malta_intr.c revision 1.20 1 1.20 matt /* $NetBSD: malta_intr.c,v 1.20 2011/02/20 07:48:34 matt Exp $ */
2 1.1 simonb
3 1.1 simonb /*
4 1.1 simonb * Copyright 2001, 2002 Wasabi Systems, Inc.
5 1.1 simonb * All rights reserved.
6 1.1 simonb *
7 1.1 simonb * Written by Jason R. Thorpe and Simon Burge for Wasabi Systems, Inc.
8 1.1 simonb *
9 1.1 simonb * Redistribution and use in source and binary forms, with or without
10 1.1 simonb * modification, are permitted provided that the following conditions
11 1.1 simonb * are met:
12 1.1 simonb * 1. Redistributions of source code must retain the above copyright
13 1.1 simonb * notice, this list of conditions and the following disclaimer.
14 1.1 simonb * 2. Redistributions in binary form must reproduce the above copyright
15 1.1 simonb * notice, this list of conditions and the following disclaimer in the
16 1.1 simonb * documentation and/or other materials provided with the distribution.
17 1.1 simonb * 3. All advertising materials mentioning features or use of this software
18 1.1 simonb * must display the following acknowledgement:
19 1.1 simonb * This product includes software developed for the NetBSD Project by
20 1.1 simonb * Wasabi Systems, Inc.
21 1.1 simonb * 4. The name of Wasabi Systems, Inc. may not be used to endorse
22 1.1 simonb * or promote products derived from this software without specific prior
23 1.1 simonb * written permission.
24 1.1 simonb *
25 1.1 simonb * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
26 1.1 simonb * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
27 1.1 simonb * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
28 1.1 simonb * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL WASABI SYSTEMS, INC
29 1.1 simonb * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
30 1.1 simonb * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
31 1.1 simonb * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
32 1.1 simonb * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
33 1.1 simonb * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
34 1.1 simonb * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
35 1.1 simonb * POSSIBILITY OF SUCH DAMAGE.
36 1.1 simonb */
37 1.1 simonb
38 1.1 simonb /*
39 1.1 simonb * Platform-specific interrupt support for the MIPS Malta.
40 1.1 simonb */
41 1.1 simonb
42 1.9 lukem #include <sys/cdefs.h>
43 1.20 matt __KERNEL_RCSID(0, "$NetBSD: malta_intr.c,v 1.20 2011/02/20 07:48:34 matt Exp $");
44 1.20 matt
45 1.20 matt #define __INTR_PRIVATE
46 1.1 simonb
47 1.1 simonb #include <sys/param.h>
48 1.1 simonb #include <sys/device.h>
49 1.1 simonb #include <sys/kernel.h>
50 1.1 simonb #include <sys/malloc.h>
51 1.10 simonb #include <sys/systm.h>
52 1.14 yamt #include <sys/cpu.h>
53 1.1 simonb
54 1.1 simonb #include <mips/locore.h>
55 1.1 simonb
56 1.1 simonb #include <evbmips/malta/maltavar.h>
57 1.1 simonb #include <evbmips/malta/pci/pcibvar.h>
58 1.1 simonb
59 1.1 simonb #include <dev/ic/mc146818reg.h> /* for malta_cal_timer() */
60 1.1 simonb
61 1.1 simonb #include <dev/isa/isavar.h>
62 1.1 simonb #include <dev/pci/pciidereg.h>
63 1.1 simonb
64 1.1 simonb /*
65 1.1 simonb * This is a mask of bits to clear in the SR when we go to a
66 1.1 simonb * given hardware interrupt priority level.
67 1.1 simonb */
68 1.20 matt static const struct ipl_sr_map malta_ipl_sr_map = {
69 1.20 matt .sr_bits = {
70 1.20 matt [IPL_NONE] = 0,
71 1.20 matt [IPL_SOFTCLOCK] = MIPS_SOFT_INT_MASK_0,
72 1.20 matt [IPL_SOFTNET] = MIPS_SOFT_INT_MASK,
73 1.20 matt [IPL_VM] = MIPS_SOFT_INT_MASK | MIPS_INT_MASK_0,
74 1.20 matt [IPL_SCHED] = MIPS_SOFT_INT_MASK | MIPS_INT_MASK_0
75 1.20 matt | MIPS_INT_MASK_5,
76 1.20 matt [IPL_DDB] = MIPS_INT_MASK,
77 1.20 matt [IPL_HIGH] = MIPS_INT_MASK,
78 1.20 matt },
79 1.1 simonb };
80 1.1 simonb
81 1.1 simonb struct malta_cpuintr {
82 1.1 simonb LIST_HEAD(, evbmips_intrhand) cintr_list;
83 1.1 simonb struct evcnt cintr_count;
84 1.1 simonb };
85 1.1 simonb #define NINTRS 5 /* MIPS INT0 - INT4 */
86 1.1 simonb
87 1.1 simonb struct malta_cpuintr malta_cpuintrs[NINTRS];
88 1.20 matt const char * const malta_cpuintrnames[NINTRS] = {
89 1.1 simonb "int 0 (piix4)",
90 1.1 simonb "int 1 (smi)",
91 1.1 simonb "int 2 (uart)",
92 1.1 simonb "int 3 (core hi/gt64120)",
93 1.1 simonb "int 4 (core lo)",
94 1.1 simonb };
95 1.1 simonb
96 1.1 simonb static int malta_pci_intr_map(struct pci_attach_args *, pci_intr_handle_t *);
97 1.1 simonb static const char
98 1.1 simonb *malta_pci_intr_string(void *, pci_intr_handle_t);
99 1.1 simonb static const struct evcnt
100 1.1 simonb *malta_pci_intr_evcnt(void *, pci_intr_handle_t);
101 1.1 simonb static void *malta_pci_intr_establish(void *, pci_intr_handle_t, int,
102 1.1 simonb int (*)(void *), void *);
103 1.1 simonb static void malta_pci_intr_disestablish(void *, void *);
104 1.1 simonb static void malta_pci_conf_interrupt(void *, int, int, int, int, int *);
105 1.1 simonb static void *malta_pciide_compat_intr_establish(void *, struct device *,
106 1.1 simonb struct pci_attach_args *, int, int (*)(void *), void *);
107 1.1 simonb
108 1.1 simonb void
109 1.1 simonb evbmips_intr_init(void)
110 1.1 simonb {
111 1.20 matt struct malta_config * const mcp = &malta_configuration;
112 1.20 matt
113 1.20 matt ipl_sr_map = malta_ipl_sr_map;
114 1.1 simonb
115 1.20 matt for (size_t i = 0; i < NINTRS; i++) {
116 1.1 simonb LIST_INIT(&malta_cpuintrs[i].cintr_list);
117 1.1 simonb evcnt_attach_dynamic(&malta_cpuintrs[i].cintr_count,
118 1.1 simonb EVCNT_TYPE_INTR, NULL, "mips", malta_cpuintrnames[i]);
119 1.1 simonb }
120 1.1 simonb
121 1.1 simonb mcp->mc_pc.pc_intr_v = NULL;
122 1.1 simonb mcp->mc_pc.pc_intr_map = malta_pci_intr_map;
123 1.1 simonb mcp->mc_pc.pc_intr_string = malta_pci_intr_string;
124 1.1 simonb mcp->mc_pc.pc_intr_evcnt = malta_pci_intr_evcnt;
125 1.1 simonb mcp->mc_pc.pc_intr_establish = malta_pci_intr_establish;
126 1.1 simonb mcp->mc_pc.pc_intr_disestablish = malta_pci_intr_disestablish;
127 1.1 simonb mcp->mc_pc.pc_conf_interrupt = malta_pci_conf_interrupt;
128 1.1 simonb mcp->mc_pc.pc_pciide_compat_intr_establish =
129 1.1 simonb malta_pciide_compat_intr_establish;
130 1.1 simonb }
131 1.1 simonb
132 1.1 simonb void
133 1.1 simonb malta_cal_timer(bus_space_tag_t st, bus_space_handle_t sh)
134 1.1 simonb {
135 1.20 matt struct cpu_info * const ci = curcpu();
136 1.4 simonb uint32_t ctrdiff[4], startctr, endctr;
137 1.11 gdamore uint8_t regc;
138 1.1 simonb int i;
139 1.1 simonb
140 1.1 simonb /* Disable interrupts first. */
141 1.1 simonb bus_space_write_1(st, sh, 0, MC_REGB);
142 1.1 simonb bus_space_write_1(st, sh, 1, MC_REGB_SQWE | MC_REGB_BINARY |
143 1.1 simonb MC_REGB_24HR);
144 1.1 simonb
145 1.1 simonb /* Initialize for 16Hz. */
146 1.1 simonb bus_space_write_1(st, sh, 0, MC_REGA);
147 1.1 simonb bus_space_write_1(st, sh, 1, MC_BASE_32_KHz | MC_RATE_16_Hz);
148 1.1 simonb
149 1.1 simonb /* Run the loop an extra time to prime the cache. */
150 1.1 simonb for (i = 0; i < 4; i++) {
151 1.1 simonb // led_display('h', 'z', '0' + i, ' ');
152 1.1 simonb
153 1.1 simonb /* Enable the interrupt. */
154 1.1 simonb bus_space_write_1(st, sh, 0, MC_REGB);
155 1.1 simonb bus_space_write_1(st, sh, 1, MC_REGB_PIE | MC_REGB_SQWE |
156 1.1 simonb MC_REGB_BINARY | MC_REGB_24HR);
157 1.1 simonb
158 1.1 simonb /* Go to REGC. */
159 1.1 simonb bus_space_write_1(st, sh, 0, MC_REGC);
160 1.1 simonb
161 1.1 simonb /* Wait for it to happen. */
162 1.1 simonb startctr = mips3_cp0_count_read();
163 1.1 simonb do {
164 1.1 simonb regc = bus_space_read_1(st, sh, 1);
165 1.1 simonb endctr = mips3_cp0_count_read();
166 1.1 simonb } while ((regc & MC_REGC_IRQF) == 0);
167 1.1 simonb
168 1.1 simonb /* Already ACK'd. */
169 1.1 simonb
170 1.1 simonb /* Disable. */
171 1.1 simonb bus_space_write_1(st, sh, 0, MC_REGB);
172 1.1 simonb bus_space_write_1(st, sh, 1, MC_REGB_SQWE | MC_REGB_BINARY |
173 1.1 simonb MC_REGB_24HR);
174 1.1 simonb
175 1.1 simonb ctrdiff[i] = endctr - startctr;
176 1.1 simonb }
177 1.1 simonb
178 1.1 simonb /* Compute the number of cycles per second. */
179 1.20 matt ci->ci_cpu_freq = ((ctrdiff[2] + ctrdiff[3]) / 2) * 16/*Hz*/;
180 1.1 simonb
181 1.1 simonb /* Compute the number of ticks for hz. */
182 1.20 matt ci->ci_cycles_per_hz = (ci->ci_cpu_freq + hz / 2) / hz;
183 1.1 simonb
184 1.19 tsutsui /* Compute the delay divisor. */
185 1.20 matt ci->ci_divisor_delay = ((ci->ci_cpu_freq + 500000) / 1000000);
186 1.2 simonb
187 1.2 simonb /*
188 1.2 simonb * Get correct cpu frequency if the CPU runs at twice the
189 1.2 simonb * external/cp0-count frequency.
190 1.2 simonb */
191 1.20 matt ci->ci_cctr_freq = ci->ci_cpu_freq;
192 1.20 matt if (mips_options.mips_cpu_flags & CPU_MIPS_DOUBLE_COUNT)
193 1.20 matt ci->ci_cpu_freq *= 2;
194 1.1 simonb
195 1.1 simonb #ifdef DEBUG
196 1.4 simonb printf("Timer calibration: %lu cycles/sec [(%u, %u) * 16]\n",
197 1.20 matt ci->ci_cpu_freq, ctrdiff[2], ctrdiff[3]);
198 1.1 simonb #endif
199 1.1 simonb }
200 1.1 simonb
201 1.1 simonb void *
202 1.1 simonb evbmips_intr_establish(int irq, int (*func)(void *), void *arg)
203 1.1 simonb {
204 1.1 simonb struct evbmips_intrhand *ih;
205 1.1 simonb int s;
206 1.1 simonb
207 1.1 simonb ih = malloc(sizeof(*ih), M_DEVBUF, M_NOWAIT);
208 1.1 simonb if (ih == NULL)
209 1.1 simonb return (NULL);
210 1.1 simonb
211 1.1 simonb ih->ih_func = func;
212 1.1 simonb ih->ih_arg = arg;
213 1.1 simonb
214 1.1 simonb s = splhigh();
215 1.1 simonb
216 1.1 simonb /*
217 1.1 simonb * Link it into the tables.
218 1.1 simonb */
219 1.1 simonb LIST_INSERT_HEAD(&malta_cpuintrs[0].cintr_list, ih, ih_q);
220 1.1 simonb
221 1.1 simonb /* XXX - should check that MIPS_INT_MASK_0 is set... */
222 1.1 simonb
223 1.1 simonb splx(s);
224 1.1 simonb
225 1.1 simonb return (ih);
226 1.1 simonb }
227 1.1 simonb
228 1.1 simonb void
229 1.1 simonb evbmips_intr_disestablish(void *arg)
230 1.1 simonb {
231 1.1 simonb struct evbmips_intrhand *ih = arg;
232 1.1 simonb int s;
233 1.1 simonb
234 1.1 simonb s = splhigh();
235 1.1 simonb
236 1.1 simonb /*
237 1.1 simonb * First, remove it from the table.
238 1.1 simonb */
239 1.1 simonb LIST_REMOVE(ih, ih_q);
240 1.1 simonb
241 1.1 simonb /* XXX - disable MIPS_INT_MASK_0 if list is empty? */
242 1.1 simonb
243 1.1 simonb splx(s);
244 1.1 simonb
245 1.1 simonb free(ih, M_DEVBUF);
246 1.1 simonb }
247 1.1 simonb
248 1.1 simonb void
249 1.20 matt evbmips_iointr(int ipl, vaddr_t pc, uint32_t ipending)
250 1.1 simonb {
251 1.1 simonb
252 1.5 simonb /* Check for error interrupts (SMI, GT64120) */
253 1.1 simonb if (ipending & (MIPS_INT_MASK_1 | MIPS_INT_MASK_3)) {
254 1.1 simonb if (ipending & MIPS_INT_MASK_1)
255 1.1 simonb panic("piix4 SMI interrupt");
256 1.1 simonb if (ipending & MIPS_INT_MASK_3)
257 1.5 simonb panic("gt64120 error interrupt");
258 1.1 simonb }
259 1.1 simonb
260 1.1 simonb /*
261 1.1 simonb * Read the interrupt pending registers, mask them with the
262 1.1 simonb * ones we have enabled, and service them in order of decreasing
263 1.1 simonb * priority.
264 1.1 simonb */
265 1.1 simonb if (ipending & MIPS_INT_MASK_0) {
266 1.20 matt struct evbmips_intrhand *ih;
267 1.1 simonb /* All interrupts are gated through MIPS HW interrupt 0 */
268 1.1 simonb malta_cpuintrs[0].cintr_count.ev_count++;
269 1.1 simonb LIST_FOREACH(ih, &malta_cpuintrs[0].cintr_list, ih_q)
270 1.1 simonb (*ih->ih_func)(ih->ih_arg);
271 1.1 simonb }
272 1.1 simonb }
273 1.1 simonb
274 1.1 simonb /*
275 1.1 simonb * YAMON configures pa_intrline correctly (so far), so we trust it to DTRT
276 1.1 simonb * in the future...
277 1.1 simonb */
278 1.1 simonb #undef YAMON_IRQ_MAP_BAD
279 1.1 simonb
280 1.1 simonb /*
281 1.1 simonb * PCI interrupt support
282 1.1 simonb */
283 1.1 simonb static int
284 1.1 simonb malta_pci_intr_map(struct pci_attach_args *pa, pci_intr_handle_t *ihp)
285 1.1 simonb {
286 1.1 simonb #ifdef YAMON_IRQ_MAP_BAD
287 1.7 simonb static const int pciirqmap[12/*device*/][4/*pin*/] = {
288 1.1 simonb { -1, -1, -1, 11 }, /* 10: USB */
289 1.1 simonb { 10, -1, -1, -1 }, /* 11: Ethernet */
290 1.1 simonb { 11, -1, -1, -1 }, /* 12: Audio */
291 1.1 simonb { -1, -1, -1, -1 }, /* 13: not used */
292 1.1 simonb { -1, -1, -1, -1 }, /* 14: not used */
293 1.1 simonb { -1, -1, -1, -1 }, /* 15: not used */
294 1.1 simonb { -1, -1, -1, -1 }, /* 16: not used */
295 1.1 simonb { -1, -1, -1, -1 }, /* 17: Core card(?) */
296 1.1 simonb { 10, 10, 11, 11 }, /* 18: PCI Slot 1 */
297 1.1 simonb { 10, 11, 11, 10 }, /* 19: PCI Slot 2 */
298 1.1 simonb { 11, 11, 10, 10 }, /* 20: PCI Slot 3 */
299 1.1 simonb { 11, 10, 10, 11 }, /* 21: PCI Slot 4 */
300 1.1 simonb };
301 1.1 simonb int buspin, device, irq;
302 1.1 simonb #else /* !YAMON_IRQ_MAP_BAD */
303 1.1 simonb int buspin;
304 1.1 simonb #endif /* !YAMON_IRQ_MAP_BAD */
305 1.1 simonb
306 1.1 simonb buspin = pa->pa_intrpin;
307 1.1 simonb
308 1.1 simonb if (buspin == 0) {
309 1.1 simonb /* No IRQ used. */
310 1.1 simonb return (1);
311 1.1 simonb }
312 1.1 simonb
313 1.1 simonb if (buspin > 4) {
314 1.1 simonb printf("malta_pci_intr_map: bad interrupt pin %d\n", buspin);
315 1.1 simonb return (1);
316 1.1 simonb }
317 1.1 simonb
318 1.1 simonb #ifdef YAMON_IRQ_MAP_BAD
319 1.1 simonb pci_decompose_tag(pa->pa_pc, pa->pa_intrtag, NULL, &device, NULL);
320 1.1 simonb
321 1.1 simonb if (device < 10 || device > 21) {
322 1.1 simonb printf("malta_pci_intr_map: bad device %d\n", device);
323 1.1 simonb return (1);
324 1.1 simonb }
325 1.1 simonb
326 1.1 simonb irq = pciirqmap[device - 10][buspin - 1];
327 1.1 simonb if (irq == -1) {
328 1.1 simonb printf("malta_pci_intr_map: no mapping for device %d pin %d\n",
329 1.1 simonb device, buspin);
330 1.1 simonb return (1);
331 1.1 simonb }
332 1.1 simonb
333 1.1 simonb *ihp = irq;
334 1.1 simonb #else /* !YAMON_IRQ_MAP_BAD */
335 1.1 simonb *ihp = pa->pa_intrline;
336 1.1 simonb #endif /* !YAMON_IRQ_MAP_BAD */
337 1.1 simonb return (0);
338 1.1 simonb }
339 1.1 simonb
340 1.1 simonb static const char *
341 1.1 simonb malta_pci_intr_string(void *v, pci_intr_handle_t irq)
342 1.1 simonb {
343 1.1 simonb
344 1.1 simonb return (isa_intr_string(pcib_ic, irq));
345 1.1 simonb }
346 1.1 simonb
347 1.1 simonb static const struct evcnt *
348 1.1 simonb malta_pci_intr_evcnt(void *v, pci_intr_handle_t irq)
349 1.1 simonb {
350 1.1 simonb
351 1.1 simonb return (isa_intr_evcnt(pcib_ic, irq));
352 1.1 simonb }
353 1.1 simonb
354 1.1 simonb static void *
355 1.1 simonb malta_pci_intr_establish(void *v, pci_intr_handle_t irq, int level,
356 1.1 simonb int (*func)(void *), void *arg)
357 1.1 simonb {
358 1.1 simonb
359 1.1 simonb return (isa_intr_establish(pcib_ic, irq, IST_LEVEL, level, func, arg));
360 1.1 simonb }
361 1.1 simonb
362 1.1 simonb static void
363 1.1 simonb malta_pci_intr_disestablish(void *v, void *arg)
364 1.1 simonb {
365 1.1 simonb
366 1.1 simonb return (isa_intr_disestablish(pcib_ic, arg));
367 1.1 simonb }
368 1.1 simonb
369 1.1 simonb static void
370 1.1 simonb malta_pci_conf_interrupt(void *v, int bus, int dev, int func, int swiz,
371 1.1 simonb int *iline)
372 1.1 simonb {
373 1.1 simonb
374 1.1 simonb /*
375 1.1 simonb * We actually don't need to do anything; everything is handled
376 1.1 simonb * in pci_intr_map().
377 1.1 simonb */
378 1.1 simonb *iline = 0;
379 1.1 simonb }
380 1.1 simonb
381 1.1 simonb void *
382 1.1 simonb malta_pciide_compat_intr_establish(void *v, struct device *dev,
383 1.1 simonb struct pci_attach_args *pa, int chan, int (*func)(void *), void *arg)
384 1.1 simonb {
385 1.1 simonb pci_chipset_tag_t pc = pa->pa_pc;
386 1.1 simonb void *cookie;
387 1.1 simonb int bus, irq;
388 1.1 simonb
389 1.1 simonb pci_decompose_tag(pc, pa->pa_tag, &bus, NULL, NULL);
390 1.1 simonb
391 1.1 simonb /*
392 1.1 simonb * If this isn't PCI bus #0, all bets are off.
393 1.1 simonb */
394 1.1 simonb if (bus != 0)
395 1.1 simonb return (NULL);
396 1.1 simonb
397 1.1 simonb irq = PCIIDE_COMPAT_IRQ(chan);
398 1.1 simonb cookie = isa_intr_establish(pcib_ic, irq, IST_EDGE, IPL_BIO, func, arg);
399 1.1 simonb if (cookie == NULL)
400 1.1 simonb return (NULL);
401 1.1 simonb printf("%s: %s channel interrupting at %s\n", dev->dv_xname,
402 1.1 simonb PCIIDE_CHANNEL_NAME(chan), malta_pci_intr_string(v, irq));
403 1.1 simonb return (cookie);
404 1.1 simonb }
405