sched_policy.c 9.7 KB

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  1. /*
  2. * Copyright(c) 2011-2016 Intel Corporation. All rights reserved.
  3. *
  4. * Permission is hereby granted, free of charge, to any person obtaining a
  5. * copy of this software and associated documentation files (the "Software"),
  6. * to deal in the Software without restriction, including without limitation
  7. * the rights to use, copy, modify, merge, publish, distribute, sublicense,
  8. * and/or sell copies of the Software, and to permit persons to whom the
  9. * Software is furnished to do so, subject to the following conditions:
  10. *
  11. * The above copyright notice and this permission notice (including the next
  12. * paragraph) shall be included in all copies or substantial portions of the
  13. * Software.
  14. *
  15. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  16. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  17. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
  18. * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  19. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
  20. * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
  21. * SOFTWARE.
  22. *
  23. * Authors:
  24. * Anhua Xu
  25. * Kevin Tian <kevin.tian@intel.com>
  26. *
  27. * Contributors:
  28. * Min He <min.he@intel.com>
  29. * Bing Niu <bing.niu@intel.com>
  30. * Zhi Wang <zhi.a.wang@intel.com>
  31. *
  32. */
  33. #include "i915_drv.h"
  34. #include "gvt.h"
  35. static bool vgpu_has_pending_workload(struct intel_vgpu *vgpu)
  36. {
  37. enum intel_engine_id i;
  38. struct intel_engine_cs *engine;
  39. for_each_engine(engine, vgpu->gvt->dev_priv, i) {
  40. if (!list_empty(workload_q_head(vgpu, i)))
  41. return true;
  42. }
  43. return false;
  44. }
  45. struct vgpu_sched_data {
  46. struct list_head lru_list;
  47. struct intel_vgpu *vgpu;
  48. ktime_t sched_in_time;
  49. ktime_t sched_out_time;
  50. ktime_t sched_time;
  51. ktime_t left_ts;
  52. ktime_t allocated_ts;
  53. struct vgpu_sched_ctl sched_ctl;
  54. };
  55. struct gvt_sched_data {
  56. struct intel_gvt *gvt;
  57. struct hrtimer timer;
  58. unsigned long period;
  59. struct list_head lru_runq_head;
  60. };
  61. static void vgpu_update_timeslice(struct intel_vgpu *pre_vgpu)
  62. {
  63. ktime_t delta_ts;
  64. struct vgpu_sched_data *vgpu_data = pre_vgpu->sched_data;
  65. delta_ts = vgpu_data->sched_out_time - vgpu_data->sched_in_time;
  66. vgpu_data->sched_time += delta_ts;
  67. vgpu_data->left_ts -= delta_ts;
  68. }
  69. #define GVT_TS_BALANCE_PERIOD_MS 100
  70. #define GVT_TS_BALANCE_STAGE_NUM 10
  71. static void gvt_balance_timeslice(struct gvt_sched_data *sched_data)
  72. {
  73. struct vgpu_sched_data *vgpu_data;
  74. struct list_head *pos;
  75. static uint64_t stage_check;
  76. int stage = stage_check++ % GVT_TS_BALANCE_STAGE_NUM;
  77. /* The timeslice accumulation reset at stage 0, which is
  78. * allocated again without adding previous debt.
  79. */
  80. if (stage == 0) {
  81. int total_weight = 0;
  82. ktime_t fair_timeslice;
  83. list_for_each(pos, &sched_data->lru_runq_head) {
  84. vgpu_data = container_of(pos, struct vgpu_sched_data, lru_list);
  85. total_weight += vgpu_data->sched_ctl.weight;
  86. }
  87. list_for_each(pos, &sched_data->lru_runq_head) {
  88. vgpu_data = container_of(pos, struct vgpu_sched_data, lru_list);
  89. fair_timeslice = ms_to_ktime(GVT_TS_BALANCE_PERIOD_MS) *
  90. vgpu_data->sched_ctl.weight /
  91. total_weight;
  92. vgpu_data->allocated_ts = fair_timeslice;
  93. vgpu_data->left_ts = vgpu_data->allocated_ts;
  94. }
  95. } else {
  96. list_for_each(pos, &sched_data->lru_runq_head) {
  97. vgpu_data = container_of(pos, struct vgpu_sched_data, lru_list);
  98. /* timeslice for next 100ms should add the left/debt
  99. * slice of previous stages.
  100. */
  101. vgpu_data->left_ts += vgpu_data->allocated_ts;
  102. }
  103. }
  104. }
  105. static void try_to_schedule_next_vgpu(struct intel_gvt *gvt)
  106. {
  107. struct intel_gvt_workload_scheduler *scheduler = &gvt->scheduler;
  108. enum intel_engine_id i;
  109. struct intel_engine_cs *engine;
  110. struct vgpu_sched_data *vgpu_data;
  111. ktime_t cur_time;
  112. /* no target to schedule */
  113. if (!scheduler->next_vgpu)
  114. return;
  115. /*
  116. * after the flag is set, workload dispatch thread will
  117. * stop dispatching workload for current vgpu
  118. */
  119. scheduler->need_reschedule = true;
  120. /* still have uncompleted workload? */
  121. for_each_engine(engine, gvt->dev_priv, i) {
  122. if (scheduler->current_workload[i])
  123. return;
  124. }
  125. cur_time = ktime_get();
  126. if (scheduler->current_vgpu) {
  127. vgpu_data = scheduler->current_vgpu->sched_data;
  128. vgpu_data->sched_out_time = cur_time;
  129. vgpu_update_timeslice(scheduler->current_vgpu);
  130. }
  131. vgpu_data = scheduler->next_vgpu->sched_data;
  132. vgpu_data->sched_in_time = cur_time;
  133. /* switch current vgpu */
  134. scheduler->current_vgpu = scheduler->next_vgpu;
  135. scheduler->next_vgpu = NULL;
  136. scheduler->need_reschedule = false;
  137. /* wake up workload dispatch thread */
  138. for_each_engine(engine, gvt->dev_priv, i)
  139. wake_up(&scheduler->waitq[i]);
  140. }
  141. static struct intel_vgpu *find_busy_vgpu(struct gvt_sched_data *sched_data)
  142. {
  143. struct vgpu_sched_data *vgpu_data;
  144. struct intel_vgpu *vgpu = NULL;
  145. struct list_head *head = &sched_data->lru_runq_head;
  146. struct list_head *pos;
  147. /* search a vgpu with pending workload */
  148. list_for_each(pos, head) {
  149. vgpu_data = container_of(pos, struct vgpu_sched_data, lru_list);
  150. if (!vgpu_has_pending_workload(vgpu_data->vgpu))
  151. continue;
  152. /* Return the vGPU only if it has time slice left */
  153. if (vgpu_data->left_ts > 0) {
  154. vgpu = vgpu_data->vgpu;
  155. break;
  156. }
  157. }
  158. return vgpu;
  159. }
  160. /* in nanosecond */
  161. #define GVT_DEFAULT_TIME_SLICE 1000000
  162. static void tbs_sched_func(struct gvt_sched_data *sched_data)
  163. {
  164. struct intel_gvt *gvt = sched_data->gvt;
  165. struct intel_gvt_workload_scheduler *scheduler = &gvt->scheduler;
  166. struct vgpu_sched_data *vgpu_data;
  167. struct intel_vgpu *vgpu = NULL;
  168. static uint64_t timer_check;
  169. if (!(timer_check++ % GVT_TS_BALANCE_PERIOD_MS))
  170. gvt_balance_timeslice(sched_data);
  171. /* no active vgpu or has already had a target */
  172. if (list_empty(&sched_data->lru_runq_head) || scheduler->next_vgpu)
  173. goto out;
  174. vgpu = find_busy_vgpu(sched_data);
  175. if (vgpu) {
  176. scheduler->next_vgpu = vgpu;
  177. /* Move the last used vGPU to the tail of lru_list */
  178. vgpu_data = vgpu->sched_data;
  179. list_del_init(&vgpu_data->lru_list);
  180. list_add_tail(&vgpu_data->lru_list,
  181. &sched_data->lru_runq_head);
  182. } else {
  183. scheduler->next_vgpu = gvt->idle_vgpu;
  184. }
  185. out:
  186. if (scheduler->next_vgpu)
  187. try_to_schedule_next_vgpu(gvt);
  188. }
  189. void intel_gvt_schedule(struct intel_gvt *gvt)
  190. {
  191. struct gvt_sched_data *sched_data = gvt->scheduler.sched_data;
  192. mutex_lock(&gvt->lock);
  193. tbs_sched_func(sched_data);
  194. mutex_unlock(&gvt->lock);
  195. }
  196. static enum hrtimer_restart tbs_timer_fn(struct hrtimer *timer_data)
  197. {
  198. struct gvt_sched_data *data;
  199. data = container_of(timer_data, struct gvt_sched_data, timer);
  200. intel_gvt_request_service(data->gvt, INTEL_GVT_REQUEST_SCHED);
  201. hrtimer_add_expires_ns(&data->timer, data->period);
  202. return HRTIMER_RESTART;
  203. }
  204. static int tbs_sched_init(struct intel_gvt *gvt)
  205. {
  206. struct intel_gvt_workload_scheduler *scheduler =
  207. &gvt->scheduler;
  208. struct gvt_sched_data *data;
  209. data = kzalloc(sizeof(*data), GFP_KERNEL);
  210. if (!data)
  211. return -ENOMEM;
  212. INIT_LIST_HEAD(&data->lru_runq_head);
  213. hrtimer_init(&data->timer, CLOCK_MONOTONIC, HRTIMER_MODE_ABS);
  214. data->timer.function = tbs_timer_fn;
  215. data->period = GVT_DEFAULT_TIME_SLICE;
  216. data->gvt = gvt;
  217. scheduler->sched_data = data;
  218. return 0;
  219. }
  220. static void tbs_sched_clean(struct intel_gvt *gvt)
  221. {
  222. struct intel_gvt_workload_scheduler *scheduler =
  223. &gvt->scheduler;
  224. struct gvt_sched_data *data = scheduler->sched_data;
  225. hrtimer_cancel(&data->timer);
  226. kfree(data);
  227. scheduler->sched_data = NULL;
  228. }
  229. static int tbs_sched_init_vgpu(struct intel_vgpu *vgpu)
  230. {
  231. struct vgpu_sched_data *data;
  232. data = kzalloc(sizeof(*data), GFP_KERNEL);
  233. if (!data)
  234. return -ENOMEM;
  235. data->sched_ctl.weight = vgpu->sched_ctl.weight;
  236. data->vgpu = vgpu;
  237. INIT_LIST_HEAD(&data->lru_list);
  238. vgpu->sched_data = data;
  239. return 0;
  240. }
  241. static void tbs_sched_clean_vgpu(struct intel_vgpu *vgpu)
  242. {
  243. kfree(vgpu->sched_data);
  244. vgpu->sched_data = NULL;
  245. }
  246. static void tbs_sched_start_schedule(struct intel_vgpu *vgpu)
  247. {
  248. struct gvt_sched_data *sched_data = vgpu->gvt->scheduler.sched_data;
  249. struct vgpu_sched_data *vgpu_data = vgpu->sched_data;
  250. if (!list_empty(&vgpu_data->lru_list))
  251. return;
  252. list_add_tail(&vgpu_data->lru_list, &sched_data->lru_runq_head);
  253. if (!hrtimer_active(&sched_data->timer))
  254. hrtimer_start(&sched_data->timer, ktime_add_ns(ktime_get(),
  255. sched_data->period), HRTIMER_MODE_ABS);
  256. }
  257. static void tbs_sched_stop_schedule(struct intel_vgpu *vgpu)
  258. {
  259. struct vgpu_sched_data *vgpu_data = vgpu->sched_data;
  260. list_del_init(&vgpu_data->lru_list);
  261. }
  262. static struct intel_gvt_sched_policy_ops tbs_schedule_ops = {
  263. .init = tbs_sched_init,
  264. .clean = tbs_sched_clean,
  265. .init_vgpu = tbs_sched_init_vgpu,
  266. .clean_vgpu = tbs_sched_clean_vgpu,
  267. .start_schedule = tbs_sched_start_schedule,
  268. .stop_schedule = tbs_sched_stop_schedule,
  269. };
  270. int intel_gvt_init_sched_policy(struct intel_gvt *gvt)
  271. {
  272. gvt->scheduler.sched_ops = &tbs_schedule_ops;
  273. return gvt->scheduler.sched_ops->init(gvt);
  274. }
  275. void intel_gvt_clean_sched_policy(struct intel_gvt *gvt)
  276. {
  277. gvt->scheduler.sched_ops->clean(gvt);
  278. }
  279. int intel_vgpu_init_sched_policy(struct intel_vgpu *vgpu)
  280. {
  281. return vgpu->gvt->scheduler.sched_ops->init_vgpu(vgpu);
  282. }
  283. void intel_vgpu_clean_sched_policy(struct intel_vgpu *vgpu)
  284. {
  285. vgpu->gvt->scheduler.sched_ops->clean_vgpu(vgpu);
  286. }
  287. void intel_vgpu_start_schedule(struct intel_vgpu *vgpu)
  288. {
  289. gvt_dbg_core("vgpu%d: start schedule\n", vgpu->id);
  290. vgpu->gvt->scheduler.sched_ops->start_schedule(vgpu);
  291. }
  292. void intel_vgpu_stop_schedule(struct intel_vgpu *vgpu)
  293. {
  294. struct intel_gvt_workload_scheduler *scheduler =
  295. &vgpu->gvt->scheduler;
  296. gvt_dbg_core("vgpu%d: stop schedule\n", vgpu->id);
  297. scheduler->sched_ops->stop_schedule(vgpu);
  298. if (scheduler->next_vgpu == vgpu)
  299. scheduler->next_vgpu = NULL;
  300. if (scheduler->current_vgpu == vgpu) {
  301. /* stop workload dispatching */
  302. scheduler->need_reschedule = true;
  303. scheduler->current_vgpu = NULL;
  304. }
  305. }