a9ptmr.c revision 1.2.2.2 1 1.2.2.2 martin /* $NetBSD: a9ptmr.c,v 1.2.2.2 2019/08/15 09:49:49 martin Exp $ */
2 1.2.2.2 martin
3 1.2.2.2 martin /*-
4 1.2.2.2 martin * Copyright (c) 2019 The NetBSD Foundation, Inc.
5 1.2.2.2 martin * All rights reserved.
6 1.2.2.2 martin *
7 1.2.2.2 martin * This code is derived from software contributed to The NetBSD Foundation
8 1.2.2.2 martin * by Nick Hudson
9 1.2.2.2 martin *
10 1.2.2.2 martin * Redistribution and use in source and binary forms, with or without
11 1.2.2.2 martin * modification, are permitted provided that the following conditions
12 1.2.2.2 martin * are met:
13 1.2.2.2 martin * 1. Redistributions of source code must retain the above copyright
14 1.2.2.2 martin * notice, this list of conditions and the following disclaimer.
15 1.2.2.2 martin * 2. Redistributions in binary form must reproduce the above copyright
16 1.2.2.2 martin * notice, this list of conditions and the following disclaimer in the
17 1.2.2.2 martin * documentation and/or other materials provided with the distribution.
18 1.2.2.2 martin *
19 1.2.2.2 martin * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.2.2.2 martin * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.2.2.2 martin * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.2.2.2 martin * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.2.2.2 martin * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.2.2.2 martin * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.2.2.2 martin * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.2.2.2 martin * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.2.2.2 martin * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.2.2.2 martin * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.2.2.2 martin * POSSIBILITY OF SUCH DAMAGE.
30 1.2.2.2 martin */
31 1.2.2.2 martin
32 1.2.2.2 martin #include <sys/cdefs.h>
33 1.2.2.2 martin __KERNEL_RCSID(0, "$NetBSD: a9ptmr.c,v 1.2.2.2 2019/08/15 09:49:49 martin Exp $");
34 1.2.2.2 martin
35 1.2.2.2 martin #include <sys/param.h>
36 1.2.2.2 martin #include <sys/bus.h>
37 1.2.2.2 martin #include <sys/cpu.h>
38 1.2.2.2 martin #include <sys/device.h>
39 1.2.2.2 martin #include <sys/kernel.h>
40 1.2.2.2 martin
41 1.2.2.2 martin #include <prop/proplib.h>
42 1.2.2.2 martin
43 1.2.2.2 martin #include <arm/cortex/a9tmr_reg.h>
44 1.2.2.2 martin #include <arm/cortex/a9ptmr_var.h>
45 1.2.2.2 martin
46 1.2.2.2 martin #include <arm/cortex/mpcore_var.h>
47 1.2.2.2 martin
48 1.2.2.2 martin static struct a9ptmr_softc *a9ptmr_sc;
49 1.2.2.2 martin
50 1.2.2.2 martin static int a9ptmr_match(device_t, cfdata_t, void *);
51 1.2.2.2 martin static void a9ptmr_attach(device_t, device_t, void *);
52 1.2.2.2 martin
53 1.2.2.2 martin struct a9ptmr_softc {
54 1.2.2.2 martin device_t sc_dev;
55 1.2.2.2 martin bus_space_tag_t sc_memt;
56 1.2.2.2 martin bus_space_handle_t sc_memh;
57 1.2.2.2 martin
58 1.2.2.2 martin uint32_t sc_ctl;
59 1.2.2.2 martin uint32_t sc_freq;
60 1.2.2.2 martin uint32_t sc_load;
61 1.2.2.2 martin
62 1.2.2.2 martin uint32_t sc_prescaler;
63 1.2.2.2 martin };
64 1.2.2.2 martin
65 1.2.2.2 martin
66 1.2.2.2 martin CFATTACH_DECL_NEW(arma9ptmr, sizeof(struct a9ptmr_softc),
67 1.2.2.2 martin a9ptmr_match, a9ptmr_attach, NULL, NULL);
68 1.2.2.2 martin
69 1.2.2.2 martin static bool attached;
70 1.2.2.2 martin
71 1.2.2.2 martin static inline uint32_t
72 1.2.2.2 martin a9ptmr_read(struct a9ptmr_softc *sc, bus_size_t o)
73 1.2.2.2 martin {
74 1.2.2.2 martin return bus_space_read_4(sc->sc_memt, sc->sc_memh, o);
75 1.2.2.2 martin }
76 1.2.2.2 martin
77 1.2.2.2 martin static inline void
78 1.2.2.2 martin a9ptmr_write(struct a9ptmr_softc *sc, bus_size_t o, uint32_t v)
79 1.2.2.2 martin {
80 1.2.2.2 martin bus_space_write_4(sc->sc_memt, sc->sc_memh, o, v);
81 1.2.2.2 martin }
82 1.2.2.2 martin
83 1.2.2.2 martin /* ARGSUSED */
84 1.2.2.2 martin static int
85 1.2.2.2 martin a9ptmr_match(device_t parent, cfdata_t cf, void *aux)
86 1.2.2.2 martin {
87 1.2.2.2 martin struct mpcore_attach_args * const mpcaa = aux;
88 1.2.2.2 martin
89 1.2.2.2 martin if (attached)
90 1.2.2.2 martin return 0;
91 1.2.2.2 martin
92 1.2.2.2 martin if (!CPU_ID_CORTEX_A9_P(curcpu()->ci_arm_cpuid) &&
93 1.2.2.2 martin !CPU_ID_CORTEX_A5_P(curcpu()->ci_arm_cpuid))
94 1.2.2.2 martin return 0;
95 1.2.2.2 martin
96 1.2.2.2 martin if (strcmp(mpcaa->mpcaa_name, cf->cf_name) != 0)
97 1.2.2.2 martin return 0;
98 1.2.2.2 martin
99 1.2.2.2 martin #if 0
100 1.2.2.2 martin /*
101 1.2.2.2 martin * This isn't present on UP A9s (since CBAR isn't present).
102 1.2.2.2 martin */
103 1.2.2.2 martin uint32_t mpidr = armreg_mpidr_read();
104 1.2.2.2 martin if (mpidr == 0 || (mpidr & MPIDR_U))
105 1.2.2.2 martin return 0;
106 1.2.2.2 martin #endif
107 1.2.2.2 martin
108 1.2.2.2 martin return 1;
109 1.2.2.2 martin }
110 1.2.2.2 martin
111 1.2.2.2 martin
112 1.2.2.2 martin static void
113 1.2.2.2 martin a9ptmr_attach(device_t parent, device_t self, void *aux)
114 1.2.2.2 martin {
115 1.2.2.2 martin struct a9ptmr_softc * const sc = device_private(self);
116 1.2.2.2 martin struct mpcore_attach_args * const mpcaa = aux;
117 1.2.2.2 martin prop_dictionary_t dict = device_properties(self);
118 1.2.2.2 martin char freqbuf[sizeof("XXX SHz")];
119 1.2.2.2 martin const char *cpu_type;
120 1.2.2.2 martin
121 1.2.2.2 martin
122 1.2.2.2 martin sc->sc_dev = self;
123 1.2.2.2 martin sc->sc_memt = mpcaa->mpcaa_memt;
124 1.2.2.2 martin
125 1.2.2.2 martin bus_space_subregion(sc->sc_memt, mpcaa->mpcaa_memh,
126 1.2.2.2 martin mpcaa->mpcaa_off1, TMR_PRIVATE_SIZE, &sc->sc_memh);
127 1.2.2.2 martin
128 1.2.2.2 martin /*
129 1.2.2.2 martin * This runs at the ARM PERIPHCLOCK.
130 1.2.2.2 martin * The MD code should have setup our frequency for us.
131 1.2.2.2 martin */
132 1.2.2.2 martin if (!prop_dictionary_get_uint32(dict, "frequency", &sc->sc_freq)) {
133 1.2.2.2 martin dict = device_properties(parent);
134 1.2.2.2 martin prop_dictionary_get_uint32(dict, "frequency", &sc->sc_freq);
135 1.2.2.2 martin }
136 1.2.2.2 martin
137 1.2.2.2 martin humanize_number(freqbuf, sizeof(freqbuf), sc->sc_freq, "Hz", 1000);
138 1.2.2.2 martin
139 1.2.2.2 martin a9ptmr_sc = sc;
140 1.2.2.2 martin sc->sc_dev = self;
141 1.2.2.2 martin sc->sc_memt = mpcaa->mpcaa_memt;
142 1.2.2.2 martin sc->sc_memh = mpcaa->mpcaa_memh;
143 1.2.2.2 martin
144 1.2.2.2 martin sc->sc_ctl = a9ptmr_read(sc, TMR_CTL);
145 1.2.2.2 martin
146 1.2.2.2 martin sc->sc_prescaler = 1;
147 1.2.2.2 martin #if 0
148 1.2.2.2 martin /*
149 1.2.2.2 martin * Let's hope the timer frequency isn't prime.
150 1.2.2.2 martin */
151 1.2.2.2 martin for (size_t div = 256; div >= 2; div--) {
152 1.2.2.2 martin if (sc->sc_freq % div == 0) {
153 1.2.2.2 martin sc->sc_prescaler = div;
154 1.2.2.2 martin break;
155 1.2.2.2 martin }
156 1.2.2.2 martin }
157 1.2.2.2 martin sc->sc_freq /= sc->sc_prescaler;
158 1.2.2.2 martin #endif
159 1.2.2.2 martin
160 1.2.2.2 martin aprint_debug(": freq %d prescaler %d", sc->sc_freq,
161 1.2.2.2 martin sc->sc_prescaler);
162 1.2.2.2 martin sc->sc_ctl = TMR_CTL_INT_ENABLE | TMR_CTL_AUTO_RELOAD | TMR_CTL_ENABLE;
163 1.2.2.2 martin sc->sc_ctl |= __SHIFTIN(sc->sc_prescaler - 1, TMR_CTL_PRESCALER);
164 1.2.2.2 martin
165 1.2.2.2 martin sc->sc_load = (sc->sc_freq / hz) - 1;
166 1.2.2.2 martin
167 1.2.2.2 martin aprint_debug(": load %d ", sc->sc_load);
168 1.2.2.2 martin
169 1.2.2.2 martin a9ptmr_init_cpu_clock(curcpu());
170 1.2.2.2 martin
171 1.2.2.2 martin aprint_naive("\n");
172 1.2.2.2 martin if (CPU_ID_CORTEX_A5_P(curcpu()->ci_arm_cpuid)) {
173 1.2.2.2 martin cpu_type = "A5";
174 1.2.2.2 martin } else {
175 1.2.2.2 martin cpu_type = "A9";
176 1.2.2.2 martin }
177 1.2.2.2 martin aprint_normal(": %s Private Timer (%s)\n", cpu_type, freqbuf);
178 1.2.2.2 martin
179 1.2.2.2 martin attached = true;
180 1.2.2.2 martin }
181 1.2.2.2 martin
182 1.2.2.2 martin
183 1.2.2.2 martin
184 1.2.2.2 martin void
185 1.2.2.2 martin a9ptmr_delay(unsigned int n)
186 1.2.2.2 martin {
187 1.2.2.2 martin struct a9ptmr_softc * const sc = a9ptmr_sc;
188 1.2.2.2 martin
189 1.2.2.2 martin KASSERT(sc != NULL);
190 1.2.2.2 martin
191 1.2.2.2 martin uint32_t freq = sc->sc_freq ? sc->sc_freq :
192 1.2.2.2 martin curcpu()->ci_data.cpu_cc_freq / 2;
193 1.2.2.2 martin KASSERT(freq != 0);
194 1.2.2.2 martin
195 1.2.2.2 martin const uint64_t counts_per_usec = freq / 1000000;
196 1.2.2.2 martin uint32_t delta, usecs, last, curr;
197 1.2.2.2 martin
198 1.2.2.2 martin KASSERT(sc != NULL);
199 1.2.2.2 martin
200 1.2.2.2 martin last = a9ptmr_read(sc, TMR_CTR);
201 1.2.2.2 martin
202 1.2.2.2 martin delta = usecs = 0;
203 1.2.2.2 martin while (n > usecs) {
204 1.2.2.2 martin curr = a9ptmr_read(sc, TMR_CTR);
205 1.2.2.2 martin
206 1.2.2.2 martin /* Check to see if the timer has reloaded. */
207 1.2.2.2 martin if (curr > last)
208 1.2.2.2 martin delta += (sc->sc_load - curr) + last;
209 1.2.2.2 martin else
210 1.2.2.2 martin delta += last - curr;
211 1.2.2.2 martin
212 1.2.2.2 martin last = curr;
213 1.2.2.2 martin
214 1.2.2.2 martin if (delta >= counts_per_usec) {
215 1.2.2.2 martin usecs += delta / counts_per_usec;
216 1.2.2.2 martin delta %= counts_per_usec;
217 1.2.2.2 martin }
218 1.2.2.2 martin }
219 1.2.2.2 martin }
220 1.2.2.2 martin
221 1.2.2.2 martin
222 1.2.2.2 martin void
223 1.2.2.2 martin a9ptmr_cpu_initclocks(void)
224 1.2.2.2 martin {
225 1.2.2.2 martin struct a9ptmr_softc * const sc __diagused = a9ptmr_sc;
226 1.2.2.2 martin
227 1.2.2.2 martin KASSERT(sc->sc_dev != NULL);
228 1.2.2.2 martin KASSERT(sc->sc_freq != 0);
229 1.2.2.2 martin
230 1.2.2.2 martin }
231 1.2.2.2 martin
232 1.2.2.2 martin void
233 1.2.2.2 martin a9ptmr_init_cpu_clock(struct cpu_info *ci)
234 1.2.2.2 martin {
235 1.2.2.2 martin struct a9ptmr_softc * const sc = a9ptmr_sc;
236 1.2.2.2 martin
237 1.2.2.2 martin /* Disable Private timer and acknowledge any event */
238 1.2.2.2 martin a9ptmr_write(sc, TMR_CTL, 0);
239 1.2.2.2 martin a9ptmr_write(sc, TMR_INT, TMR_INT_EVENT);
240 1.2.2.2 martin
241 1.2.2.2 martin /*
242 1.2.2.2 martin * Provide the auto load value for the decrementing counter and
243 1.2.2.2 martin * start it.
244 1.2.2.2 martin */
245 1.2.2.2 martin a9ptmr_write(sc, TMR_LOAD, sc->sc_load);
246 1.2.2.2 martin a9ptmr_write(sc, TMR_CTL, sc->sc_ctl);
247 1.2.2.2 martin
248 1.2.2.2 martin }
249 1.2.2.2 martin
250 1.2.2.2 martin
251 1.2.2.2 martin
252 1.2.2.2 martin /*
253 1.2.2.2 martin * a9ptmr_intr:
254 1.2.2.2 martin *
255 1.2.2.2 martin * Handle the hardclock interrupt.
256 1.2.2.2 martin */
257 1.2.2.2 martin int
258 1.2.2.2 martin a9ptmr_intr(void *arg)
259 1.2.2.2 martin {
260 1.2.2.2 martin struct clockframe * const cf = arg;
261 1.2.2.2 martin struct a9ptmr_softc * const sc = a9ptmr_sc;
262 1.2.2.2 martin
263 1.2.2.2 martin a9ptmr_write(sc, TMR_INT, TMR_INT_EVENT);
264 1.2.2.2 martin hardclock(cf);
265 1.2.2.2 martin
266 1.2.2.2 martin return 1;
267 1.2.2.2 martin }
268