pxa2x0_intr.c revision 1.26 1 1.26 riastrad /* $NetBSD: pxa2x0_intr.c,v 1.26 2023/07/13 19:42:24 riastradh Exp $ */
2 1.1 bsh
3 1.1 bsh /*
4 1.1 bsh * Copyright (c) 2002 Genetec Corporation. All rights reserved.
5 1.1 bsh * Written by Hiroyuki Bessho for Genetec Corporation.
6 1.1 bsh *
7 1.1 bsh * Redistribution and use in source and binary forms, with or without
8 1.1 bsh * modification, are permitted provided that the following conditions
9 1.1 bsh * are met:
10 1.1 bsh * 1. Redistributions of source code must retain the above copyright
11 1.1 bsh * notice, this list of conditions and the following disclaimer.
12 1.1 bsh * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 bsh * notice, this list of conditions and the following disclaimer in the
14 1.1 bsh * documentation and/or other materials provided with the distribution.
15 1.1 bsh * 3. All advertising materials mentioning features or use of this software
16 1.1 bsh * must display the following acknowledgement:
17 1.1 bsh * This product includes software developed for the NetBSD Project by
18 1.1 bsh * Genetec Corporation.
19 1.23 skrll * 4. The name of Genetec Corporation may not be used to endorse or
20 1.1 bsh * promote products derived from this software without specific prior
21 1.1 bsh * written permission.
22 1.1 bsh *
23 1.1 bsh * THIS SOFTWARE IS PROVIDED BY GENETEC CORPORATION ``AS IS'' AND
24 1.1 bsh * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
25 1.1 bsh * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
26 1.1 bsh * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL GENETEC CORPORATION
27 1.1 bsh * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
28 1.1 bsh * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
29 1.1 bsh * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
30 1.1 bsh * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
31 1.1 bsh * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
32 1.1 bsh * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
33 1.1 bsh * POSSIBILITY OF SUCH DAMAGE.
34 1.1 bsh */
35 1.1 bsh
36 1.1 bsh /*
37 1.1 bsh * IRQ handler for the Intel PXA2X0 processor.
38 1.1 bsh * It has integrated interrupt controller.
39 1.1 bsh */
40 1.5 lukem
41 1.5 lukem #include <sys/cdefs.h>
42 1.26 riastrad __KERNEL_RCSID(0, "$NetBSD: pxa2x0_intr.c,v 1.26 2023/07/13 19:42:24 riastradh Exp $");
43 1.5 lukem
44 1.1 bsh #include <sys/param.h>
45 1.1 bsh #include <sys/systm.h>
46 1.3 scw
47 1.19 dyoung #include <sys/bus.h>
48 1.26 riastrad #include <sys/bitops.h>
49 1.26 riastrad
50 1.1 bsh #include <machine/intr.h>
51 1.3 scw #include <machine/lock.h>
52 1.1 bsh
53 1.6 bsh #include <arm/xscale/pxa2x0cpu.h>
54 1.1 bsh #include <arm/xscale/pxa2x0reg.h>
55 1.1 bsh #include <arm/xscale/pxa2x0var.h>
56 1.3 scw #include <arm/xscale/pxa2x0_intr.h>
57 1.1 bsh #include <arm/sa11x0/sa11x0_var.h>
58 1.3 scw
59 1.3 scw /*
60 1.3 scw * INTC autoconf glue
61 1.3 scw */
62 1.18 matt static int pxaintc_match(device_t, cfdata_t, void *);
63 1.18 matt static void pxaintc_attach(device_t, device_t, void *);
64 1.3 scw
65 1.18 matt CFATTACH_DECL_NEW(pxaintc, 0,
66 1.3 scw pxaintc_match, pxaintc_attach, NULL, NULL);
67 1.3 scw
68 1.3 scw static int pxaintc_attached;
69 1.3 scw
70 1.3 scw static int stray_interrupt(void *);
71 1.3 scw static void init_interrupt_masks(void);
72 1.1 bsh
73 1.1 bsh /*
74 1.23 skrll * interrupt dispatch table.
75 1.1 bsh */
76 1.1 bsh #ifdef MULTIPLE_HANDLERS_ON_ONE_IRQ
77 1.1 bsh struct intrhand {
78 1.1 bsh TAILQ_ENTRY(intrhand) ih_list; /* link on intrq list */
79 1.1 bsh int (*ih_func)(void *); /* handler */
80 1.1 bsh void *ih_arg; /* arg for handler */
81 1.1 bsh };
82 1.1 bsh #endif
83 1.1 bsh
84 1.11 peter static struct intrhandler {
85 1.1 bsh #ifdef MULTIPLE_HANDLERS_ON_ONE_IRQ
86 1.1 bsh TAILQ_HEAD(,intrhand) list;
87 1.1 bsh #else
88 1.1 bsh pxa2x0_irq_handler_t func;
89 1.1 bsh #endif
90 1.1 bsh void *cookie; /* NULL for stackframe */
91 1.1 bsh /* struct evbnt ev; */
92 1.1 bsh } handler[ICU_LEN];
93 1.1 bsh
94 1.20 matt vaddr_t pxaic_base;
95 1.8 perry volatile int softint_pending;
96 1.8 perry volatile int intr_mask;
97 1.1 bsh /* interrupt masks for each level */
98 1.1 bsh int pxa2x0_imask[NIPL];
99 1.1 bsh static int extirq_level[ICU_LEN];
100 1.1 bsh
101 1.3 scw
102 1.3 scw static int
103 1.18 matt pxaintc_match(device_t parent, cfdata_t cf, void *aux)
104 1.3 scw {
105 1.3 scw struct pxaip_attach_args *pxa = aux;
106 1.3 scw
107 1.3 scw if (pxaintc_attached || pxa->pxa_addr != PXA2X0_INTCTL_BASE)
108 1.3 scw return (0);
109 1.3 scw
110 1.3 scw return (1);
111 1.3 scw }
112 1.3 scw
113 1.3 scw void
114 1.18 matt pxaintc_attach(device_t parent, device_t self, void *args)
115 1.3 scw {
116 1.3 scw int i;
117 1.3 scw
118 1.3 scw pxaintc_attached = 1;
119 1.3 scw
120 1.3 scw aprint_normal(": Interrupt Controller\n");
121 1.3 scw
122 1.3 scw #define SAIPIC_ICCR 0x14
123 1.3 scw
124 1.3 scw write_icu(SAIPIC_ICCR, 1);
125 1.3 scw write_icu(SAIPIC_MR, 0);
126 1.3 scw
127 1.3 scw for(i = 0; i < sizeof handler / sizeof handler[0]; ++i){
128 1.3 scw handler[i].func = stray_interrupt;
129 1.3 scw handler[i].cookie = (void *)(intptr_t) i;
130 1.3 scw extirq_level[i] = IPL_SERIAL;
131 1.3 scw }
132 1.3 scw
133 1.3 scw init_interrupt_masks();
134 1.3 scw
135 1.3 scw _splraise(IPL_SERIAL);
136 1.3 scw enable_interrupts(I32_bit);
137 1.3 scw }
138 1.3 scw
139 1.3 scw /*
140 1.3 scw * Invoked very early on from the board-specific initarm(), in order to
141 1.3 scw * inform us the virtual address of the interrupt controller's registers.
142 1.3 scw */
143 1.3 scw void
144 1.3 scw pxa2x0_intr_bootstrap(vaddr_t addr)
145 1.3 scw {
146 1.3 scw
147 1.3 scw pxaic_base = addr;
148 1.3 scw }
149 1.3 scw
150 1.1 bsh /*
151 1.1 bsh * called from irq_entry.
152 1.1 bsh */
153 1.1 bsh void
154 1.3 scw pxa2x0_irq_handler(void *arg)
155 1.1 bsh {
156 1.3 scw struct clockframe *frame = arg;
157 1.1 bsh uint32_t irqbits;
158 1.1 bsh int irqno;
159 1.1 bsh int saved_spl_level;
160 1.1 bsh
161 1.14 matt saved_spl_level = curcpu()->ci_cpl;
162 1.1 bsh
163 1.1 bsh /* get pending IRQs */
164 1.1 bsh irqbits = read_icu(SAIPIC_IP);
165 1.1 bsh
166 1.26 riastrad while ((irqno = fls32(irqbits) - 1) >= 0) {
167 1.25 andvar /* XXX: Should we handle IRQs in priority order? */
168 1.1 bsh
169 1.1 bsh /* raise spl to stop interrupts of lower priorities */
170 1.3 scw if (saved_spl_level < extirq_level[irqno])
171 1.1 bsh pxa2x0_setipl(extirq_level[irqno]);
172 1.1 bsh
173 1.1 bsh #ifdef notyet
174 1.1 bsh /* Enable interrupt */
175 1.1 bsh #endif
176 1.1 bsh #ifndef MULTIPLE_HANDLERS_ON_ONE_IRQ
177 1.23 skrll (* handler[irqno].func)(
178 1.1 bsh handler[irqno].cookie == 0
179 1.1 bsh ? frame : handler[irqno].cookie );
180 1.1 bsh #else
181 1.1 bsh /* process all handlers for this interrupt.
182 1.1 bsh XXX not yet */
183 1.1 bsh #endif
184 1.23 skrll
185 1.1 bsh #ifdef notyet
186 1.1 bsh /* Disable interrupt */
187 1.1 bsh #endif
188 1.1 bsh
189 1.1 bsh irqbits &= ~(1<<irqno);
190 1.1 bsh }
191 1.1 bsh
192 1.1 bsh /* restore spl to that was when this interrupt happen */
193 1.1 bsh pxa2x0_setipl(saved_spl_level);
194 1.13 ad
195 1.14 matt #ifdef __HAVE_FAST_SOFTINTS
196 1.14 matt cpu_dosoftints();
197 1.14 matt #endif
198 1.1 bsh }
199 1.1 bsh
200 1.1 bsh static int
201 1.3 scw stray_interrupt(void *cookie)
202 1.1 bsh {
203 1.1 bsh int irqno = (int)cookie;
204 1.15 rafal int irqmin = CPU_IS_PXA250 ? PXA250_IRQ_MIN : PXA270_IRQ_MIN;
205 1.15 rafal
206 1.3 scw printf("stray interrupt %d\n", irqno);
207 1.1 bsh
208 1.15 rafal if (irqmin <= irqno && irqno < ICU_LEN){
209 1.1 bsh int save = disable_interrupts(I32_bit);
210 1.3 scw write_icu(SAIPIC_MR,
211 1.3 scw read_icu(SAIPIC_MR) & ~(1U<<irqno));
212 1.1 bsh restore_interrupts(save);
213 1.1 bsh }
214 1.1 bsh
215 1.1 bsh return 0;
216 1.1 bsh }
217 1.1 bsh
218 1.1 bsh
219 1.1 bsh
220 1.1 bsh /*
221 1.1 bsh * Interrupt Mask Handling
222 1.1 bsh */
223 1.1 bsh
224 1.1 bsh void
225 1.3 scw pxa2x0_update_intr_masks(int irqno, int level)
226 1.1 bsh {
227 1.1 bsh int mask = 1U<<irqno;
228 1.1 bsh int psw = disable_interrupts(I32_bit);
229 1.1 bsh int i;
230 1.1 bsh
231 1.3 scw for(i = 0; i < level; ++i)
232 1.3 scw pxa2x0_imask[i] |= mask; /* Enable interrupt at lower level */
233 1.1 bsh
234 1.3 scw for( ; i < NIPL-1; ++i)
235 1.17 tsutsui pxa2x0_imask[i] &= ~mask; /* Disable interrupt at upper level */
236 1.1 bsh
237 1.1 bsh /*
238 1.10 wiz * Enforce a hierarchy that gives "slow" device (or devices with
239 1.1 bsh * limited input buffer space/"real-time" requirements) a better
240 1.1 bsh * chance at not dropping data.
241 1.1 bsh */
242 1.12 ad pxa2x0_imask[IPL_SCHED] &= pxa2x0_imask[IPL_VM];
243 1.12 ad pxa2x0_imask[IPL_HIGH] &= pxa2x0_imask[IPL_SCHED];
244 1.1 bsh
245 1.14 matt write_icu(SAIPIC_MR, pxa2x0_imask[curcpu()->ci_cpl]);
246 1.1 bsh
247 1.1 bsh restore_interrupts(psw);
248 1.1 bsh }
249 1.1 bsh
250 1.1 bsh
251 1.1 bsh static void
252 1.1 bsh init_interrupt_masks(void)
253 1.1 bsh {
254 1.1 bsh
255 1.3 scw /*
256 1.22 skrll * disable all interrupts until handlers are installed.
257 1.3 scw */
258 1.16 bsh memset(pxa2x0_imask, 0, sizeof(pxa2x0_imask));
259 1.1 bsh
260 1.1 bsh }
261 1.1 bsh
262 1.1 bsh #undef splx
263 1.1 bsh void
264 1.1 bsh splx(int ipl)
265 1.1 bsh {
266 1.1 bsh pxa2x0_splx(ipl);
267 1.1 bsh }
268 1.1 bsh
269 1.1 bsh #undef _splraise
270 1.1 bsh int
271 1.1 bsh _splraise(int ipl)
272 1.1 bsh {
273 1.1 bsh return pxa2x0_splraise(ipl);
274 1.1 bsh }
275 1.1 bsh
276 1.1 bsh #undef _spllower
277 1.1 bsh int
278 1.1 bsh _spllower(int ipl)
279 1.1 bsh {
280 1.1 bsh return pxa2x0_spllower(ipl);
281 1.1 bsh }
282 1.1 bsh
283 1.1 bsh void *
284 1.1 bsh pxa2x0_intr_establish(int irqno, int level,
285 1.3 scw int (*func)(void *), void *cookie)
286 1.1 bsh {
287 1.1 bsh int psw;
288 1.6 bsh int irqmin = CPU_IS_PXA250 ? PXA250_IRQ_MIN : PXA270_IRQ_MIN;
289 1.1 bsh
290 1.6 bsh if (irqno < irqmin || irqno >= ICU_LEN)
291 1.1 bsh panic("intr_establish: bogus irq number %d", irqno);
292 1.1 bsh
293 1.1 bsh psw = disable_interrupts(I32_bit);
294 1.1 bsh
295 1.1 bsh handler[irqno].cookie = cookie;
296 1.1 bsh handler[irqno].func = func;
297 1.1 bsh extirq_level[irqno] = level;
298 1.3 scw pxa2x0_update_intr_masks(irqno, level);
299 1.1 bsh
300 1.14 matt intr_mask = pxa2x0_imask[curcpu()->ci_cpl];
301 1.11 peter
302 1.1 bsh restore_interrupts(psw);
303 1.1 bsh
304 1.3 scw return (&handler[irqno]);
305 1.1 bsh }
306 1.1 bsh
307 1.11 peter void
308 1.11 peter pxa2x0_intr_disestablish(void *cookie)
309 1.11 peter {
310 1.11 peter struct intrhandler *lhandler = cookie, *ih;
311 1.11 peter int irqmin = CPU_IS_PXA250 ? PXA250_IRQ_MIN : PXA270_IRQ_MIN;
312 1.11 peter int irqno = lhandler - handler;
313 1.11 peter int psw;
314 1.11 peter
315 1.11 peter if (irqno < irqmin || irqno >= ICU_LEN)
316 1.11 peter panic("intr_disestablish: bogus irq number %d", irqno);
317 1.11 peter
318 1.11 peter psw = disable_interrupts(I32_bit);
319 1.11 peter
320 1.11 peter ih = &handler[irqno];
321 1.11 peter ih->func = stray_interrupt;
322 1.11 peter ih->cookie = (void *)(intptr_t)irqno;
323 1.11 peter extirq_level[irqno] = IPL_SERIAL;
324 1.11 peter pxa2x0_update_intr_masks(irqno, IPL_SERIAL);
325 1.11 peter
326 1.11 peter restore_interrupts(psw);
327 1.11 peter }
328 1.11 peter
329 1.1 bsh /*
330 1.1 bsh * Glue for drivers of sa11x0 compatible integrated logics.
331 1.1 bsh */
332 1.1 bsh void *
333 1.1 bsh sa11x0_intr_establish(sa11x0_chipset_tag_t ic, int irq, int type, int level,
334 1.3 scw int (*ih_fun)(void *), void *ih_arg)
335 1.1 bsh {
336 1.3 scw
337 1.3 scw return pxa2x0_intr_establish(irq, level, ih_fun, ih_arg);
338 1.1 bsh }
339