i2c: make i2c_get_adapter prototype clearer
[linux-2.6/linux-acpi-2.6/ibm-acpi-2.6.git] / drivers / acpi / osl.c
blob4a6753009d790130bed6a9fcfa5f5cc765b0e4c6
1 /*
2 * acpi_osl.c - OS-dependent functions ($Revision: 83 $)
4 * Copyright (C) 2000 Andrew Henroid
5 * Copyright (C) 2001, 2002 Andy Grover <andrew.grover@intel.com>
6 * Copyright (C) 2001, 2002 Paul Diefenbaugh <paul.s.diefenbaugh@intel.com>
7 * Copyright (c) 2008 Intel Corporation
8 * Author: Matthew Wilcox <willy@linux.intel.com>
10 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
12 * This program is free software; you can redistribute it and/or modify
13 * it under the terms of the GNU General Public License as published by
14 * the Free Software Foundation; either version 2 of the License, or
15 * (at your option) any later version.
17 * This program is distributed in the hope that it will be useful,
18 * but WITHOUT ANY WARRANTY; without even the implied warranty of
19 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
20 * GNU General Public License for more details.
22 * You should have received a copy of the GNU General Public License
23 * along with this program; if not, write to the Free Software
24 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
26 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
30 #include <linux/module.h>
31 #include <linux/kernel.h>
32 #include <linux/slab.h>
33 #include <linux/mm.h>
34 #include <linux/pci.h>
35 #include <linux/interrupt.h>
36 #include <linux/kmod.h>
37 #include <linux/delay.h>
38 #include <linux/workqueue.h>
39 #include <linux/nmi.h>
40 #include <linux/acpi.h>
41 #include <linux/acpi_io.h>
42 #include <linux/efi.h>
43 #include <linux/ioport.h>
44 #include <linux/list.h>
45 #include <linux/jiffies.h>
46 #include <linux/semaphore.h>
48 #include <asm/io.h>
49 #include <asm/uaccess.h>
51 #include <acpi/acpi.h>
52 #include <acpi/acpi_bus.h>
53 #include <acpi/processor.h>
55 #define _COMPONENT ACPI_OS_SERVICES
56 ACPI_MODULE_NAME("osl");
57 #define PREFIX "ACPI: "
58 struct acpi_os_dpc {
59 acpi_osd_exec_callback function;
60 void *context;
61 struct work_struct work;
62 int wait;
65 #ifdef CONFIG_ACPI_CUSTOM_DSDT
66 #include CONFIG_ACPI_CUSTOM_DSDT_FILE
67 #endif
69 #ifdef ENABLE_DEBUGGER
70 #include <linux/kdb.h>
72 /* stuff for debugger support */
73 int acpi_in_debugger;
74 EXPORT_SYMBOL(acpi_in_debugger);
76 extern char line_buf[80];
77 #endif /*ENABLE_DEBUGGER */
79 static unsigned int acpi_irq_irq;
80 static acpi_osd_handler acpi_irq_handler;
81 static void *acpi_irq_context;
82 static struct workqueue_struct *kacpid_wq;
83 static struct workqueue_struct *kacpi_notify_wq;
84 static struct workqueue_struct *kacpi_hotplug_wq;
86 struct acpi_res_list {
87 resource_size_t start;
88 resource_size_t end;
89 acpi_adr_space_type resource_type; /* IO port, System memory, ...*/
90 char name[5]; /* only can have a length of 4 chars, make use of this
91 one instead of res->name, no need to kalloc then */
92 struct list_head resource_list;
93 int count;
96 static LIST_HEAD(resource_list_head);
97 static DEFINE_SPINLOCK(acpi_res_lock);
100 * This list of permanent mappings is for memory that may be accessed from
101 * interrupt context, where we can't do the ioremap().
103 struct acpi_ioremap {
104 struct list_head list;
105 void __iomem *virt;
106 acpi_physical_address phys;
107 acpi_size size;
108 struct kref ref;
111 static LIST_HEAD(acpi_ioremaps);
112 static DEFINE_SPINLOCK(acpi_ioremap_lock);
114 static void __init acpi_osi_setup_late(void);
117 * The story of _OSI(Linux)
119 * From pre-history through Linux-2.6.22,
120 * Linux responded TRUE upon a BIOS OSI(Linux) query.
122 * Unfortunately, reference BIOS writers got wind of this
123 * and put OSI(Linux) in their example code, quickly exposing
124 * this string as ill-conceived and opening the door to
125 * an un-bounded number of BIOS incompatibilities.
127 * For example, OSI(Linux) was used on resume to re-POST a
128 * video card on one system, because Linux at that time
129 * could not do a speedy restore in its native driver.
130 * But then upon gaining quick native restore capability,
131 * Linux has no way to tell the BIOS to skip the time-consuming
132 * POST -- putting Linux at a permanent performance disadvantage.
133 * On another system, the BIOS writer used OSI(Linux)
134 * to infer native OS support for IPMI! On other systems,
135 * OSI(Linux) simply got in the way of Linux claiming to
136 * be compatible with other operating systems, exposing
137 * BIOS issues such as skipped device initialization.
139 * So "Linux" turned out to be a really poor chose of
140 * OSI string, and from Linux-2.6.23 onward we respond FALSE.
142 * BIOS writers should NOT query _OSI(Linux) on future systems.
143 * Linux will complain on the console when it sees it, and return FALSE.
144 * To get Linux to return TRUE for your system will require
145 * a kernel source update to add a DMI entry,
146 * or boot with "acpi_osi=Linux"
149 static struct osi_linux {
150 unsigned int enable:1;
151 unsigned int dmi:1;
152 unsigned int cmdline:1;
153 } osi_linux = {0, 0, 0};
155 static u32 acpi_osi_handler(acpi_string interface, u32 supported)
157 if (!strcmp("Linux", interface)) {
159 printk(KERN_NOTICE FW_BUG PREFIX
160 "BIOS _OSI(Linux) query %s%s\n",
161 osi_linux.enable ? "honored" : "ignored",
162 osi_linux.cmdline ? " via cmdline" :
163 osi_linux.dmi ? " via DMI" : "");
166 return supported;
169 static void __init acpi_request_region (struct acpi_generic_address *addr,
170 unsigned int length, char *desc)
172 if (!addr->address || !length)
173 return;
175 /* Resources are never freed */
176 if (addr->space_id == ACPI_ADR_SPACE_SYSTEM_IO)
177 request_region(addr->address, length, desc);
178 else if (addr->space_id == ACPI_ADR_SPACE_SYSTEM_MEMORY)
179 request_mem_region(addr->address, length, desc);
182 static int __init acpi_reserve_resources(void)
184 acpi_request_region(&acpi_gbl_FADT.xpm1a_event_block, acpi_gbl_FADT.pm1_event_length,
185 "ACPI PM1a_EVT_BLK");
187 acpi_request_region(&acpi_gbl_FADT.xpm1b_event_block, acpi_gbl_FADT.pm1_event_length,
188 "ACPI PM1b_EVT_BLK");
190 acpi_request_region(&acpi_gbl_FADT.xpm1a_control_block, acpi_gbl_FADT.pm1_control_length,
191 "ACPI PM1a_CNT_BLK");
193 acpi_request_region(&acpi_gbl_FADT.xpm1b_control_block, acpi_gbl_FADT.pm1_control_length,
194 "ACPI PM1b_CNT_BLK");
196 if (acpi_gbl_FADT.pm_timer_length == 4)
197 acpi_request_region(&acpi_gbl_FADT.xpm_timer_block, 4, "ACPI PM_TMR");
199 acpi_request_region(&acpi_gbl_FADT.xpm2_control_block, acpi_gbl_FADT.pm2_control_length,
200 "ACPI PM2_CNT_BLK");
202 /* Length of GPE blocks must be a non-negative multiple of 2 */
204 if (!(acpi_gbl_FADT.gpe0_block_length & 0x1))
205 acpi_request_region(&acpi_gbl_FADT.xgpe0_block,
206 acpi_gbl_FADT.gpe0_block_length, "ACPI GPE0_BLK");
208 if (!(acpi_gbl_FADT.gpe1_block_length & 0x1))
209 acpi_request_region(&acpi_gbl_FADT.xgpe1_block,
210 acpi_gbl_FADT.gpe1_block_length, "ACPI GPE1_BLK");
212 return 0;
214 device_initcall(acpi_reserve_resources);
216 void acpi_os_printf(const char *fmt, ...)
218 va_list args;
219 va_start(args, fmt);
220 acpi_os_vprintf(fmt, args);
221 va_end(args);
224 void acpi_os_vprintf(const char *fmt, va_list args)
226 static char buffer[512];
228 vsprintf(buffer, fmt, args);
230 #ifdef ENABLE_DEBUGGER
231 if (acpi_in_debugger) {
232 kdb_printf("%s", buffer);
233 } else {
234 printk(KERN_CONT "%s", buffer);
236 #else
237 printk(KERN_CONT "%s", buffer);
238 #endif
241 acpi_physical_address __init acpi_os_get_root_pointer(void)
243 if (efi_enabled) {
244 if (efi.acpi20 != EFI_INVALID_TABLE_ADDR)
245 return efi.acpi20;
246 else if (efi.acpi != EFI_INVALID_TABLE_ADDR)
247 return efi.acpi;
248 else {
249 printk(KERN_ERR PREFIX
250 "System description tables not found\n");
251 return 0;
253 } else {
254 acpi_physical_address pa = 0;
256 acpi_find_root_pointer(&pa);
257 return pa;
261 /* Must be called with 'acpi_ioremap_lock' or RCU read lock held. */
262 static struct acpi_ioremap *
263 acpi_map_lookup(acpi_physical_address phys, acpi_size size)
265 struct acpi_ioremap *map;
267 list_for_each_entry_rcu(map, &acpi_ioremaps, list)
268 if (map->phys <= phys &&
269 phys + size <= map->phys + map->size)
270 return map;
272 return NULL;
275 /* Must be called with 'acpi_ioremap_lock' or RCU read lock held. */
276 static void __iomem *
277 acpi_map_vaddr_lookup(acpi_physical_address phys, unsigned int size)
279 struct acpi_ioremap *map;
281 map = acpi_map_lookup(phys, size);
282 if (map)
283 return map->virt + (phys - map->phys);
285 return NULL;
288 /* Must be called with 'acpi_ioremap_lock' or RCU read lock held. */
289 static struct acpi_ioremap *
290 acpi_map_lookup_virt(void __iomem *virt, acpi_size size)
292 struct acpi_ioremap *map;
294 list_for_each_entry_rcu(map, &acpi_ioremaps, list)
295 if (map->virt <= virt &&
296 virt + size <= map->virt + map->size)
297 return map;
299 return NULL;
302 void __iomem *__init_refok
303 acpi_os_map_memory(acpi_physical_address phys, acpi_size size)
305 struct acpi_ioremap *map, *tmp_map;
306 unsigned long flags;
307 void __iomem *virt;
308 acpi_physical_address pg_off;
309 acpi_size pg_sz;
311 if (phys > ULONG_MAX) {
312 printk(KERN_ERR PREFIX "Cannot map memory that high\n");
313 return NULL;
316 if (!acpi_gbl_permanent_mmap)
317 return __acpi_map_table((unsigned long)phys, size);
319 map = kzalloc(sizeof(*map), GFP_KERNEL);
320 if (!map)
321 return NULL;
323 pg_off = round_down(phys, PAGE_SIZE);
324 pg_sz = round_up(phys + size, PAGE_SIZE) - pg_off;
325 virt = acpi_os_ioremap(pg_off, pg_sz);
326 if (!virt) {
327 kfree(map);
328 return NULL;
331 INIT_LIST_HEAD(&map->list);
332 map->virt = virt;
333 map->phys = pg_off;
334 map->size = pg_sz;
335 kref_init(&map->ref);
337 spin_lock_irqsave(&acpi_ioremap_lock, flags);
338 /* Check if page has already been mapped. */
339 tmp_map = acpi_map_lookup(phys, size);
340 if (tmp_map) {
341 kref_get(&tmp_map->ref);
342 spin_unlock_irqrestore(&acpi_ioremap_lock, flags);
343 iounmap(map->virt);
344 kfree(map);
345 return tmp_map->virt + (phys - tmp_map->phys);
347 list_add_tail_rcu(&map->list, &acpi_ioremaps);
348 spin_unlock_irqrestore(&acpi_ioremap_lock, flags);
350 return map->virt + (phys - map->phys);
352 EXPORT_SYMBOL_GPL(acpi_os_map_memory);
354 static void acpi_kref_del_iomap(struct kref *ref)
356 struct acpi_ioremap *map;
358 map = container_of(ref, struct acpi_ioremap, ref);
359 list_del_rcu(&map->list);
362 void __ref acpi_os_unmap_memory(void __iomem *virt, acpi_size size)
364 struct acpi_ioremap *map;
365 unsigned long flags;
366 int del;
368 if (!acpi_gbl_permanent_mmap) {
369 __acpi_unmap_table(virt, size);
370 return;
373 spin_lock_irqsave(&acpi_ioremap_lock, flags);
374 map = acpi_map_lookup_virt(virt, size);
375 if (!map) {
376 spin_unlock_irqrestore(&acpi_ioremap_lock, flags);
377 printk(KERN_ERR PREFIX "%s: bad address %p\n", __func__, virt);
378 dump_stack();
379 return;
382 del = kref_put(&map->ref, acpi_kref_del_iomap);
383 spin_unlock_irqrestore(&acpi_ioremap_lock, flags);
385 if (!del)
386 return;
388 synchronize_rcu();
389 iounmap(map->virt);
390 kfree(map);
392 EXPORT_SYMBOL_GPL(acpi_os_unmap_memory);
394 void __init early_acpi_os_unmap_memory(void __iomem *virt, acpi_size size)
396 if (!acpi_gbl_permanent_mmap)
397 __acpi_unmap_table(virt, size);
400 int acpi_os_map_generic_address(struct acpi_generic_address *addr)
402 void __iomem *virt;
404 if (addr->space_id != ACPI_ADR_SPACE_SYSTEM_MEMORY)
405 return 0;
407 if (!addr->address || !addr->bit_width)
408 return -EINVAL;
410 virt = acpi_os_map_memory(addr->address, addr->bit_width / 8);
411 if (!virt)
412 return -EIO;
414 return 0;
416 EXPORT_SYMBOL_GPL(acpi_os_map_generic_address);
418 void acpi_os_unmap_generic_address(struct acpi_generic_address *addr)
420 void __iomem *virt;
421 unsigned long flags;
422 acpi_size size = addr->bit_width / 8;
424 if (addr->space_id != ACPI_ADR_SPACE_SYSTEM_MEMORY)
425 return;
427 if (!addr->address || !addr->bit_width)
428 return;
430 spin_lock_irqsave(&acpi_ioremap_lock, flags);
431 virt = acpi_map_vaddr_lookup(addr->address, size);
432 spin_unlock_irqrestore(&acpi_ioremap_lock, flags);
434 acpi_os_unmap_memory(virt, size);
436 EXPORT_SYMBOL_GPL(acpi_os_unmap_generic_address);
438 #ifdef ACPI_FUTURE_USAGE
439 acpi_status
440 acpi_os_get_physical_address(void *virt, acpi_physical_address * phys)
442 if (!phys || !virt)
443 return AE_BAD_PARAMETER;
445 *phys = virt_to_phys(virt);
447 return AE_OK;
449 #endif
451 #define ACPI_MAX_OVERRIDE_LEN 100
453 static char acpi_os_name[ACPI_MAX_OVERRIDE_LEN];
455 acpi_status
456 acpi_os_predefined_override(const struct acpi_predefined_names *init_val,
457 acpi_string * new_val)
459 if (!init_val || !new_val)
460 return AE_BAD_PARAMETER;
462 *new_val = NULL;
463 if (!memcmp(init_val->name, "_OS_", 4) && strlen(acpi_os_name)) {
464 printk(KERN_INFO PREFIX "Overriding _OS definition to '%s'\n",
465 acpi_os_name);
466 *new_val = acpi_os_name;
469 return AE_OK;
472 acpi_status
473 acpi_os_table_override(struct acpi_table_header * existing_table,
474 struct acpi_table_header ** new_table)
476 if (!existing_table || !new_table)
477 return AE_BAD_PARAMETER;
479 *new_table = NULL;
481 #ifdef CONFIG_ACPI_CUSTOM_DSDT
482 if (strncmp(existing_table->signature, "DSDT", 4) == 0)
483 *new_table = (struct acpi_table_header *)AmlCode;
484 #endif
485 if (*new_table != NULL) {
486 printk(KERN_WARNING PREFIX "Override [%4.4s-%8.8s], "
487 "this is unsafe: tainting kernel\n",
488 existing_table->signature,
489 existing_table->oem_table_id);
490 add_taint(TAINT_OVERRIDDEN_ACPI_TABLE);
492 return AE_OK;
495 static irqreturn_t acpi_irq(int irq, void *dev_id)
497 u32 handled;
499 handled = (*acpi_irq_handler) (acpi_irq_context);
501 if (handled) {
502 acpi_irq_handled++;
503 return IRQ_HANDLED;
504 } else {
505 acpi_irq_not_handled++;
506 return IRQ_NONE;
510 acpi_status
511 acpi_os_install_interrupt_handler(u32 gsi, acpi_osd_handler handler,
512 void *context)
514 unsigned int irq;
516 acpi_irq_stats_init();
519 * Ignore the GSI from the core, and use the value in our copy of the
520 * FADT. It may not be the same if an interrupt source override exists
521 * for the SCI.
523 gsi = acpi_gbl_FADT.sci_interrupt;
524 if (acpi_gsi_to_irq(gsi, &irq) < 0) {
525 printk(KERN_ERR PREFIX "SCI (ACPI GSI %d) not registered\n",
526 gsi);
527 return AE_OK;
530 acpi_irq_handler = handler;
531 acpi_irq_context = context;
532 if (request_irq(irq, acpi_irq, IRQF_SHARED, "acpi", acpi_irq)) {
533 printk(KERN_ERR PREFIX "SCI (IRQ%d) allocation failed\n", irq);
534 return AE_NOT_ACQUIRED;
536 acpi_irq_irq = irq;
538 return AE_OK;
541 acpi_status acpi_os_remove_interrupt_handler(u32 irq, acpi_osd_handler handler)
543 if (irq) {
544 free_irq(irq, acpi_irq);
545 acpi_irq_handler = NULL;
546 acpi_irq_irq = 0;
549 return AE_OK;
553 * Running in interpreter thread context, safe to sleep
556 void acpi_os_sleep(u64 ms)
558 schedule_timeout_interruptible(msecs_to_jiffies(ms));
561 void acpi_os_stall(u32 us)
563 while (us) {
564 u32 delay = 1000;
566 if (delay > us)
567 delay = us;
568 udelay(delay);
569 touch_nmi_watchdog();
570 us -= delay;
575 * Support ACPI 3.0 AML Timer operand
576 * Returns 64-bit free-running, monotonically increasing timer
577 * with 100ns granularity
579 u64 acpi_os_get_timer(void)
581 static u64 t;
583 #ifdef CONFIG_HPET
584 /* TBD: use HPET if available */
585 #endif
587 #ifdef CONFIG_X86_PM_TIMER
588 /* TBD: default to PM timer if HPET was not available */
589 #endif
590 if (!t)
591 printk(KERN_ERR PREFIX "acpi_os_get_timer() TBD\n");
593 return ++t;
596 acpi_status acpi_os_read_port(acpi_io_address port, u32 * value, u32 width)
598 u32 dummy;
600 if (!value)
601 value = &dummy;
603 *value = 0;
604 if (width <= 8) {
605 *(u8 *) value = inb(port);
606 } else if (width <= 16) {
607 *(u16 *) value = inw(port);
608 } else if (width <= 32) {
609 *(u32 *) value = inl(port);
610 } else {
611 BUG();
614 return AE_OK;
617 EXPORT_SYMBOL(acpi_os_read_port);
619 acpi_status acpi_os_write_port(acpi_io_address port, u32 value, u32 width)
621 if (width <= 8) {
622 outb(value, port);
623 } else if (width <= 16) {
624 outw(value, port);
625 } else if (width <= 32) {
626 outl(value, port);
627 } else {
628 BUG();
631 return AE_OK;
634 EXPORT_SYMBOL(acpi_os_write_port);
636 acpi_status
637 acpi_os_read_memory(acpi_physical_address phys_addr, u32 * value, u32 width)
639 void __iomem *virt_addr;
640 unsigned int size = width / 8;
641 bool unmap = false;
642 u32 dummy;
644 rcu_read_lock();
645 virt_addr = acpi_map_vaddr_lookup(phys_addr, size);
646 if (!virt_addr) {
647 rcu_read_unlock();
648 virt_addr = acpi_os_ioremap(phys_addr, size);
649 if (!virt_addr)
650 return AE_BAD_ADDRESS;
651 unmap = true;
654 if (!value)
655 value = &dummy;
657 switch (width) {
658 case 8:
659 *(u8 *) value = readb(virt_addr);
660 break;
661 case 16:
662 *(u16 *) value = readw(virt_addr);
663 break;
664 case 32:
665 *(u32 *) value = readl(virt_addr);
666 break;
667 default:
668 BUG();
671 if (unmap)
672 iounmap(virt_addr);
673 else
674 rcu_read_unlock();
676 return AE_OK;
679 acpi_status
680 acpi_os_write_memory(acpi_physical_address phys_addr, u32 value, u32 width)
682 void __iomem *virt_addr;
683 unsigned int size = width / 8;
684 bool unmap = false;
686 rcu_read_lock();
687 virt_addr = acpi_map_vaddr_lookup(phys_addr, size);
688 if (!virt_addr) {
689 rcu_read_unlock();
690 virt_addr = acpi_os_ioremap(phys_addr, size);
691 if (!virt_addr)
692 return AE_BAD_ADDRESS;
693 unmap = true;
696 switch (width) {
697 case 8:
698 writeb(value, virt_addr);
699 break;
700 case 16:
701 writew(value, virt_addr);
702 break;
703 case 32:
704 writel(value, virt_addr);
705 break;
706 default:
707 BUG();
710 if (unmap)
711 iounmap(virt_addr);
712 else
713 rcu_read_unlock();
715 return AE_OK;
718 acpi_status
719 acpi_os_read_pci_configuration(struct acpi_pci_id * pci_id, u32 reg,
720 u64 *value, u32 width)
722 int result, size;
723 u32 value32;
725 if (!value)
726 return AE_BAD_PARAMETER;
728 switch (width) {
729 case 8:
730 size = 1;
731 break;
732 case 16:
733 size = 2;
734 break;
735 case 32:
736 size = 4;
737 break;
738 default:
739 return AE_ERROR;
742 result = raw_pci_read(pci_id->segment, pci_id->bus,
743 PCI_DEVFN(pci_id->device, pci_id->function),
744 reg, size, &value32);
745 *value = value32;
747 return (result ? AE_ERROR : AE_OK);
750 acpi_status
751 acpi_os_write_pci_configuration(struct acpi_pci_id * pci_id, u32 reg,
752 u64 value, u32 width)
754 int result, size;
756 switch (width) {
757 case 8:
758 size = 1;
759 break;
760 case 16:
761 size = 2;
762 break;
763 case 32:
764 size = 4;
765 break;
766 default:
767 return AE_ERROR;
770 result = raw_pci_write(pci_id->segment, pci_id->bus,
771 PCI_DEVFN(pci_id->device, pci_id->function),
772 reg, size, value);
774 return (result ? AE_ERROR : AE_OK);
777 static void acpi_os_execute_deferred(struct work_struct *work)
779 struct acpi_os_dpc *dpc = container_of(work, struct acpi_os_dpc, work);
781 if (dpc->wait)
782 acpi_os_wait_events_complete(NULL);
784 dpc->function(dpc->context);
785 kfree(dpc);
788 /*******************************************************************************
790 * FUNCTION: acpi_os_execute
792 * PARAMETERS: Type - Type of the callback
793 * Function - Function to be executed
794 * Context - Function parameters
796 * RETURN: Status
798 * DESCRIPTION: Depending on type, either queues function for deferred execution or
799 * immediately executes function on a separate thread.
801 ******************************************************************************/
803 static acpi_status __acpi_os_execute(acpi_execute_type type,
804 acpi_osd_exec_callback function, void *context, int hp)
806 acpi_status status = AE_OK;
807 struct acpi_os_dpc *dpc;
808 struct workqueue_struct *queue;
809 int ret;
810 ACPI_DEBUG_PRINT((ACPI_DB_EXEC,
811 "Scheduling function [%p(%p)] for deferred execution.\n",
812 function, context));
815 * Allocate/initialize DPC structure. Note that this memory will be
816 * freed by the callee. The kernel handles the work_struct list in a
817 * way that allows us to also free its memory inside the callee.
818 * Because we may want to schedule several tasks with different
819 * parameters we can't use the approach some kernel code uses of
820 * having a static work_struct.
823 dpc = kmalloc(sizeof(struct acpi_os_dpc), GFP_ATOMIC);
824 if (!dpc)
825 return AE_NO_MEMORY;
827 dpc->function = function;
828 dpc->context = context;
831 * We can't run hotplug code in keventd_wq/kacpid_wq/kacpid_notify_wq
832 * because the hotplug code may call driver .remove() functions,
833 * which invoke flush_scheduled_work/acpi_os_wait_events_complete
834 * to flush these workqueues.
836 queue = hp ? kacpi_hotplug_wq :
837 (type == OSL_NOTIFY_HANDLER ? kacpi_notify_wq : kacpid_wq);
838 dpc->wait = hp ? 1 : 0;
840 if (queue == kacpi_hotplug_wq)
841 INIT_WORK(&dpc->work, acpi_os_execute_deferred);
842 else if (queue == kacpi_notify_wq)
843 INIT_WORK(&dpc->work, acpi_os_execute_deferred);
844 else
845 INIT_WORK(&dpc->work, acpi_os_execute_deferred);
848 * On some machines, a software-initiated SMI causes corruption unless
849 * the SMI runs on CPU 0. An SMI can be initiated by any AML, but
850 * typically it's done in GPE-related methods that are run via
851 * workqueues, so we can avoid the known corruption cases by always
852 * queueing on CPU 0.
854 ret = queue_work_on(0, queue, &dpc->work);
856 if (!ret) {
857 printk(KERN_ERR PREFIX
858 "Call to queue_work() failed.\n");
859 status = AE_ERROR;
860 kfree(dpc);
862 return status;
865 acpi_status acpi_os_execute(acpi_execute_type type,
866 acpi_osd_exec_callback function, void *context)
868 return __acpi_os_execute(type, function, context, 0);
870 EXPORT_SYMBOL(acpi_os_execute);
872 acpi_status acpi_os_hotplug_execute(acpi_osd_exec_callback function,
873 void *context)
875 return __acpi_os_execute(0, function, context, 1);
878 void acpi_os_wait_events_complete(void *context)
880 flush_workqueue(kacpid_wq);
881 flush_workqueue(kacpi_notify_wq);
884 EXPORT_SYMBOL(acpi_os_wait_events_complete);
887 * Deallocate the memory for a spinlock.
889 void acpi_os_delete_lock(acpi_spinlock handle)
891 return;
894 acpi_status
895 acpi_os_create_semaphore(u32 max_units, u32 initial_units, acpi_handle * handle)
897 struct semaphore *sem = NULL;
899 sem = acpi_os_allocate(sizeof(struct semaphore));
900 if (!sem)
901 return AE_NO_MEMORY;
902 memset(sem, 0, sizeof(struct semaphore));
904 sema_init(sem, initial_units);
906 *handle = (acpi_handle *) sem;
908 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX, "Creating semaphore[%p|%d].\n",
909 *handle, initial_units));
911 return AE_OK;
915 * TODO: A better way to delete semaphores? Linux doesn't have a
916 * 'delete_semaphore()' function -- may result in an invalid
917 * pointer dereference for non-synchronized consumers. Should
918 * we at least check for blocked threads and signal/cancel them?
921 acpi_status acpi_os_delete_semaphore(acpi_handle handle)
923 struct semaphore *sem = (struct semaphore *)handle;
925 if (!sem)
926 return AE_BAD_PARAMETER;
928 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX, "Deleting semaphore[%p].\n", handle));
930 BUG_ON(!list_empty(&sem->wait_list));
931 kfree(sem);
932 sem = NULL;
934 return AE_OK;
938 * TODO: Support for units > 1?
940 acpi_status acpi_os_wait_semaphore(acpi_handle handle, u32 units, u16 timeout)
942 acpi_status status = AE_OK;
943 struct semaphore *sem = (struct semaphore *)handle;
944 long jiffies;
945 int ret = 0;
947 if (!sem || (units < 1))
948 return AE_BAD_PARAMETER;
950 if (units > 1)
951 return AE_SUPPORT;
953 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX, "Waiting for semaphore[%p|%d|%d]\n",
954 handle, units, timeout));
956 if (timeout == ACPI_WAIT_FOREVER)
957 jiffies = MAX_SCHEDULE_TIMEOUT;
958 else
959 jiffies = msecs_to_jiffies(timeout);
961 ret = down_timeout(sem, jiffies);
962 if (ret)
963 status = AE_TIME;
965 if (ACPI_FAILURE(status)) {
966 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX,
967 "Failed to acquire semaphore[%p|%d|%d], %s",
968 handle, units, timeout,
969 acpi_format_exception(status)));
970 } else {
971 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX,
972 "Acquired semaphore[%p|%d|%d]", handle,
973 units, timeout));
976 return status;
980 * TODO: Support for units > 1?
982 acpi_status acpi_os_signal_semaphore(acpi_handle handle, u32 units)
984 struct semaphore *sem = (struct semaphore *)handle;
986 if (!sem || (units < 1))
987 return AE_BAD_PARAMETER;
989 if (units > 1)
990 return AE_SUPPORT;
992 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX, "Signaling semaphore[%p|%d]\n", handle,
993 units));
995 up(sem);
997 return AE_OK;
1000 #ifdef ACPI_FUTURE_USAGE
1001 u32 acpi_os_get_line(char *buffer)
1004 #ifdef ENABLE_DEBUGGER
1005 if (acpi_in_debugger) {
1006 u32 chars;
1008 kdb_read(buffer, sizeof(line_buf));
1010 /* remove the CR kdb includes */
1011 chars = strlen(buffer) - 1;
1012 buffer[chars] = '\0';
1014 #endif
1016 return 0;
1018 #endif /* ACPI_FUTURE_USAGE */
1020 acpi_status acpi_os_signal(u32 function, void *info)
1022 switch (function) {
1023 case ACPI_SIGNAL_FATAL:
1024 printk(KERN_ERR PREFIX "Fatal opcode executed\n");
1025 break;
1026 case ACPI_SIGNAL_BREAKPOINT:
1028 * AML Breakpoint
1029 * ACPI spec. says to treat it as a NOP unless
1030 * you are debugging. So if/when we integrate
1031 * AML debugger into the kernel debugger its
1032 * hook will go here. But until then it is
1033 * not useful to print anything on breakpoints.
1035 break;
1036 default:
1037 break;
1040 return AE_OK;
1043 static int __init acpi_os_name_setup(char *str)
1045 char *p = acpi_os_name;
1046 int count = ACPI_MAX_OVERRIDE_LEN - 1;
1048 if (!str || !*str)
1049 return 0;
1051 for (; count-- && str && *str; str++) {
1052 if (isalnum(*str) || *str == ' ' || *str == ':')
1053 *p++ = *str;
1054 else if (*str == '\'' || *str == '"')
1055 continue;
1056 else
1057 break;
1059 *p = 0;
1061 return 1;
1065 __setup("acpi_os_name=", acpi_os_name_setup);
1067 #define OSI_STRING_LENGTH_MAX 64 /* arbitrary */
1068 #define OSI_STRING_ENTRIES_MAX 16 /* arbitrary */
1070 struct osi_setup_entry {
1071 char string[OSI_STRING_LENGTH_MAX];
1072 bool enable;
1075 static struct osi_setup_entry __initdata osi_setup_entries[OSI_STRING_ENTRIES_MAX];
1077 void __init acpi_osi_setup(char *str)
1079 struct osi_setup_entry *osi;
1080 bool enable = true;
1081 int i;
1083 if (!acpi_gbl_create_osi_method)
1084 return;
1086 if (str == NULL || *str == '\0') {
1087 printk(KERN_INFO PREFIX "_OSI method disabled\n");
1088 acpi_gbl_create_osi_method = FALSE;
1089 return;
1092 if (*str == '!') {
1093 str++;
1094 enable = false;
1097 for (i = 0; i < OSI_STRING_ENTRIES_MAX; i++) {
1098 osi = &osi_setup_entries[i];
1099 if (!strcmp(osi->string, str)) {
1100 osi->enable = enable;
1101 break;
1102 } else if (osi->string[0] == '\0') {
1103 osi->enable = enable;
1104 strncpy(osi->string, str, OSI_STRING_LENGTH_MAX);
1105 break;
1110 static void __init set_osi_linux(unsigned int enable)
1112 if (osi_linux.enable != enable)
1113 osi_linux.enable = enable;
1115 if (osi_linux.enable)
1116 acpi_osi_setup("Linux");
1117 else
1118 acpi_osi_setup("!Linux");
1120 return;
1123 static void __init acpi_cmdline_osi_linux(unsigned int enable)
1125 osi_linux.cmdline = 1; /* cmdline set the default and override DMI */
1126 osi_linux.dmi = 0;
1127 set_osi_linux(enable);
1129 return;
1132 void __init acpi_dmi_osi_linux(int enable, const struct dmi_system_id *d)
1134 printk(KERN_NOTICE PREFIX "DMI detected: %s\n", d->ident);
1136 if (enable == -1)
1137 return;
1139 osi_linux.dmi = 1; /* DMI knows that this box asks OSI(Linux) */
1140 set_osi_linux(enable);
1142 return;
1146 * Modify the list of "OS Interfaces" reported to BIOS via _OSI
1148 * empty string disables _OSI
1149 * string starting with '!' disables that string
1150 * otherwise string is added to list, augmenting built-in strings
1152 static void __init acpi_osi_setup_late(void)
1154 struct osi_setup_entry *osi;
1155 char *str;
1156 int i;
1157 acpi_status status;
1159 for (i = 0; i < OSI_STRING_ENTRIES_MAX; i++) {
1160 osi = &osi_setup_entries[i];
1161 str = osi->string;
1163 if (*str == '\0')
1164 break;
1165 if (osi->enable) {
1166 status = acpi_install_interface(str);
1168 if (ACPI_SUCCESS(status))
1169 printk(KERN_INFO PREFIX "Added _OSI(%s)\n", str);
1170 } else {
1171 status = acpi_remove_interface(str);
1173 if (ACPI_SUCCESS(status))
1174 printk(KERN_INFO PREFIX "Deleted _OSI(%s)\n", str);
1179 static int __init osi_setup(char *str)
1181 if (str && !strcmp("Linux", str))
1182 acpi_cmdline_osi_linux(1);
1183 else if (str && !strcmp("!Linux", str))
1184 acpi_cmdline_osi_linux(0);
1185 else
1186 acpi_osi_setup(str);
1188 return 1;
1191 __setup("acpi_osi=", osi_setup);
1193 /* enable serialization to combat AE_ALREADY_EXISTS errors */
1194 static int __init acpi_serialize_setup(char *str)
1196 printk(KERN_INFO PREFIX "serialize enabled\n");
1198 acpi_gbl_all_methods_serialized = TRUE;
1200 return 1;
1203 __setup("acpi_serialize", acpi_serialize_setup);
1205 /* Check of resource interference between native drivers and ACPI
1206 * OperationRegions (SystemIO and System Memory only).
1207 * IO ports and memory declared in ACPI might be used by the ACPI subsystem
1208 * in arbitrary AML code and can interfere with legacy drivers.
1209 * acpi_enforce_resources= can be set to:
1211 * - strict (default) (2)
1212 * -> further driver trying to access the resources will not load
1213 * - lax (1)
1214 * -> further driver trying to access the resources will load, but you
1215 * get a system message that something might go wrong...
1217 * - no (0)
1218 * -> ACPI Operation Region resources will not be registered
1221 #define ENFORCE_RESOURCES_STRICT 2
1222 #define ENFORCE_RESOURCES_LAX 1
1223 #define ENFORCE_RESOURCES_NO 0
1225 static unsigned int acpi_enforce_resources = ENFORCE_RESOURCES_STRICT;
1227 static int __init acpi_enforce_resources_setup(char *str)
1229 if (str == NULL || *str == '\0')
1230 return 0;
1232 if (!strcmp("strict", str))
1233 acpi_enforce_resources = ENFORCE_RESOURCES_STRICT;
1234 else if (!strcmp("lax", str))
1235 acpi_enforce_resources = ENFORCE_RESOURCES_LAX;
1236 else if (!strcmp("no", str))
1237 acpi_enforce_resources = ENFORCE_RESOURCES_NO;
1239 return 1;
1242 __setup("acpi_enforce_resources=", acpi_enforce_resources_setup);
1244 /* Check for resource conflicts between ACPI OperationRegions and native
1245 * drivers */
1246 int acpi_check_resource_conflict(const struct resource *res)
1248 struct acpi_res_list *res_list_elem;
1249 int ioport = 0, clash = 0;
1251 if (acpi_enforce_resources == ENFORCE_RESOURCES_NO)
1252 return 0;
1253 if (!(res->flags & IORESOURCE_IO) && !(res->flags & IORESOURCE_MEM))
1254 return 0;
1256 ioport = res->flags & IORESOURCE_IO;
1258 spin_lock(&acpi_res_lock);
1259 list_for_each_entry(res_list_elem, &resource_list_head,
1260 resource_list) {
1261 if (ioport && (res_list_elem->resource_type
1262 != ACPI_ADR_SPACE_SYSTEM_IO))
1263 continue;
1264 if (!ioport && (res_list_elem->resource_type
1265 != ACPI_ADR_SPACE_SYSTEM_MEMORY))
1266 continue;
1268 if (res->end < res_list_elem->start
1269 || res_list_elem->end < res->start)
1270 continue;
1271 clash = 1;
1272 break;
1274 spin_unlock(&acpi_res_lock);
1276 if (clash) {
1277 if (acpi_enforce_resources != ENFORCE_RESOURCES_NO) {
1278 printk(KERN_WARNING "ACPI: resource %s %pR"
1279 " conflicts with ACPI region %s "
1280 "[%s 0x%zx-0x%zx]\n",
1281 res->name, res, res_list_elem->name,
1282 (res_list_elem->resource_type ==
1283 ACPI_ADR_SPACE_SYSTEM_IO) ? "io" : "mem",
1284 (size_t) res_list_elem->start,
1285 (size_t) res_list_elem->end);
1286 if (acpi_enforce_resources == ENFORCE_RESOURCES_LAX)
1287 printk(KERN_NOTICE "ACPI: This conflict may"
1288 " cause random problems and system"
1289 " instability\n");
1290 printk(KERN_INFO "ACPI: If an ACPI driver is available"
1291 " for this device, you should use it instead of"
1292 " the native driver\n");
1294 if (acpi_enforce_resources == ENFORCE_RESOURCES_STRICT)
1295 return -EBUSY;
1297 return 0;
1299 EXPORT_SYMBOL(acpi_check_resource_conflict);
1301 int acpi_check_region(resource_size_t start, resource_size_t n,
1302 const char *name)
1304 struct resource res = {
1305 .start = start,
1306 .end = start + n - 1,
1307 .name = name,
1308 .flags = IORESOURCE_IO,
1311 return acpi_check_resource_conflict(&res);
1313 EXPORT_SYMBOL(acpi_check_region);
1316 * Let drivers know whether the resource checks are effective
1318 int acpi_resources_are_enforced(void)
1320 return acpi_enforce_resources == ENFORCE_RESOURCES_STRICT;
1322 EXPORT_SYMBOL(acpi_resources_are_enforced);
1325 * Acquire a spinlock.
1327 * handle is a pointer to the spinlock_t.
1330 acpi_cpu_flags acpi_os_acquire_lock(acpi_spinlock lockp)
1332 acpi_cpu_flags flags;
1333 spin_lock_irqsave(lockp, flags);
1334 return flags;
1338 * Release a spinlock. See above.
1341 void acpi_os_release_lock(acpi_spinlock lockp, acpi_cpu_flags flags)
1343 spin_unlock_irqrestore(lockp, flags);
1346 #ifndef ACPI_USE_LOCAL_CACHE
1348 /*******************************************************************************
1350 * FUNCTION: acpi_os_create_cache
1352 * PARAMETERS: name - Ascii name for the cache
1353 * size - Size of each cached object
1354 * depth - Maximum depth of the cache (in objects) <ignored>
1355 * cache - Where the new cache object is returned
1357 * RETURN: status
1359 * DESCRIPTION: Create a cache object
1361 ******************************************************************************/
1363 acpi_status
1364 acpi_os_create_cache(char *name, u16 size, u16 depth, acpi_cache_t ** cache)
1366 *cache = kmem_cache_create(name, size, 0, 0, NULL);
1367 if (*cache == NULL)
1368 return AE_ERROR;
1369 else
1370 return AE_OK;
1373 /*******************************************************************************
1375 * FUNCTION: acpi_os_purge_cache
1377 * PARAMETERS: Cache - Handle to cache object
1379 * RETURN: Status
1381 * DESCRIPTION: Free all objects within the requested cache.
1383 ******************************************************************************/
1385 acpi_status acpi_os_purge_cache(acpi_cache_t * cache)
1387 kmem_cache_shrink(cache);
1388 return (AE_OK);
1391 /*******************************************************************************
1393 * FUNCTION: acpi_os_delete_cache
1395 * PARAMETERS: Cache - Handle to cache object
1397 * RETURN: Status
1399 * DESCRIPTION: Free all objects within the requested cache and delete the
1400 * cache object.
1402 ******************************************************************************/
1404 acpi_status acpi_os_delete_cache(acpi_cache_t * cache)
1406 kmem_cache_destroy(cache);
1407 return (AE_OK);
1410 /*******************************************************************************
1412 * FUNCTION: acpi_os_release_object
1414 * PARAMETERS: Cache - Handle to cache object
1415 * Object - The object to be released
1417 * RETURN: None
1419 * DESCRIPTION: Release an object to the specified cache. If cache is full,
1420 * the object is deleted.
1422 ******************************************************************************/
1424 acpi_status acpi_os_release_object(acpi_cache_t * cache, void *object)
1426 kmem_cache_free(cache, object);
1427 return (AE_OK);
1430 static inline int acpi_res_list_add(struct acpi_res_list *res)
1432 struct acpi_res_list *res_list_elem;
1434 list_for_each_entry(res_list_elem, &resource_list_head,
1435 resource_list) {
1437 if (res->resource_type == res_list_elem->resource_type &&
1438 res->start == res_list_elem->start &&
1439 res->end == res_list_elem->end) {
1442 * The Region(addr,len) already exist in the list,
1443 * just increase the count
1446 res_list_elem->count++;
1447 return 0;
1451 res->count = 1;
1452 list_add(&res->resource_list, &resource_list_head);
1453 return 1;
1456 static inline void acpi_res_list_del(struct acpi_res_list *res)
1458 struct acpi_res_list *res_list_elem;
1460 list_for_each_entry(res_list_elem, &resource_list_head,
1461 resource_list) {
1463 if (res->resource_type == res_list_elem->resource_type &&
1464 res->start == res_list_elem->start &&
1465 res->end == res_list_elem->end) {
1468 * If the res count is decreased to 0,
1469 * remove and free it
1472 if (--res_list_elem->count == 0) {
1473 list_del(&res_list_elem->resource_list);
1474 kfree(res_list_elem);
1476 return;
1481 acpi_status
1482 acpi_os_invalidate_address(
1483 u8 space_id,
1484 acpi_physical_address address,
1485 acpi_size length)
1487 struct acpi_res_list res;
1489 switch (space_id) {
1490 case ACPI_ADR_SPACE_SYSTEM_IO:
1491 case ACPI_ADR_SPACE_SYSTEM_MEMORY:
1492 /* Only interference checks against SystemIO and SystemMemory
1493 are needed */
1494 res.start = address;
1495 res.end = address + length - 1;
1496 res.resource_type = space_id;
1497 spin_lock(&acpi_res_lock);
1498 acpi_res_list_del(&res);
1499 spin_unlock(&acpi_res_lock);
1500 break;
1501 case ACPI_ADR_SPACE_PCI_CONFIG:
1502 case ACPI_ADR_SPACE_EC:
1503 case ACPI_ADR_SPACE_SMBUS:
1504 case ACPI_ADR_SPACE_CMOS:
1505 case ACPI_ADR_SPACE_PCI_BAR_TARGET:
1506 case ACPI_ADR_SPACE_DATA_TABLE:
1507 case ACPI_ADR_SPACE_FIXED_HARDWARE:
1508 break;
1510 return AE_OK;
1513 /******************************************************************************
1515 * FUNCTION: acpi_os_validate_address
1517 * PARAMETERS: space_id - ACPI space ID
1518 * address - Physical address
1519 * length - Address length
1521 * RETURN: AE_OK if address/length is valid for the space_id. Otherwise,
1522 * should return AE_AML_ILLEGAL_ADDRESS.
1524 * DESCRIPTION: Validate a system address via the host OS. Used to validate
1525 * the addresses accessed by AML operation regions.
1527 *****************************************************************************/
1529 acpi_status
1530 acpi_os_validate_address (
1531 u8 space_id,
1532 acpi_physical_address address,
1533 acpi_size length,
1534 char *name)
1536 struct acpi_res_list *res;
1537 int added;
1538 if (acpi_enforce_resources == ENFORCE_RESOURCES_NO)
1539 return AE_OK;
1541 switch (space_id) {
1542 case ACPI_ADR_SPACE_SYSTEM_IO:
1543 case ACPI_ADR_SPACE_SYSTEM_MEMORY:
1544 /* Only interference checks against SystemIO and SystemMemory
1545 are needed */
1546 res = kzalloc(sizeof(struct acpi_res_list), GFP_KERNEL);
1547 if (!res)
1548 return AE_OK;
1549 /* ACPI names are fixed to 4 bytes, still better use strlcpy */
1550 strlcpy(res->name, name, 5);
1551 res->start = address;
1552 res->end = address + length - 1;
1553 res->resource_type = space_id;
1554 spin_lock(&acpi_res_lock);
1555 added = acpi_res_list_add(res);
1556 spin_unlock(&acpi_res_lock);
1557 pr_debug("%s %s resource: start: 0x%llx, end: 0x%llx, "
1558 "name: %s\n", added ? "Added" : "Already exist",
1559 (space_id == ACPI_ADR_SPACE_SYSTEM_IO)
1560 ? "SystemIO" : "System Memory",
1561 (unsigned long long)res->start,
1562 (unsigned long long)res->end,
1563 res->name);
1564 if (!added)
1565 kfree(res);
1566 break;
1567 case ACPI_ADR_SPACE_PCI_CONFIG:
1568 case ACPI_ADR_SPACE_EC:
1569 case ACPI_ADR_SPACE_SMBUS:
1570 case ACPI_ADR_SPACE_CMOS:
1571 case ACPI_ADR_SPACE_PCI_BAR_TARGET:
1572 case ACPI_ADR_SPACE_DATA_TABLE:
1573 case ACPI_ADR_SPACE_FIXED_HARDWARE:
1574 break;
1576 return AE_OK;
1578 #endif
1580 acpi_status __init acpi_os_initialize(void)
1582 acpi_os_map_generic_address(&acpi_gbl_FADT.xpm1a_event_block);
1583 acpi_os_map_generic_address(&acpi_gbl_FADT.xpm1b_event_block);
1584 acpi_os_map_generic_address(&acpi_gbl_FADT.xgpe0_block);
1585 acpi_os_map_generic_address(&acpi_gbl_FADT.xgpe1_block);
1587 return AE_OK;
1590 acpi_status __init acpi_os_initialize1(void)
1592 kacpid_wq = alloc_workqueue("kacpid", 0, 1);
1593 kacpi_notify_wq = alloc_workqueue("kacpi_notify", 0, 1);
1594 kacpi_hotplug_wq = alloc_workqueue("kacpi_hotplug", 0, 1);
1595 BUG_ON(!kacpid_wq);
1596 BUG_ON(!kacpi_notify_wq);
1597 BUG_ON(!kacpi_hotplug_wq);
1598 acpi_install_interface_handler(acpi_osi_handler);
1599 acpi_osi_setup_late();
1600 return AE_OK;
1603 acpi_status acpi_os_terminate(void)
1605 if (acpi_irq_handler) {
1606 acpi_os_remove_interrupt_handler(acpi_irq_irq,
1607 acpi_irq_handler);
1610 acpi_os_unmap_generic_address(&acpi_gbl_FADT.xgpe1_block);
1611 acpi_os_unmap_generic_address(&acpi_gbl_FADT.xgpe0_block);
1612 acpi_os_unmap_generic_address(&acpi_gbl_FADT.xpm1b_event_block);
1613 acpi_os_unmap_generic_address(&acpi_gbl_FADT.xpm1a_event_block);
1615 destroy_workqueue(kacpid_wq);
1616 destroy_workqueue(kacpi_notify_wq);
1617 destroy_workqueue(kacpi_hotplug_wq);
1619 return AE_OK;