xref: /src/sys/dev/acpica/acpi.c (revision d19f2af2b7f9c964622fd2eba7d077c6f221b652)
1 /*-
2  * Copyright (c) 2000 Takanori Watanabe <takawata@jp.freebsd.org>
3  * Copyright (c) 2000 Mitsuru IWASAKI <iwasaki@jp.freebsd.org>
4  * Copyright (c) 2000, 2001 Michael Smith
5  * Copyright (c) 2000 BSDi
6  * All rights reserved.
7  * Copyright (c) 2025 The FreeBSD Foundation
8  *
9  * Portions of this software were developed by Aymeric Wibo
10  * <obiwac@freebsd.org> under sponsorship from the FreeBSD Foundation.
11  *
12  * Redistribution and use in source and binary forms, with or without
13  * modification, are permitted provided that the following conditions
14  * are met:
15  * 1. Redistributions of source code must retain the above copyright
16  *    notice, this list of conditions and the following disclaimer.
17  * 2. Redistributions in binary form must reproduce the above copyright
18  *    notice, this list of conditions and the following disclaimer in the
19  *    documentation and/or other materials provided with the distribution.
20  *
21  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
22  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
25  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
26  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
27  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
28  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
29  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
30  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31  * SUCH DAMAGE.
32  */
33 
34 #include <sys/cdefs.h>
35 #include "opt_acpi.h"
36 
37 #include <sys/param.h>
38 #include <sys/eventhandler.h>
39 #include <sys/kernel.h>
40 #include <sys/proc.h>
41 #include <sys/fcntl.h>
42 #include <sys/malloc.h>
43 #include <sys/module.h>
44 #include <sys/bus.h>
45 #include <sys/conf.h>
46 #include <sys/ioccom.h>
47 #include <sys/reboot.h>
48 #include <sys/sysctl.h>
49 #include <sys/ctype.h>
50 #include <sys/linker.h>
51 #include <sys/mount.h>
52 #include <sys/power.h>
53 #include <sys/sbuf.h>
54 #include <sys/sched.h>
55 #include <sys/smp.h>
56 #include <sys/timetc.h>
57 #include <sys/uuid.h>
58 
59 #if defined(__i386__) || defined(__amd64__)
60 #include <machine/clock.h>
61 #include <machine/intr_machdep.h>
62 #include <machine/pci_cfgreg.h>
63 #include <x86/cputypes.h>
64 #include <x86/x86_var.h>
65 #endif
66 #include <machine/resource.h>
67 #include <machine/bus.h>
68 #include <sys/rman.h>
69 #include <isa/isavar.h>
70 #include <isa/pnpvar.h>
71 
72 #include <contrib/dev/acpica/include/acpi.h>
73 #include <contrib/dev/acpica/include/accommon.h>
74 #include <contrib/dev/acpica/include/acnamesp.h>
75 
76 #include <dev/acpica/acpivar.h>
77 #include <dev/acpica/acpiio.h>
78 
79 #include <dev/pci/pcivar.h>
80 
81 #include <vm/vm_param.h>
82 
83 static MALLOC_DEFINE(M_ACPIDEV, "acpidev", "ACPI devices");
84 
85 /* Hooks for the ACPI CA debugging infrastructure */
86 #define _COMPONENT	ACPI_BUS
87 ACPI_MODULE_NAME("ACPI")
88 
89 static d_open_t		acpiopen;
90 static d_close_t	acpiclose;
91 static d_ioctl_t	acpiioctl;
92 
93 static struct cdevsw acpi_cdevsw = {
94 	.d_version =	D_VERSION,
95 	.d_open =	acpiopen,
96 	.d_close =	acpiclose,
97 	.d_ioctl =	acpiioctl,
98 	.d_name =	"acpi",
99 };
100 
101 struct acpi_interface {
102 	ACPI_STRING	*data;
103 	int		num;
104 };
105 
106 struct acpi_wake_prep_context {
107     struct acpi_softc	*sc;
108     enum power_stype	stype;
109 };
110 
111 static char *sysres_ids[] = { "PNP0C01", "PNP0C02", NULL };
112 
113 /* Global mutex for locking access to the ACPI subsystem. */
114 struct mtx	acpi_mutex;
115 struct callout	acpi_sleep_timer;
116 
117 /* Bitmap of device quirks. */
118 int		acpi_quirks;
119 
120 /* Supported sleep states and types. */
121 static bool	acpi_supported_stypes[POWER_STYPE_COUNT];
122 static bool	acpi_supported_sstates[ACPI_S_STATE_COUNT];
123 
124 static void	acpi_lookup(void *arg, const char *name, device_t *dev);
125 static int	acpi_modevent(struct module *mod, int event, void *junk);
126 
127 static device_probe_t		acpi_probe;
128 static device_attach_t		acpi_attach;
129 static device_suspend_t		acpi_suspend;
130 static device_resume_t		acpi_resume;
131 static device_shutdown_t	acpi_shutdown;
132 
133 static bus_add_child_t		acpi_add_child;
134 static bus_print_child_t	acpi_print_child;
135 static bus_probe_nomatch_t	acpi_probe_nomatch;
136 static bus_driver_added_t	acpi_driver_added;
137 static bus_child_deleted_t	acpi_child_deleted;
138 static bus_read_ivar_t		acpi_read_ivar;
139 static bus_write_ivar_t		acpi_write_ivar;
140 static bus_get_resource_list_t	acpi_get_rlist;
141 static bus_get_rman_t		acpi_get_rman;
142 static bus_set_resource_t	acpi_set_resource;
143 static bus_alloc_resource_t	acpi_alloc_resource;
144 static bus_adjust_resource_t	acpi_adjust_resource;
145 static bus_release_resource_t	acpi_release_resource;
146 static bus_delete_resource_t	acpi_delete_resource;
147 static bus_activate_resource_t	acpi_activate_resource;
148 static bus_deactivate_resource_t acpi_deactivate_resource;
149 static bus_map_resource_t	acpi_map_resource;
150 static bus_unmap_resource_t	acpi_unmap_resource;
151 static bus_child_pnpinfo_t	acpi_child_pnpinfo_method;
152 static bus_child_location_t	acpi_child_location_method;
153 static bus_hint_device_unit_t	acpi_hint_device_unit;
154 static bus_get_property_t	acpi_bus_get_prop;
155 static bus_get_device_path_t	acpi_get_device_path;
156 static bus_get_domain_t		acpi_get_domain_method;
157 
158 static acpi_id_probe_t		acpi_device_id_probe;
159 static acpi_evaluate_object_t	acpi_device_eval_obj;
160 static acpi_get_property_t	acpi_device_get_prop;
161 static acpi_scan_children_t	acpi_device_scan_children;
162 
163 static isa_pnp_probe_t		acpi_isa_pnp_probe;
164 
165 static void	acpi_reserve_resources(device_t dev);
166 static int	acpi_sysres_alloc(device_t dev);
167 static uint32_t	acpi_isa_get_logicalid(device_t dev);
168 static int	acpi_isa_get_compatid(device_t dev, uint32_t *cids, int count);
169 static ACPI_STATUS acpi_device_scan_cb(ACPI_HANDLE h, UINT32 level,
170 		    void *context, void **retval);
171 static ACPI_STATUS acpi_find_dsd(struct acpi_device *ad);
172 static void	acpi_platform_osc(device_t dev);
173 static void	acpi_probe_children(device_t bus);
174 static void	acpi_probe_order(ACPI_HANDLE handle, int *order);
175 static ACPI_STATUS acpi_probe_child(ACPI_HANDLE handle, UINT32 level,
176 		    void *context, void **status);
177 static void	acpi_sleep_enable(void *arg);
178 static ACPI_STATUS acpi_sleep_disable(struct acpi_softc *sc);
179 static ACPI_STATUS acpi_EnterSleepState(struct acpi_softc *sc,
180 		    enum power_stype stype);
181 static void	acpi_shutdown_final(void *arg, int howto);
182 static void	acpi_enable_fixed_events(struct acpi_softc *sc);
183 static void	acpi_resync_clock(struct acpi_softc *sc);
184 static int	acpi_wake_sleep_prep(struct acpi_softc *sc, ACPI_HANDLE handle,
185 		    enum power_stype stype);
186 static int	acpi_wake_run_prep(struct acpi_softc *sc, ACPI_HANDLE handle,
187 		    enum power_stype stype);
188 static int	acpi_wake_prep_walk(struct acpi_softc *sc, enum power_stype stype);
189 static int	acpi_wake_sysctl_walk(device_t dev);
190 static int	acpi_wake_set_sysctl(SYSCTL_HANDLER_ARGS);
191 static int	acpi_supported_sleep_state_sysctl(SYSCTL_HANDLER_ARGS);
192 static void	acpi_system_eventhandler_sleep(void *arg,
193 		    enum power_stype stype);
194 static void	acpi_system_eventhandler_wakeup(void *arg,
195 		    enum power_stype stype);
196 static int	acpi_s4bios_sysctl(SYSCTL_HANDLER_ARGS);
197 static enum power_stype	acpi_sstate_to_stype(int sstate);
198 static int	acpi_sname_to_sstate(const char *sname);
199 static const char	*acpi_sstate_to_sname(int sstate);
200 static int	acpi_suspend_state_sysctl(SYSCTL_HANDLER_ARGS);
201 static int	acpi_sleep_state_sysctl(SYSCTL_HANDLER_ARGS);
202 static int	acpi_stype_sysctl(SYSCTL_HANDLER_ARGS);
203 static int	acpi_debug_objects_sysctl(SYSCTL_HANDLER_ARGS);
204 static int	acpi_stype_to_sstate(struct acpi_softc *sc, enum power_stype stype);
205 static int	acpi_pm_func(u_long cmd, void *arg, enum power_stype stype);
206 static void	acpi_enable_pcie(void);
207 static void	acpi_reset_interfaces(device_t dev);
208 
209 static device_method_t acpi_methods[] = {
210     /* Device interface */
211     DEVMETHOD(device_probe,		acpi_probe),
212     DEVMETHOD(device_attach,		acpi_attach),
213     DEVMETHOD(device_shutdown,		acpi_shutdown),
214     DEVMETHOD(device_detach,		bus_generic_detach),
215     DEVMETHOD(device_suspend,		acpi_suspend),
216     DEVMETHOD(device_resume,		acpi_resume),
217 
218     /* Bus interface */
219     DEVMETHOD(bus_add_child,		acpi_add_child),
220     DEVMETHOD(bus_print_child,		acpi_print_child),
221     DEVMETHOD(bus_probe_nomatch,	acpi_probe_nomatch),
222     DEVMETHOD(bus_driver_added,		acpi_driver_added),
223     DEVMETHOD(bus_child_deleted,	acpi_child_deleted),
224     DEVMETHOD(bus_read_ivar,		acpi_read_ivar),
225     DEVMETHOD(bus_write_ivar,		acpi_write_ivar),
226     DEVMETHOD(bus_get_resource_list,	acpi_get_rlist),
227     DEVMETHOD(bus_get_rman,		acpi_get_rman),
228     DEVMETHOD(bus_set_resource,		acpi_set_resource),
229     DEVMETHOD(bus_get_resource,		bus_generic_rl_get_resource),
230     DEVMETHOD(bus_alloc_resource,	acpi_alloc_resource),
231     DEVMETHOD(bus_adjust_resource,	acpi_adjust_resource),
232     DEVMETHOD(bus_release_resource,	acpi_release_resource),
233     DEVMETHOD(bus_delete_resource,	acpi_delete_resource),
234     DEVMETHOD(bus_activate_resource,	acpi_activate_resource),
235     DEVMETHOD(bus_deactivate_resource,	acpi_deactivate_resource),
236     DEVMETHOD(bus_map_resource,		acpi_map_resource),
237     DEVMETHOD(bus_unmap_resource,      	acpi_unmap_resource),
238     DEVMETHOD(bus_child_pnpinfo,	acpi_child_pnpinfo_method),
239     DEVMETHOD(bus_child_location,	acpi_child_location_method),
240     DEVMETHOD(bus_setup_intr,		bus_generic_setup_intr),
241     DEVMETHOD(bus_teardown_intr,	bus_generic_teardown_intr),
242     DEVMETHOD(bus_hint_device_unit,	acpi_hint_device_unit),
243     DEVMETHOD(bus_get_cpus,		acpi_get_cpus),
244     DEVMETHOD(bus_get_domain,		acpi_get_domain_method),
245     DEVMETHOD(bus_get_property,		acpi_bus_get_prop),
246     DEVMETHOD(bus_get_device_path,	acpi_get_device_path),
247 
248     /* ACPI bus */
249     DEVMETHOD(acpi_id_probe,		acpi_device_id_probe),
250     DEVMETHOD(acpi_evaluate_object,	acpi_device_eval_obj),
251     DEVMETHOD(acpi_get_property,	acpi_device_get_prop),
252     DEVMETHOD(acpi_pwr_for_sleep,	acpi_device_pwr_for_sleep),
253     DEVMETHOD(acpi_scan_children,	acpi_device_scan_children),
254 
255     /* ISA emulation */
256     DEVMETHOD(isa_pnp_probe,		acpi_isa_pnp_probe),
257 
258     DEVMETHOD_END
259 };
260 
261 static driver_t acpi_driver = {
262     "acpi",
263     acpi_methods,
264     sizeof(struct acpi_softc),
265 };
266 
267 EARLY_DRIVER_MODULE(acpi, nexus, acpi_driver, acpi_modevent, 0,
268     BUS_PASS_BUS + BUS_PASS_ORDER_MIDDLE);
269 MODULE_VERSION(acpi, 1);
270 
271 ACPI_SERIAL_DECL(acpi, "ACPI root bus");
272 
273 /* Local pools for managing system resources for ACPI child devices. */
274 static struct rman acpi_rman_io, acpi_rman_mem;
275 
276 #define ACPI_MINIMUM_AWAKETIME	5
277 
278 /* Holds the description of the acpi0 device. */
279 static char acpi_desc[ACPI_OEM_ID_SIZE + ACPI_OEM_TABLE_ID_SIZE + 2];
280 
281 SYSCTL_NODE(_debug, OID_AUTO, acpi, CTLFLAG_RD | CTLFLAG_MPSAFE, NULL,
282     "ACPI debugging");
283 static char acpi_ca_version[12];
284 SYSCTL_STRING(_debug_acpi, OID_AUTO, acpi_ca_version, CTLFLAG_RD,
285 	      acpi_ca_version, 0, "Version of Intel ACPI-CA");
286 
287 /*
288  * Allow overriding _OSI methods.
289  */
290 static char acpi_install_interface[256];
291 TUNABLE_STR("hw.acpi.install_interface", acpi_install_interface,
292     sizeof(acpi_install_interface));
293 static char acpi_remove_interface[256];
294 TUNABLE_STR("hw.acpi.remove_interface", acpi_remove_interface,
295     sizeof(acpi_remove_interface));
296 
297 /*
298  * Automatically apply the Darwin OSI on Apple Mac hardware to obtain
299  * access to full ACPI hardware support on supported platforms.
300  *
301  * This flag automatically overrides any values set by
302  * `hw.acpi.acpi_install_interface` and unset by
303  * `hw.acpi.acpi_remove_interface`.
304  */
305 static int acpi_apple_darwin_osi = 1;
306 TUNABLE_INT("hw.acpi.apple_darwin_osi", &acpi_apple_darwin_osi);
307 
308 /* Allow users to dump Debug objects without ACPI debugger. */
309 static int acpi_debug_objects;
310 TUNABLE_INT("debug.acpi.enable_debug_objects", &acpi_debug_objects);
311 SYSCTL_PROC(_debug_acpi, OID_AUTO, enable_debug_objects,
312     CTLFLAG_RW | CTLTYPE_INT | CTLFLAG_MPSAFE, NULL, 0,
313     acpi_debug_objects_sysctl, "I",
314     "Enable Debug objects");
315 
316 /* Allow the interpreter to ignore common mistakes in BIOS. */
317 static int acpi_interpreter_slack = 1;
318 TUNABLE_INT("debug.acpi.interpreter_slack", &acpi_interpreter_slack);
319 SYSCTL_INT(_debug_acpi, OID_AUTO, interpreter_slack, CTLFLAG_RDTUN,
320     &acpi_interpreter_slack, 1, "Turn on interpreter slack mode.");
321 
322 /* Ignore register widths set by FADT and use default widths instead. */
323 static int acpi_ignore_reg_width = 1;
324 TUNABLE_INT("debug.acpi.default_register_width", &acpi_ignore_reg_width);
325 SYSCTL_INT(_debug_acpi, OID_AUTO, default_register_width, CTLFLAG_RDTUN,
326     &acpi_ignore_reg_width, 1, "Ignore register widths set by FADT");
327 
328 /* Allow users to override quirks. */
329 TUNABLE_INT("debug.acpi.quirks", &acpi_quirks);
330 
331 int acpi_susp_bounce;
332 SYSCTL_INT(_debug_acpi, OID_AUTO, suspend_bounce, CTLFLAG_RW,
333     &acpi_susp_bounce, 0, "Don't actually suspend, just test devices.");
334 
335 #if defined(__amd64__) || defined(__i386__)
336 int acpi_override_isa_irq_polarity;
337 #endif
338 
339 /*
340  * ACPI standard UUID for Device Specific Data Package
341  * "Device Properties UUID for _DSD" Rev. 2.0
342  */
343 static const struct uuid acpi_dsd_uuid = {
344 	0xdaffd814, 0x6eba, 0x4d8c, 0x8a, 0x91,
345 	{ 0xbc, 0x9b, 0xbf, 0x4a, 0xa3, 0x01 }
346 };
347 
348 /*
349  * ACPI can only be loaded as a module by the loader; activating it after
350  * system bootstrap time is not useful, and can be fatal to the system.
351  * It also cannot be unloaded, since the entire system bus hierarchy hangs
352  * off it.
353  */
354 static int
acpi_modevent(struct module * mod,int event,void * junk)355 acpi_modevent(struct module *mod, int event, void *junk)
356 {
357     switch (event) {
358     case MOD_LOAD:
359 	if (!cold) {
360 	    printf("The ACPI driver cannot be loaded after boot.\n");
361 	    return (EPERM);
362 	}
363 	break;
364     case MOD_UNLOAD:
365 	if (!cold && power_pm_get_type() == POWER_PM_TYPE_ACPI)
366 	    return (EBUSY);
367 	break;
368     default:
369 	break;
370     }
371     return (0);
372 }
373 
374 /*
375  * Perform early initialization.
376  */
377 ACPI_STATUS
acpi_Startup(void)378 acpi_Startup(void)
379 {
380     static int started = 0;
381     ACPI_STATUS status;
382     int val;
383 
384     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
385 
386     /* Only run the startup code once.  The MADT driver also calls this. */
387     if (started)
388 	return_VALUE (AE_OK);
389     started = 1;
390 
391     /*
392      * Initialize the ACPICA subsystem.
393      */
394     if (ACPI_FAILURE(status = AcpiInitializeSubsystem())) {
395 	printf("ACPI: Could not initialize Subsystem: %s\n",
396 	    AcpiFormatException(status));
397 	return_VALUE (status);
398     }
399 
400     /*
401      * Pre-allocate space for RSDT/XSDT and DSDT tables and allow resizing
402      * if more tables exist.
403      */
404     if (ACPI_FAILURE(status = AcpiInitializeTables(NULL, 2, TRUE))) {
405 	printf("ACPI: Table initialisation failed: %s\n",
406 	    AcpiFormatException(status));
407 	return_VALUE (status);
408     }
409 
410     /* Set up any quirks we have for this system. */
411     if (acpi_quirks == ACPI_Q_OK)
412 	acpi_table_quirks(&acpi_quirks);
413 
414     /* If the user manually set the disabled hint to 0, force-enable ACPI. */
415     if (resource_int_value("acpi", 0, "disabled", &val) == 0 && val == 0)
416 	acpi_quirks &= ~ACPI_Q_BROKEN;
417     if (acpi_quirks & ACPI_Q_BROKEN) {
418 	printf("ACPI disabled by blacklist.  Contact your BIOS vendor.\n");
419 	status = AE_SUPPORT;
420     }
421 
422     return_VALUE (status);
423 }
424 
425 /*
426  * Detect ACPI and perform early initialisation.
427  */
428 int
acpi_identify(void)429 acpi_identify(void)
430 {
431     ACPI_TABLE_RSDP	*rsdp;
432     ACPI_TABLE_HEADER	*rsdt;
433     ACPI_PHYSICAL_ADDRESS paddr;
434     struct sbuf		sb;
435 
436     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
437 
438     if (!cold)
439 	return (ENXIO);
440 
441     /* Check that we haven't been disabled with a hint. */
442     if (resource_disabled("acpi", 0))
443 	return (ENXIO);
444 
445     /* Check for other PM systems. */
446     if (power_pm_get_type() != POWER_PM_TYPE_NONE &&
447 	power_pm_get_type() != POWER_PM_TYPE_ACPI) {
448 	printf("ACPI identify failed, other PM system enabled.\n");
449 	return (ENXIO);
450     }
451 
452     /* Initialize root tables. */
453     if (ACPI_FAILURE(acpi_Startup())) {
454 	printf("ACPI: Try disabling either ACPI or apic support.\n");
455 	return (ENXIO);
456     }
457 
458     if ((paddr = AcpiOsGetRootPointer()) == 0 ||
459 	(rsdp = AcpiOsMapMemory(paddr, sizeof(ACPI_TABLE_RSDP))) == NULL)
460 	return (ENXIO);
461     if (rsdp->Revision > 1 && rsdp->XsdtPhysicalAddress != 0)
462 	paddr = (ACPI_PHYSICAL_ADDRESS)rsdp->XsdtPhysicalAddress;
463     else
464 	paddr = (ACPI_PHYSICAL_ADDRESS)rsdp->RsdtPhysicalAddress;
465     AcpiOsUnmapMemory(rsdp, sizeof(ACPI_TABLE_RSDP));
466 
467     if ((rsdt = AcpiOsMapMemory(paddr, sizeof(ACPI_TABLE_HEADER))) == NULL)
468 	return (ENXIO);
469     sbuf_new(&sb, acpi_desc, sizeof(acpi_desc), SBUF_FIXEDLEN);
470     sbuf_bcat(&sb, rsdt->OemId, ACPI_OEM_ID_SIZE);
471     sbuf_trim(&sb);
472     sbuf_putc(&sb, ' ');
473     sbuf_bcat(&sb, rsdt->OemTableId, ACPI_OEM_TABLE_ID_SIZE);
474     sbuf_trim(&sb);
475     sbuf_finish(&sb);
476     sbuf_delete(&sb);
477     AcpiOsUnmapMemory(rsdt, sizeof(ACPI_TABLE_HEADER));
478 
479     snprintf(acpi_ca_version, sizeof(acpi_ca_version), "%x", ACPI_CA_VERSION);
480 
481     return (0);
482 }
483 
484 /*
485  * Fetch some descriptive data from ACPI to put in our attach message.
486  */
487 static int
acpi_probe(device_t dev)488 acpi_probe(device_t dev)
489 {
490 
491     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
492 
493     device_set_desc(dev, acpi_desc);
494 
495     return_VALUE (BUS_PROBE_NOWILDCARD);
496 }
497 
498 static int
acpi_attach(device_t dev)499 acpi_attach(device_t dev)
500 {
501     struct acpi_softc	*sc;
502     ACPI_STATUS		status;
503     int			error, state;
504     UINT32		flags;
505     char		*env;
506     enum power_stype	stype;
507 
508     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
509 
510     sc = device_get_softc(dev);
511     sc->acpi_dev = dev;
512     callout_init(&sc->susp_force_to, 1);
513 
514     error = ENXIO;
515 
516     /* Initialize resource manager. */
517     acpi_rman_io.rm_type = RMAN_ARRAY;
518     acpi_rman_io.rm_start = 0;
519     acpi_rman_io.rm_end = 0xffff;
520     acpi_rman_io.rm_descr = "ACPI I/O ports";
521     if (rman_init(&acpi_rman_io) != 0)
522 	panic("acpi rman_init IO ports failed");
523     acpi_rman_mem.rm_type = RMAN_ARRAY;
524     acpi_rman_mem.rm_descr = "ACPI I/O memory addresses";
525     if (rman_init(&acpi_rman_mem) != 0)
526 	panic("acpi rman_init memory failed");
527 
528     resource_list_init(&sc->sysres_rl);
529 
530     /* Initialise the ACPI mutex */
531     mtx_init(&acpi_mutex, "ACPI global lock", NULL, MTX_DEF);
532 
533     /*
534      * Set the globals from our tunables.  This is needed because ACPI-CA
535      * uses UINT8 for some values and we have no tunable_byte.
536      */
537     AcpiGbl_EnableInterpreterSlack = acpi_interpreter_slack ? TRUE : FALSE;
538     AcpiGbl_EnableAmlDebugObject = acpi_debug_objects ? TRUE : FALSE;
539     AcpiGbl_UseDefaultRegisterWidths = acpi_ignore_reg_width ? TRUE : FALSE;
540 
541 #ifndef ACPI_DEBUG
542     /*
543      * Disable all debugging layers and levels.
544      */
545     AcpiDbgLayer = 0;
546     AcpiDbgLevel = 0;
547 #endif
548 
549     /* Override OS interfaces if the user requested. */
550     acpi_reset_interfaces(dev);
551 
552     /* Load ACPI name space. */
553     status = AcpiLoadTables();
554     if (ACPI_FAILURE(status)) {
555 	device_printf(dev, "Could not load Namespace: %s\n",
556 		      AcpiFormatException(status));
557 	goto out;
558     }
559 
560     /* Handle MCFG table if present. */
561     acpi_enable_pcie();
562 
563     /*
564      * Note that some systems (specifically, those with namespace evaluation
565      * issues that require the avoidance of parts of the namespace) must
566      * avoid running _INI and _STA on everything, as well as dodging the final
567      * object init pass.
568      *
569      * For these devices, we set ACPI_NO_DEVICE_INIT and ACPI_NO_OBJECT_INIT).
570      *
571      * XXX We should arrange for the object init pass after we have attached
572      *     all our child devices, but on many systems it works here.
573      */
574     flags = 0;
575     if (testenv("debug.acpi.avoid"))
576 	flags = ACPI_NO_DEVICE_INIT | ACPI_NO_OBJECT_INIT;
577 
578     /* Bring the hardware and basic handlers online. */
579     if (ACPI_FAILURE(status = AcpiEnableSubsystem(flags))) {
580 	device_printf(dev, "Could not enable ACPI: %s\n",
581 		      AcpiFormatException(status));
582 	goto out;
583     }
584 
585     /*
586      * Call the ECDT probe function to provide EC functionality before
587      * the namespace has been evaluated.
588      *
589      * XXX This happens before the sysresource devices have been probed and
590      * attached so its resources come from nexus0.  In practice, this isn't
591      * a problem but should be addressed eventually.
592      */
593     acpi_ec_ecdt_probe(dev);
594 
595     /* Bring device objects and regions online. */
596     if (ACPI_FAILURE(status = AcpiInitializeObjects(flags))) {
597 	device_printf(dev, "Could not initialize ACPI objects: %s\n",
598 		      AcpiFormatException(status));
599 	goto out;
600     }
601 
602 #if defined(__amd64__) || defined(__i386__)
603     /*
604      * Enable workaround for incorrect ISA IRQ polarity by default on
605      * systems with Intel CPUs.
606      */
607     if (cpu_vendor_id == CPU_VENDOR_INTEL)
608 	acpi_override_isa_irq_polarity = 1;
609 #endif
610 
611     /*
612      * Default to 1 second before sleeping to give some machines time to
613      * stabilize.
614      */
615     sc->acpi_sleep_delay = 1;
616     if (bootverbose)
617 	sc->acpi_verbose = 1;
618     if ((env = kern_getenv("hw.acpi.verbose")) != NULL) {
619 	if (strcmp(env, "0") != 0)
620 	    sc->acpi_verbose = 1;
621 	freeenv(env);
622     }
623 
624     /* Only enable reboot by default if the FADT says it is available. */
625     if (AcpiGbl_FADT.Flags & ACPI_FADT_RESET_REGISTER)
626 	sc->acpi_handle_reboot = 1;
627 
628     /*
629      * Mark whether S4BIOS is available according to the FACS, and if it is,
630      * enable it by default.
631      */
632     if (AcpiGbl_FACS != NULL && AcpiGbl_FACS->Flags & ACPI_FACS_S4_BIOS_PRESENT)
633 	sc->acpi_s4bios = sc->acpi_s4bios_supported = true;
634 
635     /*
636      * Probe all supported ACPI sleep states.  Awake (S0) is always supported,
637      * and suspend-to-idle is always supported on x86 only (at the moment).
638      */
639     acpi_supported_sstates[ACPI_STATE_S0] = true;
640     acpi_supported_stypes[POWER_STYPE_AWAKE] = true;
641 #if defined(__i386__) || defined(__amd64__)
642     acpi_supported_stypes[POWER_STYPE_SUSPEND_TO_IDLE] = true;
643 #endif
644     for (state = ACPI_STATE_S1; state <= ACPI_STATE_S5; state++) {
645 	UINT8 TypeA, TypeB;
646 
647 	if (ACPI_SUCCESS(AcpiGetSleepTypeData(state, &TypeA, &TypeB))) {
648 	    acpi_supported_sstates[state] = true;
649 	    acpi_supported_stypes[acpi_sstate_to_stype(state)] = true;
650 	}
651     }
652 
653     /*
654      * Dispatch the default sleep type to devices.  The lid switch is set
655      * to UNKNOWN by default to avoid surprising users.
656      */
657     sc->acpi_power_button_stype = acpi_supported_stypes[POWER_STYPE_POWEROFF] ?
658 	POWER_STYPE_POWEROFF : POWER_STYPE_UNKNOWN;
659     sc->acpi_lid_switch_stype = POWER_STYPE_UNKNOWN;
660 
661     sc->acpi_standby_sx = ACPI_STATE_UNKNOWN;
662     if (acpi_supported_sstates[ACPI_STATE_S1])
663 	sc->acpi_standby_sx = ACPI_STATE_S1;
664     else if (acpi_supported_sstates[ACPI_STATE_S2])
665 	sc->acpi_standby_sx = ACPI_STATE_S2;
666 
667     /*
668      * Pick the first valid sleep type for the sleep button default.  If that
669      * type was hibernate and we support s2idle, set it to that.  The sleep
670      * button prefers s2mem instead of s2idle at the moment as s2idle may not
671      * yet work reliably on all machines.  In the future, we should set this to
672      * s2idle when ACPI_FADT_LOW_POWER_S0 is set.
673      */
674     sc->acpi_sleep_button_stype = POWER_STYPE_UNKNOWN;
675     for (stype = POWER_STYPE_STANDBY; stype <= POWER_STYPE_HIBERNATE; stype++)
676 	if (acpi_supported_stypes[stype]) {
677 	    sc->acpi_sleep_button_stype = stype;
678 	    break;
679 	}
680     if (sc->acpi_sleep_button_stype == POWER_STYPE_HIBERNATE ||
681 	sc->acpi_sleep_button_stype == POWER_STYPE_UNKNOWN) {
682 	if (acpi_supported_stypes[POWER_STYPE_SUSPEND_TO_IDLE])
683 	    sc->acpi_sleep_button_stype = POWER_STYPE_SUSPEND_TO_IDLE;
684     }
685 
686     acpi_enable_fixed_events(sc);
687 
688     /*
689      * Scan the namespace and attach/initialise children.
690      */
691 
692     /* Register our shutdown handler. */
693     EVENTHANDLER_REGISTER(shutdown_final, acpi_shutdown_final, sc,
694 	SHUTDOWN_PRI_LAST + 150);
695 
696     /*
697      * Register our acpi event handlers.
698      * XXX should be configurable eg. via userland policy manager.
699      */
700     EVENTHANDLER_REGISTER(acpi_sleep_event, acpi_system_eventhandler_sleep,
701 	sc, ACPI_EVENT_PRI_LAST);
702     EVENTHANDLER_REGISTER(acpi_wakeup_event, acpi_system_eventhandler_wakeup,
703 	sc, ACPI_EVENT_PRI_LAST);
704 
705     /* Flag our initial states. */
706     sc->acpi_enabled = TRUE;
707     sc->acpi_stype = POWER_STYPE_AWAKE;
708     sc->acpi_sleep_disabled = TRUE;
709 
710     /* Create the control device */
711     sc->acpi_dev_t = make_dev(&acpi_cdevsw, 0, UID_ROOT, GID_OPERATOR, 0664,
712 			      "acpi");
713     sc->acpi_dev_t->si_drv1 = sc;
714 
715     if ((error = acpi_machdep_init(dev)))
716 	goto out;
717 
718     /*
719      * Setup our sysctl tree.
720      *
721      * XXX: This doesn't check to make sure that none of these fail.
722      */
723     sysctl_ctx_init(&sc->acpi_sysctl_ctx);
724     sc->acpi_sysctl_tree = SYSCTL_ADD_NODE(&sc->acpi_sysctl_ctx,
725         SYSCTL_STATIC_CHILDREN(_hw), OID_AUTO, device_get_name(dev),
726 	CTLFLAG_RD | CTLFLAG_MPSAFE, 0, "");
727     SYSCTL_ADD_PROC(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
728 	OID_AUTO, "supported_sleep_state",
729 	CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE,
730 	0, 0, acpi_supported_sleep_state_sysctl, "A",
731 	"List supported ACPI sleep states.");
732     SYSCTL_ADD_PROC(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
733 	OID_AUTO, "power_button_state",
734 	CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_MPSAFE,
735 	&sc->acpi_power_button_stype, 0, acpi_stype_sysctl, "A",
736 	"Power button ACPI sleep state.");
737     SYSCTL_ADD_PROC(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
738 	OID_AUTO, "sleep_button_state",
739 	CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_MPSAFE,
740 	&sc->acpi_sleep_button_stype, 0, acpi_stype_sysctl, "A",
741 	"Sleep button ACPI sleep state.");
742     SYSCTL_ADD_PROC(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
743 	OID_AUTO, "lid_switch_state",
744 	CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_MPSAFE,
745 	&sc->acpi_lid_switch_stype, 0, acpi_stype_sysctl, "A",
746 	"Lid ACPI sleep state. Set to s2idle or s2mem if you want to suspend "
747 	"your laptop when you close the lid.");
748     SYSCTL_ADD_PROC(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
749 	OID_AUTO, "suspend_state", CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_MPSAFE,
750 	NULL, 0, acpi_suspend_state_sysctl, "A",
751 	"Current ACPI suspend state. This sysctl is deprecated; you probably "
752 	"want to use kern.power.suspend instead.");
753     SYSCTL_ADD_PROC(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
754 	OID_AUTO, "standby_state",
755 	CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_MPSAFE,
756 	&sc->acpi_standby_sx, 0, acpi_sleep_state_sysctl, "A",
757 	"ACPI Sx state to use when going standby (usually S1 or S2).");
758     SYSCTL_ADD_INT(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
759 	OID_AUTO, "sleep_delay", CTLFLAG_RW, &sc->acpi_sleep_delay, 0,
760 	"sleep delay in seconds");
761     SYSCTL_ADD_PROC(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
762 	OID_AUTO, "s4bios", CTLTYPE_U8 | CTLFLAG_RW | CTLFLAG_MPSAFE,
763 	sc, 0, acpi_s4bios_sysctl, "CU",
764 	"On hibernate, have the firmware save/restore the machine state (S4BIOS).");
765     SYSCTL_ADD_BOOL(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
766 	OID_AUTO, "s4bios_supported", CTLFLAG_RD, &sc->acpi_s4bios_supported, 0,
767 	"Whether firmware supports saving/restoring the machine state (S4BIOS).");
768     SYSCTL_ADD_INT(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
769 	OID_AUTO, "verbose", CTLFLAG_RW, &sc->acpi_verbose, 0, "verbose mode");
770     SYSCTL_ADD_INT(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
771 	OID_AUTO, "disable_on_reboot", CTLFLAG_RW,
772 	&sc->acpi_do_disable, 0, "Disable ACPI when rebooting/halting system");
773     SYSCTL_ADD_INT(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
774 	OID_AUTO, "handle_reboot", CTLFLAG_RW,
775 	&sc->acpi_handle_reboot, 0, "Use ACPI Reset Register to reboot");
776 #if defined(__amd64__) || defined(__i386__)
777     SYSCTL_ADD_INT(&sc->acpi_sysctl_ctx, SYSCTL_CHILDREN(sc->acpi_sysctl_tree),
778 	OID_AUTO, "override_isa_irq_polarity", CTLFLAG_RDTUN,
779 	&acpi_override_isa_irq_polarity, 0,
780 	"Force active-hi polarity for edge-triggered ISA IRQs");
781 #endif
782 
783     /* Register ACPI again to pass the correct argument of pm_func. */
784     power_pm_register(POWER_PM_TYPE_ACPI, acpi_pm_func, sc,
785 	acpi_supported_stypes);
786 
787     acpi_platform_osc(dev);
788 
789     if (!acpi_disabled("bus")) {
790 	EVENTHANDLER_REGISTER(dev_lookup, acpi_lookup, NULL, 1000);
791 	acpi_probe_children(dev);
792     }
793 
794     /* Update all GPEs and enable runtime GPEs. */
795     status = AcpiUpdateAllGpes();
796     if (ACPI_FAILURE(status))
797 	device_printf(dev, "Could not update all GPEs: %s\n",
798 	    AcpiFormatException(status));
799 
800     /* Allow sleep request after a while. */
801     callout_init_mtx(&acpi_sleep_timer, &acpi_mutex, 0);
802     callout_reset(&acpi_sleep_timer, hz * ACPI_MINIMUM_AWAKETIME,
803 	acpi_sleep_enable, sc);
804 
805     error = 0;
806 
807  out:
808     return_VALUE (error);
809 }
810 
811 static int
acpi_stype_to_sstate(struct acpi_softc * sc,enum power_stype stype)812 acpi_stype_to_sstate(struct acpi_softc *sc, enum power_stype stype)
813 {
814 	switch (stype) {
815 	case POWER_STYPE_AWAKE:
816 		return (ACPI_STATE_S0);
817 	case POWER_STYPE_STANDBY:
818 		return (sc->acpi_standby_sx);
819 	case POWER_STYPE_SUSPEND_TO_MEM:
820 		return (ACPI_STATE_S3);
821 	case POWER_STYPE_HIBERNATE:
822 		return (ACPI_STATE_S4);
823 	case POWER_STYPE_POWEROFF:
824 		return (ACPI_STATE_S5);
825 	case POWER_STYPE_SUSPEND_TO_IDLE:
826 	case POWER_STYPE_COUNT:
827 	case POWER_STYPE_UNKNOWN:
828 		return (ACPI_STATE_UNKNOWN);
829 	}
830 	return (ACPI_STATE_UNKNOWN);
831 }
832 
833 /*
834  * XXX It would be nice if we didn't need this function, but we'd need
835  * acpi_EnterSleepState and acpi_ReqSleepState to take in actual ACPI S-states,
836  * which won't be possible at the moment because suspend-to-idle (which is not
837  * an ACPI S-state nor maps to one) will be implemented here.
838  *
839  * In the future, we should make generic a lot of the logic in these functions
840  * to enable suspend-to-idle on non-ACPI builds, and then make
841  * acpi_EnterSleepState and acpi_ReqSleepState truly take in ACPI S-states
842  * again.
843  */
844 static enum power_stype
acpi_sstate_to_stype(int sstate)845 acpi_sstate_to_stype(int sstate)
846 {
847 	switch (sstate) {
848 	case ACPI_STATE_S0:
849 		return (POWER_STYPE_AWAKE);
850 	case ACPI_STATE_S1:
851 	case ACPI_STATE_S2:
852 		return (POWER_STYPE_STANDBY);
853 	case ACPI_STATE_S3:
854 		return (POWER_STYPE_SUSPEND_TO_MEM);
855 	case ACPI_STATE_S4:
856 		return (POWER_STYPE_HIBERNATE);
857 	case ACPI_STATE_S5:
858 		return (POWER_STYPE_POWEROFF);
859 	}
860 	return (POWER_STYPE_UNKNOWN);
861 }
862 
863 static void
acpi_set_power_children(device_t dev,int state)864 acpi_set_power_children(device_t dev, int state)
865 {
866 	device_t child;
867 	device_t *devlist;
868 	int dstate, i, numdevs;
869 
870 	if (device_get_children(dev, &devlist, &numdevs) != 0)
871 		return;
872 
873 	/*
874 	 * Retrieve and set D-state for the sleep state if _SxD is present.
875 	 * Skip children who aren't attached since they are handled separately.
876 	 */
877 	for (i = 0; i < numdevs; i++) {
878 		child = devlist[i];
879 		dstate = state;
880 		if (device_is_attached(child) &&
881 		    acpi_device_pwr_for_sleep(dev, child, &dstate) == 0)
882 			acpi_set_powerstate(child, dstate);
883 	}
884 	free(devlist, M_TEMP);
885 }
886 
887 static int
acpi_suspend(device_t dev)888 acpi_suspend(device_t dev)
889 {
890     int error;
891 
892     bus_topo_assert();
893 
894     error = bus_generic_suspend(dev);
895     if (error == 0)
896 	acpi_set_power_children(dev, ACPI_STATE_D3);
897 
898     return (error);
899 }
900 
901 static int
acpi_resume(device_t dev)902 acpi_resume(device_t dev)
903 {
904 
905     bus_topo_assert();
906 
907     acpi_set_power_children(dev, ACPI_STATE_D0);
908 
909     return (bus_generic_resume(dev));
910 }
911 
912 static int
acpi_shutdown(device_t dev)913 acpi_shutdown(device_t dev)
914 {
915     struct acpi_softc *sc = device_get_softc(dev);
916 
917     bus_topo_assert();
918 
919     /* Allow children to shutdown first. */
920     bus_generic_shutdown(dev);
921 
922     /*
923      * Enable any GPEs that are able to power-on the system (i.e., RTC).
924      * Also, disable any that are not valid for this state (most).
925      */
926     acpi_wake_prep_walk(sc, POWER_STYPE_POWEROFF);
927 
928     return (0);
929 }
930 
931 /*
932  * Handle a new device being added
933  */
934 static device_t
acpi_add_child(device_t bus,u_int order,const char * name,int unit)935 acpi_add_child(device_t bus, u_int order, const char *name, int unit)
936 {
937     struct acpi_device	*ad;
938     device_t		child;
939 
940     if ((ad = malloc(sizeof(*ad), M_ACPIDEV, M_NOWAIT | M_ZERO)) == NULL)
941 	return (NULL);
942 
943     ad->ad_domain = ACPI_DEV_DOMAIN_UNKNOWN;
944     resource_list_init(&ad->ad_rl);
945 
946     child = device_add_child_ordered(bus, order, name, unit);
947     if (child != NULL)
948 	device_set_ivars(child, ad);
949     else
950 	free(ad, M_ACPIDEV);
951     return (child);
952 }
953 
954 static int
acpi_print_child(device_t bus,device_t child)955 acpi_print_child(device_t bus, device_t child)
956 {
957     struct acpi_device	 *adev = device_get_ivars(child);
958     struct resource_list *rl = &adev->ad_rl;
959     int retval = 0;
960 
961     retval += bus_print_child_header(bus, child);
962     retval += resource_list_print_type(rl, "port",  SYS_RES_IOPORT, "%#jx");
963     retval += resource_list_print_type(rl, "iomem", SYS_RES_MEMORY, "%#jx");
964     retval += resource_list_print_type(rl, "irq",   SYS_RES_IRQ,    "%jd");
965     retval += resource_list_print_type(rl, "drq",   SYS_RES_DRQ,    "%jd");
966     if (device_get_flags(child))
967 	retval += printf(" flags %#x", device_get_flags(child));
968     retval += bus_print_child_domain(bus, child);
969     retval += bus_print_child_footer(bus, child);
970 
971     return (retval);
972 }
973 
974 /*
975  * If this device is an ACPI child but no one claimed it, attempt
976  * to power it off.  We'll power it back up when a driver is added.
977  *
978  * XXX Disabled for now since many necessary devices (like fdc and
979  * ATA) don't claim the devices we created for them but still expect
980  * them to be powered up.
981  */
982 static void
acpi_probe_nomatch(device_t bus,device_t child)983 acpi_probe_nomatch(device_t bus, device_t child)
984 {
985 #ifdef ACPI_ENABLE_POWERDOWN_NODRIVER
986     acpi_set_powerstate(child, ACPI_STATE_D3);
987 #endif
988 }
989 
990 /*
991  * If a new driver has a chance to probe a child, first power it up.
992  *
993  * XXX Disabled for now (see acpi_probe_nomatch for details).
994  */
995 static void
acpi_driver_added(device_t dev,driver_t * driver)996 acpi_driver_added(device_t dev, driver_t *driver)
997 {
998     device_t child, *devlist;
999     int i, numdevs;
1000 
1001     DEVICE_IDENTIFY(driver, dev);
1002     if (device_get_children(dev, &devlist, &numdevs))
1003 	    return;
1004     for (i = 0; i < numdevs; i++) {
1005 	child = devlist[i];
1006 	if (device_get_state(child) == DS_NOTPRESENT) {
1007 #ifdef ACPI_ENABLE_POWERDOWN_NODRIVER
1008 	    acpi_set_powerstate(child, ACPI_STATE_D0);
1009 	    if (device_probe_and_attach(child) != 0)
1010 		acpi_set_powerstate(child, ACPI_STATE_D3);
1011 #else
1012 	    device_probe_and_attach(child);
1013 #endif
1014 	}
1015     }
1016     free(devlist, M_TEMP);
1017 }
1018 
1019 /* Location hint for devctl(8) */
1020 static int
acpi_child_location_method(device_t cbdev,device_t child,struct sbuf * sb)1021 acpi_child_location_method(device_t cbdev, device_t child, struct sbuf *sb)
1022 {
1023     struct acpi_device *dinfo = device_get_ivars(child);
1024     int pxm;
1025 
1026     if (dinfo->ad_handle) {
1027         sbuf_printf(sb, "handle=%s", acpi_name(dinfo->ad_handle));
1028         if (ACPI_SUCCESS(acpi_GetInteger(dinfo->ad_handle, "_PXM", &pxm))) {
1029             sbuf_printf(sb, " _PXM=%d", pxm);
1030 	}
1031     }
1032     return (0);
1033 }
1034 
1035 /* PnP information for devctl(8) */
1036 int
acpi_pnpinfo(ACPI_HANDLE handle,struct sbuf * sb)1037 acpi_pnpinfo(ACPI_HANDLE handle, struct sbuf *sb)
1038 {
1039     ACPI_DEVICE_INFO *adinfo;
1040 
1041     if (ACPI_FAILURE(AcpiGetObjectInfo(handle, &adinfo))) {
1042 	sbuf_printf(sb, "unknown");
1043 	return (0);
1044     }
1045 
1046     sbuf_printf(sb, "_HID=%s _UID=%lu _CID=%s",
1047 	(adinfo->Valid & ACPI_VALID_HID) ?
1048 	adinfo->HardwareId.String : "none",
1049 	(adinfo->Valid & ACPI_VALID_UID) ?
1050 	strtoul(adinfo->UniqueId.String, NULL, 10) : 0UL,
1051 	((adinfo->Valid & ACPI_VALID_CID) &&
1052 	 adinfo->CompatibleIdList.Count > 0) ?
1053 	adinfo->CompatibleIdList.Ids[0].String : "none");
1054     AcpiOsFree(adinfo);
1055 
1056     return (0);
1057 }
1058 
1059 static int
acpi_child_pnpinfo_method(device_t cbdev,device_t child,struct sbuf * sb)1060 acpi_child_pnpinfo_method(device_t cbdev, device_t child, struct sbuf *sb)
1061 {
1062     struct acpi_device *dinfo = device_get_ivars(child);
1063 
1064     return (acpi_pnpinfo(dinfo->ad_handle, sb));
1065 }
1066 
1067 /*
1068  * Note: the check for ACPI locator may be redundant. However, this routine is
1069  * suitable for both busses whose only locator is ACPI and as a building block
1070  * for busses that have multiple locators to cope with.
1071  */
1072 int
acpi_get_acpi_device_path(device_t bus,device_t child,const char * locator,struct sbuf * sb)1073 acpi_get_acpi_device_path(device_t bus, device_t child, const char *locator, struct sbuf *sb)
1074 {
1075 	if (strcmp(locator, BUS_LOCATOR_ACPI) == 0) {
1076 		ACPI_HANDLE *handle = acpi_get_handle(child);
1077 
1078 		if (handle != NULL)
1079 			sbuf_printf(sb, "%s", acpi_name(handle));
1080 		return (0);
1081 	}
1082 
1083 	return (bus_generic_get_device_path(bus, child, locator, sb));
1084 }
1085 
1086 static int
acpi_get_device_path(device_t bus,device_t child,const char * locator,struct sbuf * sb)1087 acpi_get_device_path(device_t bus, device_t child, const char *locator, struct sbuf *sb)
1088 {
1089 	struct acpi_device *dinfo = device_get_ivars(child);
1090 
1091 	if (strcmp(locator, BUS_LOCATOR_ACPI) == 0)
1092 		return (acpi_get_acpi_device_path(bus, child, locator, sb));
1093 
1094 	if (strcmp(locator, BUS_LOCATOR_UEFI) == 0) {
1095 		ACPI_DEVICE_INFO *adinfo;
1096 		if (!ACPI_FAILURE(AcpiGetObjectInfo(dinfo->ad_handle, &adinfo)) &&
1097 		    dinfo->ad_handle != 0 && (adinfo->Valid & ACPI_VALID_HID)) {
1098 			const char *hid = adinfo->HardwareId.String;
1099 			u_long uid = (adinfo->Valid & ACPI_VALID_UID) ?
1100 			    strtoul(adinfo->UniqueId.String, NULL, 10) : 0UL;
1101 			u_long hidval;
1102 
1103 			/*
1104 			 * In UEFI Stanard Version 2.6, Section 9.6.1.6 Text
1105 			 * Device Node Reference, there's an insanely long table
1106 			 * 98. This implements the relevant bits from that
1107 			 * table. Newer versions appear to have not required
1108 			 * anything new. The EDK2 firmware presents both PciRoot
1109 			 * and PcieRoot as PciRoot. Follow the EDK2 standard.
1110 			 */
1111 			if (strncmp("PNP", hid, 3) != 0)
1112 				goto nomatch;
1113 			hidval = strtoul(hid + 3, NULL, 16);
1114 			switch (hidval) {
1115 			case 0x0301:
1116 				sbuf_printf(sb, "Keyboard(0x%lx)", uid);
1117 				break;
1118 			case 0x0401:
1119 				sbuf_printf(sb, "ParallelPort(0x%lx)", uid);
1120 				break;
1121 			case 0x0501:
1122 				sbuf_printf(sb, "Serial(0x%lx)", uid);
1123 				break;
1124 			case 0x0604:
1125 				sbuf_printf(sb, "Floppy(0x%lx)", uid);
1126 				break;
1127 			case 0x0a03:
1128 			case 0x0a08:
1129 				sbuf_printf(sb, "PciRoot(0x%lx)", uid);
1130 				break;
1131 			default: /* Everything else gets a generic encode */
1132 			nomatch:
1133 				sbuf_printf(sb, "Acpi(%s,0x%lx)", hid, uid);
1134 				break;
1135 			}
1136 		}
1137 		/* Not handled: AcpiAdr... unsure how to know it's one */
1138 	}
1139 
1140 	/* For the rest, punt to the default handler */
1141 	return (bus_generic_get_device_path(bus, child, locator, sb));
1142 }
1143 
1144 /*
1145  * Handle device deletion.
1146  */
1147 static void
acpi_child_deleted(device_t dev,device_t child)1148 acpi_child_deleted(device_t dev, device_t child)
1149 {
1150     struct acpi_device *dinfo = device_get_ivars(child);
1151 
1152     if (acpi_get_device(dinfo->ad_handle) == child)
1153 	AcpiDetachData(dinfo->ad_handle, acpi_fake_objhandler);
1154     free(dinfo, M_ACPIDEV);
1155 }
1156 
1157 _Static_assert(ACPI_IVAR_PRIVATE >= ISA_IVAR_LAST,
1158     "ACPI private IVARs overlap with ISA IVARs");
1159 
1160 /*
1161  * Handle per-device ivars
1162  */
1163 static int
acpi_read_ivar(device_t dev,device_t child,int index,uintptr_t * result)1164 acpi_read_ivar(device_t dev, device_t child, int index, uintptr_t *result)
1165 {
1166     struct acpi_device	*ad;
1167 
1168     if ((ad = device_get_ivars(child)) == NULL) {
1169 	device_printf(child, "device has no ivars\n");
1170 	return (ENOENT);
1171     }
1172 
1173     /* ACPI and ISA compatibility ivars */
1174     switch(index) {
1175     case ACPI_IVAR_HANDLE:
1176 	*(ACPI_HANDLE *)result = ad->ad_handle;
1177 	break;
1178     case ACPI_IVAR_PRIVATE:
1179 	*(void **)result = ad->ad_private;
1180 	break;
1181     case ACPI_IVAR_FLAGS:
1182 	*(int *)result = ad->ad_flags;
1183 	break;
1184     case ACPI_IVAR_DOMAIN:
1185 	*(int *)result = ad->ad_domain;
1186 	break;
1187     case ISA_IVAR_VENDORID:
1188     case ISA_IVAR_SERIAL:
1189     case ISA_IVAR_COMPATID:
1190 	*(int *)result = -1;
1191 	break;
1192     case ISA_IVAR_LOGICALID:
1193 	*(int *)result = acpi_isa_get_logicalid(child);
1194 	break;
1195     case PCI_IVAR_CLASS:
1196 	*(uint8_t*)result = (ad->ad_cls_class >> 16) & 0xff;
1197 	break;
1198     case PCI_IVAR_SUBCLASS:
1199 	*(uint8_t*)result = (ad->ad_cls_class >> 8) & 0xff;
1200 	break;
1201     case PCI_IVAR_PROGIF:
1202 	*(uint8_t*)result = (ad->ad_cls_class >> 0) & 0xff;
1203 	break;
1204     default:
1205 	return (ENOENT);
1206     }
1207 
1208     return (0);
1209 }
1210 
1211 static int
acpi_write_ivar(device_t dev,device_t child,int index,uintptr_t value)1212 acpi_write_ivar(device_t dev, device_t child, int index, uintptr_t value)
1213 {
1214     struct acpi_device	*ad;
1215 
1216     if ((ad = device_get_ivars(child)) == NULL) {
1217 	device_printf(child, "device has no ivars\n");
1218 	return (ENOENT);
1219     }
1220 
1221     switch(index) {
1222     case ACPI_IVAR_HANDLE:
1223 	ad->ad_handle = (ACPI_HANDLE)value;
1224 	break;
1225     case ACPI_IVAR_PRIVATE:
1226 	ad->ad_private = (void *)value;
1227 	break;
1228     case ACPI_IVAR_FLAGS:
1229 	ad->ad_flags = (int)value;
1230 	break;
1231     case ACPI_IVAR_DOMAIN:
1232 	ad->ad_domain = (int)value;
1233 	break;
1234     default:
1235 	panic("bad ivar write request (%d)", index);
1236 	return (ENOENT);
1237     }
1238 
1239     return (0);
1240 }
1241 
1242 /*
1243  * Handle child resource allocation/removal
1244  */
1245 static struct resource_list *
acpi_get_rlist(device_t dev,device_t child)1246 acpi_get_rlist(device_t dev, device_t child)
1247 {
1248     struct acpi_device		*ad;
1249 
1250     ad = device_get_ivars(child);
1251     return (&ad->ad_rl);
1252 }
1253 
1254 static int
acpi_match_resource_hint(device_t dev,int type,long value)1255 acpi_match_resource_hint(device_t dev, int type, long value)
1256 {
1257     struct acpi_device *ad = device_get_ivars(dev);
1258     struct resource_list *rl = &ad->ad_rl;
1259     struct resource_list_entry *rle;
1260 
1261     STAILQ_FOREACH(rle, rl, link) {
1262 	if (rle->type != type)
1263 	    continue;
1264 	if (rle->start <= value && rle->end >= value)
1265 	    return (1);
1266     }
1267     return (0);
1268 }
1269 
1270 /*
1271  * Does this device match because the resources match?
1272  */
1273 static bool
acpi_hint_device_matches_resources(device_t child,const char * name,int unit)1274 acpi_hint_device_matches_resources(device_t child, const char *name,
1275     int unit)
1276 {
1277 	long value;
1278 	bool matches;
1279 
1280 	/*
1281 	 * Check for matching resources.  We must have at least one match.
1282 	 * Since I/O and memory resources cannot be shared, if we get a
1283 	 * match on either of those, ignore any mismatches in IRQs or DRQs.
1284 	 *
1285 	 * XXX: We may want to revisit this to be more lenient and wire
1286 	 * as long as it gets one match.
1287 	 */
1288 	matches = false;
1289 	if (resource_long_value(name, unit, "port", &value) == 0) {
1290 		/*
1291 		 * Floppy drive controllers are notorious for having a
1292 		 * wide variety of resources not all of which include the
1293 		 * first port that is specified by the hint (typically
1294 		 * 0x3f0) (see the comment above fdc_isa_alloc_resources()
1295 		 * in fdc_isa.c).  However, they do all seem to include
1296 		 * port + 2 (e.g. 0x3f2) so for a floppy device, look for
1297 		 * 'value + 2' in the port resources instead of the hint
1298 		 * value.
1299 		 */
1300 		if (strcmp(name, "fdc") == 0)
1301 			value += 2;
1302 		if (acpi_match_resource_hint(child, SYS_RES_IOPORT, value))
1303 			matches = true;
1304 		else
1305 			return false;
1306 	}
1307 	if (resource_long_value(name, unit, "maddr", &value) == 0) {
1308 		if (acpi_match_resource_hint(child, SYS_RES_MEMORY, value))
1309 			matches = true;
1310 		else
1311 			return false;
1312 	}
1313 
1314 	/*
1315 	 * If either the I/O address and/or the memory address matched, then
1316 	 * assumed this devices matches and that any mismatch in other resources
1317 	 * will be resolved by siltently ignoring those other resources. Otherwise
1318 	 * all further resources must match.
1319 	 */
1320 	if (matches) {
1321 		return (true);
1322 	}
1323 	if (resource_long_value(name, unit, "irq", &value) == 0) {
1324 		if (acpi_match_resource_hint(child, SYS_RES_IRQ, value))
1325 			matches = true;
1326 		else
1327 			return false;
1328 	}
1329 	if (resource_long_value(name, unit, "drq", &value) == 0) {
1330 		if (acpi_match_resource_hint(child, SYS_RES_DRQ, value))
1331 			matches = true;
1332 		else
1333 			return false;
1334 	}
1335 	return matches;
1336 }
1337 
1338 
1339 /*
1340  * Wire device unit numbers based on resource matches in hints.
1341  */
1342 static void
acpi_hint_device_unit(device_t acdev,device_t child,const char * name,int * unitp)1343 acpi_hint_device_unit(device_t acdev, device_t child, const char *name,
1344     int *unitp)
1345 {
1346     device_location_cache_t *cache;
1347     const char *s;
1348     int line, unit;
1349     bool matches;
1350 
1351     /*
1352      * Iterate over all the hints for the devices with the specified
1353      * name to see if one's resources are a subset of this device.
1354      */
1355     line = 0;
1356     cache = dev_wired_cache_init();
1357     while (resource_find_dev(&line, name, &unit, "at", NULL) == 0) {
1358 	/* Must have an "at" for acpi or isa. */
1359 	resource_string_value(name, unit, "at", &s);
1360 	matches = false;
1361 	if (strcmp(s, "acpi0") == 0 || strcmp(s, "acpi") == 0 ||
1362 	    strcmp(s, "isa0") == 0 || strcmp(s, "isa") == 0)
1363 	    matches = acpi_hint_device_matches_resources(child, name, unit);
1364 	else
1365 	    matches = dev_wired_cache_match(cache, child, s);
1366 
1367 	if (matches) {
1368 	    /* We have a winner! */
1369 	    *unitp = unit;
1370 	    break;
1371 	}
1372     }
1373     dev_wired_cache_fini(cache);
1374 }
1375 
1376 /*
1377  * Fetch the NUMA domain for a device by mapping the value returned by
1378  * _PXM to a NUMA domain.  If the device does not have a _PXM method,
1379  * -2 is returned.  If any other error occurs, -1 is returned.
1380  */
1381 int
acpi_pxm_parse(device_t dev)1382 acpi_pxm_parse(device_t dev)
1383 {
1384 #ifdef NUMA
1385 #if defined(__i386__) || defined(__amd64__) || defined(__aarch64__)
1386 	ACPI_HANDLE handle;
1387 	ACPI_STATUS status;
1388 	int pxm;
1389 
1390 	handle = acpi_get_handle(dev);
1391 	if (handle == NULL)
1392 		return (-2);
1393 	status = acpi_GetInteger(handle, "_PXM", &pxm);
1394 	if (ACPI_SUCCESS(status))
1395 		return (acpi_map_pxm_to_vm_domainid(pxm));
1396 	if (status == AE_NOT_FOUND)
1397 		return (-2);
1398 #endif
1399 #endif
1400 	return (-1);
1401 }
1402 
1403 int
acpi_get_cpus(device_t dev,device_t child,enum cpu_sets op,size_t setsize,cpuset_t * cpuset)1404 acpi_get_cpus(device_t dev, device_t child, enum cpu_sets op, size_t setsize,
1405     cpuset_t *cpuset)
1406 {
1407 	int d, error;
1408 
1409 	d = acpi_pxm_parse(child);
1410 	if (d < 0)
1411 		return (bus_generic_get_cpus(dev, child, op, setsize, cpuset));
1412 
1413 	switch (op) {
1414 	case LOCAL_CPUS:
1415 		if (setsize != sizeof(cpuset_t))
1416 			return (EINVAL);
1417 		*cpuset = cpuset_domain[d];
1418 		return (0);
1419 	case INTR_CPUS:
1420 		error = bus_generic_get_cpus(dev, child, op, setsize, cpuset);
1421 		if (error != 0)
1422 			return (error);
1423 		if (setsize != sizeof(cpuset_t))
1424 			return (EINVAL);
1425 		CPU_AND(cpuset, cpuset, &cpuset_domain[d]);
1426 		return (0);
1427 	default:
1428 		return (bus_generic_get_cpus(dev, child, op, setsize, cpuset));
1429 	}
1430 }
1431 
1432 static int
acpi_get_domain_method(device_t dev,device_t child,int * domain)1433 acpi_get_domain_method(device_t dev, device_t child, int *domain)
1434 {
1435 	int error;
1436 
1437 	error = acpi_read_ivar(dev, child, ACPI_IVAR_DOMAIN,
1438 	    (uintptr_t *)domain);
1439 	if (error == 0 && *domain != ACPI_DEV_DOMAIN_UNKNOWN)
1440 		return (0);
1441 	return (ENOENT);
1442 }
1443 
1444 static struct rman *
acpi_get_rman(device_t bus,int type,u_int flags)1445 acpi_get_rman(device_t bus, int type, u_int flags)
1446 {
1447 	/* Only memory and IO resources are managed. */
1448 	switch (type) {
1449 	case SYS_RES_IOPORT:
1450 		return (&acpi_rman_io);
1451 	case SYS_RES_MEMORY:
1452 		return (&acpi_rman_mem);
1453 	default:
1454 		return (NULL);
1455 	}
1456 }
1457 
1458 /*
1459  * Pre-allocate/manage all memory and IO resources.  Since rman can't handle
1460  * duplicates, we merge any in the sysresource attach routine.
1461  */
1462 static int
acpi_sysres_alloc(device_t dev)1463 acpi_sysres_alloc(device_t dev)
1464 {
1465     struct acpi_softc *sc = device_get_softc(dev);
1466     struct resource *res;
1467     struct resource_list_entry *rle;
1468     struct rman *rm;
1469     device_t *children;
1470     int child_count, i;
1471 
1472     /*
1473      * Probe/attach any sysresource devices.  This would be unnecessary if we
1474      * had multi-pass probe/attach.
1475      */
1476     if (device_get_children(dev, &children, &child_count) != 0)
1477 	return (ENXIO);
1478     for (i = 0; i < child_count; i++) {
1479 	if (ACPI_ID_PROBE(dev, children[i], sysres_ids, NULL) <= 0)
1480 	    device_probe_and_attach(children[i]);
1481     }
1482     free(children, M_TEMP);
1483 
1484     STAILQ_FOREACH(rle, &sc->sysres_rl, link) {
1485 	if (rle->res != NULL) {
1486 	    device_printf(dev, "duplicate resource for %jx\n", rle->start);
1487 	    continue;
1488 	}
1489 
1490 	/* Only memory and IO resources are valid here. */
1491 	rm = acpi_get_rman(dev, rle->type, 0);
1492 	if (rm == NULL)
1493 	    continue;
1494 
1495 	/* Pre-allocate resource and add to our rman pool. */
1496 	res = bus_alloc_resource(dev, rle->type,
1497 	    &rle->rid, rle->start, rle->start + rle->count - 1, rle->count,
1498 	    RF_ACTIVE | RF_UNMAPPED);
1499 	if (res != NULL) {
1500 	    rman_manage_region(rm, rman_get_start(res), rman_get_end(res));
1501 	    rle->res = res;
1502 	} else if (bootverbose)
1503 	    device_printf(dev, "reservation of %jx, %jx (%d) failed\n",
1504 		rle->start, rle->count, rle->type);
1505     }
1506     return (0);
1507 }
1508 
1509 /*
1510  * Reserve declared resources for active devices found during the
1511  * namespace scan once the boot-time attach of devices has completed.
1512  *
1513  * Ideally reserving firmware-assigned resources would work in a
1514  * depth-first traversal of the device namespace, but this is
1515  * complicated.  In particular, not all resources are enumerated by
1516  * ACPI (e.g. PCI bridges and devices enumerate their resources via
1517  * other means).  Some systems also enumerate devices via ACPI behind
1518  * PCI bridges but without a matching a PCI device_t enumerated via
1519  * PCI bus scanning, the device_t's end up as direct children of
1520  * acpi0.  Doing this scan late is not ideal, but works for now.
1521  */
1522 static void
acpi_reserve_resources(device_t dev)1523 acpi_reserve_resources(device_t dev)
1524 {
1525     struct resource_list_entry *rle;
1526     struct resource_list *rl;
1527     struct acpi_device *ad;
1528     device_t *children;
1529     int child_count, i;
1530 
1531     if (device_get_children(dev, &children, &child_count) != 0)
1532 	return;
1533     for (i = 0; i < child_count; i++) {
1534 	ad = device_get_ivars(children[i]);
1535 	rl = &ad->ad_rl;
1536 
1537 	/* Don't reserve system resources. */
1538 	if (ACPI_ID_PROBE(dev, children[i], sysres_ids, NULL) <= 0)
1539 	    continue;
1540 
1541 	STAILQ_FOREACH(rle, rl, link) {
1542 	    /*
1543 	     * Don't reserve IRQ resources.  There are many sticky things
1544 	     * to get right otherwise (e.g. IRQs for psm, atkbd, and HPET
1545 	     * when using legacy routing).
1546 	     */
1547 	    if (rle->type == SYS_RES_IRQ)
1548 		continue;
1549 
1550 	    /*
1551 	     * Don't reserve the resource if it is already allocated.
1552 	     * The acpi_ec(4) driver can allocate its resources early
1553 	     * if ECDT is present.
1554 	     */
1555 	    if (rle->res != NULL)
1556 		continue;
1557 
1558 	    /*
1559 	     * Try to reserve the resource from our parent.  If this
1560 	     * fails because the resource is a system resource, just
1561 	     * let it be.  The resource range is already reserved so
1562 	     * that other devices will not use it.  If the driver
1563 	     * needs to allocate the resource, then
1564 	     * acpi_alloc_resource() will sub-alloc from the system
1565 	     * resource.
1566 	     */
1567 	    resource_list_reserve(rl, dev, children[i], rle->type, rle->rid,
1568 		rle->start, rle->end, rle->count, 0);
1569 	}
1570     }
1571     free(children, M_TEMP);
1572 }
1573 
1574 static int
acpi_set_resource(device_t dev,device_t child,int type,int rid,rman_res_t start,rman_res_t count)1575 acpi_set_resource(device_t dev, device_t child, int type, int rid,
1576     rman_res_t start, rman_res_t count)
1577 {
1578     struct acpi_device *ad = device_get_ivars(child);
1579     struct resource_list *rl = &ad->ad_rl;
1580     rman_res_t end;
1581 
1582 #ifdef INTRNG
1583     /* map with default for now */
1584     if (type == SYS_RES_IRQ)
1585 	start = (rman_res_t)acpi_map_intr(child, (u_int)start,
1586 			acpi_get_handle(child));
1587 #endif
1588 
1589     /* If the resource is already allocated, fail. */
1590     if (resource_list_busy(rl, type, rid))
1591 	return (EBUSY);
1592 
1593     /* If the resource is already reserved, release it. */
1594     if (resource_list_reserved(rl, type, rid))
1595 	resource_list_unreserve(rl, dev, child, type, rid);
1596 
1597     /* Add the resource. */
1598     end = (start + count - 1);
1599     resource_list_add(rl, type, rid, start, end, count);
1600     return (0);
1601 }
1602 
1603 static struct resource *
acpi_alloc_resource(device_t bus,device_t child,int type,int rid,rman_res_t start,rman_res_t end,rman_res_t count,u_int flags)1604 acpi_alloc_resource(device_t bus, device_t child, int type, int rid,
1605     rman_res_t start, rman_res_t end, rman_res_t count, u_int flags)
1606 {
1607 #ifndef INTRNG
1608     ACPI_RESOURCE ares;
1609 #endif
1610     struct acpi_device *ad;
1611     struct resource_list_entry *rle;
1612     struct resource_list *rl;
1613     struct resource *res;
1614     int isdefault = RMAN_IS_DEFAULT_RANGE(start, end);
1615 
1616     /*
1617      * First attempt at allocating the resource.  For direct children,
1618      * use resource_list_alloc() to handle reserved resources.  For
1619      * other devices, pass the request up to our parent.
1620      */
1621     if (bus == device_get_parent(child)) {
1622 	ad = device_get_ivars(child);
1623 	rl = &ad->ad_rl;
1624 
1625 	/*
1626 	 * Simulate the behavior of the ISA bus for direct children
1627 	 * devices.  That is, if a non-default range is specified for
1628 	 * a resource that doesn't exist, use bus_set_resource() to
1629 	 * add the resource before allocating it.  Note that these
1630 	 * resources will not be reserved.
1631 	 */
1632 	if (!isdefault && resource_list_find(rl, type, rid) == NULL)
1633 		resource_list_add(rl, type, rid, start, end, count);
1634 	res = resource_list_alloc(rl, bus, child, type, rid, start, end, count,
1635 	    flags);
1636 #ifndef INTRNG
1637 	if (res != NULL && type == SYS_RES_IRQ) {
1638 	    /*
1639 	     * Since bus_config_intr() takes immediate effect, we cannot
1640 	     * configure the interrupt associated with a device when we
1641 	     * parse the resources but have to defer it until a driver
1642 	     * actually allocates the interrupt via bus_alloc_resource().
1643 	     *
1644 	     * XXX: Should we handle the lookup failing?
1645 	     */
1646 	    if (ACPI_SUCCESS(acpi_lookup_irq_resource(child, rid, res, &ares)))
1647 		acpi_config_intr(child, &ares);
1648 	}
1649 #endif
1650 
1651 	/*
1652 	 * If this is an allocation of the "default" range for a given
1653 	 * RID, fetch the exact bounds for this resource from the
1654 	 * resource list entry to try to allocate the range from the
1655 	 * system resource regions.
1656 	 */
1657 	if (res == NULL && isdefault) {
1658 	    rle = resource_list_find(rl, type, rid);
1659 	    if (rle != NULL) {
1660 		start = rle->start;
1661 		end = rle->end;
1662 		count = rle->count;
1663 	    }
1664 	}
1665     } else
1666 	res = bus_generic_alloc_resource(bus, child, type, rid,
1667 	    start, end, count, flags);
1668 
1669     /*
1670      * If the first attempt failed and this is an allocation of a
1671      * specific range, try to satisfy the request via a suballocation
1672      * from our system resource regions.
1673      */
1674     if (res == NULL && start + count - 1 == end)
1675 	res = bus_generic_rman_alloc_resource(bus, child, type, rid, start, end,
1676 	    count, flags);
1677     return (res);
1678 }
1679 
1680 static bool
acpi_is_resource_managed(device_t bus,struct resource * r)1681 acpi_is_resource_managed(device_t bus, struct resource *r)
1682 {
1683 	struct rman *rm;
1684 
1685 	rm = acpi_get_rman(bus, rman_get_type(r), rman_get_flags(r));
1686 	if (rm == NULL)
1687 		return (false);
1688 	return (rman_is_region_manager(r, rm));
1689 }
1690 
1691 static struct resource *
acpi_managed_resource(device_t bus,struct resource * r)1692 acpi_managed_resource(device_t bus, struct resource *r)
1693 {
1694 	struct acpi_softc *sc = device_get_softc(bus);
1695 	struct resource_list_entry *rle;
1696 
1697 	KASSERT(acpi_is_resource_managed(bus, r),
1698 	    ("resource %p is not suballocated", r));
1699 
1700 	STAILQ_FOREACH(rle, &sc->sysres_rl, link) {
1701 		if (rle->type != rman_get_type(r) || rle->res == NULL)
1702 			continue;
1703 		if (rman_get_start(r) >= rman_get_start(rle->res) &&
1704 		    rman_get_end(r) <= rman_get_end(rle->res))
1705 			return (rle->res);
1706 	}
1707 	return (NULL);
1708 }
1709 
1710 static int
acpi_adjust_resource(device_t bus,device_t child,struct resource * r,rman_res_t start,rman_res_t end)1711 acpi_adjust_resource(device_t bus, device_t child, struct resource *r,
1712     rman_res_t start, rman_res_t end)
1713 {
1714 
1715     if (acpi_is_resource_managed(bus, r))
1716 	return (rman_adjust_resource(r, start, end));
1717     return (bus_generic_adjust_resource(bus, child, r, start, end));
1718 }
1719 
1720 static int
acpi_release_resource(device_t bus,device_t child,struct resource * r)1721 acpi_release_resource(device_t bus, device_t child, struct resource *r)
1722 {
1723     /*
1724      * If this resource belongs to one of our internal managers,
1725      * deactivate it and release it to the local pool.
1726      */
1727     if (acpi_is_resource_managed(bus, r))
1728 	return (bus_generic_rman_release_resource(bus, child, r));
1729 
1730     return (bus_generic_rl_release_resource(bus, child, r));
1731 }
1732 
1733 static void
acpi_delete_resource(device_t bus,device_t child,int type,int rid)1734 acpi_delete_resource(device_t bus, device_t child, int type, int rid)
1735 {
1736     struct resource_list *rl;
1737 
1738     rl = acpi_get_rlist(bus, child);
1739     if (resource_list_busy(rl, type, rid)) {
1740 	device_printf(bus, "delete_resource: Resource still owned by child"
1741 	    " (type=%d, rid=%d)\n", type, rid);
1742 	return;
1743     }
1744     if (resource_list_reserved(rl, type, rid))
1745 	resource_list_unreserve(rl, bus, child, type, rid);
1746     resource_list_delete(rl, type, rid);
1747 }
1748 
1749 static int
acpi_activate_resource(device_t bus,device_t child,struct resource * r)1750 acpi_activate_resource(device_t bus, device_t child, struct resource *r)
1751 {
1752 	if (acpi_is_resource_managed(bus, r))
1753 		return (bus_generic_rman_activate_resource(bus, child, r));
1754 	return (bus_generic_activate_resource(bus, child, r));
1755 }
1756 
1757 static int
acpi_deactivate_resource(device_t bus,device_t child,struct resource * r)1758 acpi_deactivate_resource(device_t bus, device_t child, struct resource *r)
1759 {
1760 	if (acpi_is_resource_managed(bus, r))
1761 		return (bus_generic_rman_deactivate_resource(bus, child, r));
1762 	return (bus_generic_deactivate_resource(bus, child, r));
1763 }
1764 
1765 static int
acpi_map_resource(device_t bus,device_t child,struct resource * r,struct resource_map_request * argsp,struct resource_map * map)1766 acpi_map_resource(device_t bus, device_t child, struct resource *r,
1767     struct resource_map_request *argsp, struct resource_map *map)
1768 {
1769 	struct resource_map_request args;
1770 	struct resource *sysres;
1771 	rman_res_t length, start;
1772 	int error;
1773 
1774 	if (!acpi_is_resource_managed(bus, r))
1775 		return (bus_generic_map_resource(bus, child, r, argsp, map));
1776 
1777 	/* Resources must be active to be mapped. */
1778 	if (!(rman_get_flags(r) & RF_ACTIVE))
1779 		return (ENXIO);
1780 
1781 	resource_init_map_request(&args);
1782 	error = resource_validate_map_request(r, argsp, &args, &start, &length);
1783 	if (error)
1784 		return (error);
1785 
1786 	sysres = acpi_managed_resource(bus, r);
1787 	if (sysres == NULL)
1788 		return (ENOENT);
1789 
1790 	args.offset = start - rman_get_start(sysres);
1791 	args.length = length;
1792 	return (bus_map_resource(bus, sysres, &args, map));
1793 }
1794 
1795 static int
acpi_unmap_resource(device_t bus,device_t child,struct resource * r,struct resource_map * map)1796 acpi_unmap_resource(device_t bus, device_t child, struct resource *r,
1797     struct resource_map *map)
1798 {
1799 	struct resource *sysres;
1800 
1801 	if (!acpi_is_resource_managed(bus, r))
1802 		return (bus_generic_unmap_resource(bus, child, r, map));
1803 
1804 	sysres = acpi_managed_resource(bus, r);
1805 	if (sysres == NULL)
1806 		return (ENOENT);
1807 	return (bus_unmap_resource(bus, sysres, map));
1808 }
1809 
1810 /* Allocate an IO port or memory resource, given its GAS. */
1811 int
acpi_bus_alloc_gas(device_t dev,int * type,int rid,ACPI_GENERIC_ADDRESS * gas,struct resource ** res,u_int flags)1812 acpi_bus_alloc_gas(device_t dev, int *type, int rid, ACPI_GENERIC_ADDRESS *gas,
1813     struct resource **res, u_int flags)
1814 {
1815     int error, res_type;
1816 
1817     error = ENOMEM;
1818     if (type == NULL || gas == NULL || res == NULL)
1819 	return (EINVAL);
1820 
1821     /* We only support memory and IO spaces. */
1822     switch (gas->SpaceId) {
1823     case ACPI_ADR_SPACE_SYSTEM_MEMORY:
1824 	res_type = SYS_RES_MEMORY;
1825 	break;
1826     case ACPI_ADR_SPACE_SYSTEM_IO:
1827 	res_type = SYS_RES_IOPORT;
1828 	break;
1829     default:
1830 	return (EOPNOTSUPP);
1831     }
1832 
1833     /*
1834      * If the register width is less than 8, assume the BIOS author means
1835      * it is a bit field and just allocate a byte.
1836      */
1837     if (gas->BitWidth && gas->BitWidth < 8)
1838 	gas->BitWidth = 8;
1839 
1840     /* Validate the address after we're sure we support the space. */
1841     if (gas->Address == 0 || gas->BitWidth == 0)
1842 	return (EINVAL);
1843 
1844     bus_set_resource(dev, res_type, rid, gas->Address,
1845 	gas->BitWidth / 8);
1846     *res = bus_alloc_resource_any(dev, res_type, rid, RF_ACTIVE | flags);
1847     if (*res != NULL) {
1848 	*type = res_type;
1849 	error = 0;
1850     } else
1851 	bus_delete_resource(dev, res_type, rid);
1852 
1853     return (error);
1854 }
1855 
1856 /* Probe _HID and _CID for compatible ISA PNP ids. */
1857 static uint32_t
acpi_isa_get_logicalid(device_t dev)1858 acpi_isa_get_logicalid(device_t dev)
1859 {
1860     ACPI_DEVICE_INFO	*devinfo;
1861     ACPI_HANDLE		h;
1862     uint32_t		pnpid;
1863 
1864     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
1865 
1866     /* Fetch and validate the HID. */
1867     if ((h = acpi_get_handle(dev)) == NULL ||
1868 	ACPI_FAILURE(AcpiGetObjectInfo(h, &devinfo)))
1869 	return_VALUE (0);
1870 
1871     pnpid = (devinfo->Valid & ACPI_VALID_HID) != 0 &&
1872 	devinfo->HardwareId.Length >= ACPI_EISAID_STRING_SIZE ?
1873 	PNP_EISAID(devinfo->HardwareId.String) : 0;
1874     AcpiOsFree(devinfo);
1875 
1876     return_VALUE (pnpid);
1877 }
1878 
1879 static int
acpi_isa_get_compatid(device_t dev,uint32_t * cids,int count)1880 acpi_isa_get_compatid(device_t dev, uint32_t *cids, int count)
1881 {
1882     ACPI_DEVICE_INFO	*devinfo;
1883     ACPI_PNP_DEVICE_ID	*ids;
1884     ACPI_HANDLE		h;
1885     uint32_t		*pnpid;
1886     int			i, valid;
1887 
1888     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
1889 
1890     pnpid = cids;
1891 
1892     /* Fetch and validate the CID */
1893     if ((h = acpi_get_handle(dev)) == NULL ||
1894 	ACPI_FAILURE(AcpiGetObjectInfo(h, &devinfo)))
1895 	return_VALUE (0);
1896 
1897     if ((devinfo->Valid & ACPI_VALID_CID) == 0) {
1898 	AcpiOsFree(devinfo);
1899 	return_VALUE (0);
1900     }
1901 
1902     if (devinfo->CompatibleIdList.Count < count)
1903 	count = devinfo->CompatibleIdList.Count;
1904     ids = devinfo->CompatibleIdList.Ids;
1905     for (i = 0, valid = 0; i < count; i++)
1906 	if (ids[i].Length >= ACPI_EISAID_STRING_SIZE &&
1907 	    strncmp(ids[i].String, "PNP", 3) == 0) {
1908 	    *pnpid++ = PNP_EISAID(ids[i].String);
1909 	    valid++;
1910 	}
1911     AcpiOsFree(devinfo);
1912 
1913     return_VALUE (valid);
1914 }
1915 
1916 static int
acpi_device_id_probe(device_t bus,device_t dev,char ** ids,char ** match)1917 acpi_device_id_probe(device_t bus, device_t dev, char **ids, char **match)
1918 {
1919     ACPI_HANDLE h;
1920     ACPI_OBJECT_TYPE t;
1921     int rv;
1922     int i;
1923 
1924     h = acpi_get_handle(dev);
1925     if (ids == NULL || h == NULL)
1926 	return (ENXIO);
1927     t = acpi_get_type(dev);
1928     if (t != ACPI_TYPE_DEVICE && t != ACPI_TYPE_PROCESSOR)
1929 	return (ENXIO);
1930 
1931     /* Try to match one of the array of IDs with a HID or CID. */
1932     for (i = 0; ids[i] != NULL; i++) {
1933 	rv = acpi_MatchHid(h, ids[i]);
1934 	if (rv == ACPI_MATCHHID_NOMATCH)
1935 	    continue;
1936 
1937 	if (match != NULL) {
1938 	    *match = ids[i];
1939 	}
1940 	return ((rv == ACPI_MATCHHID_HID)?
1941 		    BUS_PROBE_DEFAULT : BUS_PROBE_LOW_PRIORITY);
1942     }
1943     return (ENXIO);
1944 }
1945 
1946 static ACPI_STATUS
acpi_device_eval_obj(device_t bus,device_t dev,ACPI_STRING pathname,ACPI_OBJECT_LIST * parameters,ACPI_BUFFER * ret)1947 acpi_device_eval_obj(device_t bus, device_t dev, ACPI_STRING pathname,
1948     ACPI_OBJECT_LIST *parameters, ACPI_BUFFER *ret)
1949 {
1950     ACPI_HANDLE h;
1951 
1952     if (dev == NULL)
1953 	h = ACPI_ROOT_OBJECT;
1954     else if ((h = acpi_get_handle(dev)) == NULL)
1955 	return (AE_BAD_PARAMETER);
1956     return (AcpiEvaluateObject(h, pathname, parameters, ret));
1957 }
1958 
1959 static ACPI_STATUS
acpi_device_get_prop(device_t bus,device_t dev,ACPI_STRING propname,const ACPI_OBJECT ** value)1960 acpi_device_get_prop(device_t bus, device_t dev, ACPI_STRING propname,
1961     const ACPI_OBJECT **value)
1962 {
1963 	const ACPI_OBJECT *pkg, *name, *val;
1964 	struct acpi_device *ad;
1965 	ACPI_STATUS status;
1966 	int i;
1967 
1968 	ad = device_get_ivars(dev);
1969 
1970 	if (ad == NULL || propname == NULL)
1971 		return (AE_BAD_PARAMETER);
1972 	if (ad->dsd_pkg == NULL) {
1973 		if (ad->dsd.Pointer == NULL) {
1974 			status = acpi_find_dsd(ad);
1975 			if (ACPI_FAILURE(status))
1976 				return (status);
1977 		} else {
1978 			return (AE_NOT_FOUND);
1979 		}
1980 	}
1981 
1982 	for (i = 0; i < ad->dsd_pkg->Package.Count; i ++) {
1983 		pkg = &ad->dsd_pkg->Package.Elements[i];
1984 		if (pkg->Type != ACPI_TYPE_PACKAGE || pkg->Package.Count != 2)
1985 			continue;
1986 
1987 		name = &pkg->Package.Elements[0];
1988 		val = &pkg->Package.Elements[1];
1989 		if (name->Type != ACPI_TYPE_STRING)
1990 			continue;
1991 		if (strncmp(propname, name->String.Pointer, name->String.Length) == 0) {
1992 			if (value != NULL)
1993 				*value = val;
1994 
1995 			return (AE_OK);
1996 		}
1997 	}
1998 
1999 	return (AE_NOT_FOUND);
2000 }
2001 
2002 static ACPI_STATUS
acpi_find_dsd(struct acpi_device * ad)2003 acpi_find_dsd(struct acpi_device *ad)
2004 {
2005 	const ACPI_OBJECT *dsd, *guid, *pkg;
2006 	ACPI_STATUS status;
2007 
2008 	ad->dsd.Length = ACPI_ALLOCATE_BUFFER;
2009 	ad->dsd.Pointer = NULL;
2010 	ad->dsd_pkg = NULL;
2011 
2012 	status = AcpiEvaluateObject(ad->ad_handle, "_DSD", NULL, &ad->dsd);
2013 	if (ACPI_FAILURE(status))
2014 		return (status);
2015 
2016 	dsd = ad->dsd.Pointer;
2017 	guid = &dsd->Package.Elements[0];
2018 	pkg = &dsd->Package.Elements[1];
2019 
2020 	if (guid->Type != ACPI_TYPE_BUFFER || pkg->Type != ACPI_TYPE_PACKAGE ||
2021 		guid->Buffer.Length != sizeof(acpi_dsd_uuid))
2022 		return (AE_NOT_FOUND);
2023 	if (memcmp(guid->Buffer.Pointer, &acpi_dsd_uuid,
2024 		sizeof(acpi_dsd_uuid)) == 0) {
2025 
2026 		ad->dsd_pkg = pkg;
2027 		return (AE_OK);
2028 	}
2029 
2030 	return (AE_NOT_FOUND);
2031 }
2032 
2033 static ssize_t
acpi_bus_get_prop_handle(const ACPI_OBJECT * hobj,void * propvalue,size_t size)2034 acpi_bus_get_prop_handle(const ACPI_OBJECT *hobj, void *propvalue, size_t size)
2035 {
2036 	ACPI_OBJECT *pobj;
2037 	ACPI_HANDLE h;
2038 
2039 	if (hobj->Type != ACPI_TYPE_PACKAGE)
2040 		goto err;
2041 	if (hobj->Package.Count != 1)
2042 		goto err;
2043 
2044 	pobj = &hobj->Package.Elements[0];
2045 	if (pobj == NULL)
2046 		goto err;
2047 	if (pobj->Type != ACPI_TYPE_LOCAL_REFERENCE)
2048 		goto err;
2049 
2050 	h = acpi_GetReference(NULL, pobj);
2051 	if (h == NULL)
2052 		goto err;
2053 
2054 	if (propvalue != NULL && size >= sizeof(ACPI_HANDLE))
2055 		*(ACPI_HANDLE *)propvalue = h;
2056 	return (sizeof(ACPI_HANDLE));
2057 
2058 err:
2059 	return (-1);
2060 }
2061 
2062 static ssize_t
acpi_bus_get_prop(device_t bus,device_t child,const char * propname,void * propvalue,size_t size,device_property_type_t type)2063 acpi_bus_get_prop(device_t bus, device_t child, const char *propname,
2064     void *propvalue, size_t size, device_property_type_t type)
2065 {
2066 	ACPI_STATUS status;
2067 	const ACPI_OBJECT *obj;
2068 
2069 	status = acpi_device_get_prop(bus, child, __DECONST(char *, propname),
2070 		&obj);
2071 	if (ACPI_FAILURE(status))
2072 		return (-1);
2073 
2074 	switch (type) {
2075 	case DEVICE_PROP_ANY:
2076 	case DEVICE_PROP_BUFFER:
2077 	case DEVICE_PROP_UINT32:
2078 	case DEVICE_PROP_UINT64:
2079 		break;
2080 	case DEVICE_PROP_HANDLE:
2081 		return (acpi_bus_get_prop_handle(obj, propvalue, size));
2082 	default:
2083 		return (-1);
2084 	}
2085 
2086 	switch (obj->Type) {
2087 	case ACPI_TYPE_INTEGER:
2088 		if (type == DEVICE_PROP_UINT32) {
2089 			if (propvalue != NULL && size >= sizeof(uint32_t))
2090 				*((uint32_t *)propvalue) = obj->Integer.Value;
2091 			return (sizeof(uint32_t));
2092 		}
2093 		if (propvalue != NULL && size >= sizeof(uint64_t))
2094 			*((uint64_t *) propvalue) = obj->Integer.Value;
2095 		return (sizeof(uint64_t));
2096 
2097 	case ACPI_TYPE_STRING:
2098 		if (type != DEVICE_PROP_ANY &&
2099 		    type != DEVICE_PROP_BUFFER)
2100 			return (-1);
2101 
2102 		if (propvalue != NULL && size > 0)
2103 			memcpy(propvalue, obj->String.Pointer,
2104 			    MIN(size, obj->String.Length));
2105 		return (obj->String.Length);
2106 
2107 	case ACPI_TYPE_BUFFER:
2108 		if (propvalue != NULL && size > 0)
2109 			memcpy(propvalue, obj->Buffer.Pointer,
2110 			    MIN(size, obj->Buffer.Length));
2111 		return (obj->Buffer.Length);
2112 
2113 	case ACPI_TYPE_PACKAGE:
2114 		if (propvalue != NULL && size >= sizeof(ACPI_OBJECT *)) {
2115 			*((ACPI_OBJECT **) propvalue) =
2116 			    __DECONST(ACPI_OBJECT *, obj);
2117 		}
2118 		return (sizeof(ACPI_OBJECT *));
2119 
2120 	case ACPI_TYPE_LOCAL_REFERENCE:
2121 		if (propvalue != NULL && size >= sizeof(ACPI_HANDLE)) {
2122 			ACPI_HANDLE h;
2123 
2124 			h = acpi_GetReference(NULL,
2125 			    __DECONST(ACPI_OBJECT *, obj));
2126 			memcpy(propvalue, h, sizeof(ACPI_HANDLE));
2127 		}
2128 		return (sizeof(ACPI_HANDLE));
2129 	default:
2130 		return (0);
2131 	}
2132 }
2133 
2134 int
acpi_device_pwr_for_sleep(device_t bus,device_t dev,int * dstate)2135 acpi_device_pwr_for_sleep(device_t bus, device_t dev, int *dstate)
2136 {
2137     struct acpi_softc *sc;
2138     ACPI_HANDLE handle;
2139     ACPI_STATUS status;
2140     char sxd[8];
2141 
2142     handle = acpi_get_handle(dev);
2143 
2144     /*
2145      * XXX If we find these devices, don't try to power them down.
2146      * The serial and IRDA ports on my T23 hang the system when
2147      * set to D3 and it appears that such legacy devices may
2148      * need special handling in their drivers.
2149      */
2150     if (dstate == NULL || handle == NULL ||
2151 	acpi_MatchHid(handle, "PNP0500") ||
2152 	acpi_MatchHid(handle, "PNP0501") ||
2153 	acpi_MatchHid(handle, "PNP0502") ||
2154 	acpi_MatchHid(handle, "PNP0510") ||
2155 	acpi_MatchHid(handle, "PNP0511"))
2156 	return (ENXIO);
2157 
2158     /*
2159      * Override next state with the value from _SxD, if present.
2160      * Note illegal _S0D is evaluated because some systems expect this.
2161      */
2162     sc = device_get_softc(bus);
2163     snprintf(sxd, sizeof(sxd), "_S%dD", acpi_stype_to_sstate(sc, sc->acpi_stype));
2164     status = acpi_GetInteger(handle, sxd, dstate);
2165     if (ACPI_FAILURE(status) && status != AE_NOT_FOUND) {
2166 	    device_printf(dev, "failed to get %s on %s: %s\n", sxd,
2167 		acpi_name(handle), AcpiFormatException(status));
2168 	    return (ENXIO);
2169     }
2170 
2171     return (0);
2172 }
2173 
2174 /* Callback arg for our implementation of walking the namespace. */
2175 struct acpi_device_scan_ctx {
2176     acpi_scan_cb_t	user_fn;
2177     void		*arg;
2178     ACPI_HANDLE		parent;
2179 };
2180 
2181 static ACPI_STATUS
acpi_device_scan_cb(ACPI_HANDLE h,UINT32 level,void * arg,void ** retval)2182 acpi_device_scan_cb(ACPI_HANDLE h, UINT32 level, void *arg, void **retval)
2183 {
2184     struct acpi_device_scan_ctx *ctx;
2185     device_t dev, old_dev;
2186     ACPI_STATUS status;
2187     ACPI_OBJECT_TYPE type;
2188 
2189     /*
2190      * Skip this device if we think we'll have trouble with it or it is
2191      * the parent where the scan began.
2192      */
2193     ctx = (struct acpi_device_scan_ctx *)arg;
2194     if (acpi_avoid(h) || h == ctx->parent)
2195 	return (AE_OK);
2196 
2197     /* If this is not a valid device type (e.g., a method), skip it. */
2198     if (ACPI_FAILURE(AcpiGetType(h, &type)))
2199 	return (AE_OK);
2200     if (type != ACPI_TYPE_DEVICE && type != ACPI_TYPE_PROCESSOR &&
2201 	type != ACPI_TYPE_THERMAL && type != ACPI_TYPE_POWER)
2202 	return (AE_OK);
2203 
2204     /*
2205      * Call the user function with the current device.  If it is unchanged
2206      * afterwards, return.  Otherwise, we update the handle to the new dev.
2207      */
2208     old_dev = acpi_get_device(h);
2209     dev = old_dev;
2210     status = ctx->user_fn(h, &dev, level, ctx->arg);
2211     if (ACPI_FAILURE(status) || old_dev == dev)
2212 	return (status);
2213 
2214     /* Remove the old child and its connection to the handle. */
2215     if (old_dev != NULL)
2216 	device_delete_child(device_get_parent(old_dev), old_dev);
2217 
2218     /* Recreate the handle association if the user created a device. */
2219     if (dev != NULL)
2220 	AcpiAttachData(h, acpi_fake_objhandler, dev);
2221 
2222     return (AE_OK);
2223 }
2224 
2225 static ACPI_STATUS
acpi_device_scan_children(device_t bus,device_t dev,int max_depth,acpi_scan_cb_t user_fn,void * arg)2226 acpi_device_scan_children(device_t bus, device_t dev, int max_depth,
2227     acpi_scan_cb_t user_fn, void *arg)
2228 {
2229     ACPI_HANDLE h;
2230     struct acpi_device_scan_ctx ctx;
2231 
2232     if (acpi_disabled("children"))
2233 	return (AE_OK);
2234 
2235     if (dev == NULL)
2236 	h = ACPI_ROOT_OBJECT;
2237     else if ((h = acpi_get_handle(dev)) == NULL)
2238 	return (AE_BAD_PARAMETER);
2239     ctx.user_fn = user_fn;
2240     ctx.arg = arg;
2241     ctx.parent = h;
2242     return (AcpiWalkNamespace(ACPI_TYPE_ANY, h, max_depth,
2243 	acpi_device_scan_cb, NULL, &ctx, NULL));
2244 }
2245 
2246 /*
2247  * Even though ACPI devices are not PCI, we use the PCI approach for setting
2248  * device power states since it's close enough to ACPI.
2249  */
2250 int
acpi_set_powerstate(device_t child,int state)2251 acpi_set_powerstate(device_t child, int state)
2252 {
2253     ACPI_HANDLE h;
2254     ACPI_STATUS status;
2255 
2256     h = acpi_get_handle(child);
2257     if (state < ACPI_STATE_D0 || state > ACPI_D_STATES_MAX)
2258 	return (EINVAL);
2259     if (h == NULL)
2260 	return (0);
2261 
2262     /* Ignore errors if the power methods aren't present. */
2263     status = acpi_pwr_switch_consumer(h, state);
2264     if (ACPI_SUCCESS(status)) {
2265 	if (bootverbose)
2266 	    device_printf(child, "set ACPI power state %s on %s\n",
2267 		acpi_d_state_to_str(state), acpi_name(h));
2268     } else if (status != AE_NOT_FOUND)
2269 	device_printf(child,
2270 	    "failed to set ACPI power state %s on %s: %s\n",
2271 	    acpi_d_state_to_str(state), acpi_name(h),
2272 	    AcpiFormatException(status));
2273 
2274     return (0);
2275 }
2276 
2277 static int
acpi_isa_pnp_probe(device_t bus,device_t child,struct isa_pnp_id * ids)2278 acpi_isa_pnp_probe(device_t bus, device_t child, struct isa_pnp_id *ids)
2279 {
2280     int			result, cid_count, i;
2281     uint32_t		lid, cids[8];
2282 
2283     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
2284 
2285     /*
2286      * ISA-style drivers attached to ACPI may persist and
2287      * probe manually if we return ENOENT.  We never want
2288      * that to happen, so don't ever return it.
2289      */
2290     result = ENXIO;
2291 
2292     /* Scan the supplied IDs for a match */
2293     lid = acpi_isa_get_logicalid(child);
2294     cid_count = acpi_isa_get_compatid(child, cids, 8);
2295     while (ids && ids->ip_id) {
2296 	if (lid == ids->ip_id) {
2297 	    result = 0;
2298 	    goto out;
2299 	}
2300 	for (i = 0; i < cid_count; i++) {
2301 	    if (cids[i] == ids->ip_id) {
2302 		result = 0;
2303 		goto out;
2304 	    }
2305 	}
2306 	ids++;
2307     }
2308 
2309  out:
2310     if (result == 0 && ids->ip_desc)
2311 	device_set_desc(child, ids->ip_desc);
2312 
2313     return_VALUE (result);
2314 }
2315 
2316 /*
2317  * Look for a MCFG table.  If it is present, use the settings for
2318  * domain (segment) 0 to setup PCI config space access via the memory
2319  * map.
2320  *
2321  * On non-x86 architectures (arm64 for now), this will be done from the
2322  * PCI host bridge driver.
2323  */
2324 static void
acpi_enable_pcie(void)2325 acpi_enable_pcie(void)
2326 {
2327 #if defined(__i386__) || defined(__amd64__)
2328 	ACPI_TABLE_HEADER *hdr;
2329 	ACPI_MCFG_ALLOCATION *alloc, *end;
2330 	ACPI_STATUS status;
2331 
2332 	status = AcpiGetTable(ACPI_SIG_MCFG, 1, &hdr);
2333 	if (ACPI_FAILURE(status))
2334 		return;
2335 
2336 	end = (ACPI_MCFG_ALLOCATION *)((char *)hdr + hdr->Length);
2337 	alloc = (ACPI_MCFG_ALLOCATION *)((ACPI_TABLE_MCFG *)hdr + 1);
2338 	while (alloc < end) {
2339 		pcie_cfgregopen(alloc->Address, alloc->PciSegment,
2340 		    alloc->StartBusNumber, alloc->EndBusNumber);
2341 		alloc++;
2342 	}
2343 #endif
2344 }
2345 
2346 static void
acpi_platform_osc(device_t dev)2347 acpi_platform_osc(device_t dev)
2348 {
2349 	ACPI_HANDLE sb_handle;
2350 	ACPI_STATUS status;
2351 	uint32_t cap_set[2];
2352 
2353 	/* 0811B06E-4A27-44F9-8D60-3CBBC22E7B48 */
2354 	static uint8_t acpi_platform_uuid[ACPI_UUID_LENGTH] = {
2355 		0x6e, 0xb0, 0x11, 0x08, 0x27, 0x4a, 0xf9, 0x44,
2356 		0x8d, 0x60, 0x3c, 0xbb, 0xc2, 0x2e, 0x7b, 0x48
2357 	};
2358 
2359 	if (ACPI_FAILURE(AcpiGetHandle(ACPI_ROOT_OBJECT, "\\_SB_", &sb_handle)))
2360 		return;
2361 
2362 	cap_set[1] = 0x10;	/* APEI Support */
2363 	status = acpi_EvaluateOSC(sb_handle, acpi_platform_uuid, 1,
2364 	    nitems(cap_set), cap_set, cap_set, false);
2365 	if (ACPI_FAILURE(status)) {
2366 		if (status == AE_NOT_FOUND)
2367 			return;
2368 		device_printf(dev, "_OSC failed: %s\n",
2369 		    AcpiFormatException(status));
2370 		return;
2371 	}
2372 }
2373 
2374 /*
2375  * Scan all of the ACPI namespace and attach child devices.
2376  *
2377  * We should only expect to find devices in the \_PR, \_TZ, \_SI, and
2378  * \_SB scopes, and \_PR and \_TZ became obsolete in the ACPI 2.0 spec.
2379  * However, in violation of the spec, some systems place their PCI link
2380  * devices in \, so we have to walk the whole namespace.  We check the
2381  * type of namespace nodes, so this should be ok.
2382  */
2383 static void
acpi_probe_children(device_t bus)2384 acpi_probe_children(device_t bus)
2385 {
2386 
2387     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
2388 
2389     /*
2390      * Scan the namespace and insert placeholders for all the devices that
2391      * we find.  We also probe/attach any early devices.
2392      *
2393      * Note that we use AcpiWalkNamespace rather than AcpiGetDevices because
2394      * we want to create nodes for all devices, not just those that are
2395      * currently present. (This assumes that we don't want to create/remove
2396      * devices as they appear, which might be smarter.)
2397      */
2398     ACPI_DEBUG_PRINT((ACPI_DB_OBJECTS, "namespace scan\n"));
2399     AcpiWalkNamespace(ACPI_TYPE_ANY, ACPI_ROOT_OBJECT, 100, acpi_probe_child,
2400 	NULL, bus, NULL);
2401 
2402     /* Pre-allocate resources for our rman from any sysresource devices. */
2403     acpi_sysres_alloc(bus);
2404 
2405     /* Create any static children by calling device identify methods. */
2406     ACPI_DEBUG_PRINT((ACPI_DB_OBJECTS, "device identify routines\n"));
2407     bus_identify_children(bus);
2408 
2409     /* Probe/attach all children, created statically and from the namespace. */
2410     ACPI_DEBUG_PRINT((ACPI_DB_OBJECTS, "acpi bus_attach_children\n"));
2411     bus_attach_children(bus);
2412 
2413     /*
2414      * Reserve resources allocated to children but not yet allocated
2415      * by a driver.
2416      */
2417     acpi_reserve_resources(bus);
2418 
2419     /* Attach wake sysctls. */
2420     acpi_wake_sysctl_walk(bus);
2421 
2422     ACPI_DEBUG_PRINT((ACPI_DB_OBJECTS, "done attaching children\n"));
2423     return_VOID;
2424 }
2425 
2426 /*
2427  * Determine the probe order for a given device.
2428  */
2429 static void
acpi_probe_order(ACPI_HANDLE handle,int * order)2430 acpi_probe_order(ACPI_HANDLE handle, int *order)
2431 {
2432 	ACPI_OBJECT_TYPE type;
2433 
2434 	/*
2435 	 * 0. CPUs
2436 	 * 1. I/O port and memory system resource holders
2437 	 * 2. Clocks and timers (to handle early accesses)
2438 	 * 3. Embedded controllers (to handle early accesses)
2439 	 * 4. PCI Link Devices
2440 	 */
2441 	AcpiGetType(handle, &type);
2442 	if (type == ACPI_TYPE_PROCESSOR)
2443 		*order = 0;
2444 	else if (acpi_MatchHid(handle, "PNP0C01") ||
2445 	    acpi_MatchHid(handle, "PNP0C02"))
2446 		*order = 1;
2447 	else if (acpi_MatchHid(handle, "PNP0100") ||
2448 	    acpi_MatchHid(handle, "PNP0103") ||
2449 	    acpi_MatchHid(handle, "PNP0B00"))
2450 		*order = 2;
2451 	else if (acpi_MatchHid(handle, "PNP0C09"))
2452 		*order = 3;
2453 	else if (acpi_MatchHid(handle, "PNP0C0F"))
2454 		*order = 4;
2455 }
2456 
2457 /*
2458  * Evaluate a child device and determine whether we might attach a device to
2459  * it.
2460  */
2461 static ACPI_STATUS
acpi_probe_child(ACPI_HANDLE handle,UINT32 level,void * context,void ** status)2462 acpi_probe_child(ACPI_HANDLE handle, UINT32 level, void *context, void **status)
2463 {
2464     ACPI_DEVICE_INFO *devinfo;
2465     struct acpi_device	*ad;
2466     struct acpi_prw_data prw;
2467     ACPI_OBJECT_TYPE type;
2468     ACPI_HANDLE h;
2469     device_t bus, child;
2470     char *handle_str;
2471     int d, order;
2472 
2473     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
2474 
2475     if (acpi_disabled("children"))
2476 	return_ACPI_STATUS (AE_OK);
2477 
2478     /* Skip this device if we think we'll have trouble with it. */
2479     if (acpi_avoid(handle))
2480 	return_ACPI_STATUS (AE_OK);
2481 
2482     bus = (device_t)context;
2483     if (ACPI_SUCCESS(AcpiGetType(handle, &type))) {
2484 	handle_str = acpi_name(handle);
2485 	switch (type) {
2486 	case ACPI_TYPE_DEVICE:
2487 	    /*
2488 	     * Since we scan from \, be sure to skip system scope objects.
2489 	     * \_SB_ and \_TZ_ are defined in ACPICA as devices to work around
2490 	     * BIOS bugs.  For example, \_SB_ is to allow \_SB_._INI to be run
2491 	     * during the initialization and \_TZ_ is to support Notify() on it.
2492 	     */
2493 	    if (strcmp(handle_str, "\\_SB_") == 0 ||
2494 		strcmp(handle_str, "\\_TZ_") == 0)
2495 		break;
2496 	    if (acpi_parse_prw(handle, &prw) == 0)
2497 		AcpiSetupGpeForWake(handle, prw.gpe_handle, prw.gpe_bit);
2498 
2499 	    /*
2500 	     * Ignore devices that do not have a _HID or _CID.  They should
2501 	     * be discovered by other buses (e.g. the PCI bus driver).
2502 	     */
2503 	    if (!acpi_has_hid(handle))
2504 		break;
2505 	    /* FALLTHROUGH */
2506 	case ACPI_TYPE_PROCESSOR:
2507 	case ACPI_TYPE_THERMAL:
2508 	case ACPI_TYPE_POWER:
2509 	    /*
2510 	     * Create a placeholder device for this node.  Sort the
2511 	     * placeholder so that the probe/attach passes will run
2512 	     * breadth-first.  Orders less than ACPI_DEV_BASE_ORDER
2513 	     * are reserved for special objects (i.e., system
2514 	     * resources).
2515 	     */
2516 	    ACPI_DEBUG_PRINT((ACPI_DB_OBJECTS, "scanning '%s'\n", handle_str));
2517 	    order = level * 10 + ACPI_DEV_BASE_ORDER;
2518 	    acpi_probe_order(handle, &order);
2519 	    child = BUS_ADD_CHILD(bus, order, NULL, DEVICE_UNIT_ANY);
2520 	    if (child == NULL)
2521 		break;
2522 
2523 	    /* Associate the handle with the device_t and vice versa. */
2524 	    acpi_set_handle(child, handle);
2525 	    AcpiAttachData(handle, acpi_fake_objhandler, child);
2526 
2527 	    /*
2528 	     * Check that the device is present.  If it's not present,
2529 	     * leave it disabled (so that we have a device_t attached to
2530 	     * the handle, but we don't probe it).
2531 	     *
2532 	     * XXX PCI link devices sometimes report "present" but not
2533 	     * "functional" (i.e. if disabled).  Go ahead and probe them
2534 	     * anyway since we may enable them later.
2535 	     */
2536 	    if (type == ACPI_TYPE_DEVICE && !acpi_DeviceIsPresent(child)) {
2537 		/* Never disable PCI link devices. */
2538 		if (acpi_MatchHid(handle, "PNP0C0F"))
2539 		    break;
2540 
2541 		/*
2542 		 * RTC Device should be enabled for CMOS register space
2543 		 * unless FADT indicate it is not present.
2544 		 * (checked in RTC probe routine.)
2545 		 */
2546 		if (acpi_MatchHid(handle, "PNP0B00"))
2547 		    break;
2548 
2549 		/*
2550 		 * Docking stations should remain enabled since the system
2551 		 * may be undocked at boot.
2552 		 */
2553 		if (ACPI_SUCCESS(AcpiGetHandle(handle, "_DCK", &h)))
2554 		    break;
2555 
2556 		device_disable(child);
2557 		break;
2558 	    }
2559 
2560 	    /*
2561 	     * Get the device's resource settings and attach them.
2562 	     * Note that if the device has _PRS but no _CRS, we need
2563 	     * to decide when it's appropriate to try to configure the
2564 	     * device.  Ignore the return value here; it's OK for the
2565 	     * device not to have any resources.
2566 	     */
2567 	    acpi_parse_resources(child, handle, &acpi_res_parse_set, NULL);
2568 
2569 	    ad = device_get_ivars(child);
2570 	    ad->ad_cls_class = 0xffffff;
2571 	    if (ACPI_SUCCESS(AcpiGetObjectInfo(handle, &devinfo))) {
2572 		if ((devinfo->Valid & ACPI_VALID_CLS) != 0 &&
2573 		    devinfo->ClassCode.Length >= ACPI_PCICLS_STRING_SIZE) {
2574 		    ad->ad_cls_class = strtoul(devinfo->ClassCode.String,
2575 			NULL, 16);
2576 		}
2577 		AcpiOsFree(devinfo);
2578 	    }
2579 
2580 	    d = acpi_pxm_parse(child);
2581 	    if (d >= 0)
2582 		ad->ad_domain = d;
2583 	    break;
2584 	}
2585     }
2586 
2587     return_ACPI_STATUS (AE_OK);
2588 }
2589 
2590 /*
2591  * AcpiAttachData() requires an object handler but never uses it.  This is a
2592  * placeholder object handler so we can store a device_t in an ACPI_HANDLE.
2593  */
2594 void
acpi_fake_objhandler(ACPI_HANDLE h,void * data)2595 acpi_fake_objhandler(ACPI_HANDLE h, void *data)
2596 {
2597 }
2598 
2599 /*
2600  * Simple wrapper around AcpiEnterSleepStatePrep() printing diagnostic on error.
2601  */
2602 static ACPI_STATUS
acpi_EnterSleepStatePrep(device_t acpi_dev,UINT8 SleepState)2603 acpi_EnterSleepStatePrep(device_t acpi_dev, UINT8 SleepState)
2604 {
2605 	ACPI_STATUS status;
2606 
2607 	status = AcpiEnterSleepStatePrep(SleepState);
2608 	if (ACPI_FAILURE(status))
2609 		device_printf(acpi_dev,
2610 		    "AcpiEnterSleepStatePrep(%u) failed - %s\n",
2611 		    SleepState,
2612 		    AcpiFormatException(status));
2613 	return (status);
2614 }
2615 
2616 /* Return from this function indicates failure. */
2617 static void
acpi_poweroff(device_t acpi_dev)2618 acpi_poweroff(device_t acpi_dev)
2619 {
2620 	register_t intr;
2621 	ACPI_STATUS status;
2622 
2623 	device_printf(acpi_dev, "Powering system off...\n");
2624 	status = acpi_EnterSleepStatePrep(acpi_dev, ACPI_STATE_S5);
2625 	if (ACPI_FAILURE(status)) {
2626 		device_printf(acpi_dev, "Power-off preparation failed! - %s\n",
2627 		    AcpiFormatException(status));
2628 		return;
2629 	}
2630 	intr = intr_disable();
2631 	status = AcpiEnterSleepState(ACPI_STATE_S5);
2632 	if (ACPI_FAILURE(status)) {
2633 		intr_restore(intr);
2634 		device_printf(acpi_dev, "Power-off failed! - %s\n",
2635 		    AcpiFormatException(status));
2636 	} else {
2637 		DELAY(1000000);
2638 		intr_restore(intr);
2639 		device_printf(acpi_dev, "Power-off failed! - timeout\n");
2640 	}
2641 }
2642 
2643 static void
acpi_shutdown_final(void * arg,int howto)2644 acpi_shutdown_final(void *arg, int howto)
2645 {
2646     struct acpi_softc *sc = (struct acpi_softc *)arg;
2647     ACPI_STATUS status;
2648 
2649     /*
2650      * XXX Shutdown code should only run on the BSP (cpuid 0).
2651      * Some chipsets do not power off the system correctly if called from
2652      * an AP.
2653      */
2654     if ((howto & RB_POWEROFF) != 0) {
2655 	acpi_poweroff(sc->acpi_dev);
2656     } else if ((howto & RB_HALT) == 0 && sc->acpi_handle_reboot) {
2657 	/* Reboot using the reset register. */
2658 	status = AcpiReset();
2659 	if (ACPI_SUCCESS(status)) {
2660 	    DELAY(1000000);
2661 	    device_printf(sc->acpi_dev, "reset failed - timeout\n");
2662 	} else if (status != AE_NOT_EXIST)
2663 	    device_printf(sc->acpi_dev, "reset failed - %s\n",
2664 		AcpiFormatException(status));
2665     } else if (sc->acpi_do_disable && !KERNEL_PANICKED()) {
2666 	/*
2667 	 * Only disable ACPI if the user requested.  On some systems, writing
2668 	 * the disable value to SMI_CMD hangs the system.
2669 	 */
2670 	device_printf(sc->acpi_dev, "Shutting down\n");
2671 	AcpiTerminate();
2672     }
2673 }
2674 
2675 static void
acpi_enable_fixed_events(struct acpi_softc * sc)2676 acpi_enable_fixed_events(struct acpi_softc *sc)
2677 {
2678     static int	first_time = 1;
2679 
2680     /* Enable and clear fixed events and install handlers. */
2681     if ((AcpiGbl_FADT.Flags & ACPI_FADT_POWER_BUTTON) == 0) {
2682 	AcpiClearEvent(ACPI_EVENT_POWER_BUTTON);
2683 	AcpiInstallFixedEventHandler(ACPI_EVENT_POWER_BUTTON,
2684 				     acpi_event_power_button_sleep, sc);
2685 	if (first_time)
2686 	    device_printf(sc->acpi_dev, "Power Button (fixed)\n");
2687     }
2688     if ((AcpiGbl_FADT.Flags & ACPI_FADT_SLEEP_BUTTON) == 0) {
2689 	AcpiClearEvent(ACPI_EVENT_SLEEP_BUTTON);
2690 	AcpiInstallFixedEventHandler(ACPI_EVENT_SLEEP_BUTTON,
2691 				     acpi_event_sleep_button_sleep, sc);
2692 	if (first_time)
2693 	    device_printf(sc->acpi_dev, "Sleep Button (fixed)\n");
2694     }
2695 
2696     first_time = 0;
2697 }
2698 
2699 /*
2700  * Returns true if the device is actually present and should
2701  * be attached to.  This requires the present, enabled, UI-visible
2702  * and diagnostics-passed bits to be set.
2703  */
2704 BOOLEAN
acpi_DeviceIsPresent(device_t dev)2705 acpi_DeviceIsPresent(device_t dev)
2706 {
2707 	ACPI_HANDLE h;
2708 	UINT32 s;
2709 	ACPI_STATUS status;
2710 
2711 	h = acpi_get_handle(dev);
2712 	if (h == NULL)
2713 		return (FALSE);
2714 
2715 #ifdef ACPI_EARLY_EPYC_WAR
2716 	/*
2717 	 * Certain Treadripper boards always returns 0 for FreeBSD because it
2718 	 * only returns non-zero for the OS string "Windows 2015". Otherwise it
2719 	 * will return zero. Force them to always be treated as present.
2720 	 * Beata versions were worse: they always returned 0.
2721 	 */
2722 	if (acpi_MatchHid(h, "AMDI0020") || acpi_MatchHid(h, "AMDI0010"))
2723 		return (TRUE);
2724 #endif
2725 
2726 	status = acpi_GetInteger(h, "_STA", &s);
2727 
2728 	/*
2729 	 * If no _STA method or if it failed, then assume that
2730 	 * the device is present.
2731 	 */
2732 	if (ACPI_FAILURE(status))
2733 		return (TRUE);
2734 
2735 	return (ACPI_DEVICE_PRESENT(s) ? TRUE : FALSE);
2736 }
2737 
2738 /*
2739  * Returns true if the battery is actually present and inserted.
2740  */
2741 BOOLEAN
acpi_BatteryIsPresent(device_t dev)2742 acpi_BatteryIsPresent(device_t dev)
2743 {
2744 	ACPI_HANDLE h;
2745 	UINT32 s;
2746 	ACPI_STATUS status;
2747 
2748 	h = acpi_get_handle(dev);
2749 	if (h == NULL)
2750 		return (FALSE);
2751 	status = acpi_GetInteger(h, "_STA", &s);
2752 
2753 	/*
2754 	 * If no _STA method or if it failed, then assume that
2755 	 * the device is present.
2756 	 */
2757 	if (ACPI_FAILURE(status))
2758 		return (TRUE);
2759 
2760 	return (ACPI_BATTERY_PRESENT(s) ? TRUE : FALSE);
2761 }
2762 
2763 /*
2764  * Returns true if a device has at least one valid device ID.
2765  */
2766 BOOLEAN
acpi_has_hid(ACPI_HANDLE h)2767 acpi_has_hid(ACPI_HANDLE h)
2768 {
2769     ACPI_DEVICE_INFO	*devinfo;
2770     BOOLEAN		ret;
2771 
2772     if (h == NULL ||
2773 	ACPI_FAILURE(AcpiGetObjectInfo(h, &devinfo)))
2774 	return (FALSE);
2775 
2776     ret = FALSE;
2777     if ((devinfo->Valid & ACPI_VALID_HID) != 0)
2778 	ret = TRUE;
2779     else if ((devinfo->Valid & ACPI_VALID_CID) != 0)
2780 	if (devinfo->CompatibleIdList.Count > 0)
2781 	    ret = TRUE;
2782 
2783     AcpiOsFree(devinfo);
2784     return (ret);
2785 }
2786 
2787 /*
2788  * Match a HID string against a handle
2789  * returns ACPI_MATCHHID_HID if _HID match
2790  *         ACPI_MATCHHID_CID if _CID match and not _HID match.
2791  *         ACPI_MATCHHID_NOMATCH=0 if no match.
2792  */
2793 int
acpi_MatchHid(ACPI_HANDLE h,const char * hid)2794 acpi_MatchHid(ACPI_HANDLE h, const char *hid)
2795 {
2796     ACPI_DEVICE_INFO	*devinfo;
2797     BOOLEAN		ret;
2798     int			i;
2799 
2800     if (hid == NULL || h == NULL ||
2801 	ACPI_FAILURE(AcpiGetObjectInfo(h, &devinfo)))
2802 	return (ACPI_MATCHHID_NOMATCH);
2803 
2804     ret = ACPI_MATCHHID_NOMATCH;
2805     if ((devinfo->Valid & ACPI_VALID_HID) != 0 &&
2806 	strcmp(hid, devinfo->HardwareId.String) == 0)
2807 	    ret = ACPI_MATCHHID_HID;
2808     else if ((devinfo->Valid & ACPI_VALID_CID) != 0)
2809 	for (i = 0; i < devinfo->CompatibleIdList.Count; i++) {
2810 	    if (strcmp(hid, devinfo->CompatibleIdList.Ids[i].String) == 0) {
2811 		ret = ACPI_MATCHHID_CID;
2812 		break;
2813 	    }
2814 	}
2815 
2816     AcpiOsFree(devinfo);
2817     return (ret);
2818 }
2819 
2820 /*
2821  * Return the handle of a named object within our scope, ie. that of (parent)
2822  * or one if its parents.
2823  */
2824 ACPI_STATUS
acpi_GetHandleInScope(ACPI_HANDLE parent,char * path,ACPI_HANDLE * result)2825 acpi_GetHandleInScope(ACPI_HANDLE parent, char *path, ACPI_HANDLE *result)
2826 {
2827     ACPI_HANDLE		r;
2828     ACPI_STATUS		status;
2829 
2830     /* Walk back up the tree to the root */
2831     for (;;) {
2832 	status = AcpiGetHandle(parent, path, &r);
2833 	if (ACPI_SUCCESS(status)) {
2834 	    *result = r;
2835 	    return (AE_OK);
2836 	}
2837 	/* XXX Return error here? */
2838 	if (status != AE_NOT_FOUND)
2839 	    return (AE_OK);
2840 	if (ACPI_FAILURE(AcpiGetParent(parent, &r)))
2841 	    return (AE_NOT_FOUND);
2842 	parent = r;
2843     }
2844 }
2845 
2846 ACPI_STATUS
acpi_GetProperty(device_t dev,ACPI_STRING propname,const ACPI_OBJECT ** value)2847 acpi_GetProperty(device_t dev, ACPI_STRING propname,
2848     const ACPI_OBJECT **value)
2849 {
2850 	device_t bus = device_get_parent(dev);
2851 
2852 	return (ACPI_GET_PROPERTY(bus, dev, propname, value));
2853 }
2854 
2855 /*
2856  * Allocate a buffer with a preset data size.
2857  */
2858 ACPI_BUFFER *
acpi_AllocBuffer(int size)2859 acpi_AllocBuffer(int size)
2860 {
2861     ACPI_BUFFER	*buf;
2862 
2863     if ((buf = malloc(size + sizeof(*buf), M_ACPIDEV, M_NOWAIT)) == NULL)
2864 	return (NULL);
2865     buf->Length = size;
2866     buf->Pointer = (void *)(buf + 1);
2867     return (buf);
2868 }
2869 
2870 ACPI_STATUS
acpi_SetInteger(ACPI_HANDLE handle,char * path,UINT32 number)2871 acpi_SetInteger(ACPI_HANDLE handle, char *path, UINT32 number)
2872 {
2873     ACPI_OBJECT arg1;
2874     ACPI_OBJECT_LIST args;
2875 
2876     arg1.Type = ACPI_TYPE_INTEGER;
2877     arg1.Integer.Value = number;
2878     args.Count = 1;
2879     args.Pointer = &arg1;
2880 
2881     return (AcpiEvaluateObject(handle, path, &args, NULL));
2882 }
2883 
2884 /*
2885  * Evaluate a path that should return an integer.
2886  */
2887 ACPI_STATUS
acpi_GetInteger(ACPI_HANDLE handle,char * path,UINT32 * number)2888 acpi_GetInteger(ACPI_HANDLE handle, char *path, UINT32 *number)
2889 {
2890     ACPI_STATUS	status;
2891     ACPI_BUFFER	buf;
2892     ACPI_OBJECT	param;
2893 
2894     if (handle == NULL)
2895 	handle = ACPI_ROOT_OBJECT;
2896 
2897     /*
2898      * Assume that what we've been pointed at is an Integer object, or
2899      * a method that will return an Integer.
2900      */
2901     buf.Pointer = &param;
2902     buf.Length = sizeof(param);
2903     status = AcpiEvaluateObject(handle, path, NULL, &buf);
2904     if (ACPI_SUCCESS(status)) {
2905 	if (param.Type == ACPI_TYPE_INTEGER)
2906 	    *number = param.Integer.Value;
2907 	else
2908 	    status = AE_TYPE;
2909     }
2910 
2911     /*
2912      * In some applications, a method that's expected to return an Integer
2913      * may instead return a Buffer (probably to simplify some internal
2914      * arithmetic).  We'll try to fetch whatever it is, and if it's a Buffer,
2915      * convert it into an Integer as best we can.
2916      *
2917      * This is a hack.
2918      */
2919     if (status == AE_BUFFER_OVERFLOW) {
2920 	if ((buf.Pointer = AcpiOsAllocate(buf.Length)) == NULL) {
2921 	    status = AE_NO_MEMORY;
2922 	} else {
2923 	    status = AcpiEvaluateObject(handle, path, NULL, &buf);
2924 	    if (ACPI_SUCCESS(status))
2925 		status = acpi_ConvertBufferToInteger(&buf, number);
2926 	    AcpiOsFree(buf.Pointer);
2927 	}
2928     }
2929     return (status);
2930 }
2931 
2932 ACPI_STATUS
acpi_ConvertBufferToInteger(ACPI_BUFFER * bufp,UINT32 * number)2933 acpi_ConvertBufferToInteger(ACPI_BUFFER *bufp, UINT32 *number)
2934 {
2935     ACPI_OBJECT	*p;
2936     UINT8	*val;
2937     int		i;
2938 
2939     p = (ACPI_OBJECT *)bufp->Pointer;
2940     if (p->Type == ACPI_TYPE_INTEGER) {
2941 	*number = p->Integer.Value;
2942 	return (AE_OK);
2943     }
2944     if (p->Type != ACPI_TYPE_BUFFER)
2945 	return (AE_TYPE);
2946     if (p->Buffer.Length > sizeof(int))
2947 	return (AE_BAD_DATA);
2948 
2949     *number = 0;
2950     val = p->Buffer.Pointer;
2951     for (i = 0; i < p->Buffer.Length; i++)
2952 	*number += val[i] << (i * 8);
2953     return (AE_OK);
2954 }
2955 
2956 /*
2957  * Iterate over the elements of an a package object, calling the supplied
2958  * function for each element.
2959  *
2960  * XXX possible enhancement might be to abort traversal on error.
2961  */
2962 ACPI_STATUS
acpi_ForeachPackageObject(ACPI_OBJECT * pkg,void (* func)(ACPI_OBJECT * comp,void * arg),void * arg)2963 acpi_ForeachPackageObject(ACPI_OBJECT *pkg,
2964 	void (*func)(ACPI_OBJECT *comp, void *arg), void *arg)
2965 {
2966     ACPI_OBJECT	*comp;
2967     int		i;
2968 
2969     if (pkg == NULL || pkg->Type != ACPI_TYPE_PACKAGE)
2970 	return (AE_BAD_PARAMETER);
2971 
2972     /* Iterate over components */
2973     i = 0;
2974     comp = pkg->Package.Elements;
2975     for (; i < pkg->Package.Count; i++, comp++)
2976 	func(comp, arg);
2977 
2978     return (AE_OK);
2979 }
2980 
2981 /*
2982  * Find the (index)th resource object in a set.
2983  */
2984 ACPI_STATUS
acpi_FindIndexedResource(ACPI_BUFFER * buf,int index,ACPI_RESOURCE ** resp)2985 acpi_FindIndexedResource(ACPI_BUFFER *buf, int index, ACPI_RESOURCE **resp)
2986 {
2987     ACPI_RESOURCE	*rp;
2988     int			i;
2989 
2990     rp = (ACPI_RESOURCE *)buf->Pointer;
2991     i = index;
2992     while (i-- > 0) {
2993 	/* Range check */
2994 	if (rp > (ACPI_RESOURCE *)((u_int8_t *)buf->Pointer + buf->Length))
2995 	    return (AE_BAD_PARAMETER);
2996 
2997 	/* Check for terminator */
2998 	if (rp->Type == ACPI_RESOURCE_TYPE_END_TAG || rp->Length == 0)
2999 	    return (AE_NOT_FOUND);
3000 	rp = ACPI_NEXT_RESOURCE(rp);
3001     }
3002     if (resp != NULL)
3003 	*resp = rp;
3004 
3005     return (AE_OK);
3006 }
3007 
3008 /*
3009  * Append an ACPI_RESOURCE to an ACPI_BUFFER.
3010  *
3011  * Given a pointer to an ACPI_RESOURCE structure, expand the ACPI_BUFFER
3012  * provided to contain it.  If the ACPI_BUFFER is empty, allocate a sensible
3013  * backing block.  If the ACPI_RESOURCE is NULL, return an empty set of
3014  * resources.
3015  */
3016 #define ACPI_INITIAL_RESOURCE_BUFFER_SIZE	512
3017 
3018 ACPI_STATUS
acpi_AppendBufferResource(ACPI_BUFFER * buf,ACPI_RESOURCE * res)3019 acpi_AppendBufferResource(ACPI_BUFFER *buf, ACPI_RESOURCE *res)
3020 {
3021     ACPI_RESOURCE	*rp;
3022     void		*newp;
3023 
3024     /* Initialise the buffer if necessary. */
3025     if (buf->Pointer == NULL) {
3026 	buf->Length = ACPI_INITIAL_RESOURCE_BUFFER_SIZE;
3027 	if ((buf->Pointer = AcpiOsAllocate(buf->Length)) == NULL)
3028 	    return (AE_NO_MEMORY);
3029 	rp = (ACPI_RESOURCE *)buf->Pointer;
3030 	rp->Type = ACPI_RESOURCE_TYPE_END_TAG;
3031 	rp->Length = ACPI_RS_SIZE_MIN;
3032     }
3033     if (res == NULL)
3034 	return (AE_OK);
3035 
3036     /*
3037      * Scan the current buffer looking for the terminator.
3038      * This will either find the terminator or hit the end
3039      * of the buffer and return an error.
3040      */
3041     rp = (ACPI_RESOURCE *)buf->Pointer;
3042     for (;;) {
3043 	/* Range check, don't go outside the buffer */
3044 	if (rp >= (ACPI_RESOURCE *)((u_int8_t *)buf->Pointer + buf->Length))
3045 	    return (AE_BAD_PARAMETER);
3046 	if (rp->Type == ACPI_RESOURCE_TYPE_END_TAG || rp->Length == 0)
3047 	    break;
3048 	rp = ACPI_NEXT_RESOURCE(rp);
3049     }
3050 
3051     /*
3052      * Check the size of the buffer and expand if required.
3053      *
3054      * Required size is:
3055      *	size of existing resources before terminator +
3056      *	size of new resource and header +
3057      * 	size of terminator.
3058      *
3059      * Note that this loop should really only run once, unless
3060      * for some reason we are stuffing a *really* huge resource.
3061      */
3062     while ((((u_int8_t *)rp - (u_int8_t *)buf->Pointer) +
3063 	    res->Length + ACPI_RS_SIZE_NO_DATA +
3064 	    ACPI_RS_SIZE_MIN) >= buf->Length) {
3065 	if ((newp = AcpiOsAllocate(buf->Length * 2)) == NULL)
3066 	    return (AE_NO_MEMORY);
3067 	bcopy(buf->Pointer, newp, buf->Length);
3068 	rp = (ACPI_RESOURCE *)((u_int8_t *)newp +
3069 			       ((u_int8_t *)rp - (u_int8_t *)buf->Pointer));
3070 	AcpiOsFree(buf->Pointer);
3071 	buf->Pointer = newp;
3072 	buf->Length += buf->Length;
3073     }
3074 
3075     /* Insert the new resource. */
3076     bcopy(res, rp, res->Length + ACPI_RS_SIZE_NO_DATA);
3077 
3078     /* And add the terminator. */
3079     rp = ACPI_NEXT_RESOURCE(rp);
3080     rp->Type = ACPI_RESOURCE_TYPE_END_TAG;
3081     rp->Length = ACPI_RS_SIZE_MIN;
3082 
3083     return (AE_OK);
3084 }
3085 
3086 UINT64
acpi_DSMQuery(ACPI_HANDLE h,const uint8_t * uuid,int revision)3087 acpi_DSMQuery(ACPI_HANDLE h, const uint8_t *uuid, int revision)
3088 {
3089     /*
3090      * ACPI spec 9.1.1 defines this.
3091      *
3092      * "Arg2: Function Index Represents a specific function whose meaning is
3093      * specific to the UUID and Revision ID. Function indices should start
3094      * with 1. Function number zero is a query function (see the special
3095      * return code defined below)."
3096      */
3097     ACPI_BUFFER buf;
3098     ACPI_OBJECT *obj;
3099     UINT64 ret = 0;
3100     int i;
3101 
3102     if (!ACPI_SUCCESS(acpi_EvaluateDSM(h, uuid, revision, 0, NULL, &buf))) {
3103 	ACPI_INFO(("Failed to enumerate DSM functions\n"));
3104 	return (0);
3105     }
3106 
3107     obj = (ACPI_OBJECT *)buf.Pointer;
3108     KASSERT(obj, ("Object not allowed to be NULL\n"));
3109 
3110     /*
3111      * From ACPI 6.2 spec 9.1.1:
3112      * If Function Index = 0, a Buffer containing a function index bitfield.
3113      * Otherwise, the return value and type depends on the UUID and revision
3114      * ID (see below).
3115      */
3116     switch (obj->Type) {
3117     case ACPI_TYPE_BUFFER:
3118 	for (i = 0; i < MIN(obj->Buffer.Length, sizeof(ret)); i++)
3119 	    ret |= (((uint64_t)obj->Buffer.Pointer[i]) << (i * 8));
3120 	break;
3121     case ACPI_TYPE_INTEGER:
3122 	ACPI_BIOS_WARNING((AE_INFO,
3123 	    "Possibly buggy BIOS with ACPI_TYPE_INTEGER for function enumeration\n"));
3124 	ret = obj->Integer.Value;
3125 	break;
3126     default:
3127 	ACPI_WARNING((AE_INFO, "Unexpected return type %u\n", obj->Type));
3128     };
3129 
3130     AcpiOsFree(obj);
3131     return ret;
3132 }
3133 
3134 /*
3135  * DSM may return multiple types depending on the function. It is therefore
3136  * unsafe to use the typed evaluation. It is highly recommended that the caller
3137  * check the type of the returned object.
3138  */
3139 ACPI_STATUS
acpi_EvaluateDSM(ACPI_HANDLE handle,const uint8_t * uuid,int revision,UINT64 function,ACPI_OBJECT * package,ACPI_BUFFER * out_buf)3140 acpi_EvaluateDSM(ACPI_HANDLE handle, const uint8_t *uuid, int revision,
3141     UINT64 function, ACPI_OBJECT *package, ACPI_BUFFER *out_buf)
3142 {
3143 	return (acpi_EvaluateDSMTyped(handle, uuid, revision, function,
3144 	    package, out_buf, ACPI_TYPE_ANY));
3145 }
3146 
3147 ACPI_STATUS
acpi_EvaluateDSMTyped(ACPI_HANDLE handle,const uint8_t * uuid,int revision,UINT64 function,ACPI_OBJECT * package,ACPI_BUFFER * out_buf,ACPI_OBJECT_TYPE type)3148 acpi_EvaluateDSMTyped(ACPI_HANDLE handle, const uint8_t *uuid, int revision,
3149     UINT64 function, ACPI_OBJECT *package, ACPI_BUFFER *out_buf,
3150     ACPI_OBJECT_TYPE type)
3151 {
3152     ACPI_OBJECT arg[4];
3153     ACPI_OBJECT_LIST arglist;
3154     ACPI_BUFFER buf;
3155     ACPI_STATUS status;
3156 
3157     if (out_buf == NULL)
3158 	return (AE_NO_MEMORY);
3159 
3160     arg[0].Type = ACPI_TYPE_BUFFER;
3161     arg[0].Buffer.Length = ACPI_UUID_LENGTH;
3162     arg[0].Buffer.Pointer = __DECONST(uint8_t *, uuid);
3163     arg[1].Type = ACPI_TYPE_INTEGER;
3164     arg[1].Integer.Value = revision;
3165     arg[2].Type = ACPI_TYPE_INTEGER;
3166     arg[2].Integer.Value = function;
3167     if (package) {
3168 	arg[3] = *package;
3169     } else {
3170 	arg[3].Type = ACPI_TYPE_PACKAGE;
3171 	arg[3].Package.Count = 0;
3172 	arg[3].Package.Elements = NULL;
3173     }
3174 
3175     arglist.Pointer = arg;
3176     arglist.Count = 4;
3177     buf.Pointer = NULL;
3178     buf.Length = ACPI_ALLOCATE_BUFFER;
3179     status = AcpiEvaluateObjectTyped(handle, "_DSM", &arglist, &buf, type);
3180     if (ACPI_FAILURE(status))
3181 	return (status);
3182 
3183     KASSERT(ACPI_SUCCESS(status), ("Unexpected status"));
3184 
3185     *out_buf = buf;
3186     return (status);
3187 }
3188 
3189 ACPI_STATUS
acpi_EvaluateOSC(ACPI_HANDLE handle,uint8_t * uuid,int revision,int count,uint32_t * caps_in,uint32_t * caps_out,bool query)3190 acpi_EvaluateOSC(ACPI_HANDLE handle, uint8_t *uuid, int revision, int count,
3191     uint32_t *caps_in, uint32_t *caps_out, bool query)
3192 {
3193 	ACPI_OBJECT arg[4], *ret;
3194 	ACPI_OBJECT_LIST arglist;
3195 	ACPI_BUFFER buf;
3196 	ACPI_STATUS status;
3197 
3198 	arglist.Pointer = arg;
3199 	arglist.Count = 4;
3200 	arg[0].Type = ACPI_TYPE_BUFFER;
3201 	arg[0].Buffer.Length = ACPI_UUID_LENGTH;
3202 	arg[0].Buffer.Pointer = uuid;
3203 	arg[1].Type = ACPI_TYPE_INTEGER;
3204 	arg[1].Integer.Value = revision;
3205 	arg[2].Type = ACPI_TYPE_INTEGER;
3206 	arg[2].Integer.Value = count;
3207 	arg[3].Type = ACPI_TYPE_BUFFER;
3208 	arg[3].Buffer.Length = count * sizeof(*caps_in);
3209 	arg[3].Buffer.Pointer = (uint8_t *)caps_in;
3210 	caps_in[0] = query ? 1 : 0;
3211 	buf.Pointer = NULL;
3212 	buf.Length = ACPI_ALLOCATE_BUFFER;
3213 	status = AcpiEvaluateObjectTyped(handle, "_OSC", &arglist, &buf,
3214 	    ACPI_TYPE_BUFFER);
3215 	if (ACPI_FAILURE(status))
3216 		return (status);
3217 	if (caps_out != NULL) {
3218 		ret = buf.Pointer;
3219 		if (ret->Buffer.Length != count * sizeof(*caps_out)) {
3220 			AcpiOsFree(buf.Pointer);
3221 			return (AE_BUFFER_OVERFLOW);
3222 		}
3223 		bcopy(ret->Buffer.Pointer, caps_out, ret->Buffer.Length);
3224 	}
3225 	AcpiOsFree(buf.Pointer);
3226 	return (status);
3227 }
3228 
3229 /*
3230  * Set interrupt model.
3231  */
3232 ACPI_STATUS
acpi_SetIntrModel(int model)3233 acpi_SetIntrModel(int model)
3234 {
3235 
3236     return (acpi_SetInteger(ACPI_ROOT_OBJECT, "_PIC", model));
3237 }
3238 
3239 /*
3240  * Walk subtables of a table and call a callback routine for each
3241  * subtable.  The caller should provide the first subtable and a
3242  * pointer to the end of the table.  This can be used to walk tables
3243  * such as MADT and SRAT that use subtable entries.
3244  */
3245 void
acpi_walk_subtables(void * first,void * end,acpi_subtable_handler * handler,void * arg)3246 acpi_walk_subtables(void *first, void *end, acpi_subtable_handler *handler,
3247     void *arg)
3248 {
3249     ACPI_SUBTABLE_HEADER *entry;
3250 
3251     for (entry = first; (void *)entry < end; ) {
3252 	/* Avoid an infinite loop if we hit a bogus entry. */
3253 	if (entry->Length < sizeof(ACPI_SUBTABLE_HEADER))
3254 	    return;
3255 
3256 	handler(entry, arg);
3257 	entry = ACPI_ADD_PTR(ACPI_SUBTABLE_HEADER, entry, entry->Length);
3258     }
3259 }
3260 
3261 /*
3262  * DEPRECATED.  This interface has serious deficiencies and will be
3263  * removed.
3264  *
3265  * Immediately enter the sleep state.  In the old model, acpiconf(8) ran
3266  * rc.suspend and rc.resume so we don't have to notify devd(8) to do this.
3267  */
3268 ACPI_STATUS
acpi_SetSleepState(struct acpi_softc * sc,int state)3269 acpi_SetSleepState(struct acpi_softc *sc, int state)
3270 {
3271     static int once;
3272 
3273     if (!once) {
3274 	device_printf(sc->acpi_dev,
3275 "warning: acpi_SetSleepState() deprecated, need to update your software\n");
3276 	once = 1;
3277     }
3278     return (acpi_EnterSleepState(sc, state));
3279 }
3280 
3281 #if defined(__amd64__) || defined(__i386__)
3282 static void
acpi_sleep_force_task(void * context)3283 acpi_sleep_force_task(void *context)
3284 {
3285     struct acpi_softc *sc = (struct acpi_softc *)context;
3286 
3287     if (ACPI_FAILURE(acpi_EnterSleepState(sc, sc->acpi_next_stype)))
3288 	device_printf(sc->acpi_dev, "force sleep state %s failed\n",
3289 	    power_stype_to_name(sc->acpi_next_stype));
3290 }
3291 
3292 static void
acpi_sleep_force(void * arg)3293 acpi_sleep_force(void *arg)
3294 {
3295     struct acpi_softc *sc = (struct acpi_softc *)arg;
3296 
3297     device_printf(sc->acpi_dev,
3298 	"suspend request timed out, forcing sleep now\n");
3299     /*
3300      * XXX Suspending from callout causes freezes in DEVICE_SUSPEND().
3301      * Suspend from acpi_task thread instead.
3302      */
3303     if (ACPI_FAILURE(AcpiOsExecute(OSL_NOTIFY_HANDLER,
3304 	acpi_sleep_force_task, sc)))
3305 	device_printf(sc->acpi_dev, "AcpiOsExecute() for sleeping failed\n");
3306 }
3307 #endif
3308 
3309 /*
3310  * Request that the system enter the given suspend state.  All /dev/apm
3311  * devices and devd(8) will be notified.  Userland then has a chance to
3312  * save state and acknowledge the request.  The system sleeps once all
3313  * acks are in.
3314  */
3315 int
acpi_ReqSleepState(struct acpi_softc * sc,enum power_stype stype)3316 acpi_ReqSleepState(struct acpi_softc *sc, enum power_stype stype)
3317 {
3318 #if defined(__amd64__) || defined(__i386__)
3319     struct apm_clone_data *clone;
3320     ACPI_STATUS status;
3321 
3322     if (stype < POWER_STYPE_AWAKE || stype >= POWER_STYPE_COUNT)
3323 	return (EINVAL);
3324     if (!acpi_supported_stypes[stype])
3325 	return (EOPNOTSUPP);
3326 
3327     /*
3328      * If a reboot/shutdown/suspend request is already in progress or
3329      * suspend is blocked due to an upcoming shutdown, just return.
3330      */
3331     if (rebooting || sc->acpi_next_stype != POWER_STYPE_AWAKE ||
3332 	suspend_blocked)
3333 	return (0);
3334 
3335     /* Wait until sleep is enabled. */
3336     while (sc->acpi_sleep_disabled) {
3337 	AcpiOsSleep(1000);
3338     }
3339 
3340     ACPI_LOCK(acpi);
3341 
3342     sc->acpi_next_stype = stype;
3343 
3344     /* S5 (soft-off) should be entered directly with no waiting. */
3345     if (stype == POWER_STYPE_POWEROFF) {
3346     	ACPI_UNLOCK(acpi);
3347 	status = acpi_EnterSleepState(sc, stype);
3348 	return (ACPI_SUCCESS(status) ? 0 : ENXIO);
3349     }
3350 
3351     /* Record the pending state and notify all apm devices. */
3352     STAILQ_FOREACH(clone, &sc->apm_cdevs, entries) {
3353 	clone->notify_status = APM_EV_NONE;
3354 	if ((clone->flags & ACPI_EVF_DEVD) == 0) {
3355 	    selwakeuppri(&clone->sel_read, PZERO);
3356 	    KNOTE_LOCKED(&clone->sel_read.si_note, 0);
3357 	}
3358     }
3359 
3360     /* If devd(8) is not running, immediately enter the sleep state. */
3361     if (!devctl_process_running()) {
3362 	ACPI_UNLOCK(acpi);
3363 	status = acpi_EnterSleepState(sc, stype);
3364 	return (ACPI_SUCCESS(status) ? 0 : ENXIO);
3365     }
3366 
3367     /*
3368      * Set a timeout to fire if userland doesn't ack the suspend request
3369      * in time.  This way we still eventually go to sleep if we were
3370      * overheating or running low on battery, even if userland is hung.
3371      * We cancel this timeout once all userland acks are in or the
3372      * suspend request is aborted.
3373      */
3374     callout_reset(&sc->susp_force_to, 10 * hz, acpi_sleep_force, sc);
3375     ACPI_UNLOCK(acpi);
3376 
3377     /* Now notify devd(8) also. */
3378     acpi_UserNotify("Suspend", ACPI_ROOT_OBJECT, stype);
3379 
3380     return (0);
3381 #else
3382     device_printf(sc->acpi_dev, "ACPI suspend not supported on this platform "
3383 	"(TODO suspend to idle should be, however)\n");
3384     return (EOPNOTSUPP);
3385 #endif
3386 }
3387 
3388 /*
3389  * Acknowledge (or reject) a pending sleep state.  The caller has
3390  * prepared for suspend and is now ready for it to proceed.  If the
3391  * error argument is non-zero, it indicates suspend should be cancelled
3392  * and gives an errno value describing why.  Once all votes are in,
3393  * we suspend the system.
3394  */
3395 int
acpi_AckSleepState(struct apm_clone_data * clone,int error)3396 acpi_AckSleepState(struct apm_clone_data *clone, int error)
3397 {
3398     struct acpi_softc *sc = clone->acpi_sc;
3399 
3400 #if defined(__amd64__) || defined(__i386__)
3401     int ret, sleeping;
3402 
3403     /* If no pending sleep type, return an error. */
3404     ACPI_LOCK(acpi);
3405     if (sc->acpi_next_stype == POWER_STYPE_AWAKE) {
3406     	ACPI_UNLOCK(acpi);
3407 	return (ENXIO);
3408     }
3409 
3410     /* Caller wants to abort suspend process. */
3411     if (error) {
3412 	sc->acpi_next_stype = POWER_STYPE_AWAKE;
3413 	callout_stop(&sc->susp_force_to);
3414 	device_printf(sc->acpi_dev,
3415 	    "listener on %s cancelled the pending suspend\n",
3416 	    devtoname(clone->cdev));
3417     	ACPI_UNLOCK(acpi);
3418 	return (0);
3419     }
3420 
3421     /*
3422      * Mark this device as acking the suspend request.  Then, walk through
3423      * all devices, seeing if they agree yet.  We only count devices that
3424      * are writable since read-only devices couldn't ack the request.
3425      */
3426     sleeping = TRUE;
3427     clone->notify_status = APM_EV_ACKED;
3428     STAILQ_FOREACH(clone, &sc->apm_cdevs, entries) {
3429 	if ((clone->flags & ACPI_EVF_WRITE) != 0 &&
3430 	    clone->notify_status != APM_EV_ACKED) {
3431 	    sleeping = FALSE;
3432 	    break;
3433 	}
3434     }
3435 
3436     /* If all devices have voted "yes", we will suspend now. */
3437     if (sleeping)
3438 	callout_stop(&sc->susp_force_to);
3439     ACPI_UNLOCK(acpi);
3440     ret = 0;
3441     if (sleeping) {
3442 	if (ACPI_FAILURE(acpi_EnterSleepState(sc, sc->acpi_next_stype)))
3443 		ret = ENODEV;
3444     }
3445     return (ret);
3446 #else
3447     device_printf(sc->acpi_dev, "ACPI suspend not supported on this platform "
3448 	"(TODO suspend to idle should be, however)\n");
3449     return (EOPNOTSUPP);
3450 #endif
3451 }
3452 
3453 static void
acpi_sleep_enable(void * arg)3454 acpi_sleep_enable(void *arg)
3455 {
3456     struct acpi_softc	*sc = (struct acpi_softc *)arg;
3457 
3458     ACPI_LOCK_ASSERT(acpi);
3459 
3460     /* Reschedule if the system is not fully up and running. */
3461     if (!AcpiGbl_SystemAwakeAndRunning) {
3462 	callout_schedule(&acpi_sleep_timer, hz * ACPI_MINIMUM_AWAKETIME);
3463 	return;
3464     }
3465 
3466     sc->acpi_sleep_disabled = FALSE;
3467 }
3468 
3469 static ACPI_STATUS
acpi_sleep_disable(struct acpi_softc * sc)3470 acpi_sleep_disable(struct acpi_softc *sc)
3471 {
3472     ACPI_STATUS		status;
3473 
3474     /* Fail if the system is not fully up and running. */
3475     if (!AcpiGbl_SystemAwakeAndRunning)
3476 	return (AE_ERROR);
3477 
3478     ACPI_LOCK(acpi);
3479     status = sc->acpi_sleep_disabled ? AE_ERROR : AE_OK;
3480     sc->acpi_sleep_disabled = TRUE;
3481     ACPI_UNLOCK(acpi);
3482 
3483     return (status);
3484 }
3485 
3486 enum acpi_sleep_state {
3487     ACPI_SS_NONE	= 0,
3488     ACPI_SS_GPE_SET	= 1 << 0,
3489     ACPI_SS_DEV_SUSPEND	= 1 << 1,
3490     ACPI_SS_SLP_PREP	= 1 << 2,
3491     ACPI_SS_SLEPT	= 1 << 3,
3492 };
3493 
3494 static void
do_standby(struct acpi_softc * sc,enum acpi_sleep_state * slp_state,register_t rflags)3495 do_standby(struct acpi_softc *sc, enum acpi_sleep_state *slp_state,
3496     register_t rflags)
3497 {
3498     ACPI_STATUS status;
3499 
3500     status = AcpiEnterSleepState(sc->acpi_standby_sx);
3501     intr_restore(rflags);
3502     AcpiLeaveSleepStatePrep(sc->acpi_standby_sx);
3503     if (ACPI_FAILURE(status)) {
3504 	device_printf(sc->acpi_dev, "AcpiEnterSleepState failed - %s\n",
3505 	    AcpiFormatException(status));
3506 	return;
3507     }
3508     *slp_state |= ACPI_SS_SLEPT;
3509 }
3510 
3511 static void
do_sleep(struct acpi_softc * sc,enum acpi_sleep_state * slp_state,register_t rflags,int state)3512 do_sleep(struct acpi_softc *sc, enum acpi_sleep_state *slp_state,
3513     register_t rflags, int state)
3514 {
3515     int sleep_result;
3516     ACPI_EVENT_STATUS power_button_status;
3517 
3518     MPASS(state == ACPI_STATE_S3 || state == ACPI_STATE_S4);
3519 
3520     sleep_result = acpi_sleep_machdep(sc, state);
3521     acpi_wakeup_machdep(sc, state, sleep_result, 0);
3522 
3523     if (sleep_result == 1 && state == ACPI_STATE_S3) {
3524 	/*
3525 	 * XXX According to ACPI specification SCI_EN bit should be restored
3526 	 * by ACPI platform (BIOS, firmware) to its pre-sleep state.
3527 	 * Unfortunately some BIOSes fail to do that and that leads to
3528 	 * unexpected and serious consequences during wake up like a system
3529 	 * getting stuck in SMI handlers.
3530 	 * This hack is picked up from Linux, which claims that it follows
3531 	 * Windows behavior.
3532 	 */
3533 	AcpiWriteBitRegister(ACPI_BITREG_SCI_ENABLE, ACPI_ENABLE_EVENT);
3534 
3535 	/*
3536 	 * Prevent misinterpretation of the wakeup by power button
3537 	 * as a request for power off.
3538 	 * Ideally we should post an appropriate wakeup event,
3539 	 * perhaps using acpi_event_power_button_wake or alike.
3540 	 *
3541 	 * Clearing of power button status after wakeup is mandated
3542 	 * by ACPI specification in section "Fixed Power Button".
3543 	 *
3544 	 * XXX As of ACPICA 20121114 AcpiGetEventStatus provides
3545 	 * status as 0/1 corresponding to inactive/active despite
3546 	 * its type being ACPI_EVENT_STATUS.  In other words,
3547 	 * we should not test for ACPI_EVENT_FLAG_SET for time being.
3548 	 */
3549 	if (ACPI_SUCCESS(AcpiGetEventStatus(ACPI_EVENT_POWER_BUTTON,
3550 	    &power_button_status)) && power_button_status != 0) {
3551 	    AcpiClearEvent(ACPI_EVENT_POWER_BUTTON);
3552 	    device_printf(sc->acpi_dev, "cleared fixed power button status\n");
3553 	}
3554     }
3555 
3556     intr_restore(rflags);
3557 
3558     /* call acpi_wakeup_machdep() again with interrupt enabled */
3559     acpi_wakeup_machdep(sc, state, sleep_result, 1);
3560 
3561     AcpiLeaveSleepStatePrep(state);
3562 
3563     if (sleep_result == -1)
3564 	return;
3565 
3566     /* Re-enable ACPI hardware on wakeup from sleep state 4. */
3567     if (state == ACPI_STATE_S4)
3568 	AcpiEnable();
3569     *slp_state |= ACPI_SS_SLEPT;
3570 }
3571 
3572 #if defined(__i386__) || defined(__amd64__)
3573 static void
do_idle(struct acpi_softc * sc,enum acpi_sleep_state * slp_state,register_t rflags)3574 do_idle(struct acpi_softc *sc, enum acpi_sleep_state *slp_state,
3575     register_t rflags)
3576 {
3577 
3578     intr_suspend();
3579 
3580     /*
3581      * The CPU will exit idle when interrupted, so we want to minimize the
3582      * number of interrupts it can receive while idle.  We do this by only
3583      * allowing SCI (system control interrupt) interrupts, which are used by
3584      * the ACPI firmware to send wake GPEs to the OS.
3585      *
3586      * XXX We might still receive other spurious non-wake GPEs from noisy
3587      * devices that can't be disabled, so this will need to end up being a
3588      * suspend-to-idle loop which, when breaking out of idle, will check the
3589      * reason for the wakeup and immediately idle the CPU again if it was not a
3590      * proper wake event.
3591      */
3592     intr_enable_src(AcpiGbl_FADT.SciInterrupt);
3593 
3594     cpu_idle(0);
3595 
3596     intr_resume(false);
3597     intr_restore(rflags);
3598     *slp_state |= ACPI_SS_SLEPT;
3599 }
3600 #endif
3601 
3602 /*
3603  * Enter the desired system sleep state.
3604  *
3605  * Currently we support S1-S5 and suspend-to-idle, but S4 is only S4BIOS.
3606  */
3607 static ACPI_STATUS
acpi_EnterSleepState(struct acpi_softc * sc,enum power_stype stype)3608 acpi_EnterSleepState(struct acpi_softc *sc, enum power_stype stype)
3609 {
3610     register_t intr;
3611     ACPI_STATUS status;
3612     enum acpi_sleep_state slp_state;
3613     int acpi_sstate;
3614 
3615     ACPI_FUNCTION_TRACE_U32((char *)(uintptr_t)__func__, stype);
3616 
3617     if (stype <= POWER_STYPE_AWAKE || stype >= POWER_STYPE_COUNT)
3618 	return_ACPI_STATUS (AE_BAD_PARAMETER);
3619     if (!acpi_supported_stypes[stype]) {
3620 	device_printf(sc->acpi_dev, "Sleep type %s not supported on this "
3621 	    "platform\n", power_stype_to_name(stype));
3622 	return (AE_SUPPORT);
3623     }
3624 
3625     acpi_sstate = acpi_stype_to_sstate(sc, stype);
3626 
3627     /* Re-entry once we're suspending is not allowed. */
3628     status = acpi_sleep_disable(sc);
3629     if (ACPI_FAILURE(status)) {
3630 	device_printf(sc->acpi_dev,
3631 	    "suspend request ignored (not ready yet)\n");
3632 	return (status);
3633     }
3634 
3635     if (stype == POWER_STYPE_POWEROFF) {
3636 	/*
3637 	 * Shut down cleanly and power off.  This will call us back through the
3638 	 * shutdown handlers.
3639 	 */
3640 	shutdown_nice(RB_POWEROFF);
3641 	return_ACPI_STATUS (AE_OK);
3642     }
3643 
3644     EVENTHANDLER_INVOKE(power_suspend_early, stype);
3645     stop_all_proc();
3646     suspend_all_fs();
3647     EVENTHANDLER_INVOKE(power_suspend, stype);
3648 
3649 #ifdef EARLY_AP_STARTUP
3650     MPASS(mp_ncpus == 1 || smp_started);
3651     thread_lock(curthread);
3652     sched_bind(curthread, 0);
3653     thread_unlock(curthread);
3654 #else
3655     if (smp_started) {
3656 	thread_lock(curthread);
3657 	sched_bind(curthread, 0);
3658 	thread_unlock(curthread);
3659     }
3660 #endif
3661 
3662     /*
3663      * Be sure to hold bus topology lock across DEVICE_SUSPEND/RESUME.
3664      */
3665     bus_topo_lock();
3666 
3667     slp_state = ACPI_SS_NONE;
3668 
3669     sc->acpi_stype = stype;
3670 
3671     /* Enable any GPEs as appropriate and requested by the user. */
3672     acpi_wake_prep_walk(sc, stype);
3673     slp_state |= ACPI_SS_GPE_SET;
3674 
3675     /*
3676      * Inform all devices that we are going to sleep.  If at least one
3677      * device fails, DEVICE_SUSPEND() automatically resumes the tree.
3678      *
3679      * XXX Note that a better two-pass approach with a 'veto' pass
3680      * followed by a "real thing" pass would be better, but the current
3681      * bus interface does not provide for this.
3682      */
3683     if (DEVICE_SUSPEND(root_bus) != 0) {
3684         device_printf(sc->acpi_dev, "device_suspend failed\n");
3685         goto backout;
3686     }
3687     EVENTHANDLER_INVOKE(acpi_post_dev_suspend, stype);
3688     slp_state |= ACPI_SS_DEV_SUSPEND;
3689 
3690     if (stype != POWER_STYPE_SUSPEND_TO_IDLE) {
3691 	status = acpi_EnterSleepStatePrep(sc->acpi_dev, acpi_sstate);
3692 	if (ACPI_FAILURE(status))
3693 	    goto backout;
3694 	slp_state |= ACPI_SS_SLP_PREP;
3695     }
3696 
3697     if (sc->acpi_sleep_delay > 0)
3698 	DELAY(sc->acpi_sleep_delay * 1000000);
3699 
3700     suspendclock();
3701     intr = intr_disable();
3702     switch (stype) {
3703     case POWER_STYPE_STANDBY:
3704 	do_standby(sc, &slp_state, intr);
3705 	break;
3706     case POWER_STYPE_SUSPEND_TO_MEM:
3707     case POWER_STYPE_HIBERNATE:
3708 	do_sleep(sc, &slp_state, intr, acpi_sstate);
3709 	break;
3710     case POWER_STYPE_SUSPEND_TO_IDLE:
3711 #if defined(__i386__) || defined(__amd64__)
3712 	do_idle(sc, &slp_state, intr);
3713 	break;
3714 #endif
3715     case POWER_STYPE_AWAKE:
3716     case POWER_STYPE_POWEROFF:
3717     case POWER_STYPE_COUNT:
3718     case POWER_STYPE_UNKNOWN:
3719 	__unreachable();
3720     }
3721     resumeclock();
3722 
3723     /*
3724      * Back out state according to how far along we got in the suspend
3725      * process.  This handles both the error and success cases.
3726      */
3727 backout:
3728     if ((slp_state & ACPI_SS_GPE_SET) != 0) {
3729 	acpi_wake_prep_walk(sc, stype);
3730 	sc->acpi_stype = POWER_STYPE_AWAKE;
3731 	slp_state &= ~ACPI_SS_GPE_SET;
3732     }
3733     if ((slp_state & ACPI_SS_DEV_SUSPEND) != 0) {
3734 	EVENTHANDLER_INVOKE(acpi_pre_dev_resume, stype);
3735 	DEVICE_RESUME(root_bus);
3736 	slp_state &= ~ACPI_SS_DEV_SUSPEND;
3737     }
3738     if ((slp_state & ACPI_SS_SLP_PREP) != 0) {
3739 	AcpiLeaveSleepState(acpi_sstate);
3740 	slp_state &= ~ACPI_SS_SLP_PREP;
3741     }
3742     if ((slp_state & ACPI_SS_SLEPT) != 0) {
3743 #if defined(__i386__) || defined(__amd64__)
3744 	/* NB: we are still using ACPI timecounter at this point. */
3745 	resume_TSC();
3746 #endif
3747 	acpi_resync_clock(sc);
3748 	acpi_enable_fixed_events(sc);
3749 	slp_state &= ~ACPI_SS_SLEPT;
3750     }
3751     sc->acpi_next_stype = POWER_STYPE_AWAKE;
3752 
3753     MPASS(slp_state == ACPI_SS_NONE);
3754 
3755     bus_topo_unlock();
3756 
3757 #ifdef EARLY_AP_STARTUP
3758     thread_lock(curthread);
3759     sched_unbind(curthread);
3760     thread_unlock(curthread);
3761 #else
3762     if (smp_started) {
3763 	thread_lock(curthread);
3764 	sched_unbind(curthread);
3765 	thread_unlock(curthread);
3766     }
3767 #endif
3768 
3769     resume_all_fs();
3770     resume_all_proc();
3771 
3772     EVENTHANDLER_INVOKE(power_resume, stype);
3773 
3774     /* Allow another sleep request after a while. */
3775     callout_schedule(&acpi_sleep_timer, hz * ACPI_MINIMUM_AWAKETIME);
3776 
3777     /* Run /etc/rc.resume after we are back. */
3778     if (devctl_process_running())
3779 	acpi_UserNotify("Resume", ACPI_ROOT_OBJECT, stype);
3780 
3781     return_ACPI_STATUS (status);
3782 }
3783 
3784 static void
acpi_resync_clock(struct acpi_softc * sc)3785 acpi_resync_clock(struct acpi_softc *sc)
3786 {
3787 
3788     /*
3789      * Warm up timecounter again and reset system clock.
3790      */
3791     (void)timecounter->tc_get_timecount(timecounter);
3792     inittodr(time_second + sc->acpi_sleep_delay);
3793 }
3794 
3795 /* Enable or disable the device's wake GPE. */
3796 int
acpi_wake_set_enable(device_t dev,int enable)3797 acpi_wake_set_enable(device_t dev, int enable)
3798 {
3799     struct acpi_prw_data prw;
3800     ACPI_STATUS status;
3801     int flags;
3802 
3803     /* Make sure the device supports waking the system and get the GPE. */
3804     if (acpi_parse_prw(acpi_get_handle(dev), &prw) != 0)
3805 	return (ENXIO);
3806 
3807     flags = acpi_get_flags(dev);
3808     if (enable) {
3809 	status = AcpiSetGpeWakeMask(prw.gpe_handle, prw.gpe_bit,
3810 	    ACPI_GPE_ENABLE);
3811 	if (ACPI_FAILURE(status)) {
3812 	    device_printf(dev, "enable wake failed\n");
3813 	    return (ENXIO);
3814 	}
3815 	acpi_set_flags(dev, flags | ACPI_FLAG_WAKE_ENABLED);
3816     } else {
3817 	status = AcpiSetGpeWakeMask(prw.gpe_handle, prw.gpe_bit,
3818 	    ACPI_GPE_DISABLE);
3819 	if (ACPI_FAILURE(status)) {
3820 	    device_printf(dev, "disable wake failed\n");
3821 	    return (ENXIO);
3822 	}
3823 	acpi_set_flags(dev, flags & ~ACPI_FLAG_WAKE_ENABLED);
3824     }
3825 
3826     return (0);
3827 }
3828 
3829 static int
acpi_wake_sleep_prep(struct acpi_softc * sc,ACPI_HANDLE handle,enum power_stype stype)3830 acpi_wake_sleep_prep(struct acpi_softc *sc, ACPI_HANDLE handle,
3831     enum power_stype stype)
3832 {
3833     int sstate;
3834     struct acpi_prw_data prw;
3835     device_t dev;
3836 
3837     /* Check that this is a wake-capable device and get its GPE. */
3838     if (acpi_parse_prw(handle, &prw) != 0)
3839 	return (ENXIO);
3840     dev = acpi_get_device(handle);
3841 
3842     sstate = acpi_stype_to_sstate(sc, stype);
3843 
3844     /*
3845      * The destination sleep state must be less than (i.e., higher power)
3846      * or equal to the value specified by _PRW.  If this GPE cannot be
3847      * enabled for the next sleep state, then disable it.  If it can and
3848      * the user requested it be enabled, turn on any required power resources
3849      * and set _PSW.
3850      */
3851     if (sstate > prw.lowest_wake) {
3852 	AcpiSetGpeWakeMask(prw.gpe_handle, prw.gpe_bit, ACPI_GPE_DISABLE);
3853 	if (bootverbose)
3854 	    device_printf(dev, "wake_prep disabled wake for %s (%s)\n",
3855 		acpi_name(handle), power_stype_to_name(stype));
3856     } else if (dev && (acpi_get_flags(dev) & ACPI_FLAG_WAKE_ENABLED) != 0) {
3857 	acpi_pwr_wake_enable(handle, 1);
3858 	acpi_SetInteger(handle, "_PSW", 1);
3859 	if (bootverbose)
3860 	    device_printf(dev, "wake_prep enabled for %s (%s)\n",
3861 		acpi_name(handle), power_stype_to_name(stype));
3862     }
3863 
3864     return (0);
3865 }
3866 
3867 static int
acpi_wake_run_prep(struct acpi_softc * sc,ACPI_HANDLE handle,enum power_stype stype)3868 acpi_wake_run_prep(struct acpi_softc *sc, ACPI_HANDLE handle,
3869     enum power_stype stype)
3870 {
3871     int sstate;
3872     struct acpi_prw_data prw;
3873     device_t dev;
3874 
3875     /*
3876      * Check that this is a wake-capable device and get its GPE.  Return
3877      * now if the user didn't enable this device for wake.
3878      */
3879     if (acpi_parse_prw(handle, &prw) != 0)
3880 	return (ENXIO);
3881     dev = acpi_get_device(handle);
3882     if (dev == NULL || (acpi_get_flags(dev) & ACPI_FLAG_WAKE_ENABLED) == 0)
3883 	return (0);
3884 
3885     sstate = acpi_stype_to_sstate(sc, stype);
3886 
3887     /*
3888      * If this GPE couldn't be enabled for the previous sleep state, it was
3889      * disabled before going to sleep so re-enable it.  If it was enabled,
3890      * clear _PSW and turn off any power resources it used.
3891      */
3892     if (sstate > prw.lowest_wake) {
3893 	AcpiSetGpeWakeMask(prw.gpe_handle, prw.gpe_bit, ACPI_GPE_ENABLE);
3894 	if (bootverbose)
3895 	    device_printf(dev, "run_prep re-enabled %s\n", acpi_name(handle));
3896     } else {
3897 	acpi_SetInteger(handle, "_PSW", 0);
3898 	acpi_pwr_wake_enable(handle, 0);
3899 	if (bootverbose)
3900 	    device_printf(dev, "run_prep cleaned up for %s\n",
3901 		acpi_name(handle));
3902     }
3903 
3904     return (0);
3905 }
3906 
3907 static ACPI_STATUS
acpi_wake_prep(ACPI_HANDLE handle,UINT32 level,void * context,void ** status)3908 acpi_wake_prep(ACPI_HANDLE handle, UINT32 level, void *context, void **status)
3909 {
3910     struct acpi_wake_prep_context *ctx = context;
3911 
3912     /* If suspending, run the sleep prep function, otherwise wake. */
3913     if (AcpiGbl_SystemAwakeAndRunning)
3914 	acpi_wake_sleep_prep(ctx->sc, handle, ctx->stype);
3915     else
3916 	acpi_wake_run_prep(ctx->sc, handle, ctx->stype);
3917     return (AE_OK);
3918 }
3919 
3920 /* Walk the tree rooted at acpi0 to prep devices for suspend/resume. */
3921 static int
acpi_wake_prep_walk(struct acpi_softc * sc,enum power_stype stype)3922 acpi_wake_prep_walk(struct acpi_softc *sc, enum power_stype stype)
3923 {
3924     ACPI_HANDLE sb_handle;
3925     struct acpi_wake_prep_context ctx = {
3926 	.sc = sc,
3927 	.stype = stype,
3928     };
3929 
3930     if (ACPI_SUCCESS(AcpiGetHandle(ACPI_ROOT_OBJECT, "\\_SB_", &sb_handle)))
3931 	AcpiWalkNamespace(ACPI_TYPE_DEVICE, sb_handle, 100,
3932 	    acpi_wake_prep, NULL, &ctx, NULL);
3933     return (0);
3934 }
3935 
3936 /* Walk the tree rooted at acpi0 to attach per-device wake sysctls. */
3937 static int
acpi_wake_sysctl_walk(device_t dev)3938 acpi_wake_sysctl_walk(device_t dev)
3939 {
3940     int error, i, numdevs;
3941     device_t *devlist;
3942     device_t child;
3943     ACPI_STATUS status;
3944 
3945     error = device_get_children(dev, &devlist, &numdevs);
3946     if (error != 0 || numdevs == 0) {
3947 	if (numdevs == 0)
3948 	    free(devlist, M_TEMP);
3949 	return (error);
3950     }
3951     for (i = 0; i < numdevs; i++) {
3952 	child = devlist[i];
3953 	acpi_wake_sysctl_walk(child);
3954 	if (!device_is_attached(child) || !acpi_has_flags(child))
3955 	    continue;
3956 	status = AcpiEvaluateObject(acpi_get_handle(child), "_PRW", NULL, NULL);
3957 	if (ACPI_SUCCESS(status)) {
3958 	    SYSCTL_ADD_PROC(device_get_sysctl_ctx(child),
3959 		SYSCTL_CHILDREN(device_get_sysctl_tree(child)), OID_AUTO,
3960 		"wake", CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT, child, 0,
3961 		acpi_wake_set_sysctl, "I", "Device set to wake the system");
3962 	}
3963     }
3964     free(devlist, M_TEMP);
3965 
3966     return (0);
3967 }
3968 
3969 /* Enable or disable wake from userland. */
3970 static int
acpi_wake_set_sysctl(SYSCTL_HANDLER_ARGS)3971 acpi_wake_set_sysctl(SYSCTL_HANDLER_ARGS)
3972 {
3973     int enable, error;
3974     device_t dev;
3975 
3976     dev = (device_t)arg1;
3977     enable = (acpi_get_flags(dev) & ACPI_FLAG_WAKE_ENABLED) ? 1 : 0;
3978 
3979     error = sysctl_handle_int(oidp, &enable, 0, req);
3980     if (error != 0 || req->newptr == NULL)
3981 	return (error);
3982     if (enable != 0 && enable != 1)
3983 	return (EINVAL);
3984 
3985     return (acpi_wake_set_enable(dev, enable));
3986 }
3987 
3988 /* Parse a device's _PRW into a structure. */
3989 int
acpi_parse_prw(ACPI_HANDLE h,struct acpi_prw_data * prw)3990 acpi_parse_prw(ACPI_HANDLE h, struct acpi_prw_data *prw)
3991 {
3992     ACPI_STATUS			status;
3993     ACPI_BUFFER			prw_buffer;
3994     ACPI_OBJECT			*res, *res2;
3995     int				error, i, power_count;
3996 
3997     if (h == NULL || prw == NULL)
3998 	return (EINVAL);
3999 
4000     /*
4001      * The _PRW object (7.2.9) is only required for devices that have the
4002      * ability to wake the system from a sleeping state.
4003      */
4004     error = EINVAL;
4005     prw_buffer.Pointer = NULL;
4006     prw_buffer.Length = ACPI_ALLOCATE_BUFFER;
4007     status = AcpiEvaluateObject(h, "_PRW", NULL, &prw_buffer);
4008     if (ACPI_FAILURE(status))
4009 	return (ENOENT);
4010     res = (ACPI_OBJECT *)prw_buffer.Pointer;
4011     if (res == NULL)
4012 	return (ENOENT);
4013     if (!ACPI_PKG_VALID(res, 2))
4014 	goto out;
4015 
4016     /*
4017      * Element 1 of the _PRW object:
4018      * The lowest power system sleeping state that can be entered while still
4019      * providing wake functionality.  The sleeping state being entered must
4020      * be less than (i.e., higher power) or equal to this value.
4021      */
4022     if (acpi_PkgInt32(res, 1, &prw->lowest_wake) != 0)
4023 	goto out;
4024 
4025     /*
4026      * Element 0 of the _PRW object:
4027      */
4028     switch (res->Package.Elements[0].Type) {
4029     case ACPI_TYPE_INTEGER:
4030 	/*
4031 	 * If the data type of this package element is numeric, then this
4032 	 * _PRW package element is the bit index in the GPEx_EN, in the
4033 	 * GPE blocks described in the FADT, of the enable bit that is
4034 	 * enabled for the wake event.
4035 	 */
4036 	prw->gpe_handle = NULL;
4037 	prw->gpe_bit = res->Package.Elements[0].Integer.Value;
4038 	error = 0;
4039 	break;
4040     case ACPI_TYPE_PACKAGE:
4041 	/*
4042 	 * If the data type of this package element is a package, then this
4043 	 * _PRW package element is itself a package containing two
4044 	 * elements.  The first is an object reference to the GPE Block
4045 	 * device that contains the GPE that will be triggered by the wake
4046 	 * event.  The second element is numeric and it contains the bit
4047 	 * index in the GPEx_EN, in the GPE Block referenced by the
4048 	 * first element in the package, of the enable bit that is enabled for
4049 	 * the wake event.
4050 	 *
4051 	 * For example, if this field is a package then it is of the form:
4052 	 * Package() {\_SB.PCI0.ISA.GPE, 2}
4053 	 */
4054 	res2 = &res->Package.Elements[0];
4055 	if (!ACPI_PKG_VALID(res2, 2))
4056 	    goto out;
4057 	prw->gpe_handle = acpi_GetReference(NULL, &res2->Package.Elements[0]);
4058 	if (prw->gpe_handle == NULL)
4059 	    goto out;
4060 	if (acpi_PkgInt32(res2, 1, &prw->gpe_bit) != 0)
4061 	    goto out;
4062 	error = 0;
4063 	break;
4064     default:
4065 	goto out;
4066     }
4067 
4068     /* Elements 2 to N of the _PRW object are power resources. */
4069     power_count = res->Package.Count - 2;
4070     if (power_count > ACPI_PRW_MAX_POWERRES) {
4071 	printf("ACPI device %s has too many power resources\n", acpi_name(h));
4072 	power_count = 0;
4073     }
4074     prw->power_res_count = power_count;
4075     for (i = 0; i < power_count; i++)
4076 	prw->power_res[i] = res->Package.Elements[i];
4077 
4078 out:
4079     if (prw_buffer.Pointer != NULL)
4080 	AcpiOsFree(prw_buffer.Pointer);
4081     return (error);
4082 }
4083 
4084 /*
4085  * ACPI Event Handlers
4086  */
4087 
4088 /* System Event Handlers (registered by EVENTHANDLER_REGISTER) */
4089 
4090 static void
acpi_system_eventhandler_sleep(void * arg,enum power_stype stype)4091 acpi_system_eventhandler_sleep(void *arg, enum power_stype stype)
4092 {
4093     struct acpi_softc *sc = (struct acpi_softc *)arg;
4094     int ret;
4095 
4096     ACPI_FUNCTION_TRACE_U32((char *)(uintptr_t)__func__, stype);
4097 
4098     /* Check if button action is disabled or unknown. */
4099     if (stype == POWER_STYPE_UNKNOWN)
4100 	return;
4101 
4102     /*
4103      * Request that the system prepare to enter the given suspend state. We can
4104      * totally pass an ACPI S-state to an enum power_stype.
4105      */
4106     ret = acpi_ReqSleepState(sc, stype);
4107     if (ret != 0)
4108 	device_printf(sc->acpi_dev,
4109 	    "request to enter state %s failed (err %d)\n",
4110 	    power_stype_to_name(stype), ret);
4111 
4112     return_VOID;
4113 }
4114 
4115 static void
acpi_system_eventhandler_wakeup(void * arg,enum power_stype stype)4116 acpi_system_eventhandler_wakeup(void *arg, enum power_stype stype)
4117 {
4118 
4119     ACPI_FUNCTION_TRACE_U32((char *)(uintptr_t)__func__, stype);
4120 
4121     /* Currently, nothing to do for wakeup. */
4122 
4123     return_VOID;
4124 }
4125 
4126 /*
4127  * ACPICA Event Handlers (FixedEvent, also called from button notify handler)
4128  */
4129 static void
acpi_invoke_sleep_eventhandler(void * context)4130 acpi_invoke_sleep_eventhandler(void *context)
4131 {
4132 
4133     EVENTHANDLER_INVOKE(acpi_sleep_event, *(enum power_stype *)context);
4134 }
4135 
4136 static void
acpi_invoke_wake_eventhandler(void * context)4137 acpi_invoke_wake_eventhandler(void *context)
4138 {
4139 
4140     EVENTHANDLER_INVOKE(acpi_wakeup_event, *(enum power_stype *)context);
4141 }
4142 
4143 UINT32
acpi_event_power_button_sleep(void * context)4144 acpi_event_power_button_sleep(void *context)
4145 {
4146 #if defined(__amd64__) || defined(__i386__)
4147     struct acpi_softc	*sc = (struct acpi_softc *)context;
4148 #else
4149     (void)context;
4150 #endif
4151 
4152     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
4153 
4154 #if defined(__amd64__) || defined(__i386__)
4155     if (ACPI_FAILURE(AcpiOsExecute(OSL_NOTIFY_HANDLER,
4156 	acpi_invoke_sleep_eventhandler, &sc->acpi_power_button_stype)))
4157 	return_VALUE (ACPI_INTERRUPT_NOT_HANDLED);
4158 #else
4159     shutdown_nice(RB_POWEROFF);
4160 #endif
4161 
4162     return_VALUE (ACPI_INTERRUPT_HANDLED);
4163 }
4164 
4165 UINT32
acpi_event_power_button_wake(void * context)4166 acpi_event_power_button_wake(void *context)
4167 {
4168     struct acpi_softc	*sc = (struct acpi_softc *)context;
4169 
4170     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
4171 
4172     if (ACPI_FAILURE(AcpiOsExecute(OSL_NOTIFY_HANDLER,
4173 	acpi_invoke_wake_eventhandler, &sc->acpi_power_button_stype)))
4174 	return_VALUE (ACPI_INTERRUPT_NOT_HANDLED);
4175     return_VALUE (ACPI_INTERRUPT_HANDLED);
4176 }
4177 
4178 UINT32
acpi_event_sleep_button_sleep(void * context)4179 acpi_event_sleep_button_sleep(void *context)
4180 {
4181     struct acpi_softc	*sc = (struct acpi_softc *)context;
4182 
4183     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
4184 
4185     if (ACPI_FAILURE(AcpiOsExecute(OSL_NOTIFY_HANDLER,
4186 	acpi_invoke_sleep_eventhandler, &sc->acpi_sleep_button_stype)))
4187 	return_VALUE (ACPI_INTERRUPT_NOT_HANDLED);
4188     return_VALUE (ACPI_INTERRUPT_HANDLED);
4189 }
4190 
4191 UINT32
acpi_event_sleep_button_wake(void * context)4192 acpi_event_sleep_button_wake(void *context)
4193 {
4194     struct acpi_softc	*sc = (struct acpi_softc *)context;
4195 
4196     ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
4197 
4198     if (ACPI_FAILURE(AcpiOsExecute(OSL_NOTIFY_HANDLER,
4199 	acpi_invoke_wake_eventhandler, &sc->acpi_sleep_button_stype)))
4200 	return_VALUE (ACPI_INTERRUPT_NOT_HANDLED);
4201     return_VALUE (ACPI_INTERRUPT_HANDLED);
4202 }
4203 
4204 /*
4205  * XXX This static buffer is suboptimal.  There is no locking so only
4206  * use this for single-threaded callers.
4207  */
4208 char *
acpi_name(ACPI_HANDLE handle)4209 acpi_name(ACPI_HANDLE handle)
4210 {
4211     ACPI_BUFFER buf;
4212     static char data[256];
4213 
4214     buf.Length = sizeof(data);
4215     buf.Pointer = data;
4216 
4217     if (handle && ACPI_SUCCESS(AcpiGetName(handle, ACPI_FULL_PATHNAME, &buf)))
4218 	return (data);
4219     return ("(unknown)");
4220 }
4221 
4222 /*
4223  * Debugging/bug-avoidance.  Avoid trying to fetch info on various
4224  * parts of the namespace.
4225  */
4226 int
acpi_avoid(ACPI_HANDLE handle)4227 acpi_avoid(ACPI_HANDLE handle)
4228 {
4229     char	*cp, *env, *np;
4230     int		len;
4231 
4232     np = acpi_name(handle);
4233     if (*np == '\\')
4234 	np++;
4235     if ((env = kern_getenv("debug.acpi.avoid")) == NULL)
4236 	return (0);
4237 
4238     /* Scan the avoid list checking for a match */
4239     cp = env;
4240     for (;;) {
4241 	while (*cp != 0 && isspace(*cp))
4242 	    cp++;
4243 	if (*cp == 0)
4244 	    break;
4245 	len = 0;
4246 	while (cp[len] != 0 && !isspace(cp[len]))
4247 	    len++;
4248 	if (!strncmp(cp, np, len)) {
4249 	    freeenv(env);
4250 	    return(1);
4251 	}
4252 	cp += len;
4253     }
4254     freeenv(env);
4255 
4256     return (0);
4257 }
4258 
4259 /*
4260  * Debugging/bug-avoidance.  Disable ACPI subsystem components.
4261  */
4262 int
acpi_disabled(char * subsys)4263 acpi_disabled(char *subsys)
4264 {
4265     char	*cp, *env;
4266     int		len;
4267 
4268     if ((env = kern_getenv("debug.acpi.disabled")) == NULL)
4269 	return (0);
4270     if (strcmp(env, "all") == 0) {
4271 	freeenv(env);
4272 	return (1);
4273     }
4274 
4275     /* Scan the disable list, checking for a match. */
4276     cp = env;
4277     for (;;) {
4278 	while (*cp != '\0' && isspace(*cp))
4279 	    cp++;
4280 	if (*cp == '\0')
4281 	    break;
4282 	len = 0;
4283 	while (cp[len] != '\0' && !isspace(cp[len]))
4284 	    len++;
4285 	if (strncmp(cp, subsys, len) == 0) {
4286 	    freeenv(env);
4287 	    return (1);
4288 	}
4289 	cp += len;
4290     }
4291     freeenv(env);
4292 
4293     return (0);
4294 }
4295 
4296 static void
acpi_lookup(void * arg,const char * name,device_t * dev)4297 acpi_lookup(void *arg, const char *name, device_t *dev)
4298 {
4299     ACPI_HANDLE handle;
4300 
4301     if (*dev != NULL)
4302 	return;
4303 
4304     /*
4305      * Allow any handle name that is specified as an absolute path and
4306      * starts with '\'.  We could restrict this to \_SB and friends,
4307      * but see acpi_probe_children() for notes on why we scan the entire
4308      * namespace for devices.
4309      *
4310      * XXX: The pathname argument to AcpiGetHandle() should be fixed to
4311      * be const.
4312      */
4313     if (name[0] != '\\')
4314 	return;
4315     if (ACPI_FAILURE(AcpiGetHandle(ACPI_ROOT_OBJECT, __DECONST(char *, name),
4316 	&handle)))
4317 	return;
4318     *dev = acpi_get_device(handle);
4319 }
4320 
4321 /*
4322  * Control interface.
4323  *
4324  * We multiplex ioctls for all participating ACPI devices here.  Individual
4325  * drivers wanting to be accessible via /dev/acpi should use the
4326  * register/deregister interface to make their handlers visible.
4327  */
4328 struct acpi_ioctl_hook
4329 {
4330     TAILQ_ENTRY(acpi_ioctl_hook) link;
4331     u_long			 cmd;
4332     acpi_ioctl_fn		 fn;
4333     void			 *arg;
4334 };
4335 
4336 static TAILQ_HEAD(,acpi_ioctl_hook) acpi_ioctl_hooks =
4337 	TAILQ_HEAD_INITIALIZER(acpi_ioctl_hooks);
4338 
4339 int
acpi_register_ioctl(u_long cmd,acpi_ioctl_fn fn,void * arg)4340 acpi_register_ioctl(u_long cmd, acpi_ioctl_fn fn, void *arg)
4341 {
4342     struct acpi_ioctl_hook *hp, *thp;
4343 
4344     hp = malloc(sizeof(*hp), M_ACPIDEV, M_WAITOK);
4345     hp->cmd = cmd;
4346     hp->fn = fn;
4347     hp->arg = arg;
4348 
4349     ACPI_LOCK(acpi);
4350     TAILQ_FOREACH(thp, &acpi_ioctl_hooks, link) {
4351 	if (thp->cmd == cmd) {
4352 	    ACPI_UNLOCK(acpi);
4353 	    free(hp, M_ACPIDEV);
4354 	    return (EBUSY);
4355 	}
4356     }
4357 
4358     TAILQ_INSERT_TAIL(&acpi_ioctl_hooks, hp, link);
4359     ACPI_UNLOCK(acpi);
4360 
4361     return (0);
4362 }
4363 
4364 void
acpi_deregister_ioctl(u_long cmd,acpi_ioctl_fn fn)4365 acpi_deregister_ioctl(u_long cmd, acpi_ioctl_fn fn)
4366 {
4367     struct acpi_ioctl_hook	*hp;
4368 
4369     ACPI_LOCK(acpi);
4370     TAILQ_FOREACH(hp, &acpi_ioctl_hooks, link)
4371 	if (hp->cmd == cmd && hp->fn == fn)
4372 	    break;
4373 
4374     if (hp != NULL) {
4375 	TAILQ_REMOVE(&acpi_ioctl_hooks, hp, link);
4376 	free(hp, M_ACPIDEV);
4377     }
4378     ACPI_UNLOCK(acpi);
4379 }
4380 
4381 void
acpi_deregister_ioctls(acpi_ioctl_fn fn)4382 acpi_deregister_ioctls(acpi_ioctl_fn fn)
4383 {
4384 	struct acpi_ioctl_hook *hp, *thp;
4385 
4386 	ACPI_LOCK(acpi);
4387 	TAILQ_FOREACH_SAFE(hp, &acpi_ioctl_hooks, link, thp) {
4388 		if (hp->fn == fn) {
4389 			TAILQ_REMOVE(&acpi_ioctl_hooks, hp, link);
4390 			free(hp, M_ACPIDEV);
4391 		}
4392 	}
4393 	ACPI_UNLOCK(acpi);
4394 }
4395 
4396 static int
acpiopen(struct cdev * dev,int flag,int fmt,struct thread * td)4397 acpiopen(struct cdev *dev, int flag, int fmt, struct thread *td)
4398 {
4399     return (0);
4400 }
4401 
4402 static int
acpiclose(struct cdev * dev,int flag,int fmt,struct thread * td)4403 acpiclose(struct cdev *dev, int flag, int fmt, struct thread *td)
4404 {
4405     return (0);
4406 }
4407 
4408 static int
acpiioctl(struct cdev * dev,u_long cmd,caddr_t addr,int flag,struct thread * td)4409 acpiioctl(struct cdev *dev, u_long cmd, caddr_t addr, int flag, struct thread *td)
4410 {
4411     struct acpi_softc		*sc;
4412     struct acpi_ioctl_hook	*hp;
4413     int				error;
4414     int				sstate;
4415 
4416     error = 0;
4417     hp = NULL;
4418     sc = dev->si_drv1;
4419 
4420     /*
4421      * Scan the list of registered ioctls, looking for handlers.
4422      */
4423     ACPI_LOCK(acpi);
4424     TAILQ_FOREACH(hp, &acpi_ioctl_hooks, link) {
4425 	if (hp->cmd == cmd)
4426 	    break;
4427     }
4428     ACPI_UNLOCK(acpi);
4429     if (hp)
4430 	return (hp->fn(cmd, addr, hp->arg));
4431 
4432     /*
4433      * Core ioctls are not permitted for non-writable user.
4434      * Currently, other ioctls just fetch information.
4435      * Not changing system behavior.
4436      */
4437     if ((flag & FWRITE) == 0)
4438 	return (EPERM);
4439 
4440     /* Core system ioctls. */
4441     switch (cmd) {
4442     case ACPIIO_REQSLPSTATE:
4443 	sstate = *(int *)addr;
4444 	if (sstate != ACPI_STATE_S5)
4445 	    return (acpi_ReqSleepState(sc, acpi_sstate_to_stype(sstate)));
4446 	device_printf(sc->acpi_dev, "power off via acpi ioctl not supported\n");
4447 	error = EOPNOTSUPP;
4448 	break;
4449     case ACPIIO_ACKSLPSTATE:
4450 	error = *(int *)addr;
4451 	error = acpi_AckSleepState(sc->acpi_clone, error);
4452 	break;
4453     case ACPIIO_SETSLPSTATE:	/* DEPRECATED */
4454 	sstate = *(int *)addr;
4455 	if (sstate < ACPI_STATE_S0 || sstate > ACPI_STATE_S5)
4456 	    return (EINVAL);
4457 	if (!acpi_supported_sstates[sstate])
4458 	    return (EOPNOTSUPP);
4459 	if (ACPI_FAILURE(acpi_SetSleepState(sc, acpi_sstate_to_stype(sstate))))
4460 	    error = ENXIO;
4461 	break;
4462     default:
4463 	error = ENXIO;
4464 	break;
4465     }
4466 
4467     return (error);
4468 }
4469 
4470 static int
acpi_s4bios_sysctl(SYSCTL_HANDLER_ARGS)4471 acpi_s4bios_sysctl(SYSCTL_HANDLER_ARGS)
4472 {
4473     struct acpi_softc *const sc = arg1;
4474     bool val;
4475     int error;
4476 
4477     val = sc->acpi_s4bios;
4478     error = sysctl_handle_bool(oidp, &val, 0, req);
4479     if (error != 0 || req->newptr == NULL)
4480 	return (error);
4481 
4482     if (val && !sc->acpi_s4bios_supported)
4483 	return (EOPNOTSUPP);
4484     sc->acpi_s4bios = val;
4485 
4486     return (0);
4487 }
4488 
4489 static int
acpi_sname_to_sstate(const char * sname)4490 acpi_sname_to_sstate(const char *sname)
4491 {
4492     int sstate;
4493 
4494     if (strcasecmp(sname, "NONE") == 0)
4495 	return (ACPI_STATE_UNKNOWN);
4496 
4497     if (toupper(sname[0]) == 'S') {
4498 	sstate = sname[1] - '0';
4499 	if (sstate >= ACPI_STATE_S0 && sstate <= ACPI_STATE_S5 &&
4500 	    sname[2] == '\0')
4501 	    return (sstate);
4502     }
4503     return (-1);
4504 }
4505 
4506 static const char *
acpi_sstate_to_sname(int state)4507 acpi_sstate_to_sname(int state)
4508 {
4509     static const char *snames[ACPI_S_STATE_COUNT] = {"S0", "S1", "S2", "S3",
4510 	"S4", "S5"};
4511 
4512     if (state == ACPI_STATE_UNKNOWN)
4513 	return ("NONE");
4514     if (state >= ACPI_STATE_S0 && state < ACPI_S_STATE_COUNT)
4515 	return (snames[state]);
4516     return (NULL);
4517 }
4518 
4519 static int
acpi_supported_sleep_state_sysctl(SYSCTL_HANDLER_ARGS)4520 acpi_supported_sleep_state_sysctl(SYSCTL_HANDLER_ARGS)
4521 {
4522     int error;
4523     struct sbuf sb;
4524     UINT8 state;
4525 
4526     sbuf_new(&sb, NULL, 32, SBUF_AUTOEXTEND);
4527     for (state = ACPI_STATE_S1; state < ACPI_S_STATE_COUNT; state++)
4528 	if (acpi_supported_sstates[state])
4529 	    sbuf_printf(&sb, "%s ", acpi_sstate_to_sname(state));
4530     sbuf_trim(&sb);
4531     sbuf_finish(&sb);
4532     error = sysctl_handle_string(oidp, sbuf_data(&sb), sbuf_len(&sb), req);
4533     sbuf_delete(&sb);
4534     return (error);
4535 }
4536 
4537 static int
acpi_suspend_state_sysctl(SYSCTL_HANDLER_ARGS)4538 acpi_suspend_state_sysctl(SYSCTL_HANDLER_ARGS)
4539 {
4540     char name[10];
4541     int err;
4542     struct acpi_softc *sc = oidp->oid_arg1;
4543     enum power_stype new_stype;
4544     enum power_stype old_stype = power_suspend_stype;
4545     int old_sstate = acpi_stype_to_sstate(sc, old_stype);
4546     int new_sstate;
4547 
4548     strlcpy(name, acpi_sstate_to_sname(old_sstate), sizeof(name));
4549     err = sysctl_handle_string(oidp, name, sizeof(name), req);
4550     if (err != 0 || req->newptr == NULL)
4551 	return (err);
4552 
4553     new_sstate = acpi_sname_to_sstate(name);
4554     if (new_sstate < 0)
4555 	return (EINVAL);
4556     new_stype = acpi_sstate_to_stype(new_sstate);
4557     if (new_sstate != ACPI_STATE_UNKNOWN &&
4558 	acpi_supported_stypes[new_stype] == false)
4559 	return (EOPNOTSUPP);
4560 
4561     if (new_stype != old_stype)
4562 	power_suspend_stype = new_stype;
4563     return (err);
4564 }
4565 
4566 static int
acpi_sleep_state_sysctl(SYSCTL_HANDLER_ARGS)4567 acpi_sleep_state_sysctl(SYSCTL_HANDLER_ARGS)
4568 {
4569     char sleep_state[10];
4570     int error;
4571     int new_sstate, old_sstate;
4572 
4573     old_sstate = *(int *)oidp->oid_arg1;
4574     strlcpy(sleep_state, acpi_sstate_to_sname(old_sstate), sizeof(sleep_state));
4575     error = sysctl_handle_string(oidp, sleep_state, sizeof(sleep_state), req);
4576     if (error == 0 && req->newptr != NULL) {
4577 	new_sstate = acpi_sname_to_sstate(sleep_state);
4578 	if (new_sstate < 0)
4579 	    return (EINVAL);
4580 	if (new_sstate < ACPI_S_STATE_COUNT &&
4581 	    !acpi_supported_sstates[new_sstate])
4582 	    return (EOPNOTSUPP);
4583 	if (new_sstate != old_sstate)
4584 	    *(int *)oidp->oid_arg1 = new_sstate;
4585     }
4586     return (error);
4587 }
4588 
4589 static int
acpi_stype_sysctl(SYSCTL_HANDLER_ARGS)4590 acpi_stype_sysctl(SYSCTL_HANDLER_ARGS)
4591 {
4592     char name[10];
4593     int err;
4594     int sstate;
4595     enum power_stype new_stype, old_stype;
4596 
4597     old_stype = *(enum power_stype *)oidp->oid_arg1;
4598     strlcpy(name, power_stype_to_name(old_stype), sizeof(name));
4599     err = sysctl_handle_string(oidp, name, sizeof(name), req);
4600     if (err != 0 || req->newptr == NULL)
4601 	return (err);
4602 
4603     if (strcasecmp(name, "NONE") == 0) {
4604 	new_stype = POWER_STYPE_UNKNOWN;
4605     } else {
4606 	new_stype = power_name_to_stype(name);
4607 	if (new_stype == POWER_STYPE_UNKNOWN) {
4608 	    sstate = acpi_sname_to_sstate(name);
4609 	    if (sstate < 0)
4610 		return (EINVAL);
4611 	    printf("warning: this sysctl expects a sleep type, but an ACPI "
4612 	           "S-state has been passed to it. This functionality is "
4613 	           "deprecated; see acpi(4).\n");
4614 	    MPASS(sstate < ACPI_S_STATE_COUNT);
4615 	    if (acpi_supported_sstates[sstate] == false)
4616 		return (EOPNOTSUPP);
4617 	    new_stype = acpi_sstate_to_stype(sstate);
4618 	}
4619 	if (acpi_supported_stypes[new_stype] == false)
4620 	    return (EOPNOTSUPP);
4621     }
4622 
4623     if (new_stype != old_stype)
4624 	*(enum power_stype *)oidp->oid_arg1 = new_stype;
4625     return (0);
4626 }
4627 
4628 /* Inform devctl(4) when we receive a Notify. */
4629 void
acpi_UserNotify(const char * subsystem,ACPI_HANDLE h,uint8_t notify)4630 acpi_UserNotify(const char *subsystem, ACPI_HANDLE h, uint8_t notify)
4631 {
4632     char		notify_buf[16];
4633     ACPI_BUFFER		handle_buf;
4634     ACPI_STATUS		status;
4635 
4636     if (subsystem == NULL)
4637 	return;
4638 
4639     handle_buf.Pointer = NULL;
4640     handle_buf.Length = ACPI_ALLOCATE_BUFFER;
4641     status = AcpiNsHandleToPathname(h, &handle_buf, FALSE);
4642     if (ACPI_FAILURE(status))
4643 	return;
4644     snprintf(notify_buf, sizeof(notify_buf), "notify=0x%02x", notify);
4645     devctl_notify("ACPI", subsystem, handle_buf.Pointer, notify_buf);
4646     AcpiOsFree(handle_buf.Pointer);
4647 }
4648 
4649 #ifdef ACPI_DEBUG
4650 /*
4651  * Support for parsing debug options from the kernel environment.
4652  *
4653  * Bits may be set in the AcpiDbgLayer and AcpiDbgLevel debug registers
4654  * by specifying the names of the bits in the debug.acpi.layer and
4655  * debug.acpi.level environment variables.  Bits may be unset by
4656  * prefixing the bit name with !.
4657  */
4658 struct debugtag
4659 {
4660     char	*name;
4661     UINT32	value;
4662 };
4663 
4664 static struct debugtag	dbg_layer[] = {
4665     {"ACPI_UTILITIES",		ACPI_UTILITIES},
4666     {"ACPI_HARDWARE",		ACPI_HARDWARE},
4667     {"ACPI_EVENTS",		ACPI_EVENTS},
4668     {"ACPI_TABLES",		ACPI_TABLES},
4669     {"ACPI_NAMESPACE",		ACPI_NAMESPACE},
4670     {"ACPI_PARSER",		ACPI_PARSER},
4671     {"ACPI_DISPATCHER",		ACPI_DISPATCHER},
4672     {"ACPI_EXECUTER",		ACPI_EXECUTER},
4673     {"ACPI_RESOURCES",		ACPI_RESOURCES},
4674     {"ACPI_CA_DEBUGGER",	ACPI_CA_DEBUGGER},
4675     {"ACPI_OS_SERVICES",	ACPI_OS_SERVICES},
4676     {"ACPI_CA_DISASSEMBLER",	ACPI_CA_DISASSEMBLER},
4677     {"ACPI_ALL_COMPONENTS",	ACPI_ALL_COMPONENTS},
4678 
4679     {"ACPI_AC_ADAPTER",		ACPI_AC_ADAPTER},
4680     {"ACPI_BATTERY",		ACPI_BATTERY},
4681     {"ACPI_BUS",		ACPI_BUS},
4682     {"ACPI_BUTTON",		ACPI_BUTTON},
4683     {"ACPI_EC", 		ACPI_EC},
4684     {"ACPI_FAN",		ACPI_FAN},
4685     {"ACPI_POWERRES",		ACPI_POWERRES},
4686     {"ACPI_PROCESSOR",		ACPI_PROCESSOR},
4687     {"ACPI_SPMC",		ACPI_SPMC},
4688     {"ACPI_THERMAL",		ACPI_THERMAL},
4689     {"ACPI_TIMER",		ACPI_TIMER},
4690     {"ACPI_ALL_DRIVERS",	ACPI_ALL_DRIVERS},
4691     {NULL, 0}
4692 };
4693 
4694 static struct debugtag dbg_level[] = {
4695     {"ACPI_LV_INIT",		ACPI_LV_INIT},
4696     {"ACPI_LV_DEBUG_OBJECT",	ACPI_LV_DEBUG_OBJECT},
4697     {"ACPI_LV_INFO",		ACPI_LV_INFO},
4698     {"ACPI_LV_REPAIR",		ACPI_LV_REPAIR},
4699     {"ACPI_LV_ALL_EXCEPTIONS",	ACPI_LV_ALL_EXCEPTIONS},
4700 
4701     /* Trace verbosity level 1 [Standard Trace Level] */
4702     {"ACPI_LV_INIT_NAMES",	ACPI_LV_INIT_NAMES},
4703     {"ACPI_LV_PARSE",		ACPI_LV_PARSE},
4704     {"ACPI_LV_LOAD",		ACPI_LV_LOAD},
4705     {"ACPI_LV_DISPATCH",	ACPI_LV_DISPATCH},
4706     {"ACPI_LV_EXEC",		ACPI_LV_EXEC},
4707     {"ACPI_LV_NAMES",		ACPI_LV_NAMES},
4708     {"ACPI_LV_OPREGION",	ACPI_LV_OPREGION},
4709     {"ACPI_LV_BFIELD",		ACPI_LV_BFIELD},
4710     {"ACPI_LV_TABLES",		ACPI_LV_TABLES},
4711     {"ACPI_LV_VALUES",		ACPI_LV_VALUES},
4712     {"ACPI_LV_OBJECTS",		ACPI_LV_OBJECTS},
4713     {"ACPI_LV_RESOURCES",	ACPI_LV_RESOURCES},
4714     {"ACPI_LV_USER_REQUESTS",	ACPI_LV_USER_REQUESTS},
4715     {"ACPI_LV_PACKAGE",		ACPI_LV_PACKAGE},
4716     {"ACPI_LV_VERBOSITY1",	ACPI_LV_VERBOSITY1},
4717 
4718     /* Trace verbosity level 2 [Function tracing and memory allocation] */
4719     {"ACPI_LV_ALLOCATIONS",	ACPI_LV_ALLOCATIONS},
4720     {"ACPI_LV_FUNCTIONS",	ACPI_LV_FUNCTIONS},
4721     {"ACPI_LV_OPTIMIZATIONS",	ACPI_LV_OPTIMIZATIONS},
4722     {"ACPI_LV_VERBOSITY2",	ACPI_LV_VERBOSITY2},
4723     {"ACPI_LV_ALL",		ACPI_LV_ALL},
4724 
4725     /* Trace verbosity level 3 [Threading, I/O, and Interrupts] */
4726     {"ACPI_LV_MUTEX",		ACPI_LV_MUTEX},
4727     {"ACPI_LV_THREADS",		ACPI_LV_THREADS},
4728     {"ACPI_LV_IO",		ACPI_LV_IO},
4729     {"ACPI_LV_INTERRUPTS",	ACPI_LV_INTERRUPTS},
4730     {"ACPI_LV_VERBOSITY3",	ACPI_LV_VERBOSITY3},
4731 
4732     /* Exceptionally verbose output -- also used in the global "DebugLevel"  */
4733     {"ACPI_LV_AML_DISASSEMBLE",	ACPI_LV_AML_DISASSEMBLE},
4734     {"ACPI_LV_VERBOSE_INFO",	ACPI_LV_VERBOSE_INFO},
4735     {"ACPI_LV_FULL_TABLES",	ACPI_LV_FULL_TABLES},
4736     {"ACPI_LV_EVENTS",		ACPI_LV_EVENTS},
4737     {"ACPI_LV_VERBOSE",		ACPI_LV_VERBOSE},
4738     {NULL, 0}
4739 };
4740 
4741 static void
acpi_parse_debug(char * cp,struct debugtag * tag,UINT32 * flag)4742 acpi_parse_debug(char *cp, struct debugtag *tag, UINT32 *flag)
4743 {
4744     char	*ep;
4745     int		i, l;
4746     int		set;
4747 
4748     while (*cp) {
4749 	if (isspace(*cp)) {
4750 	    cp++;
4751 	    continue;
4752 	}
4753 	ep = cp;
4754 	while (*ep && !isspace(*ep))
4755 	    ep++;
4756 	if (*cp == '!') {
4757 	    set = 0;
4758 	    cp++;
4759 	    if (cp == ep)
4760 		continue;
4761 	} else {
4762 	    set = 1;
4763 	}
4764 	l = ep - cp;
4765 	for (i = 0; tag[i].name != NULL; i++) {
4766 	    if (!strncmp(cp, tag[i].name, l)) {
4767 		if (set)
4768 		    *flag |= tag[i].value;
4769 		else
4770 		    *flag &= ~tag[i].value;
4771 	    }
4772 	}
4773 	cp = ep;
4774     }
4775 }
4776 
4777 static void
acpi_set_debugging(void * junk)4778 acpi_set_debugging(void *junk)
4779 {
4780     char	*layer, *level;
4781 
4782     if (cold) {
4783 	AcpiDbgLayer = 0;
4784 	AcpiDbgLevel = 0;
4785     }
4786 
4787     layer = kern_getenv("debug.acpi.layer");
4788     level = kern_getenv("debug.acpi.level");
4789     if (layer == NULL && level == NULL)
4790 	return;
4791 
4792     printf("ACPI set debug");
4793     if (layer != NULL) {
4794 	if (strcmp("NONE", layer) != 0)
4795 	    printf(" layer '%s'", layer);
4796 	acpi_parse_debug(layer, &dbg_layer[0], &AcpiDbgLayer);
4797 	freeenv(layer);
4798     }
4799     if (level != NULL) {
4800 	if (strcmp("NONE", level) != 0)
4801 	    printf(" level '%s'", level);
4802 	acpi_parse_debug(level, &dbg_level[0], &AcpiDbgLevel);
4803 	freeenv(level);
4804     }
4805     printf("\n");
4806 }
4807 
4808 SYSINIT(acpi_debugging, SI_SUB_TUNABLES, SI_ORDER_ANY, acpi_set_debugging,
4809 	NULL);
4810 
4811 static int
acpi_debug_sysctl(SYSCTL_HANDLER_ARGS)4812 acpi_debug_sysctl(SYSCTL_HANDLER_ARGS)
4813 {
4814     int		 error, *dbg;
4815     struct	 debugtag *tag;
4816     struct	 sbuf sb;
4817     char	 temp[128];
4818 
4819     if (sbuf_new(&sb, NULL, 128, SBUF_AUTOEXTEND) == NULL)
4820 	return (ENOMEM);
4821     if (strcmp(oidp->oid_arg1, "debug.acpi.layer") == 0) {
4822 	tag = &dbg_layer[0];
4823 	dbg = &AcpiDbgLayer;
4824     } else {
4825 	tag = &dbg_level[0];
4826 	dbg = &AcpiDbgLevel;
4827     }
4828 
4829     /* Get old values if this is a get request. */
4830     ACPI_SERIAL_BEGIN(acpi);
4831     if (*dbg == 0) {
4832 	sbuf_cpy(&sb, "NONE");
4833     } else if (req->newptr == NULL) {
4834 	for (; tag->name != NULL; tag++) {
4835 	    if ((*dbg & tag->value) == tag->value)
4836 		sbuf_printf(&sb, "%s ", tag->name);
4837 	}
4838     }
4839     sbuf_trim(&sb);
4840     sbuf_finish(&sb);
4841     strlcpy(temp, sbuf_data(&sb), sizeof(temp));
4842     sbuf_delete(&sb);
4843 
4844     error = sysctl_handle_string(oidp, temp, sizeof(temp), req);
4845 
4846     /* Check for error or no change */
4847     if (error == 0 && req->newptr != NULL) {
4848 	*dbg = 0;
4849 	kern_setenv((char *)oidp->oid_arg1, temp);
4850 	acpi_set_debugging(NULL);
4851     }
4852     ACPI_SERIAL_END(acpi);
4853 
4854     return (error);
4855 }
4856 
4857 SYSCTL_PROC(_debug_acpi, OID_AUTO, layer,
4858     CTLFLAG_RW | CTLTYPE_STRING | CTLFLAG_MPSAFE, "debug.acpi.layer", 0,
4859     acpi_debug_sysctl, "A",
4860     "");
4861 SYSCTL_PROC(_debug_acpi, OID_AUTO, level,
4862     CTLFLAG_RW | CTLTYPE_STRING | CTLFLAG_MPSAFE, "debug.acpi.level", 0,
4863     acpi_debug_sysctl, "A",
4864     "");
4865 #endif /* ACPI_DEBUG */
4866 
4867 static int
acpi_debug_objects_sysctl(SYSCTL_HANDLER_ARGS)4868 acpi_debug_objects_sysctl(SYSCTL_HANDLER_ARGS)
4869 {
4870 	int	error;
4871 	int	old;
4872 
4873 	old = acpi_debug_objects;
4874 	error = sysctl_handle_int(oidp, &acpi_debug_objects, 0, req);
4875 	if (error != 0 || req->newptr == NULL)
4876 		return (error);
4877 	if (old == acpi_debug_objects || (old && acpi_debug_objects))
4878 		return (0);
4879 
4880 	ACPI_SERIAL_BEGIN(acpi);
4881 	AcpiGbl_EnableAmlDebugObject = acpi_debug_objects ? TRUE : FALSE;
4882 	ACPI_SERIAL_END(acpi);
4883 
4884 	return (0);
4885 }
4886 
4887 static int
acpi_parse_interfaces(char * str,struct acpi_interface * iface)4888 acpi_parse_interfaces(char *str, struct acpi_interface *iface)
4889 {
4890 	char *p;
4891 	size_t len;
4892 	int i, j;
4893 
4894 	p = str;
4895 	while (isspace(*p) || *p == ',')
4896 		p++;
4897 	len = strlen(p);
4898 	if (len == 0)
4899 		return (0);
4900 	p = strdup(p, M_TEMP);
4901 	for (i = 0; i < len; i++)
4902 		if (p[i] == ',')
4903 			p[i] = '\0';
4904 	i = j = 0;
4905 	while (i < len)
4906 		if (isspace(p[i]) || p[i] == '\0')
4907 			i++;
4908 		else {
4909 			i += strlen(p + i) + 1;
4910 			j++;
4911 		}
4912 	if (j == 0) {
4913 		free(p, M_TEMP);
4914 		return (0);
4915 	}
4916 	iface->data = malloc(sizeof(*iface->data) * j, M_TEMP, M_WAITOK);
4917 	iface->num = j;
4918 	i = j = 0;
4919 	while (i < len)
4920 		if (isspace(p[i]) || p[i] == '\0')
4921 			i++;
4922 		else {
4923 			iface->data[j] = p + i;
4924 			i += strlen(p + i) + 1;
4925 			j++;
4926 		}
4927 
4928 	return (j);
4929 }
4930 
4931 static void
acpi_free_interfaces(struct acpi_interface * iface)4932 acpi_free_interfaces(struct acpi_interface *iface)
4933 {
4934 
4935 	free(iface->data[0], M_TEMP);
4936 	free(iface->data, M_TEMP);
4937 }
4938 
4939 static void
acpi_reset_interfaces(device_t dev)4940 acpi_reset_interfaces(device_t dev)
4941 {
4942 	struct acpi_interface list;
4943 	ACPI_STATUS status;
4944 	int i;
4945 
4946 	if (acpi_parse_interfaces(acpi_install_interface, &list) > 0) {
4947 		for (i = 0; i < list.num; i++) {
4948 			status = AcpiInstallInterface(list.data[i]);
4949 			if (ACPI_FAILURE(status))
4950 				device_printf(dev,
4951 				    "failed to install _OSI(\"%s\"): %s\n",
4952 				    list.data[i], AcpiFormatException(status));
4953 			else if (bootverbose)
4954 				device_printf(dev, "installed _OSI(\"%s\")\n",
4955 				    list.data[i]);
4956 		}
4957 		acpi_free_interfaces(&list);
4958 	}
4959 	if (acpi_parse_interfaces(acpi_remove_interface, &list) > 0) {
4960 		for (i = 0; i < list.num; i++) {
4961 			status = AcpiRemoveInterface(list.data[i]);
4962 			if (ACPI_FAILURE(status))
4963 				device_printf(dev,
4964 				    "failed to remove _OSI(\"%s\"): %s\n",
4965 				    list.data[i], AcpiFormatException(status));
4966 			else if (bootverbose)
4967 				device_printf(dev, "removed _OSI(\"%s\")\n",
4968 				    list.data[i]);
4969 		}
4970 		acpi_free_interfaces(&list);
4971 	}
4972 
4973 	/*
4974 	 * Apple Mac hardware quirk: install Darwin OSI.
4975 	 *
4976 	 * On Apple hardware, install the Darwin OSI and remove the Windows OSI
4977 	 * to match Linux behavior.
4978 	 *
4979 	 * This is required for dual-GPU MacBook Pro systems
4980 	 * (Intel iGPU + AMD/NVIDIA dGPU) where the iGPU is hidden when the
4981 	 * firmware doesn't see Darwin OSI, but it also unlocks additional ACPI
4982 	 * support on non-MacBook Pro Apple platforms.
4983 	 *
4984 	 * Apple's ACPI firmware checks _OSI("Darwin") and sets OSYS=10000
4985 	 * for macOS. Many device methods use OSDW() which checks OSYS==10000
4986 	 * for macOS-specific behavior including GPU visibility and power
4987 	 * management.
4988 	 *
4989 	 * Linux enables Darwin OSI by default on Apple hardware and disables
4990 	 * all Windows OSI strings (drivers/acpi/osi.c). Users can override
4991 	 * this behavior with acpi_osi=!Darwin to get Windows-like behavior,
4992 	 * in general, but this logic makes that process unnecessary.
4993 	 *
4994 	 * Detect Apple via SMBIOS and enable Darwin while disabling Windows
4995 	 * vendor strings. This makes both GPUs visible on dual-GPU MacBook Pro
4996 	 * systems (Intel iGPU + AMD dGPU) and unlocks full platform
4997 	 * ACPI support.
4998 	 */
4999 	if (acpi_apple_darwin_osi) {
5000 		char *vendor = kern_getenv("smbios.system.maker");
5001 		if (vendor != NULL) {
5002 			if (strcmp(vendor, "Apple Inc.") == 0 ||
5003 			    strcmp(vendor, "Apple Computer, Inc.") == 0) {
5004 				/* Disable all other OSI vendor strings. */
5005 				status = AcpiUpdateInterfaces(
5006 				    ACPI_DISABLE_ALL_VENDOR_STRINGS);
5007 				if (ACPI_SUCCESS(status)) {
5008 					/* Install Darwin OSI */
5009 					status = AcpiInstallInterface("Darwin");
5010 				}
5011 				if (bootverbose) {
5012 					if (ACPI_SUCCESS(status)) {
5013 						device_printf(dev,
5014 						    "disabled non-Darwin OSI & "
5015 						    "installed Darwin OSI\n");
5016 					} else {
5017 						device_printf(dev,
5018 						    "could not install "
5019 						    "Darwin OSI: %s\n",
5020 						    AcpiFormatException(status));
5021 					}
5022 				}
5023 			} else if (bootverbose) {
5024 				device_printf(dev,
5025 				    "Not installing Darwin OSI on unsupported platform: %s\n",
5026 				    vendor);
5027 			}
5028 			freeenv(vendor);
5029 		}
5030 	}
5031 }
5032 
5033 static int
acpi_pm_func(u_long cmd,void * arg,enum power_stype stype)5034 acpi_pm_func(u_long cmd, void *arg, enum power_stype stype)
5035 {
5036 	int	error;
5037 	struct	acpi_softc *sc;
5038 
5039 	error = 0;
5040 	switch (cmd) {
5041 	case POWER_CMD_SUSPEND:
5042 		sc = (struct acpi_softc *)arg;
5043 		if (sc == NULL) {
5044 			error = EINVAL;
5045 			goto out;
5046 		}
5047 		if (ACPI_FAILURE(acpi_EnterSleepState(sc, stype)))
5048 			error = ENXIO;
5049 		break;
5050 	default:
5051 		error = EINVAL;
5052 		goto out;
5053 	}
5054 
5055 out:
5056 	return (error);
5057 }
5058 
5059 static void
acpi_pm_register(void * arg)5060 acpi_pm_register(void *arg)
5061 {
5062     if (!cold || resource_disabled("acpi", 0))
5063 	return;
5064 
5065     power_pm_register(POWER_PM_TYPE_ACPI, acpi_pm_func, NULL,
5066 	acpi_supported_stypes);
5067 }
5068 
5069 SYSINIT(power, SI_SUB_KLD, SI_ORDER_ANY, acpi_pm_register, NULL);
5070