165ad1e7d28SJulian Elischer * it perfectly here. 2166ad1e7d28SJulian Elischer */ 2167ad1e7d28SJulian Elischer KASSERT((td->td_flags & TDF_BORROWING) == 0, 2168ad1e7d28SJulian Elischer ("thread with borrowed priority returning to userland")); 2169ad1e7d28SJulian Elischer if (td->td_priority != td->td_user_pri) { 21707b20fb19SJeff Roberson thread_lock(td); 2171ad1e7d28SJulian Elischer td->td_priority = td->td_user_pri; 2172ad1e7d28SJulian Elischer td->td_base_pri = td->td_user_pri; 217362fa74d9SJeff Roberson tdq_setlowpri(TDQ_SELF(), td); 21747b20fb19SJeff Roberson thread_unlock(td); 2175ad1e7d28SJulian Elischer } 217635e6168fSJeff Roberson } 217735e6168fSJeff Roberson 2178ae7a6b38SJeff Roberson /* 2179ae7a6b38SJeff Roberson * Handle a stathz tick. This is really only relevant for timeshare 2180ae7a6b38SJeff Roberson * threads. 2181ae7a6b38SJeff Roberson */ 218235e6168fSJeff Roberson void 21837cf90fb3SJeff Roberson sched_clock(struct thread *td) 218435e6168fSJeff Roberson { 2185ad1e7d28SJulian Elischer struct tdq *tdq; 2186ad1e7d28SJulian Elischer struct td_sched *ts; 218735e6168fSJeff Roberson 2188ae7a6b38SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 21893f872f85SJeff Roberson tdq = TDQ_SELF(); 21907fcf154aSJeff Roberson #ifdef SMP 21917fcf154aSJeff Roberson /* 21927fcf154aSJeff Roberson * We run the long term load balancer infrequently on the first cpu. 21937fcf154aSJeff Roberson */ 21947fcf154aSJeff Roberson if (balance_tdq == tdq) { 21957fcf154aSJeff Roberson if (balance_ticks && --balance_ticks == 0) 21967fcf154aSJeff Roberson sched_balance(); 21977fcf154aSJeff Roberson } 21987fcf154aSJeff Roberson #endif 21993f872f85SJeff Roberson /* 22001690c6c1SJeff Roberson * Save the old switch count so we have a record of the last ticks 22011690c6c1SJeff Roberson * activity. Initialize the new switch count based on our load. 22021690c6c1SJeff Roberson * If there is some activity seed it to reflect that. 22031690c6c1SJeff Roberson */ 22041690c6c1SJeff Roberson tdq->tdq_oldswitchcnt = tdq->tdq_switchcnt; 22056c47aaaeSJeff Roberson tdq->tdq_switchcnt = tdq->tdq_load; 22061690c6c1SJeff Roberson /* 22073f872f85SJeff Roberson * Advance the insert index once for each tick to ensure that all 22083f872f85SJeff Roberson * threads get a chance to run. 22093f872f85SJeff Roberson */ 22103f872f85SJeff Roberson if (tdq->tdq_idx == tdq->tdq_ridx) { 22113f872f85SJeff Roberson tdq->tdq_idx = (tdq->tdq_idx + 1) % RQ_NQS; 22123f872f85SJeff Roberson if (TAILQ_EMPTY(&tdq->tdq_timeshare.rq_queues[tdq->tdq_ridx])) 22133f872f85SJeff Roberson tdq->tdq_ridx = tdq->tdq_idx; 22143f872f85SJeff Roberson } 22153f872f85SJeff Roberson ts = td->td_sched; 22167295465eSAlexander Motin sched_pctcpu_update(ts, 1); 2217fd0b8c78SJeff Roberson if (td->td_pri_class & PRI_FIFO_BIT) 2218a8949de2SJeff Roberson return; 2219c9a8cba4SJohn Baldwin if (PRI_BASE(td->td_pri_class) == PRI_TIMESHARE) { 2220a8949de2SJeff Roberson /* 2221fd0b8c78SJeff Roberson * We used a tick; charge it to the thread so 2222fd0b8c78SJeff Roberson * that we can compute our interactivity. 222315dc847eSJeff Roberson */ 2224ae7a6b38SJeff Roberson td->td_sched->ts_runtime += tickincr; 22258460a577SJohn Birrell sched_interact_update(td); 222673daf66fSJeff Roberson sched_priority(td); 2227fd0b8c78SJeff Roberson } 2228579895dfSAlexander Motin 222935e6168fSJeff Roberson /* 2230579895dfSAlexander Motin * Force a context switch if the current thread has used up a full 2231579895dfSAlexander Motin * time slice (default is 100ms). 223235e6168fSJeff Roberson */ 2233579895dfSAlexander Motin if (!TD_IS_IDLETHREAD(td) && --ts->ts_slice <= 0) { 223473daf66fSJeff Roberson ts->ts_slice = sched_slice; 22353d7f4117SAlexander Motin td->td_flags |= TDF_NEEDRESCHED | TDF_SLICEEND; 223635e6168fSJeff Roberson } 2237579895dfSAlexander Motin } 223835e6168fSJeff Roberson 2239ae7a6b38SJeff Roberson /* 22407295465eSAlexander Motin * Called once per hz tick. 2241ae7a6b38SJeff Roberson */ 2242ae7a6b38SJeff Roberson void 2243a157e425SAlexander Motin sched_tick(int cnt) 2244ae7a6b38SJeff Roberson { 2245ae7a6b38SJeff Roberson 2246ae7a6b38SJeff Roberson } 2247ae7a6b38SJeff Roberson 2248ae7a6b38SJeff Roberson /* 2249ae7a6b38SJeff Roberson * Return whether the current CPU has runnable tasks. Used for in-kernel 2250ae7a6b38SJeff Roberson * cooperative idle threads. 2251ae7a6b38SJeff Roberson */ 225235e6168fSJeff Roberson int 225335e6168fSJeff Roberson sched_runnable(void) 225435e6168fSJeff Roberson { 2255ad1e7d28SJulian Elischer struct tdq *tdq; 2256b90816f1SJeff Roberson int load; 225735e6168fSJeff Roberson 2258b90816f1SJeff Roberson load = 1; 2259b90816f1SJeff Roberson 2260ad1e7d28SJulian Elischer tdq = TDQ_SELF(); 22613f741ca1SJeff Roberson if ((curthread->td_flags & TDF_IDLETD) != 0) { 2262d2ad694cSJeff Roberson if (tdq->tdq_load > 0) 22633f741ca1SJeff Roberson goto out; 22643f741ca1SJeff Roberson } else 2265d2ad694cSJeff Roberson if (tdq->tdq_load - 1 > 0) 2266b90816f1SJeff Roberson goto out; 2267b90816f1SJeff Roberson load = 0; 2268b90816f1SJeff Roberson out: 2269b90816f1SJeff Roberson return (load); 227035e6168fSJeff Roberson } 227135e6168fSJeff Roberson 2272ae7a6b38SJeff Roberson /* 2273ae7a6b38SJeff Roberson * Choose the highest priority thread to run. The thread is removed from 2274ae7a6b38SJeff Roberson * the run-queue while running however the load remains. For SMP we set 2275ae7a6b38SJeff Roberson * the tdq in the global idle bitmask if it idles here. 2276ae7a6b38SJeff Roberson */ 22777a5e5e2aSJeff Roberson struct thread * 2278c9f25d8fSJeff Roberson sched_choose(void) 2279c9f25d8fSJeff Roberson { 22809727e637SJeff Roberson struct thread *td; 2281ae7a6b38SJeff Roberson struct tdq *tdq; 2282ae7a6b38SJeff Roberson 2283ae7a6b38SJeff Roberson tdq = TDQ_SELF(); 2284ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 22859727e637SJeff Roberson td = tdq_choose(tdq); 22869727e637SJeff Roberson if (td) { 22879727e637SJeff Roberson tdq_runq_rem(tdq, td); 22880502fe2eSJeff Roberson tdq->tdq_lowpri = td->td_priority; 22899727e637SJeff Roberson return (td); 229035e6168fSJeff Roberson } 22910502fe2eSJeff Roberson tdq->tdq_lowpri = PRI_MAX_IDLE; 229262fa74d9SJeff Roberson return (PCPU_GET(idlethread)); 22937a5e5e2aSJeff Roberson } 22947a5e5e2aSJeff Roberson 2295ae7a6b38SJeff Roberson /* 2296ae7a6b38SJeff Roberson * Set owepreempt if necessary. Preemption never happens directly in ULE, 2297ae7a6b38SJeff Roberson * we always request it once we exit a critical section. 2298ae7a6b38SJeff Roberson */ 2299ae7a6b38SJeff Roberson static inline void 2300ae7a6b38SJeff Roberson sched_setpreempt(struct thread *td) 23017a5e5e2aSJeff Roberson { 23027a5e5e2aSJeff Roberson struct thread *ctd; 23037a5e5e2aSJeff Roberson int cpri; 23047a5e5e2aSJeff Roberson int pri; 23057a5e5e2aSJeff Roberson 2306ff256d9cSJeff Roberson THREAD_LOCK_ASSERT(curthread, MA_OWNED); 2307ff256d9cSJeff Roberson 23087a5e5e2aSJeff Roberson ctd = curthread; 23097a5e5e2aSJeff Roberson pri = td->td_priority; 23107a5e5e2aSJeff Roberson cpri = ctd->td_priority; 2311ff256d9cSJeff Roberson if (pri < cpri) 2312ff256d9cSJeff Roberson ctd->td_flags |= TDF_NEEDRESCHED; 23137a5e5e2aSJeff Roberson if (panicstr != NULL || pri >= cpri || cold || TD_IS_INHIBITED(ctd)) 2314ae7a6b38SJeff Roberson return; 2315ff256d9cSJeff Roberson if (!sched_shouldpreempt(pri, cpri, 0)) 2316ae7a6b38SJeff Roberson return; 23177a5e5e2aSJeff Roberson ctd->td_owepreempt = 1; 231835e6168fSJeff Roberson } 231935e6168fSJeff Roberson 2320ae7a6b38SJeff Roberson /* 232173daf66fSJeff Roberson * Add a thread to a thread queue. Select the appropriate runq and add the 232273daf66fSJeff Roberson * thread to it. This is the internal function called when the tdq is 232373daf66fSJeff Roberson * predetermined. 2324ae7a6b38SJeff Roberson */ 232535e6168fSJeff Roberson void 2326ae7a6b38SJeff Roberson tdq_add(struct tdq *tdq, struct thread *td, int flags) 232735e6168fSJeff Roberson { 2328c9f25d8fSJeff Roberson 2329ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 23307a5e5e2aSJeff Roberson KASSERT((td->td_inhibitors == 0), 23317a5e5e2aSJeff Roberson ("sched_add: trying to run inhibited thread")); 23327a5e5e2aSJeff Roberson KASSERT((TD_CAN_RUN(td) || TD_IS_RUNNING(td)), 23337a5e5e2aSJeff Roberson ("sched_add: bad thread state")); 2334b61ce5b0SJeff Roberson KASSERT(td->td_flags & TDF_INMEM, 2335b61ce5b0SJeff Roberson ("sched_add: thread swapped out")); 2336ae7a6b38SJeff Roberson 2337ae7a6b38SJeff Roberson if (td->td_priority < tdq->tdq_lowpri) 2338ae7a6b38SJeff Roberson tdq->tdq_lowpri = td->td_priority; 23399727e637SJeff Roberson tdq_runq_add(tdq, td, flags); 23409727e637SJeff Roberson tdq_load_add(tdq, td); 2341ae7a6b38SJeff Roberson } 2342ae7a6b38SJeff Roberson 2343ae7a6b38SJeff Roberson /* 2344ae7a6b38SJeff Roberson * Select the target thread queue and add a thread to it. Request 2345ae7a6b38SJeff Roberson * preemption or IPI a remote processor if required. 2346ae7a6b38SJeff Roberson */ 2347ae7a6b38SJeff Roberson void 2348ae7a6b38SJeff Roberson sched_add(struct thread *td, int flags) 2349ae7a6b38SJeff Roberson { 2350ae7a6b38SJeff Roberson struct tdq *tdq; 23517b8bfa0dSJeff Roberson #ifdef SMP 2352ae7a6b38SJeff Roberson int cpu; 2353ae7a6b38SJeff Roberson #endif 23548f51ad55SJeff Roberson 23558f51ad55SJeff Roberson KTR_STATE2(KTR_SCHED, "thread", sched_tdname(td), "runq add", 23568f51ad55SJeff Roberson "prio:%d", td->td_priority, KTR_ATTR_LINKED, 23578f51ad55SJeff Roberson sched_tdname(curthread)); 23588f51ad55SJeff Roberson KTR_POINT1(KTR_SCHED, "thread", sched_tdname(curthread), "wokeup", 23598f51ad55SJeff Roberson KTR_ATTR_LINKED, sched_tdname(td)); 2360b3e9e682SRyan Stone SDT_PROBE4(sched, , , enqueue, td, td->td_proc, NULL, 2361b3e9e682SRyan Stone flags & SRQ_PREEMPTED); 2362ae7a6b38SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 2363ae7a6b38SJeff Roberson /* 2364ae7a6b38SJeff Roberson * Recalculate the priority before we select the target cpu or 2365ae7a6b38SJeff Roberson * run-queue. 2366ae7a6b38SJeff Roberson */ 2367ae7a6b38SJeff Roberson if (PRI_BASE(td->td_pri_class) == PRI_TIMESHARE) 2368ae7a6b38SJeff Roberson sched_priority(td); 2369ae7a6b38SJeff Roberson #ifdef SMP 2370ae7a6b38SJeff Roberson /* 2371ae7a6b38SJeff Roberson * Pick the destination cpu and if it isn't ours transfer to the 2372ae7a6b38SJeff Roberson * target cpu. 2373ae7a6b38SJeff Roberson */ 23749727e637SJeff Roberson cpu = sched_pickcpu(td, flags); 23759727e637SJeff Roberson tdq = sched_setcpu(td, cpu, flags); 2376ae7a6b38SJeff Roberson tdq_add(tdq, td, flags); 237773daf66fSJeff Roberson if (cpu != PCPU_GET(cpuid)) { 23789727e637SJeff Roberson tdq_notify(tdq, td); 23797b8bfa0dSJeff Roberson return; 23807b8bfa0dSJeff Roberson } 2381ae7a6b38SJeff Roberson #else 2382ae7a6b38SJeff Roberson tdq = TDQ_SELF(); 2383ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 2384ae7a6b38SJeff Roberson /* 2385ae7a6b38SJeff Roberson * Now that the thread is moving to the run-queue, set the lock 2386ae7a6b38SJeff Roberson * to the scheduler's lock. 2387ae7a6b38SJeff Roberson */ 2388ae7a6b38SJeff Roberson thread_lock_set(td, TDQ_LOCKPTR(tdq)); 2389ae7a6b38SJeff Roberson tdq_add(tdq, td, flags); 23907b8bfa0dSJeff Roberson #endif 2391ae7a6b38SJeff Roberson if (!(flags & SRQ_YIELDING)) 2392ae7a6b38SJeff Roberson sched_setpreempt(td); 239335e6168fSJeff Roberson } 239435e6168fSJeff Roberson 2395ae7a6b38SJeff Roberson /* 2396ae7a6b38SJeff Roberson * Remove a thread from a run-queue without running it. This is used 2397ae7a6b38SJeff Roberson * when we're stealing a thread from a remote queue. Otherwise all threads 2398ae7a6b38SJeff Roberson * exit by calling sched_exit_thread() and sched_throw() themselves. 2399ae7a6b38SJeff Roberson */ 240035e6168fSJeff Roberson void 24017cf90fb3SJeff Roberson sched_rem(struct thread *td) 240235e6168fSJeff Roberson { 2403ad1e7d28SJulian Elischer struct tdq *tdq; 24047cf90fb3SJeff Roberson 24058f51ad55SJeff Roberson KTR_STATE1(KTR_SCHED, "thread", sched_tdname(td), "runq rem", 24068f51ad55SJeff Roberson "prio:%d", td->td_priority); 2407b3e9e682SRyan Stone SDT_PROBE3(sched, , , dequeue, td, td->td_proc, NULL); 24089727e637SJeff Roberson tdq = TDQ_CPU(td->td_sched->ts_cpu); 2409ae7a6b38SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED); 2410ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 24117a5e5e2aSJeff Roberson KASSERT(TD_ON_RUNQ(td), 2412ad1e7d28SJulian Elischer ("sched_rem: thread not on run queue")); 24139727e637SJeff Roberson tdq_runq_rem(tdq, td); 24149727e637SJeff Roberson tdq_load_rem(tdq, td); 24157a5e5e2aSJeff Roberson TD_SET_CAN_RUN(td); 241662fa74d9SJeff Roberson if (td->td_priority == tdq->tdq_lowpri) 241762fa74d9SJeff Roberson tdq_setlowpri(tdq, NULL); 241835e6168fSJeff Roberson } 241935e6168fSJeff Roberson 2420ae7a6b38SJeff Roberson /* 2421ae7a6b38SJeff Roberson * Fetch cpu utilization information. Updates on demand. 2422ae7a6b38SJeff Roberson */ 242335e6168fSJeff Roberson fixpt_t 24247cf90fb3SJeff Roberson sched_pctcpu(struct thread *td) 242535e6168fSJeff Roberson { 242635e6168fSJeff Roberson fixpt_t pctcpu; 2427ad1e7d28SJulian Elischer struct td_sched *ts; 242835e6168fSJeff Roberson 242935e6168fSJeff Roberson pctcpu = 0; 2430ad1e7d28SJulian Elischer ts = td->td_sched; 2431ad1e7d28SJulian Elischer if (ts == NULL) 2432484288deSJeff Roberson return (0); 243335e6168fSJeff Roberson 24343da35a0aSJohn Baldwin THREAD_LOCK_ASSERT(td, MA_OWNED); 24357295465eSAlexander Motin sched_pctcpu_update(ts, TD_IS_RUNNING(td)); 2436ad1e7d28SJulian Elischer if (ts->ts_ticks) { 243735e6168fSJeff Roberson int rtick; 243835e6168fSJeff Roberson 243935e6168fSJeff Roberson /* How many rtick per second ? */ 2440e7d50326SJeff Roberson rtick = min(SCHED_TICK_HZ(ts) / SCHED_TICK_SECS, hz); 2441e7d50326SJeff Roberson pctcpu = (FSCALE * ((FSCALE * rtick)/hz)) >> FSHIFT; 244235e6168fSJeff Roberson } 244335e6168fSJeff Roberson 244435e6168fSJeff Roberson return (pctcpu); 244535e6168fSJeff Roberson } 244635e6168fSJeff Roberson 244762fa74d9SJeff Roberson /* 244862fa74d9SJeff Roberson * Enforce affinity settings for a thread. Called after adjustments to 244962fa74d9SJeff Roberson * cpumask. 245062fa74d9SJeff Roberson */ 2451885d51a3SJeff Roberson void 2452885d51a3SJeff Roberson sched_affinity(struct thread *td) 2453885d51a3SJeff Roberson { 245462fa74d9SJeff Roberson #ifdef SMP 245562fa74d9SJeff Roberson struct td_sched *ts; 245662fa74d9SJeff Roberson 245762fa74d9SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 245862fa74d9SJeff Roberson ts = td->td_sched; 245962fa74d9SJeff Roberson if (THREAD_CAN_SCHED(td, ts->ts_cpu)) 246062fa74d9SJeff Roberson return; 246153a6c8b3SJeff Roberson if (TD_ON_RUNQ(td)) { 246253a6c8b3SJeff Roberson sched_rem(td); 246353a6c8b3SJeff Roberson sched_add(td, SRQ_BORING); 246453a6c8b3SJeff Roberson return; 246553a6c8b3SJeff Roberson } 246662fa74d9SJeff Roberson if (!TD_IS_RUNNING(td)) 246762fa74d9SJeff Roberson return; 246862fa74d9SJeff Roberson /* 24690f7a0ebdSMatthew D Fleming * Force a switch before returning to userspace. If the 24700f7a0ebdSMatthew D Fleming * target thread is not running locally send an ipi to force 24710f7a0ebdSMatthew D Fleming * the issue. 247262fa74d9SJeff Roberson */ 2473a8103ae8SJohn Baldwin td->td_flags |= TDF_NEEDRESCHED; 24740f7a0ebdSMatthew D Fleming if (td != curthread) 24750f7a0ebdSMatthew D Fleming ipi_cpu(ts->ts_cpu, IPI_PREEMPT); 247662fa74d9SJeff Roberson #endif 2477885d51a3SJeff Roberson } 2478885d51a3SJeff Roberson 2479ae7a6b38SJeff Roberson /* 2480ae7a6b38SJeff Roberson * Bind a thread to a target cpu. 2481ae7a6b38SJeff Roberson */ 24829bacd788SJeff Roberson void 24839bacd788SJeff Roberson sched_bind(struct thread *td, int cpu) 24849bacd788SJeff Roberson { 2485ad1e7d28SJulian Elischer struct td_sched *ts; 24869bacd788SJeff Roberson 2487c47f202bSJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED|MA_NOTRECURSED); 24881d7830edSJohn Baldwin KASSERT(td == curthread, ("sched_bind: can only bind curthread")); 2489ad1e7d28SJulian Elischer ts = td->td_sched; 24906b2f763fSJeff Roberson if (ts->ts_flags & TSF_BOUND) 2491c95d2db2SJeff Roberson sched_unbind(td); 24920f7a0ebdSMatthew D Fleming KASSERT(THREAD_CAN_MIGRATE(td), ("%p must be migratable", td)); 2493ad1e7d28SJulian Elischer ts->ts_flags |= TSF_BOUND; 24946b2f763fSJeff Roberson sched_pin(); 249580f86c9fSJeff Roberson if (PCPU_GET(cpuid) == cpu) 24969bacd788SJeff Roberson return; 24976b2f763fSJeff Roberson ts->ts_cpu = cpu; 24989bacd788SJeff Roberson /* When we return from mi_switch we'll be on the correct cpu. */ 2499279f949eSPoul-Henning Kamp mi_switch(SW_VOL, NULL); 25009bacd788SJeff Roberson } 25019bacd788SJeff Roberson 2502ae7a6b38SJeff Roberson /* 2503ae7a6b38SJeff Roberson * Release a bound thread. 2504ae7a6b38SJeff Roberson */ 25059bacd788SJeff Roberson void 25069bacd788SJeff Roberson sched_unbind(struct thread *td) 25079bacd788SJeff Roberson { 2508e7d50326SJeff Roberson struct td_sched *ts; 2509e7d50326SJeff Roberson 25107b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 25111d7830edSJohn Baldwin KASSERT(td == curthread, ("sched_unbind: can only bind curthread")); 2512e7d50326SJeff Roberson ts = td->td_sched; 25136b2f763fSJeff Roberson if ((ts->ts_flags & TSF_BOUND) == 0) 25146b2f763fSJeff Roberson return; 2515e7d50326SJeff Roberson ts->ts_flags &= ~TSF_BOUND; 2516e7d50326SJeff Roberson sched_unpin(); 25179bacd788SJeff Roberson } 25189bacd788SJeff Roberson 251935e6168fSJeff Roberson int 2520ebccf1e3SJoseph Koshy sched_is_bound(struct thread *td) 2521ebccf1e3SJoseph Koshy { 25227b20fb19SJeff Roberson THREAD_LOCK_ASSERT(td, MA_OWNED); 2523ad1e7d28SJulian Elischer return (td->td_sched->ts_flags & TSF_BOUND); 2524ebccf1e3SJoseph Koshy } 2525ebccf1e3SJoseph Koshy 2526ae7a6b38SJeff Roberson /* 2527ae7a6b38SJeff Roberson * Basic yield call. 2528ae7a6b38SJeff Roberson */ 252936ec198bSDavid Xu void 253036ec198bSDavid Xu sched_relinquish(struct thread *td) 253136ec198bSDavid Xu { 25327b20fb19SJeff Roberson thread_lock(td); 25338df78c41SJeff Roberson mi_switch(SW_VOL | SWT_RELINQUISH, NULL); 25347b20fb19SJeff Roberson thread_unlock(td); 253536ec198bSDavid Xu } 253636ec198bSDavid Xu 2537ae7a6b38SJeff Roberson /* 2538ae7a6b38SJeff Roberson * Return the total system load. 2539ae7a6b38SJeff Roberson */ 2540ebccf1e3SJoseph Koshy int 254133916c36SJeff Roberson sched_load(void) 254233916c36SJeff Roberson { 254333916c36SJeff Roberson #ifdef SMP 254433916c36SJeff Roberson int total; 254533916c36SJeff Roberson int i; 254633916c36SJeff Roberson 254733916c36SJeff Roberson total = 0; 25483aa6d94eSJohn Baldwin CPU_FOREACH(i) 254962fa74d9SJeff Roberson total += TDQ_CPU(i)->tdq_sysload; 255033916c36SJeff Roberson return (total); 255133916c36SJeff Roberson #else 2552d2ad694cSJeff Roberson return (TDQ_SELF()->tdq_sysload); 255333916c36SJeff Roberson #endif 255433916c36SJeff Roberson } 255533916c36SJeff Roberson 255633916c36SJeff Roberson int 255735e6168fSJeff Roberson sched_sizeof_proc(void) 255835e6168fSJeff Roberson { 255935e6168fSJeff Roberson return (sizeof(struct proc)); 256035e6168fSJeff Roberson } 256135e6168fSJeff Roberson 256235e6168fSJeff Roberson int 256335e6168fSJeff Roberson sched_sizeof_thread(void) 256435e6168fSJeff Roberson { 256535e6168fSJeff Roberson return (sizeof(struct thread) + sizeof(struct td_sched)); 256635e6168fSJeff Roberson } 2567b41f1452SDavid Xu 256809c8a4ccSJeff Roberson #ifdef SMP 256909c8a4ccSJeff Roberson #define TDQ_IDLESPIN(tdq) \ 257009c8a4ccSJeff Roberson ((tdq)->tdq_cg != NULL && ((tdq)->tdq_cg->cg_flags & CG_FLAG_THREAD) == 0) 257109c8a4ccSJeff Roberson #else 257209c8a4ccSJeff Roberson #define TDQ_IDLESPIN(tdq) 1 257309c8a4ccSJeff Roberson #endif 257409c8a4ccSJeff Roberson 25757a5e5e2aSJeff Roberson /* 25767a5e5e2aSJeff Roberson * The actual idle process. 25777a5e5e2aSJeff Roberson */ 25787a5e5e2aSJeff Roberson void 25797a5e5e2aSJeff Roberson sched_idletd(void *dummy) 25807a5e5e2aSJeff Roberson { 25817a5e5e2aSJeff Roberson struct thread *td; 2582ae7a6b38SJeff Roberson struct tdq *tdq; 25831690c6c1SJeff Roberson int switchcnt; 25841690c6c1SJeff Roberson int i; 25857a5e5e2aSJeff Roberson 25867b55ab05SJeff Roberson mtx_assert(&Giant, MA_NOTOWNED); 25877a5e5e2aSJeff Roberson td = curthread; 2588ae7a6b38SJeff Roberson tdq = TDQ_SELF(); 2589ba96d2d8SJohn Baldwin THREAD_NO_SLEEPING(); 2590ae7a6b38SJeff Roberson for (;;) { 2591ae7a6b38SJeff Roberson #ifdef SMP 25921690c6c1SJeff Roberson if (tdq_idled(tdq) == 0) 25931690c6c1SJeff Roberson continue; 2594ae7a6b38SJeff Roberson #endif 25951690c6c1SJeff Roberson switchcnt = tdq->tdq_switchcnt + tdq->tdq_oldswitchcnt; 25961690c6c1SJeff Roberson /* 25971690c6c1SJeff Roberson * If we're switching very frequently, spin while checking 25981690c6c1SJeff Roberson * for load rather than entering a low power state that 25997b55ab05SJeff Roberson * may require an IPI. However, don't do any busy 26007b55ab05SJeff Roberson * loops while on SMT machines as this simply steals 26017b55ab05SJeff Roberson * cycles from cores doing useful work. 26021690c6c1SJeff Roberson */ 260309c8a4ccSJeff Roberson if (TDQ_IDLESPIN(tdq) && switchcnt > sched_idlespinthresh) { 26041690c6c1SJeff Roberson for (i = 0; i < sched_idlespins; i++) { 26051690c6c1SJeff Roberson if (tdq->tdq_load) 26061690c6c1SJeff Roberson break; 26071690c6c1SJeff Roberson cpu_spinwait(); 26081690c6c1SJeff Roberson } 26091690c6c1SJeff Roberson } 26106c47aaaeSJeff Roberson switchcnt = tdq->tdq_switchcnt + tdq->tdq_oldswitchcnt; 26119f9ad565SAlexander Motin if (tdq->tdq_load == 0) { 26129f9ad565SAlexander Motin tdq->tdq_cpu_idle = 1; 26139f9ad565SAlexander Motin if (tdq->tdq_load == 0) { 2614a157e425SAlexander Motin cpu_idle(switchcnt > sched_idlespinthresh * 4); 26159f9ad565SAlexander Motin tdq->tdq_switchcnt++; 26169f9ad565SAlexander Motin } 26179f9ad565SAlexander Motin tdq->tdq_cpu_idle = 0; 26189f9ad565SAlexander Motin } 26191690c6c1SJeff Roberson if (tdq->tdq_load) { 26201690c6c1SJeff Roberson thread_lock(td); 26211690c6c1SJeff Roberson mi_switch(SW_VOL | SWT_IDLE, NULL); 26221690c6c1SJeff Roberson thread_unlock(td); 26231690c6c1SJeff Roberson } 2624ae7a6b38SJeff Roberson } 2625b41f1452SDavid Xu } 2626e7d50326SJeff Roberson 26277b20fb19SJeff Roberson /* 26287b20fb19SJeff Roberson * A CPU is entering for the first time or a thread is exiting. 26297b20fb19SJeff Roberson */ 26307b20fb19SJeff Roberson void 26317b20fb19SJeff Roberson sched_throw(struct thread *td) 26327b20fb19SJeff Roberson { 263359c68134SJeff Roberson struct thread *newtd; 2634ae7a6b38SJeff Roberson struct tdq *tdq; 2635ae7a6b38SJeff Roberson 2636ae7a6b38SJeff Roberson tdq = TDQ_SELF(); 26377b20fb19SJeff Roberson if (td == NULL) { 2638ae7a6b38SJeff Roberson /* Correct spinlock nesting and acquire the correct lock. */ 2639ae7a6b38SJeff Roberson TDQ_LOCK(tdq); 26407b20fb19SJeff Roberson spinlock_exit(); 26417e3a96eaSJohn Baldwin PCPU_SET(switchtime, cpu_ticks()); 26427e3a96eaSJohn Baldwin PCPU_SET(switchticks, ticks); 26437b20fb19SJeff Roberson } else { 2644ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 26459727e637SJeff Roberson tdq_load_rem(tdq, td); 2646eea4f254SJeff Roberson lock_profile_release_lock(&TDQ_LOCKPTR(tdq)->lock_object); 26477b20fb19SJeff Roberson } 26487b20fb19SJeff Roberson KASSERT(curthread->td_md.md_spinlock_count == 1, ("invalid count")); 264959c68134SJeff Roberson newtd = choosethread(); 265059c68134SJeff Roberson TDQ_LOCKPTR(tdq)->mtx_lock = (uintptr_t)newtd; 265159c68134SJeff Roberson cpu_throw(td, newtd); /* doesn't return */ 26527b20fb19SJeff Roberson } 26537b20fb19SJeff Roberson 2654ae7a6b38SJeff Roberson /* 2655ae7a6b38SJeff Roberson * This is called from fork_exit(). Just acquire the correct locks and 2656ae7a6b38SJeff Roberson * let fork do the rest of the work. 2657ae7a6b38SJeff Roberson */ 26587b20fb19SJeff Roberson void 2659fe54587fSJeff Roberson sched_fork_exit(struct thread *td) 26607b20fb19SJeff Roberson { 2661ae7a6b38SJeff Roberson struct td_sched *ts; 2662ae7a6b38SJeff Roberson struct tdq *tdq; 2663ae7a6b38SJeff Roberson int cpuid; 26647b20fb19SJeff Roberson 26657b20fb19SJeff Roberson /* 26667b20fb19SJeff Roberson * Finish setting up thread glue so that it begins execution in a 2667ae7a6b38SJeff Roberson * non-nested critical section with the scheduler lock held. 26687b20fb19SJeff Roberson */ 2669ae7a6b38SJeff Roberson cpuid = PCPU_GET(cpuid); 2670ae7a6b38SJeff Roberson tdq = TDQ_CPU(cpuid); 2671ae7a6b38SJeff Roberson ts = td->td_sched; 2672ae7a6b38SJeff Roberson if (TD_IS_IDLETHREAD(td)) 2673ae7a6b38SJeff Roberson td->td_lock = TDQ_LOCKPTR(tdq); 2674ae7a6b38SJeff Roberson MPASS(td->td_lock == TDQ_LOCKPTR(tdq)); 2675ae7a6b38SJeff Roberson td->td_oncpu = cpuid; 267659c68134SJeff Roberson TDQ_LOCK_ASSERT(tdq, MA_OWNED | MA_NOTRECURSED); 2677eea4f254SJeff Roberson lock_profile_obtain_lock_success( 2678eea4f254SJeff Roberson &TDQ_LOCKPTR(tdq)->lock_object, 0, 0, __FILE__, __LINE__); 26797b20fb19SJeff Roberson } 26807b20fb19SJeff Roberson 26818f51ad55SJeff Roberson /* 26828f51ad55SJeff Roberson * Create on first use to catch odd startup conditons. 26838f51ad55SJeff Roberson */ 26848f51ad55SJeff Roberson char * 26858f51ad55SJeff Roberson sched_tdname(struct thread *td) 26868f51ad55SJeff Roberson { 26878f51ad55SJeff Roberson #ifdef KTR 26888f51ad55SJeff Roberson struct td_sched *ts; 26898f51ad55SJeff Roberson 26908f51ad55SJeff Roberson ts = td->td_sched; 26918f51ad55SJeff Roberson if (ts->ts_name[0] == '\0') 26928f51ad55SJeff Roberson snprintf(ts->ts_name, sizeof(ts->ts_name), 26938f51ad55SJeff Roberson "%s tid %d", td->td_name, td->td_tid); 26948f51ad55SJeff Roberson return (ts->ts_name); 26958f51ad55SJeff Roberson #else 26968f51ad55SJeff Roberson return (td->td_name); 26978f51ad55SJeff Roberson #endif 26988f51ad55SJeff Roberson } 26998f51ad55SJeff Roberson 270044ad5475SJohn Baldwin #ifdef KTR 270144ad5475SJohn Baldwin void 270244ad5475SJohn Baldwin sched_clear_tdname(struct thread *td) 270344ad5475SJohn Baldwin { 270444ad5475SJohn Baldwin struct td_sched *ts; 270544ad5475SJohn Baldwin 270644ad5475SJohn Baldwin ts = td->td_sched; 270744ad5475SJohn Baldwin ts->ts_name[0] = '\0'; 270844ad5475SJohn Baldwin } 270944ad5475SJohn Baldwin #endif 271044ad5475SJohn Baldwin 271107095abfSIvan Voras #ifdef SMP 271207095abfSIvan Voras 271307095abfSIvan Voras /* 271407095abfSIvan Voras * Build the CPU topology dump string. Is recursively called to collect 271507095abfSIvan Voras * the topology tree. 271607095abfSIvan Voras */ 271707095abfSIvan Voras static int 271807095abfSIvan Voras sysctl_kern_sched_topology_spec_internal(struct sbuf *sb, struct cpu_group *cg, 271907095abfSIvan Voras int indent) 272007095abfSIvan Voras { 272171a19bdcSAttilio Rao char cpusetbuf[CPUSETBUFSIZ]; 272207095abfSIvan Voras int i, first; 272307095abfSIvan Voras 272407095abfSIvan Voras sbuf_printf(sb, "%*s<group level=\"%d\" cache-level=\"%d\">\n", indent, 272519b8a6dbSAndriy Gapon "", 1 + indent / 2, cg->cg_level); 272671a19bdcSAttilio Rao sbuf_printf(sb, "%*s <cpu count=\"%d\" mask=\"%s\">", indent, "", 272771a19bdcSAttilio Rao cg->cg_count, cpusetobj_strprint(cpusetbuf, &cg->cg_mask)); 272807095abfSIvan Voras first = TRUE; 272907095abfSIvan Voras for (i = 0; i < MAXCPU; i++) { 273071a19bdcSAttilio Rao if (CPU_ISSET(i, &cg->cg_mask)) { 273107095abfSIvan Voras if (!first) 273207095abfSIvan Voras sbuf_printf(sb, ", "); 273307095abfSIvan Voras else 273407095abfSIvan Voras first = FALSE; 273507095abfSIvan Voras sbuf_printf(sb, "%d", i); 273607095abfSIvan Voras } 273707095abfSIvan Voras } 273807095abfSIvan Voras sbuf_printf(sb, "</cpu>\n"); 273907095abfSIvan Voras 274007095abfSIvan Voras if (cg->cg_flags != 0) { 2741611daf7eSIvan Voras sbuf_printf(sb, "%*s <flags>", indent, ""); 274207095abfSIvan Voras if ((cg->cg_flags & CG_FLAG_HTT) != 0) 27435368befbSIvan Voras sbuf_printf(sb, "<flag name=\"HTT\">HTT group</flag>"); 2744a401f2d0SIvan Voras if ((cg->cg_flags & CG_FLAG_THREAD) != 0) 2745a401f2d0SIvan Voras sbuf_printf(sb, "<flag name=\"THREAD\">THREAD group</flag>"); 27467b55ab05SJeff Roberson if ((cg->cg_flags & CG_FLAG_SMT) != 0) 2747a401f2d0SIvan Voras sbuf_printf(sb, "<flag name=\"SMT\">SMT group</flag>"); 274807095abfSIvan Voras sbuf_printf(sb, "</flags>\n"); 2749611daf7eSIvan Voras } 275007095abfSIvan Voras 275107095abfSIvan Voras if (cg->cg_children > 0) { 275207095abfSIvan Voras sbuf_printf(sb, "%*s <children>\n", indent, ""); 275307095abfSIvan Voras for (i = 0; i < cg->cg_children; i++) 275407095abfSIvan Voras sysctl_kern_sched_topology_spec_internal(sb, 275507095abfSIvan Voras &cg->cg_child[i], indent+2); 275607095abfSIvan Voras sbuf_printf(sb, "%*s </children>\n", indent, ""); 275707095abfSIvan Voras } 275807095abfSIvan Voras sbuf_printf(sb, "%*s</group>\n", indent, ""); 275907095abfSIvan Voras return (0); 276007095abfSIvan Voras } 276107095abfSIvan Voras 276207095abfSIvan Voras /* 276307095abfSIvan Voras * Sysctl handler for retrieving topology dump. It's a wrapper for 276407095abfSIvan Voras * the recursive sysctl_kern_smp_topology_spec_internal(). 276507095abfSIvan Voras */ 276607095abfSIvan Voras static int 276707095abfSIvan Voras sysctl_kern_sched_topology_spec(SYSCTL_HANDLER_ARGS) 276807095abfSIvan Voras { 276907095abfSIvan Voras struct sbuf *topo; 277007095abfSIvan Voras int err; 277107095abfSIvan Voras 277207095abfSIvan Voras KASSERT(cpu_top != NULL, ("cpu_top isn't initialized")); 277307095abfSIvan Voras 2774aa880b90SIvan Voras topo = sbuf_new(NULL, NULL, 500, SBUF_AUTOEXTEND); 277507095abfSIvan Voras if (topo == NULL) 277607095abfSIvan Voras return (ENOMEM); 277707095abfSIvan Voras 277807095abfSIvan Voras sbuf_printf(topo, "<groups>\n"); 277907095abfSIvan Voras err = sysctl_kern_sched_topology_spec_internal(topo, cpu_top, 1); 278007095abfSIvan Voras sbuf_printf(topo, "</groups>\n"); 278107095abfSIvan Voras 278207095abfSIvan Voras if (err == 0) { 278307095abfSIvan Voras sbuf_finish(topo); 278407095abfSIvan Voras err = SYSCTL_OUT(req, sbuf_data(topo), sbuf_len(topo)); 278507095abfSIvan Voras } 278607095abfSIvan Voras sbuf_delete(topo); 278707095abfSIvan Voras return (err); 278807095abfSIvan Voras } 2789b67cc292SDavid Xu 279007095abfSIvan Voras #endif 279107095abfSIvan Voras 2792579895dfSAlexander Motin static int 2793579895dfSAlexander Motin sysctl_kern_quantum(SYSCTL_HANDLER_ARGS) 2794579895dfSAlexander Motin { 2795579895dfSAlexander Motin int error, new_val, period; 2796579895dfSAlexander Motin 2797579895dfSAlexander Motin period = 1000000 / realstathz; 2798579895dfSAlexander Motin new_val = period * sched_slice; 2799579895dfSAlexander Motin error = sysctl_handle_int(oidp, &new_val, 0, req); 2800579895dfSAlexander Motin if (error != 0 || req->newptr == NULL) 2801579895dfSAlexander Motin return (error); 2802579895dfSAlexander Motin if (new_val <= 0) 2803579895dfSAlexander Motin return (EINVAL); 280437f4e025SAlexander Motin sched_slice = imax(1, (new_val + period / 2) / period); 280537f4e025SAlexander Motin hogticks = imax(1, (2 * hz * sched_slice + realstathz / 2) / 280637f4e025SAlexander Motin realstathz); 2807579895dfSAlexander Motin return (0); 2808579895dfSAlexander Motin } 2809579895dfSAlexander Motin 28109727e637SJeff Roberson SYSCTL_NODE(_kern, OID_AUTO, sched, CTLFLAG_RW, 0, "Scheduler"); 2811ae7a6b38SJeff Roberson SYSCTL_STRING(_kern_sched, OID_AUTO, name, CTLFLAG_RD, "ULE", 0, 2812e7d50326SJeff Roberson "Scheduler name"); 2813579895dfSAlexander Motin SYSCTL_PROC(_kern_sched, OID_AUTO, quantum, CTLTYPE_INT | CTLFLAG_RW, 2814579895dfSAlexander Motin NULL, 0, sysctl_kern_quantum, "I", 281537f4e025SAlexander Motin "Quantum for timeshare threads in microseconds"); 2816ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, slice, CTLFLAG_RW, &sched_slice, 0, 281737f4e025SAlexander Motin "Quantum for timeshare threads in stathz ticks"); 2818ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, interact, CTLFLAG_RW, &sched_interact, 0, 2819ae7a6b38SJeff Roberson "Interactivity score threshold"); 282037f4e025SAlexander Motin SYSCTL_INT(_kern_sched, OID_AUTO, preempt_thresh, CTLFLAG_RW, 282137f4e025SAlexander Motin &preempt_thresh, 0, 282237f4e025SAlexander Motin "Maximal (lowest) priority for preemption"); 282337f4e025SAlexander Motin SYSCTL_INT(_kern_sched, OID_AUTO, static_boost, CTLFLAG_RW, &static_boost, 0, 282437f4e025SAlexander Motin "Assign static kernel priorities to sleeping threads"); 282537f4e025SAlexander Motin SYSCTL_INT(_kern_sched, OID_AUTO, idlespins, CTLFLAG_RW, &sched_idlespins, 0, 282637f4e025SAlexander Motin "Number of times idle thread will spin waiting for new work"); 282737f4e025SAlexander Motin SYSCTL_INT(_kern_sched, OID_AUTO, idlespinthresh, CTLFLAG_RW, 282837f4e025SAlexander Motin &sched_idlespinthresh, 0, 282937f4e025SAlexander Motin "Threshold before we will permit idle thread spinning"); 28307b8bfa0dSJeff Roberson #ifdef SMP 2831ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, affinity, CTLFLAG_RW, &affinity, 0, 2832ae7a6b38SJeff Roberson "Number of hz ticks to keep thread affinity for"); 2833ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, balance, CTLFLAG_RW, &rebalance, 0, 2834ae7a6b38SJeff Roberson "Enables the long-term load balancer"); 28357fcf154aSJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, balance_interval, CTLFLAG_RW, 28367fcf154aSJeff Roberson &balance_interval, 0, 2837579895dfSAlexander Motin "Average period in stathz ticks to run the long-term balancer"); 2838ae7a6b38SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, steal_idle, CTLFLAG_RW, &steal_idle, 0, 2839ae7a6b38SJeff Roberson "Attempts to steal work from other cores before idling"); 284028994a58SJeff Roberson SYSCTL_INT(_kern_sched, OID_AUTO, steal_thresh, CTLFLAG_RW, &steal_thresh, 0, 284137f4e025SAlexander Motin "Minimum load on remote CPU before we'll steal"); 284207095abfSIvan Voras SYSCTL_PROC(_kern_sched, OID_AUTO, topology_spec, CTLTYPE_STRING | 284307095abfSIvan Voras CTLFLAG_RD, NULL, 0, sysctl_kern_sched_topology_spec, "A", 284407095abfSIvan Voras "XML dump of detected CPU topology"); 28457b8bfa0dSJeff Roberson #endif 2846e7d50326SJeff Roberson 284754b0e65fSJeff Roberson /* ps compat. All cpu percentages from ULE are weighted. */ 2848a5423ea3SJeff Roberson static int ccpu = 0; 2849e7d50326SJeff Roberson SYSCTL_INT(_kern, OID_AUTO, ccpu, CTLFLAG_RD, &ccpu, 0, ""); 2850