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1 | jermar | 1 | /* |
2 | * Copyright (C) 2001-2004 Jakub Jermar |
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3 | * All rights reserved. |
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4 | * |
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5 | * Redistribution and use in source and binary forms, with or without |
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6 | * modification, are permitted provided that the following conditions |
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7 | * are met: |
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8 | * |
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9 | * - Redistributions of source code must retain the above copyright |
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10 | * notice, this list of conditions and the following disclaimer. |
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11 | * - Redistributions in binary form must reproduce the above copyright |
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12 | * notice, this list of conditions and the following disclaimer in the |
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13 | * documentation and/or other materials provided with the distribution. |
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14 | * - The name of the author may not be used to endorse or promote products |
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15 | * derived from this software without specific prior written permission. |
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16 | * |
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17 | * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR |
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18 | * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES |
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19 | * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. |
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20 | * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, |
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21 | * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT |
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22 | * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, |
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23 | * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY |
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24 | * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT |
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25 | * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF |
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26 | * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. |
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27 | */ |
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28 | |||
29 | #include <proc/scheduler.h> |
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30 | #include <proc/thread.h> |
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31 | #include <proc/task.h> |
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378 | jermar | 32 | #include <mm/heap.h> |
33 | #include <mm/frame.h> |
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34 | #include <mm/page.h> |
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703 | jermar | 35 | #include <mm/as.h> |
378 | jermar | 36 | #include <arch/asm.h> |
37 | #include <arch/faddr.h> |
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38 | #include <arch/atomic.h> |
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39 | #include <synch/spinlock.h> |
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1 | jermar | 40 | #include <config.h> |
41 | #include <context.h> |
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42 | #include <func.h> |
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43 | #include <arch.h> |
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44 | #include <list.h> |
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68 | decky | 45 | #include <panic.h> |
1 | jermar | 46 | #include <typedefs.h> |
378 | jermar | 47 | #include <cpu.h> |
195 | vana | 48 | #include <print.h> |
227 | jermar | 49 | #include <debug.h> |
1 | jermar | 50 | |
475 | jermar | 51 | atomic_t nrdy; |
195 | vana | 52 | |
118 | jermar | 53 | /** Take actions before new thread runs |
107 | decky | 54 | * |
118 | jermar | 55 | * Perform actions that need to be |
56 | * taken before the newly selected |
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57 | * tread is passed control. |
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107 | decky | 58 | * |
59 | */ |
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52 | vana | 60 | void before_thread_runs(void) |
61 | { |
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309 | palkovsky | 62 | before_thread_runs_arch(); |
458 | decky | 63 | #ifdef CONFIG_FPU_LAZY |
309 | palkovsky | 64 | if(THREAD==CPU->fpu_owner) |
65 | fpu_enable(); |
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66 | else |
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67 | fpu_disable(); |
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68 | #else |
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69 | fpu_enable(); |
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70 | if (THREAD->fpu_context_exists) |
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71 | fpu_context_restore(&(THREAD->saved_fpu_context)); |
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72 | else { |
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73 | fpu_init(); |
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74 | THREAD->fpu_context_exists=1; |
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75 | } |
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76 | #endif |
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52 | vana | 77 | } |
78 | |||
458 | decky | 79 | #ifdef CONFIG_FPU_LAZY |
309 | palkovsky | 80 | void scheduler_fpu_lazy_request(void) |
81 | { |
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82 | fpu_enable(); |
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83 | if (CPU->fpu_owner != NULL) { |
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84 | fpu_context_save(&CPU->fpu_owner->saved_fpu_context); |
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85 | /* don't prevent migration */ |
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86 | CPU->fpu_owner->fpu_context_engaged=0; |
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87 | } |
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88 | if (THREAD->fpu_context_exists) |
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89 | fpu_context_restore(&THREAD->saved_fpu_context); |
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90 | else { |
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91 | fpu_init(); |
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92 | THREAD->fpu_context_exists=1; |
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93 | } |
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94 | CPU->fpu_owner=THREAD; |
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95 | THREAD->fpu_context_engaged = 1; |
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96 | } |
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97 | #endif |
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52 | vana | 98 | |
107 | decky | 99 | /** Initialize scheduler |
100 | * |
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101 | * Initialize kernel scheduler. |
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102 | * |
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103 | */ |
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1 | jermar | 104 | void scheduler_init(void) |
105 | { |
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106 | } |
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107 | |||
107 | decky | 108 | |
109 | /** Get thread to be scheduled |
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110 | * |
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111 | * Get the optimal thread to be scheduled |
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109 | jermar | 112 | * according to thread accounting and scheduler |
107 | decky | 113 | * policy. |
114 | * |
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115 | * @return Thread to be scheduled. |
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116 | * |
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117 | */ |
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483 | jermar | 118 | static thread_t *find_best_thread(void) |
1 | jermar | 119 | { |
120 | thread_t *t; |
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121 | runq_t *r; |
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783 | palkovsky | 122 | int i; |
1 | jermar | 123 | |
227 | jermar | 124 | ASSERT(CPU != NULL); |
125 | |||
1 | jermar | 126 | loop: |
413 | jermar | 127 | interrupts_enable(); |
1 | jermar | 128 | |
783 | palkovsky | 129 | if (atomic_get(&CPU->nrdy) == 0) { |
1 | jermar | 130 | /* |
131 | * For there was nothing to run, the CPU goes to sleep |
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132 | * until a hardware interrupt or an IPI comes. |
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133 | * This improves energy saving and hyperthreading. |
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784 | palkovsky | 134 | * |
135 | * - we might get an interrupt here that makes some thread runnable, |
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136 | * in such a case we must wait for the next quantum to come |
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1 | jermar | 137 | */ |
138 | cpu_sleep(); |
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139 | goto loop; |
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140 | } |
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141 | |||
413 | jermar | 142 | interrupts_disable(); |
114 | jermar | 143 | |
144 | i = 0; |
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145 | for (; i<RQ_COUNT; i++) { |
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15 | jermar | 146 | r = &CPU->rq[i]; |
1 | jermar | 147 | spinlock_lock(&r->lock); |
148 | if (r->n == 0) { |
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149 | /* |
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150 | * If this queue is empty, try a lower-priority queue. |
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151 | */ |
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152 | spinlock_unlock(&r->lock); |
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153 | continue; |
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154 | } |
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213 | jermar | 155 | |
783 | palkovsky | 156 | atomic_dec(&CPU->nrdy); |
475 | jermar | 157 | atomic_dec(&nrdy); |
1 | jermar | 158 | r->n--; |
159 | |||
160 | /* |
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161 | * Take the first thread from the queue. |
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162 | */ |
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163 | t = list_get_instance(r->rq_head.next, thread_t, rq_link); |
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164 | list_remove(&t->rq_link); |
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165 | |||
166 | spinlock_unlock(&r->lock); |
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167 | |||
168 | spinlock_lock(&t->lock); |
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15 | jermar | 169 | t->cpu = CPU; |
1 | jermar | 170 | |
171 | t->ticks = us2ticks((i+1)*10000); |
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413 | jermar | 172 | t->priority = i; /* eventually correct rq index */ |
1 | jermar | 173 | |
174 | /* |
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175 | * Clear the X_STOLEN flag so that t can be migrated when load balancing needs emerge. |
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176 | */ |
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177 | t->flags &= ~X_STOLEN; |
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178 | spinlock_unlock(&t->lock); |
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179 | |||
180 | return t; |
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181 | } |
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182 | goto loop; |
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183 | |||
184 | } |
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185 | |||
107 | decky | 186 | |
187 | /** Prevent rq starvation |
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188 | * |
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189 | * Prevent low priority threads from starving in rq's. |
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190 | * |
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191 | * When the function decides to relink rq's, it reconnects |
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192 | * respective pointers so that in result threads with 'pri' |
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193 | * greater or equal 'start' are moved to a higher-priority queue. |
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194 | * |
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195 | * @param start Threshold priority. |
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196 | * |
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1 | jermar | 197 | */ |
452 | decky | 198 | static void relink_rq(int start) |
1 | jermar | 199 | { |
200 | link_t head; |
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201 | runq_t *r; |
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202 | int i, n; |
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203 | |||
204 | list_initialize(&head); |
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15 | jermar | 205 | spinlock_lock(&CPU->lock); |
206 | if (CPU->needs_relink > NEEDS_RELINK_MAX) { |
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1 | jermar | 207 | for (i = start; i<RQ_COUNT-1; i++) { |
208 | /* remember and empty rq[i + 1] */ |
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15 | jermar | 209 | r = &CPU->rq[i + 1]; |
1 | jermar | 210 | spinlock_lock(&r->lock); |
211 | list_concat(&head, &r->rq_head); |
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212 | n = r->n; |
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213 | r->n = 0; |
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214 | spinlock_unlock(&r->lock); |
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215 | |||
216 | /* append rq[i + 1] to rq[i] */ |
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15 | jermar | 217 | r = &CPU->rq[i]; |
1 | jermar | 218 | spinlock_lock(&r->lock); |
219 | list_concat(&r->rq_head, &head); |
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220 | r->n += n; |
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221 | spinlock_unlock(&r->lock); |
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222 | } |
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15 | jermar | 223 | CPU->needs_relink = 0; |
1 | jermar | 224 | } |
784 | palkovsky | 225 | spinlock_unlock(&CPU->lock); |
1 | jermar | 226 | |
227 | } |
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228 | |||
107 | decky | 229 | |
230 | /** Scheduler stack switch wrapper |
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231 | * |
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232 | * Second part of the scheduler() function |
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233 | * using new stack. Handling the actual context |
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234 | * switch to a new thread. |
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235 | * |
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236 | */ |
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452 | decky | 237 | static void scheduler_separated_stack(void) |
1 | jermar | 238 | { |
239 | int priority; |
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240 | |||
227 | jermar | 241 | ASSERT(CPU != NULL); |
242 | |||
15 | jermar | 243 | if (THREAD) { |
244 | switch (THREAD->state) { |
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1 | jermar | 245 | case Running: |
125 | jermar | 246 | THREAD->state = Ready; |
247 | spinlock_unlock(&THREAD->lock); |
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248 | thread_ready(THREAD); |
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249 | break; |
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1 | jermar | 250 | |
251 | case Exiting: |
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125 | jermar | 252 | frame_free((__address) THREAD->kstack); |
253 | if (THREAD->ustack) { |
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254 | frame_free((__address) THREAD->ustack); |
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255 | } |
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1 | jermar | 256 | |
125 | jermar | 257 | /* |
258 | * Detach from the containing task. |
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259 | */ |
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260 | spinlock_lock(&TASK->lock); |
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261 | list_remove(&THREAD->th_link); |
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262 | spinlock_unlock(&TASK->lock); |
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73 | vana | 263 | |
125 | jermar | 264 | spinlock_unlock(&THREAD->lock); |
265 | |||
266 | spinlock_lock(&threads_lock); |
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267 | list_remove(&THREAD->threads_link); |
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268 | spinlock_unlock(&threads_lock); |
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73 | vana | 269 | |
125 | jermar | 270 | spinlock_lock(&CPU->lock); |
650 | jermar | 271 | if(CPU->fpu_owner==THREAD) |
272 | CPU->fpu_owner=NULL; |
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125 | jermar | 273 | spinlock_unlock(&CPU->lock); |
274 | |||
275 | free(THREAD); |
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276 | |||
277 | break; |
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278 | |||
1 | jermar | 279 | case Sleeping: |
125 | jermar | 280 | /* |
281 | * Prefer the thread after it's woken up. |
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282 | */ |
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413 | jermar | 283 | THREAD->priority = -1; |
1 | jermar | 284 | |
125 | jermar | 285 | /* |
286 | * We need to release wq->lock which we locked in waitq_sleep(). |
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287 | * Address of wq->lock is kept in THREAD->sleep_queue. |
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288 | */ |
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289 | spinlock_unlock(&THREAD->sleep_queue->lock); |
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1 | jermar | 290 | |
125 | jermar | 291 | /* |
292 | * Check for possible requests for out-of-context invocation. |
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293 | */ |
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294 | if (THREAD->call_me) { |
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295 | THREAD->call_me(THREAD->call_me_with); |
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296 | THREAD->call_me = NULL; |
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297 | THREAD->call_me_with = NULL; |
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298 | } |
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1 | jermar | 299 | |
125 | jermar | 300 | spinlock_unlock(&THREAD->lock); |
1 | jermar | 301 | |
125 | jermar | 302 | break; |
303 | |||
1 | jermar | 304 | default: |
125 | jermar | 305 | /* |
306 | * Entering state is unexpected. |
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307 | */ |
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308 | panic("tid%d: unexpected state %s\n", THREAD->tid, thread_states[THREAD->state]); |
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309 | break; |
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1 | jermar | 310 | } |
15 | jermar | 311 | THREAD = NULL; |
1 | jermar | 312 | } |
198 | jermar | 313 | |
214 | vana | 314 | |
15 | jermar | 315 | THREAD = find_best_thread(); |
1 | jermar | 316 | |
15 | jermar | 317 | spinlock_lock(&THREAD->lock); |
413 | jermar | 318 | priority = THREAD->priority; |
15 | jermar | 319 | spinlock_unlock(&THREAD->lock); |
192 | jermar | 320 | |
1 | jermar | 321 | relink_rq(priority); |
322 | |||
15 | jermar | 323 | spinlock_lock(&THREAD->lock); |
1 | jermar | 324 | |
325 | /* |
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326 | * If both the old and the new task are the same, lots of work is avoided. |
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327 | */ |
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15 | jermar | 328 | if (TASK != THREAD->task) { |
703 | jermar | 329 | as_t *as1 = NULL; |
330 | as_t *as2; |
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1 | jermar | 331 | |
15 | jermar | 332 | if (TASK) { |
333 | spinlock_lock(&TASK->lock); |
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703 | jermar | 334 | as1 = TASK->as; |
15 | jermar | 335 | spinlock_unlock(&TASK->lock); |
1 | jermar | 336 | } |
337 | |||
15 | jermar | 338 | spinlock_lock(&THREAD->task->lock); |
703 | jermar | 339 | as2 = THREAD->task->as; |
15 | jermar | 340 | spinlock_unlock(&THREAD->task->lock); |
1 | jermar | 341 | |
342 | /* |
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703 | jermar | 343 | * Note that it is possible for two tasks to share one address space. |
1 | jermar | 344 | */ |
703 | jermar | 345 | if (as1 != as2) { |
1 | jermar | 346 | /* |
703 | jermar | 347 | * Both tasks and address spaces are different. |
1 | jermar | 348 | * Replace the old one with the new one. |
349 | */ |
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703 | jermar | 350 | as_install(as2); |
1 | jermar | 351 | } |
15 | jermar | 352 | TASK = THREAD->task; |
1 | jermar | 353 | } |
354 | |||
15 | jermar | 355 | THREAD->state = Running; |
1 | jermar | 356 | |
357 | #ifdef SCHEDULER_VERBOSE |
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413 | jermar | 358 | printf("cpu%d: tid %d (priority=%d,ticks=%d,nrdy=%d)\n", CPU->id, THREAD->tid, THREAD->priority, THREAD->ticks, CPU->nrdy); |
1 | jermar | 359 | #endif |
360 | |||
213 | jermar | 361 | /* |
362 | * Copy the knowledge of CPU, TASK, THREAD and preemption counter to thread's stack. |
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363 | */ |
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184 | jermar | 364 | the_copy(THE, (the_t *) THREAD->kstack); |
365 | |||
15 | jermar | 366 | context_restore(&THREAD->saved_context); |
1 | jermar | 367 | /* not reached */ |
368 | } |
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369 | |||
107 | decky | 370 | |
452 | decky | 371 | /** The scheduler |
372 | * |
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373 | * The thread scheduling procedure. |
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675 | jermar | 374 | * Passes control directly to |
375 | * scheduler_separated_stack(). |
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452 | decky | 376 | * |
377 | */ |
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378 | void scheduler(void) |
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379 | { |
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380 | volatile ipl_t ipl; |
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381 | |||
382 | ASSERT(CPU != NULL); |
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383 | |||
384 | ipl = interrupts_disable(); |
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385 | |||
631 | palkovsky | 386 | if (atomic_get(&haltstate)) |
452 | decky | 387 | halt(); |
388 | |||
389 | if (THREAD) { |
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390 | spinlock_lock(&THREAD->lock); |
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458 | decky | 391 | #ifndef CONFIG_FPU_LAZY |
452 | decky | 392 | fpu_context_save(&(THREAD->saved_fpu_context)); |
393 | #endif |
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394 | if (!context_save(&THREAD->saved_context)) { |
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395 | /* |
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396 | * This is the place where threads leave scheduler(); |
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397 | */ |
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398 | before_thread_runs(); |
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399 | spinlock_unlock(&THREAD->lock); |
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400 | interrupts_restore(THREAD->saved_context.ipl); |
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401 | return; |
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402 | } |
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403 | |||
404 | /* |
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405 | * Interrupt priority level of preempted thread is recorded here |
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406 | * to facilitate scheduler() invocations from interrupts_disable()'d |
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407 | * code (e.g. waitq_sleep_timeout()). |
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408 | */ |
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409 | THREAD->saved_context.ipl = ipl; |
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410 | } |
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411 | |||
412 | /* |
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557 | jermar | 413 | * Through the 'THE' structure, we keep track of THREAD, TASK, CPU, VM |
452 | decky | 414 | * and preemption counter. At this point THE could be coming either |
415 | * from THREAD's or CPU's stack. |
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416 | */ |
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417 | the_copy(THE, (the_t *) CPU->stack); |
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418 | |||
419 | /* |
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420 | * We may not keep the old stack. |
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421 | * Reason: If we kept the old stack and got blocked, for instance, in |
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422 | * find_best_thread(), the old thread could get rescheduled by another |
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423 | * CPU and overwrite the part of its own stack that was also used by |
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424 | * the scheduler on this CPU. |
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425 | * |
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426 | * Moreover, we have to bypass the compiler-generated POP sequence |
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427 | * which is fooled by SP being set to the very top of the stack. |
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428 | * Therefore the scheduler() function continues in |
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429 | * scheduler_separated_stack(). |
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430 | */ |
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431 | context_save(&CPU->saved_context); |
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432 | context_set(&CPU->saved_context, FADDR(scheduler_separated_stack), (__address) CPU->stack, CPU_STACK_SIZE); |
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433 | context_restore(&CPU->saved_context); |
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434 | /* not reached */ |
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435 | } |
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436 | |||
437 | |||
438 | |||
439 | |||
440 | |||
458 | decky | 441 | #ifdef CONFIG_SMP |
107 | decky | 442 | /** Load balancing thread |
443 | * |
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444 | * SMP load balancing thread, supervising thread supplies |
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445 | * for the CPU it's wired to. |
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446 | * |
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447 | * @param arg Generic thread argument (unused). |
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448 | * |
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1 | jermar | 449 | */ |
450 | void kcpulb(void *arg) |
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451 | { |
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452 | thread_t *t; |
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783 | palkovsky | 453 | int count, average, i, j, k = 0; |
413 | jermar | 454 | ipl_t ipl; |
1 | jermar | 455 | |
456 | loop: |
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457 | /* |
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779 | jermar | 458 | * Work in 1s intervals. |
1 | jermar | 459 | */ |
779 | jermar | 460 | thread_sleep(1); |
1 | jermar | 461 | |
462 | not_satisfied: |
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463 | /* |
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464 | * Calculate the number of threads that will be migrated/stolen from |
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465 | * other CPU's. Note that situation can have changed between two |
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466 | * passes. Each time get the most up to date counts. |
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467 | */ |
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784 | palkovsky | 468 | average = atomic_get(&nrdy) / config.cpu_active + 1; |
783 | palkovsky | 469 | count = average - atomic_get(&CPU->nrdy); |
1 | jermar | 470 | |
784 | palkovsky | 471 | if (count <= 0) |
1 | jermar | 472 | goto satisfied; |
473 | |||
474 | /* |
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475 | * Searching least priority queues on all CPU's first and most priority queues on all CPU's last. |
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476 | */ |
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477 | for (j=RQ_COUNT-1; j >= 0; j--) { |
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478 | for (i=0; i < config.cpu_active; i++) { |
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479 | link_t *l; |
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480 | runq_t *r; |
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481 | cpu_t *cpu; |
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482 | |||
483 | cpu = &cpus[(i + k) % config.cpu_active]; |
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484 | |||
485 | /* |
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486 | * Not interested in ourselves. |
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487 | * Doesn't require interrupt disabling for kcpulb is X_WIRED. |
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488 | */ |
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15 | jermar | 489 | if (CPU == cpu) |
783 | palkovsky | 490 | continue; |
491 | if (atomic_get(&cpu->nrdy) <= average) |
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492 | continue; |
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1 | jermar | 493 | |
784 | palkovsky | 494 | ipl = interrupts_disable(); |
115 | jermar | 495 | r = &cpu->rq[j]; |
1 | jermar | 496 | spinlock_lock(&r->lock); |
497 | if (r->n == 0) { |
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498 | spinlock_unlock(&r->lock); |
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413 | jermar | 499 | interrupts_restore(ipl); |
1 | jermar | 500 | continue; |
501 | } |
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502 | |||
503 | t = NULL; |
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504 | l = r->rq_head.prev; /* search rq from the back */ |
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505 | while (l != &r->rq_head) { |
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506 | t = list_get_instance(l, thread_t, rq_link); |
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507 | /* |
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125 | jermar | 508 | * We don't want to steal CPU-wired threads neither threads already stolen. |
1 | jermar | 509 | * The latter prevents threads from migrating between CPU's without ever being run. |
125 | jermar | 510 | * We don't want to steal threads whose FPU context is still in CPU. |
73 | vana | 511 | */ |
1 | jermar | 512 | spinlock_lock(&t->lock); |
73 | vana | 513 | if ( (!(t->flags & (X_WIRED | X_STOLEN))) && (!(t->fpu_context_engaged)) ) { |
1 | jermar | 514 | /* |
515 | * Remove t from r. |
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516 | */ |
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517 | spinlock_unlock(&t->lock); |
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518 | |||
783 | palkovsky | 519 | atomic_dec(&cpu->nrdy); |
475 | jermar | 520 | atomic_dec(&nrdy); |
1 | jermar | 521 | |
125 | jermar | 522 | r->n--; |
1 | jermar | 523 | list_remove(&t->rq_link); |
524 | |||
525 | break; |
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526 | } |
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527 | spinlock_unlock(&t->lock); |
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528 | l = l->prev; |
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529 | t = NULL; |
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530 | } |
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531 | spinlock_unlock(&r->lock); |
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532 | |||
533 | if (t) { |
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534 | /* |
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535 | * Ready t on local CPU |
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536 | */ |
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537 | spinlock_lock(&t->lock); |
||
538 | #ifdef KCPULB_VERBOSE |
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783 | palkovsky | 539 | printf("kcpulb%d: TID %d -> cpu%d, nrdy=%d, avg=%d\n", CPU->id, t->tid, CPU->id, atomic_get(&CPU->nrdy), atomic_get(&nrdy) / config.cpu_active); |
1 | jermar | 540 | #endif |
541 | t->flags |= X_STOLEN; |
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542 | spinlock_unlock(&t->lock); |
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543 | |||
544 | thread_ready(t); |
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545 | |||
413 | jermar | 546 | interrupts_restore(ipl); |
1 | jermar | 547 | |
548 | if (--count == 0) |
||
549 | goto satisfied; |
||
550 | |||
551 | /* |
||
125 | jermar | 552 | * We are not satisfied yet, focus on another CPU next time. |
1 | jermar | 553 | */ |
554 | k++; |
||
555 | |||
556 | continue; |
||
557 | } |
||
413 | jermar | 558 | interrupts_restore(ipl); |
1 | jermar | 559 | } |
560 | } |
||
561 | |||
783 | palkovsky | 562 | if (atomic_get(&CPU->nrdy)) { |
1 | jermar | 563 | /* |
564 | * Be a little bit light-weight and let migrated threads run. |
||
565 | */ |
||
566 | scheduler(); |
||
779 | jermar | 567 | } else { |
1 | jermar | 568 | /* |
569 | * We failed to migrate a single thread. |
||
779 | jermar | 570 | * Give up this turn. |
1 | jermar | 571 | */ |
779 | jermar | 572 | goto loop; |
1 | jermar | 573 | } |
574 | |||
575 | goto not_satisfied; |
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125 | jermar | 576 | |
1 | jermar | 577 | satisfied: |
578 | goto loop; |
||
579 | } |
||
580 | |||
458 | decky | 581 | #endif /* CONFIG_SMP */ |
775 | palkovsky | 582 | |
583 | |||
584 | /** Print information about threads & scheduler queues */ |
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585 | void sched_print_list(void) |
||
586 | { |
||
587 | ipl_t ipl; |
||
588 | int cpu,i; |
||
589 | runq_t *r; |
||
590 | thread_t *t; |
||
591 | link_t *cur; |
||
592 | |||
593 | /* We are going to mess with scheduler structures, |
||
594 | * let's not be interrupted */ |
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595 | ipl = interrupts_disable(); |
||
596 | printf("*********** Scheduler dump ***********\n"); |
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597 | for (cpu=0;cpu < config.cpu_count; cpu++) { |
||
598 | if (!cpus[cpu].active) |
||
599 | continue; |
||
600 | spinlock_lock(&cpus[cpu].lock); |
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601 | printf("cpu%d: nrdy: %d needs_relink: %d\n", |
||
783 | palkovsky | 602 | cpus[cpu].id, atomic_get(&cpus[cpu].nrdy), cpus[cpu].needs_relink); |
775 | palkovsky | 603 | |
604 | for (i=0; i<RQ_COUNT; i++) { |
||
605 | r = &cpus[cpu].rq[i]; |
||
606 | spinlock_lock(&r->lock); |
||
607 | if (!r->n) { |
||
608 | spinlock_unlock(&r->lock); |
||
609 | continue; |
||
610 | } |
||
779 | jermar | 611 | printf("\tRq %d: ", i); |
775 | palkovsky | 612 | for (cur=r->rq_head.next; cur!=&r->rq_head; cur=cur->next) { |
613 | t = list_get_instance(cur, thread_t, rq_link); |
||
614 | printf("%d(%s) ", t->tid, |
||
615 | thread_states[t->state]); |
||
616 | } |
||
617 | printf("\n"); |
||
618 | spinlock_unlock(&r->lock); |
||
619 | } |
||
620 | spinlock_unlock(&cpus[cpu].lock); |
||
621 | } |
||
622 | |||
623 | interrupts_restore(ipl); |
||
624 | } |