1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Virtual cpu timer based timer functions.
4 *
5 * Copyright IBM Corp. 2004, 2012
6 * Author(s): Jan Glauber <jan.glauber@de.ibm.com>
7 */
8
9 #include <linux/kernel_stat.h>
10 #include <linux/export.h>
11 #include <linux/kernel.h>
12 #include <linux/timex.h>
13 #include <linux/types.h>
14 #include <linux/time.h>
15 #include <asm/alternative.h>
16 #include <asm/cputime.h>
17 #include <asm/vtimer.h>
18 #include <asm/vtime.h>
19 #include <asm/cpu_mf.h>
20 #include <asm/idle.h>
21 #include <asm/smp.h>
22
23 #include "entry.h"
24
25 static void virt_timer_expire(void);
26
27 static LIST_HEAD(virt_timer_list);
28 static DEFINE_SPINLOCK(virt_timer_lock);
29 static atomic64_t virt_timer_current;
30 static atomic64_t virt_timer_elapsed;
31
32 DEFINE_PER_CPU(u64, mt_cycles[8]);
33 static DEFINE_PER_CPU(u64, mt_scaling_mult) = { 1 };
34 static DEFINE_PER_CPU(u64, mt_scaling_div) = { 1 };
35 static DEFINE_PER_CPU(unsigned long, mt_scaling_jiffies);
36
set_vtimer(u64 expires)37 static inline void set_vtimer(u64 expires)
38 {
39 struct lowcore *lc = get_lowcore();
40 u64 timer;
41
42 asm volatile(
43 " stpt %0\n" /* Store current cpu timer value */
44 " spt %1" /* Set new value imm. afterwards */
45 : "=Q" (timer) : "Q" (expires));
46 lc->system_timer += lc->last_update_timer - timer;
47 lc->last_update_timer = expires;
48 }
49
virt_timer_forward(u64 elapsed)50 static inline int virt_timer_forward(u64 elapsed)
51 {
52 lockdep_assert_irqs_disabled();
53 if (list_empty(&virt_timer_list))
54 return 0;
55 elapsed = atomic64_add_return(elapsed, &virt_timer_elapsed);
56 return elapsed >= atomic64_read(&virt_timer_current);
57 }
58
update_mt_scaling(void)59 static void update_mt_scaling(void)
60 {
61 u64 cycles_new[8], *cycles_old;
62 u64 delta, fac, mult, div;
63 int i;
64
65 stcctm(MT_DIAG, smp_cpu_mtid + 1, cycles_new);
66 cycles_old = this_cpu_ptr(mt_cycles);
67 fac = 1;
68 mult = div = 0;
69 for (i = 0; i <= smp_cpu_mtid; i++) {
70 delta = cycles_new[i] - cycles_old[i];
71 div += delta;
72 mult *= i + 1;
73 mult += delta * fac;
74 fac *= i + 1;
75 }
76 div *= fac;
77 if (div > 0) {
78 /* Update scaling factor */
79 __this_cpu_write(mt_scaling_mult, mult);
80 __this_cpu_write(mt_scaling_div, div);
81 memcpy(cycles_old, cycles_new,
82 sizeof(u64) * (smp_cpu_mtid + 1));
83 }
84 __this_cpu_write(mt_scaling_jiffies, jiffies);
85 }
86
update_tsk_timer(unsigned long * tsk_vtime,u64 new)87 static inline u64 update_tsk_timer(unsigned long *tsk_vtime, u64 new)
88 {
89 u64 delta;
90
91 delta = new - *tsk_vtime;
92 *tsk_vtime = new;
93 return delta;
94 }
95
96
scale_vtime(u64 vtime)97 static inline u64 scale_vtime(u64 vtime)
98 {
99 u64 mult = __this_cpu_read(mt_scaling_mult);
100 u64 div = __this_cpu_read(mt_scaling_div);
101
102 if (smp_cpu_mtid)
103 return vtime * mult / div;
104 return vtime;
105 }
106
account_system_index_scaled(struct task_struct * p,u64 cputime,enum cpu_usage_stat index)107 static void account_system_index_scaled(struct task_struct *p, u64 cputime,
108 enum cpu_usage_stat index)
109 {
110 p->stimescaled += cputime_to_nsecs(scale_vtime(cputime));
111 account_system_index_time(p, cputime_to_nsecs(cputime), index);
112 }
113
vtime_reset_last_update(struct lowcore * lc)114 static inline void vtime_reset_last_update(struct lowcore *lc)
115 {
116 asm volatile(
117 " stpt %0\n" /* Store current cpu timer value */
118 " stckf %1" /* Store current tod clock value */
119 : "=Q" (lc->last_update_timer),
120 "=Q" (lc->last_update_clock)
121 : : "cc");
122 }
123
124 /*
125 * Update process times based on virtual cpu times stored by entry.S
126 * to the lowcore fields user_timer, system_timer & steal_clock.
127 */
do_account_vtime(struct task_struct * tsk)128 static int do_account_vtime(struct task_struct *tsk)
129 {
130 u64 timer, clock, user, guest, system, hardirq, softirq;
131 struct lowcore *lc = get_lowcore();
132
133 timer = lc->last_update_timer;
134 clock = lc->last_update_clock;
135
136 vtime_reset_last_update(lc);
137
138 clock = lc->last_update_clock - clock;
139 timer -= lc->last_update_timer;
140
141 if (hardirq_count())
142 lc->hardirq_timer += timer;
143 else
144 lc->system_timer += timer;
145
146 /* Update MT utilization calculation */
147 if (smp_cpu_mtid && time_after(jiffies, __this_cpu_read(mt_scaling_jiffies)))
148 update_mt_scaling();
149
150 /* Calculate cputime delta */
151 user = update_tsk_timer(&tsk->thread.user_timer, lc->user_timer);
152 guest = update_tsk_timer(&tsk->thread.guest_timer, lc->guest_timer);
153 system = update_tsk_timer(&tsk->thread.system_timer, lc->system_timer);
154 hardirq = update_tsk_timer(&tsk->thread.hardirq_timer, lc->hardirq_timer);
155 softirq = update_tsk_timer(&tsk->thread.softirq_timer, lc->softirq_timer);
156 lc->steal_timer += clock - user - guest - system - hardirq - softirq;
157
158 /* Push account value */
159 if (user) {
160 account_user_time(tsk, cputime_to_nsecs(user));
161 tsk->utimescaled += cputime_to_nsecs(scale_vtime(user));
162 }
163
164 if (guest) {
165 account_guest_time(tsk, cputime_to_nsecs(guest));
166 tsk->utimescaled += cputime_to_nsecs(scale_vtime(guest));
167 }
168
169 if (system)
170 account_system_index_scaled(tsk, system, CPUTIME_SYSTEM);
171 if (hardirq)
172 account_system_index_scaled(tsk, hardirq, CPUTIME_IRQ);
173 if (softirq)
174 account_system_index_scaled(tsk, softirq, CPUTIME_SOFTIRQ);
175
176 return virt_timer_forward(user + guest + system + hardirq + softirq);
177 }
178
vtime_task_switch(struct task_struct * prev)179 void vtime_task_switch(struct task_struct *prev)
180 {
181 struct lowcore *lc = get_lowcore();
182
183 do_account_vtime(prev);
184 prev->thread.user_timer = lc->user_timer;
185 prev->thread.guest_timer = lc->guest_timer;
186 prev->thread.system_timer = lc->system_timer;
187 prev->thread.hardirq_timer = lc->hardirq_timer;
188 prev->thread.softirq_timer = lc->softirq_timer;
189 lc->user_timer = current->thread.user_timer;
190 lc->guest_timer = current->thread.guest_timer;
191 lc->system_timer = current->thread.system_timer;
192 lc->hardirq_timer = current->thread.hardirq_timer;
193 lc->softirq_timer = current->thread.softirq_timer;
194 }
195
196 /*
197 * In s390, accounting pending user time also implies
198 * accounting system time in order to correctly compute
199 * the stolen time accounting.
200 */
vtime_flush(struct task_struct * tsk)201 void vtime_flush(struct task_struct *tsk)
202 {
203 struct lowcore *lc = get_lowcore();
204 u64 steal, avg_steal;
205
206 if (do_account_vtime(tsk))
207 virt_timer_expire();
208
209 steal = lc->steal_timer;
210 avg_steal = lc->avg_steal_timer;
211 if ((s64) steal > 0) {
212 lc->steal_timer = 0;
213 account_steal_time(cputime_to_nsecs(steal));
214 avg_steal += steal;
215 }
216 lc->avg_steal_timer = avg_steal / 2;
217 }
218
vtime_delta(void)219 static u64 vtime_delta(void)
220 {
221 struct lowcore *lc = get_lowcore();
222 u64 timer = lc->last_update_timer;
223
224 lc->last_update_timer = get_cpu_timer();
225 return timer - lc->last_update_timer;
226 }
227
vtime_account_kernel(struct task_struct * tsk)228 void vtime_account_kernel(struct task_struct *tsk)
229 {
230 struct lowcore *lc = get_lowcore();
231 u64 delta = vtime_delta();
232
233 if (tsk->flags & PF_VCPU)
234 lc->guest_timer += delta;
235 else
236 lc->system_timer += delta;
237 }
238 EXPORT_SYMBOL_GPL(vtime_account_kernel);
239
vtime_account_softirq(struct task_struct * tsk)240 void vtime_account_softirq(struct task_struct *tsk)
241 {
242 get_lowcore()->softirq_timer += vtime_delta();
243 }
244
vtime_account_hardirq(struct task_struct * tsk)245 void vtime_account_hardirq(struct task_struct *tsk)
246 {
247 get_lowcore()->hardirq_timer += vtime_delta();
248 }
249
250 /*
251 * Sorted add to a list. List is linear searched until first bigger
252 * element is found.
253 */
list_add_sorted(struct vtimer_list * timer,struct list_head * head)254 static void list_add_sorted(struct vtimer_list *timer, struct list_head *head)
255 {
256 struct vtimer_list *tmp;
257
258 list_for_each_entry(tmp, head, entry) {
259 if (tmp->expires > timer->expires) {
260 list_add_tail(&timer->entry, &tmp->entry);
261 return;
262 }
263 }
264 list_add_tail(&timer->entry, head);
265 }
266
267 /*
268 * Handler for expired virtual CPU timer.
269 */
virt_timer_expire(void)270 static void virt_timer_expire(void)
271 {
272 struct vtimer_list *timer, *tmp;
273 unsigned long elapsed;
274 LIST_HEAD(cb_list);
275
276 /* walk timer list, fire all expired timers */
277 spin_lock(&virt_timer_lock);
278 elapsed = atomic64_read(&virt_timer_elapsed);
279 list_for_each_entry_safe(timer, tmp, &virt_timer_list, entry) {
280 if (timer->expires < elapsed)
281 /* move expired timer to the callback queue */
282 list_move_tail(&timer->entry, &cb_list);
283 else
284 timer->expires -= elapsed;
285 }
286 if (!list_empty(&virt_timer_list)) {
287 timer = list_first_entry(&virt_timer_list,
288 struct vtimer_list, entry);
289 atomic64_set(&virt_timer_current, timer->expires);
290 }
291 atomic64_sub(elapsed, &virt_timer_elapsed);
292 spin_unlock(&virt_timer_lock);
293
294 /* Do callbacks and recharge periodic timers */
295 list_for_each_entry_safe(timer, tmp, &cb_list, entry) {
296 list_del_init(&timer->entry);
297 timer->function(timer->data);
298 if (timer->interval) {
299 /* Recharge interval timer */
300 timer->expires = timer->interval +
301 atomic64_read(&virt_timer_elapsed);
302 spin_lock(&virt_timer_lock);
303 list_add_sorted(timer, &virt_timer_list);
304 spin_unlock(&virt_timer_lock);
305 }
306 }
307 }
308
init_virt_timer(struct vtimer_list * timer)309 void init_virt_timer(struct vtimer_list *timer)
310 {
311 timer->function = NULL;
312 INIT_LIST_HEAD(&timer->entry);
313 }
314 EXPORT_SYMBOL(init_virt_timer);
315
vtimer_pending(struct vtimer_list * timer)316 static inline int vtimer_pending(struct vtimer_list *timer)
317 {
318 return !list_empty(&timer->entry);
319 }
320
internal_add_vtimer(struct vtimer_list * timer)321 static void internal_add_vtimer(struct vtimer_list *timer)
322 {
323 if (list_empty(&virt_timer_list)) {
324 /* First timer, just program it. */
325 atomic64_set(&virt_timer_current, timer->expires);
326 atomic64_set(&virt_timer_elapsed, 0);
327 list_add(&timer->entry, &virt_timer_list);
328 } else {
329 /* Update timer against current base. */
330 timer->expires += atomic64_read(&virt_timer_elapsed);
331 if (likely((s64) timer->expires <
332 (s64) atomic64_read(&virt_timer_current)))
333 /* The new timer expires before the current timer. */
334 atomic64_set(&virt_timer_current, timer->expires);
335 /* Insert new timer into the list. */
336 list_add_sorted(timer, &virt_timer_list);
337 }
338 }
339
__add_vtimer(struct vtimer_list * timer,int periodic)340 static void __add_vtimer(struct vtimer_list *timer, int periodic)
341 {
342 unsigned long flags;
343
344 timer->interval = periodic ? timer->expires : 0;
345 spin_lock_irqsave(&virt_timer_lock, flags);
346 internal_add_vtimer(timer);
347 spin_unlock_irqrestore(&virt_timer_lock, flags);
348 }
349
350 /*
351 * add_virt_timer - add a oneshot virtual CPU timer
352 */
add_virt_timer(struct vtimer_list * timer)353 void add_virt_timer(struct vtimer_list *timer)
354 {
355 __add_vtimer(timer, 0);
356 }
357 EXPORT_SYMBOL(add_virt_timer);
358
359 /*
360 * add_virt_timer_int - add an interval virtual CPU timer
361 */
add_virt_timer_periodic(struct vtimer_list * timer)362 void add_virt_timer_periodic(struct vtimer_list *timer)
363 {
364 __add_vtimer(timer, 1);
365 }
366 EXPORT_SYMBOL(add_virt_timer_periodic);
367
__mod_vtimer(struct vtimer_list * timer,u64 expires,int periodic)368 static int __mod_vtimer(struct vtimer_list *timer, u64 expires, int periodic)
369 {
370 unsigned long flags;
371 int rc;
372
373 BUG_ON(!timer->function);
374
375 if (timer->expires == expires && vtimer_pending(timer))
376 return 1;
377 spin_lock_irqsave(&virt_timer_lock, flags);
378 rc = vtimer_pending(timer);
379 if (rc)
380 list_del_init(&timer->entry);
381 timer->interval = periodic ? expires : 0;
382 timer->expires = expires;
383 internal_add_vtimer(timer);
384 spin_unlock_irqrestore(&virt_timer_lock, flags);
385 return rc;
386 }
387
388 /*
389 * returns whether it has modified a pending timer (1) or not (0)
390 */
mod_virt_timer(struct vtimer_list * timer,u64 expires)391 int mod_virt_timer(struct vtimer_list *timer, u64 expires)
392 {
393 return __mod_vtimer(timer, expires, 0);
394 }
395 EXPORT_SYMBOL(mod_virt_timer);
396
397 /*
398 * returns whether it has modified a pending timer (1) or not (0)
399 */
mod_virt_timer_periodic(struct vtimer_list * timer,u64 expires)400 int mod_virt_timer_periodic(struct vtimer_list *timer, u64 expires)
401 {
402 return __mod_vtimer(timer, expires, 1);
403 }
404 EXPORT_SYMBOL(mod_virt_timer_periodic);
405
406 /*
407 * Delete a virtual timer.
408 *
409 * returns whether the deleted timer was pending (1) or not (0)
410 */
del_virt_timer(struct vtimer_list * timer)411 int del_virt_timer(struct vtimer_list *timer)
412 {
413 unsigned long flags;
414
415 if (!vtimer_pending(timer))
416 return 0;
417 spin_lock_irqsave(&virt_timer_lock, flags);
418 list_del_init(&timer->entry);
419 spin_unlock_irqrestore(&virt_timer_lock, flags);
420 return 1;
421 }
422 EXPORT_SYMBOL(del_virt_timer);
423
424 /*
425 * Start the virtual CPU timer on the current CPU.
426 */
vtime_init(void)427 void vtime_init(void)
428 {
429 /* set initial cpu timer */
430 set_vtimer(VTIMER_MAX_SLICE);
431 /* Setup initial MT scaling values */
432 if (smp_cpu_mtid) {
433 __this_cpu_write(mt_scaling_jiffies, jiffies);
434 __this_cpu_write(mt_scaling_mult, 1);
435 __this_cpu_write(mt_scaling_div, 1);
436 stcctm(MT_DIAG, smp_cpu_mtid + 1, this_cpu_ptr(mt_cycles));
437 }
438 }
439