vmalloc: walk vmap_areas by sorted list instead of rb_next()
[linux/fpc-iii.git] / arch / blackfin / kernel / time-ts.c
blobf608f02f29a3505dfe4c84055e90e782f2ebb795
1 /*
2 * Based on arm clockevents implementation and old bfin time tick.
4 * Copyright 2008-2009 Analog Devics Inc.
5 * 2008 GeoTechnologies
6 * Vitja Makarov
8 * Licensed under the GPL-2
9 */
11 #include <linux/module.h>
12 #include <linux/profile.h>
13 #include <linux/interrupt.h>
14 #include <linux/time.h>
15 #include <linux/timex.h>
16 #include <linux/irq.h>
17 #include <linux/clocksource.h>
18 #include <linux/clockchips.h>
19 #include <linux/cpufreq.h>
21 #include <asm/blackfin.h>
22 #include <asm/time.h>
23 #include <asm/gptimers.h>
24 #include <asm/nmi.h>
27 #if defined(CONFIG_CYCLES_CLOCKSOURCE)
29 static notrace cycle_t bfin_read_cycles(struct clocksource *cs)
31 #ifdef CONFIG_CPU_FREQ
32 return __bfin_cycles_off + (get_cycles() << __bfin_cycles_mod);
33 #else
34 return get_cycles();
35 #endif
38 static struct clocksource bfin_cs_cycles = {
39 .name = "bfin_cs_cycles",
40 .rating = 400,
41 .read = bfin_read_cycles,
42 .mask = CLOCKSOURCE_MASK(64),
43 .flags = CLOCK_SOURCE_IS_CONTINUOUS,
46 static inline unsigned long long bfin_cs_cycles_sched_clock(void)
48 return clocksource_cyc2ns(bfin_read_cycles(&bfin_cs_cycles),
49 bfin_cs_cycles.mult, bfin_cs_cycles.shift);
52 static int __init bfin_cs_cycles_init(void)
54 if (clocksource_register_hz(&bfin_cs_cycles, get_cclk()))
55 panic("failed to register clocksource");
57 return 0;
59 #else
60 # define bfin_cs_cycles_init()
61 #endif
63 #ifdef CONFIG_GPTMR0_CLOCKSOURCE
65 void __init setup_gptimer0(void)
67 disable_gptimers(TIMER0bit);
69 #ifdef CONFIG_BF60x
70 bfin_write16(TIMER_DATA_IMSK, 0);
71 set_gptimer_config(TIMER0_id, TIMER_OUT_DIS
72 | TIMER_MODE_PWM_CONT | TIMER_PULSE_HI | TIMER_IRQ_PER);
73 #else
74 set_gptimer_config(TIMER0_id, \
75 TIMER_OUT_DIS | TIMER_PERIOD_CNT | TIMER_MODE_PWM);
76 #endif
77 set_gptimer_period(TIMER0_id, -1);
78 set_gptimer_pwidth(TIMER0_id, -2);
79 SSYNC();
80 enable_gptimers(TIMER0bit);
83 static cycle_t bfin_read_gptimer0(struct clocksource *cs)
85 return bfin_read_TIMER0_COUNTER();
88 static struct clocksource bfin_cs_gptimer0 = {
89 .name = "bfin_cs_gptimer0",
90 .rating = 350,
91 .read = bfin_read_gptimer0,
92 .mask = CLOCKSOURCE_MASK(32),
93 .flags = CLOCK_SOURCE_IS_CONTINUOUS,
96 static inline unsigned long long bfin_cs_gptimer0_sched_clock(void)
98 return clocksource_cyc2ns(bfin_read_TIMER0_COUNTER(),
99 bfin_cs_gptimer0.mult, bfin_cs_gptimer0.shift);
102 static int __init bfin_cs_gptimer0_init(void)
104 setup_gptimer0();
106 if (clocksource_register_hz(&bfin_cs_gptimer0, get_sclk()))
107 panic("failed to register clocksource");
109 return 0;
111 #else
112 # define bfin_cs_gptimer0_init()
113 #endif
115 #if defined(CONFIG_GPTMR0_CLOCKSOURCE) || defined(CONFIG_CYCLES_CLOCKSOURCE)
116 /* prefer to use cycles since it has higher rating */
117 notrace unsigned long long sched_clock(void)
119 #if defined(CONFIG_CYCLES_CLOCKSOURCE)
120 return bfin_cs_cycles_sched_clock();
121 #else
122 return bfin_cs_gptimer0_sched_clock();
123 #endif
125 #endif
127 #if defined(CONFIG_TICKSOURCE_GPTMR0)
128 static int bfin_gptmr0_set_next_event(unsigned long cycles,
129 struct clock_event_device *evt)
131 disable_gptimers(TIMER0bit);
133 /* it starts counting three SCLK cycles after the TIMENx bit is set */
134 set_gptimer_pwidth(TIMER0_id, cycles - 3);
135 enable_gptimers(TIMER0bit);
136 return 0;
139 static void bfin_gptmr0_set_mode(enum clock_event_mode mode,
140 struct clock_event_device *evt)
142 switch (mode) {
143 case CLOCK_EVT_MODE_PERIODIC: {
144 #ifndef CONFIG_BF60x
145 set_gptimer_config(TIMER0_id, \
146 TIMER_OUT_DIS | TIMER_IRQ_ENA | \
147 TIMER_PERIOD_CNT | TIMER_MODE_PWM);
148 #else
149 set_gptimer_config(TIMER0_id, TIMER_OUT_DIS
150 | TIMER_MODE_PWM_CONT | TIMER_PULSE_HI | TIMER_IRQ_PER);
151 #endif
153 set_gptimer_period(TIMER0_id, get_sclk() / HZ);
154 set_gptimer_pwidth(TIMER0_id, get_sclk() / HZ - 1);
155 enable_gptimers(TIMER0bit);
156 break;
158 case CLOCK_EVT_MODE_ONESHOT:
159 disable_gptimers(TIMER0bit);
160 #ifndef CONFIG_BF60x
161 set_gptimer_config(TIMER0_id, \
162 TIMER_OUT_DIS | TIMER_IRQ_ENA | TIMER_MODE_PWM);
163 #else
164 set_gptimer_config(TIMER0_id, TIMER_OUT_DIS | TIMER_MODE_PWM
165 | TIMER_PULSE_HI | TIMER_IRQ_WID_DLY);
166 #endif
168 set_gptimer_period(TIMER0_id, 0);
169 break;
170 case CLOCK_EVT_MODE_UNUSED:
171 case CLOCK_EVT_MODE_SHUTDOWN:
172 disable_gptimers(TIMER0bit);
173 break;
174 case CLOCK_EVT_MODE_RESUME:
175 break;
179 static void bfin_gptmr0_ack(void)
181 clear_gptimer_intr(TIMER0_id);
184 static void __init bfin_gptmr0_init(void)
186 disable_gptimers(TIMER0bit);
189 #ifdef CONFIG_CORE_TIMER_IRQ_L1
190 __attribute__((l1_text))
191 #endif
192 irqreturn_t bfin_gptmr0_interrupt(int irq, void *dev_id)
194 struct clock_event_device *evt = dev_id;
195 smp_mb();
197 * We want to ACK before we handle so that we can handle smaller timer
198 * intervals. This way if the timer expires again while we're handling
199 * things, we're more likely to see that 2nd int rather than swallowing
200 * it by ACKing the int at the end of this handler.
202 bfin_gptmr0_ack();
203 evt->event_handler(evt);
204 return IRQ_HANDLED;
207 static struct irqaction gptmr0_irq = {
208 .name = "Blackfin GPTimer0",
209 .flags = IRQF_TIMER | IRQF_IRQPOLL | IRQF_PERCPU,
210 .handler = bfin_gptmr0_interrupt,
213 static struct clock_event_device clockevent_gptmr0 = {
214 .name = "bfin_gptimer0",
215 .rating = 300,
216 .irq = IRQ_TIMER0,
217 .shift = 32,
218 .features = CLOCK_EVT_FEAT_PERIODIC | CLOCK_EVT_FEAT_ONESHOT,
219 .set_next_event = bfin_gptmr0_set_next_event,
220 .set_mode = bfin_gptmr0_set_mode,
223 static void __init bfin_gptmr0_clockevent_init(struct clock_event_device *evt)
225 unsigned long clock_tick;
227 clock_tick = get_sclk();
228 evt->mult = div_sc(clock_tick, NSEC_PER_SEC, evt->shift);
229 evt->max_delta_ns = clockevent_delta2ns(-1, evt);
230 evt->min_delta_ns = clockevent_delta2ns(100, evt);
232 evt->cpumask = cpumask_of(0);
234 clockevents_register_device(evt);
236 #endif /* CONFIG_TICKSOURCE_GPTMR0 */
238 #if defined(CONFIG_TICKSOURCE_CORETMR)
239 /* per-cpu local core timer */
240 DEFINE_PER_CPU(struct clock_event_device, coretmr_events);
242 static int bfin_coretmr_set_next_event(unsigned long cycles,
243 struct clock_event_device *evt)
245 bfin_write_TCNTL(TMPWR);
246 CSYNC();
247 bfin_write_TCOUNT(cycles);
248 CSYNC();
249 bfin_write_TCNTL(TMPWR | TMREN);
250 return 0;
253 static void bfin_coretmr_set_mode(enum clock_event_mode mode,
254 struct clock_event_device *evt)
256 switch (mode) {
257 case CLOCK_EVT_MODE_PERIODIC: {
258 unsigned long tcount = ((get_cclk() / (HZ * TIME_SCALE)) - 1);
259 bfin_write_TCNTL(TMPWR);
260 CSYNC();
261 bfin_write_TSCALE(TIME_SCALE - 1);
262 bfin_write_TPERIOD(tcount);
263 bfin_write_TCOUNT(tcount);
264 CSYNC();
265 bfin_write_TCNTL(TMPWR | TMREN | TAUTORLD);
266 break;
268 case CLOCK_EVT_MODE_ONESHOT:
269 bfin_write_TCNTL(TMPWR);
270 CSYNC();
271 bfin_write_TSCALE(TIME_SCALE - 1);
272 bfin_write_TPERIOD(0);
273 bfin_write_TCOUNT(0);
274 break;
275 case CLOCK_EVT_MODE_UNUSED:
276 case CLOCK_EVT_MODE_SHUTDOWN:
277 bfin_write_TCNTL(0);
278 CSYNC();
279 break;
280 case CLOCK_EVT_MODE_RESUME:
281 break;
285 void bfin_coretmr_init(void)
287 /* power up the timer, but don't enable it just yet */
288 bfin_write_TCNTL(TMPWR);
289 CSYNC();
291 /* the TSCALE prescaler counter. */
292 bfin_write_TSCALE(TIME_SCALE - 1);
293 bfin_write_TPERIOD(0);
294 bfin_write_TCOUNT(0);
296 CSYNC();
299 #ifdef CONFIG_CORE_TIMER_IRQ_L1
300 __attribute__((l1_text))
301 #endif
303 irqreturn_t bfin_coretmr_interrupt(int irq, void *dev_id)
305 int cpu = smp_processor_id();
306 struct clock_event_device *evt = &per_cpu(coretmr_events, cpu);
308 smp_mb();
309 evt->event_handler(evt);
311 touch_nmi_watchdog();
313 return IRQ_HANDLED;
316 static struct irqaction coretmr_irq = {
317 .name = "Blackfin CoreTimer",
318 .flags = IRQF_TIMER | IRQF_IRQPOLL | IRQF_PERCPU,
319 .handler = bfin_coretmr_interrupt,
322 void bfin_coretmr_clockevent_init(void)
324 unsigned long clock_tick;
325 unsigned int cpu = smp_processor_id();
326 struct clock_event_device *evt = &per_cpu(coretmr_events, cpu);
328 #ifdef CONFIG_SMP
329 evt->broadcast = smp_timer_broadcast;
330 #endif
333 #ifdef CONFIG_SMP
334 evt->broadcast = smp_timer_broadcast;
335 #endif
338 evt->name = "bfin_core_timer";
339 evt->rating = 350;
340 evt->irq = -1;
341 evt->shift = 32;
342 evt->features = CLOCK_EVT_FEAT_PERIODIC | CLOCK_EVT_FEAT_ONESHOT;
343 evt->set_next_event = bfin_coretmr_set_next_event;
344 evt->set_mode = bfin_coretmr_set_mode;
346 clock_tick = get_cclk() / TIME_SCALE;
347 evt->mult = div_sc(clock_tick, NSEC_PER_SEC, evt->shift);
348 evt->max_delta_ns = clockevent_delta2ns(-1, evt);
349 evt->min_delta_ns = clockevent_delta2ns(100, evt);
351 evt->cpumask = cpumask_of(cpu);
353 clockevents_register_device(evt);
355 #endif /* CONFIG_TICKSOURCE_CORETMR */
358 void read_persistent_clock(struct timespec *ts)
360 time_t secs_since_1970 = (365 * 37 + 9) * 24 * 60 * 60; /* 1 Jan 2007 */
361 ts->tv_sec = secs_since_1970;
362 ts->tv_nsec = 0;
365 void __init time_init(void)
368 #ifdef CONFIG_RTC_DRV_BFIN
369 /* [#2663] hack to filter junk RTC values that would cause
370 * userspace to have to deal with time values greater than
371 * 2^31 seconds (which uClibc cannot cope with yet)
373 if ((bfin_read_RTC_STAT() & 0xC0000000) == 0xC0000000) {
374 printk(KERN_NOTICE "bfin-rtc: invalid date; resetting\n");
375 bfin_write_RTC_STAT(0);
377 #endif
379 bfin_cs_cycles_init();
380 bfin_cs_gptimer0_init();
382 #if defined(CONFIG_TICKSOURCE_CORETMR)
383 bfin_coretmr_init();
384 setup_irq(IRQ_CORETMR, &coretmr_irq);
385 bfin_coretmr_clockevent_init();
386 #endif
388 #if defined(CONFIG_TICKSOURCE_GPTMR0)
389 bfin_gptmr0_init();
390 setup_irq(IRQ_TIMER0, &gptmr0_irq);
391 gptmr0_irq.dev_id = &clockevent_gptmr0;
392 bfin_gptmr0_clockevent_init(&clockevent_gptmr0);
393 #endif
395 #if !defined(CONFIG_TICKSOURCE_CORETMR) && !defined(CONFIG_TICKSOURCE_GPTMR0)
396 # error at least one clock event device is required
397 #endif