1 // SPDX-License-Identifier: GPL-2.0-or-later
3 * acpi_osl.c - OS-dependent functions ($Revision: 83 $)
5 * Copyright (C) 2000 Andrew Henroid
8 * Copyright (c) 2008 Intel Corporation
12 #define pr_fmt(fmt) "ACPI: OSL: " fmt
14 #include <linux/module.h>
15 #include <linux/kernel.h>
16 #include <linux/slab.h>
18 #include <linux/highmem.h>
19 #include <linux/lockdep.h>
20 #include <linux/pci.h>
21 #include <linux/interrupt.h>
22 #include <linux/kmod.h>
23 #include <linux/delay.h>
24 #include <linux/workqueue.h>
25 #include <linux/nmi.h>
26 #include <linux/acpi.h>
27 #include <linux/efi.h>
28 #include <linux/ioport.h>
29 #include <linux/list.h>
30 #include <linux/jiffies.h>
31 #include <linux/semaphore.h>
32 #include <linux/security.h>
35 #include <linux/uaccess.h>
36 #include <linux/io-64-nonatomic-lo-hi.h>
38 #include "acpica/accommon.h"
41 /* Definitions for ACPI_DEBUG_PRINT() */
42 #define _COMPONENT ACPI_OS_SERVICES
43 ACPI_MODULE_NAME("osl");
46 acpi_osd_exec_callback function;
48 struct work_struct work;
51 #ifdef ENABLE_DEBUGGER
52 #include <linux/kdb.h>
54 /* stuff for debugger support */
56 EXPORT_SYMBOL(acpi_in_debugger);
57 #endif /*ENABLE_DEBUGGER */
59 static int (*__acpi_os_prepare_sleep)(u8 sleep_state, u32 pm1a_ctrl,
61 static int (*__acpi_os_prepare_extended_sleep)(u8 sleep_state, u32 val_a,
64 static acpi_osd_handler acpi_irq_handler;
65 static void *acpi_irq_context;
66 static struct workqueue_struct *kacpid_wq;
67 static struct workqueue_struct *kacpi_notify_wq;
68 static struct workqueue_struct *kacpi_hotplug_wq;
69 static bool acpi_os_initialized;
70 unsigned int acpi_sci_irq = INVALID_ACPI_IRQ;
71 bool acpi_permanent_mmap = false;
74 * This list of permanent mappings is for memory that may be accessed from
75 * interrupt context, where we can't do the ioremap().
78 struct list_head list;
80 acpi_physical_address phys;
83 unsigned long refcount;
84 struct rcu_work rwork;
88 static LIST_HEAD(acpi_ioremaps);
89 static DEFINE_MUTEX(acpi_ioremap_lock);
90 #define acpi_ioremap_lock_held() lock_is_held(&acpi_ioremap_lock.dep_map)
92 static void __init acpi_request_region (struct acpi_generic_address *gas,
93 unsigned int length, char *desc)
97 /* Handle possible alignment issues */
98 memcpy(&addr, &gas->address, sizeof(addr));
102 /* Resources are never freed */
103 if (gas->space_id == ACPI_ADR_SPACE_SYSTEM_IO)
104 request_region(addr, length, desc);
105 else if (gas->space_id == ACPI_ADR_SPACE_SYSTEM_MEMORY)
106 request_mem_region(addr, length, desc);
109 static int __init acpi_reserve_resources(void)
111 acpi_request_region(&acpi_gbl_FADT.xpm1a_event_block, acpi_gbl_FADT.pm1_event_length,
112 "ACPI PM1a_EVT_BLK");
114 acpi_request_region(&acpi_gbl_FADT.xpm1b_event_block, acpi_gbl_FADT.pm1_event_length,
115 "ACPI PM1b_EVT_BLK");
117 acpi_request_region(&acpi_gbl_FADT.xpm1a_control_block, acpi_gbl_FADT.pm1_control_length,
118 "ACPI PM1a_CNT_BLK");
120 acpi_request_region(&acpi_gbl_FADT.xpm1b_control_block, acpi_gbl_FADT.pm1_control_length,
121 "ACPI PM1b_CNT_BLK");
123 if (acpi_gbl_FADT.pm_timer_length == 4)
124 acpi_request_region(&acpi_gbl_FADT.xpm_timer_block, 4, "ACPI PM_TMR");
126 acpi_request_region(&acpi_gbl_FADT.xpm2_control_block, acpi_gbl_FADT.pm2_control_length,
129 /* Length of GPE blocks must be a non-negative multiple of 2 */
131 if (!(acpi_gbl_FADT.gpe0_block_length & 0x1))
132 acpi_request_region(&acpi_gbl_FADT.xgpe0_block,
133 acpi_gbl_FADT.gpe0_block_length, "ACPI GPE0_BLK");
135 if (!(acpi_gbl_FADT.gpe1_block_length & 0x1))
136 acpi_request_region(&acpi_gbl_FADT.xgpe1_block,
137 acpi_gbl_FADT.gpe1_block_length, "ACPI GPE1_BLK");
141 fs_initcall_sync(acpi_reserve_resources);
143 void acpi_os_printf(const char *fmt, ...)
147 acpi_os_vprintf(fmt, args);
150 EXPORT_SYMBOL(acpi_os_printf);
152 void __printf(1, 0) acpi_os_vprintf(const char *fmt, va_list args)
154 static char buffer[512];
156 vsprintf(buffer, fmt, args);
158 #ifdef ENABLE_DEBUGGER
159 if (acpi_in_debugger) {
160 kdb_printf("%s", buffer);
162 if (printk_get_level(buffer))
163 printk("%s", buffer);
165 printk(KERN_CONT "%s", buffer);
168 if (acpi_debugger_write_log(buffer) < 0) {
169 if (printk_get_level(buffer))
170 printk("%s", buffer);
172 printk(KERN_CONT "%s", buffer);
178 static unsigned long acpi_rsdp;
179 static int __init setup_acpi_rsdp(char *arg)
181 return kstrtoul(arg, 16, &acpi_rsdp);
183 early_param("acpi_rsdp", setup_acpi_rsdp);
186 acpi_physical_address __init acpi_os_get_root_pointer(void)
188 acpi_physical_address pa;
192 * We may have been provided with an RSDP on the command line,
193 * but if a malicious user has done so they may be pointing us
194 * at modified ACPI tables that could alter kernel behaviour -
195 * so, we check the lockdown status before making use of
196 * it. If we trust it then also stash it in an architecture
197 * specific location (if appropriate) so it can be carried
198 * over further kexec()s.
200 if (acpi_rsdp && !security_locked_down(LOCKDOWN_ACPI_TABLES)) {
201 acpi_arch_set_root_pointer(acpi_rsdp);
205 pa = acpi_arch_get_root_pointer();
209 if (efi_enabled(EFI_CONFIG_TABLES)) {
210 if (efi.acpi20 != EFI_INVALID_TABLE_ADDR)
212 if (efi.acpi != EFI_INVALID_TABLE_ADDR)
214 pr_err("System description tables not found\n");
215 } else if (IS_ENABLED(CONFIG_ACPI_LEGACY_TABLES_LOOKUP)) {
216 acpi_find_root_pointer(&pa);
222 /* Must be called with 'acpi_ioremap_lock' or RCU read lock held. */
223 static struct acpi_ioremap *
224 acpi_map_lookup(acpi_physical_address phys, acpi_size size)
226 struct acpi_ioremap *map;
228 list_for_each_entry_rcu(map, &acpi_ioremaps, list, acpi_ioremap_lock_held())
229 if (map->phys <= phys &&
230 phys + size <= map->phys + map->size)
236 /* Must be called with 'acpi_ioremap_lock' or RCU read lock held. */
237 static void __iomem *
238 acpi_map_vaddr_lookup(acpi_physical_address phys, unsigned int size)
240 struct acpi_ioremap *map;
242 map = acpi_map_lookup(phys, size);
244 return map->virt + (phys - map->phys);
249 void __iomem *acpi_os_get_iomem(acpi_physical_address phys, unsigned int size)
251 struct acpi_ioremap *map;
252 void __iomem *virt = NULL;
254 mutex_lock(&acpi_ioremap_lock);
255 map = acpi_map_lookup(phys, size);
257 virt = map->virt + (phys - map->phys);
258 map->track.refcount++;
260 mutex_unlock(&acpi_ioremap_lock);
263 EXPORT_SYMBOL_GPL(acpi_os_get_iomem);
265 /* Must be called with 'acpi_ioremap_lock' or RCU read lock held. */
266 static struct acpi_ioremap *
267 acpi_map_lookup_virt(void __iomem *virt, acpi_size size)
269 struct acpi_ioremap *map;
271 list_for_each_entry_rcu(map, &acpi_ioremaps, list, acpi_ioremap_lock_held())
272 if (map->virt <= virt &&
273 virt + size <= map->virt + map->size)
279 #if defined(CONFIG_ARM64) || defined(CONFIG_RISCV)
280 /* ioremap will take care of cache attributes */
281 #define should_use_kmap(pfn) 0
283 #define should_use_kmap(pfn) page_is_ram(pfn)
286 static void __iomem *acpi_map(acpi_physical_address pg_off, unsigned long pg_sz)
290 pfn = pg_off >> PAGE_SHIFT;
291 if (should_use_kmap(pfn)) {
292 if (pg_sz > PAGE_SIZE)
294 return (void __iomem __force *)kmap(pfn_to_page(pfn));
296 return acpi_os_ioremap(pg_off, pg_sz);
299 static void acpi_unmap(acpi_physical_address pg_off, void __iomem *vaddr)
303 pfn = pg_off >> PAGE_SHIFT;
304 if (should_use_kmap(pfn))
305 kunmap(pfn_to_page(pfn));
311 * acpi_os_map_iomem - Get a virtual address for a given physical address range.
312 * @phys: Start of the physical address range to map.
313 * @size: Size of the physical address range to map.
315 * Look up the given physical address range in the list of existing ACPI memory
316 * mappings. If found, get a reference to it and return a pointer to it (its
317 * virtual address). If not found, map it, add it to that list and return a
320 * During early init (when acpi_permanent_mmap has not been set yet) this
321 * routine simply calls __acpi_map_table() to get the job done.
324 *acpi_os_map_iomem(acpi_physical_address phys, acpi_size size)
326 struct acpi_ioremap *map;
328 acpi_physical_address pg_off;
331 if (phys > ULONG_MAX) {
332 pr_err("Cannot map memory that high: 0x%llx\n", phys);
336 if (!acpi_permanent_mmap)
337 return __acpi_map_table((unsigned long)phys, size);
339 mutex_lock(&acpi_ioremap_lock);
340 /* Check if there's a suitable mapping already. */
341 map = acpi_map_lookup(phys, size);
343 map->track.refcount++;
347 map = kzalloc(sizeof(*map), GFP_KERNEL);
349 mutex_unlock(&acpi_ioremap_lock);
353 pg_off = round_down(phys, PAGE_SIZE);
354 pg_sz = round_up(phys + size, PAGE_SIZE) - pg_off;
355 virt = acpi_map(phys, size);
357 mutex_unlock(&acpi_ioremap_lock);
362 INIT_LIST_HEAD(&map->list);
363 map->virt = (void __iomem __force *)((unsigned long)virt & PAGE_MASK);
366 map->track.refcount = 1;
368 list_add_tail_rcu(&map->list, &acpi_ioremaps);
371 mutex_unlock(&acpi_ioremap_lock);
372 return map->virt + (phys - map->phys);
374 EXPORT_SYMBOL_GPL(acpi_os_map_iomem);
376 void *__ref acpi_os_map_memory(acpi_physical_address phys, acpi_size size)
378 return (void *)acpi_os_map_iomem(phys, size);
380 EXPORT_SYMBOL_GPL(acpi_os_map_memory);
382 static void acpi_os_map_remove(struct work_struct *work)
384 struct acpi_ioremap *map = container_of(to_rcu_work(work),
388 acpi_unmap(map->phys, map->virt);
392 /* Must be called with mutex_lock(&acpi_ioremap_lock) */
393 static void acpi_os_drop_map_ref(struct acpi_ioremap *map)
395 if (--map->track.refcount)
398 list_del_rcu(&map->list);
400 INIT_RCU_WORK(&map->track.rwork, acpi_os_map_remove);
401 queue_rcu_work(system_wq, &map->track.rwork);
405 * acpi_os_unmap_iomem - Drop a memory mapping reference.
406 * @virt: Start of the address range to drop a reference to.
407 * @size: Size of the address range to drop a reference to.
409 * Look up the given virtual address range in the list of existing ACPI memory
410 * mappings, drop a reference to it and if there are no more active references
411 * to it, queue it up for later removal.
413 * During early init (when acpi_permanent_mmap has not been set yet) this
414 * routine simply calls __acpi_unmap_table() to get the job done. Since
415 * __acpi_unmap_table() is an __init function, the __ref annotation is needed
418 void __ref acpi_os_unmap_iomem(void __iomem *virt, acpi_size size)
420 struct acpi_ioremap *map;
422 if (!acpi_permanent_mmap) {
423 __acpi_unmap_table(virt, size);
427 mutex_lock(&acpi_ioremap_lock);
429 map = acpi_map_lookup_virt(virt, size);
431 mutex_unlock(&acpi_ioremap_lock);
432 WARN(true, "ACPI: %s: bad address %p\n", __func__, virt);
435 acpi_os_drop_map_ref(map);
437 mutex_unlock(&acpi_ioremap_lock);
439 EXPORT_SYMBOL_GPL(acpi_os_unmap_iomem);
442 * acpi_os_unmap_memory - Drop a memory mapping reference.
443 * @virt: Start of the address range to drop a reference to.
444 * @size: Size of the address range to drop a reference to.
446 void __ref acpi_os_unmap_memory(void *virt, acpi_size size)
448 acpi_os_unmap_iomem((void __iomem *)virt, size);
450 EXPORT_SYMBOL_GPL(acpi_os_unmap_memory);
452 void __iomem *acpi_os_map_generic_address(struct acpi_generic_address *gas)
456 if (gas->space_id != ACPI_ADR_SPACE_SYSTEM_MEMORY)
459 /* Handle possible alignment issues */
460 memcpy(&addr, &gas->address, sizeof(addr));
461 if (!addr || !gas->bit_width)
464 return acpi_os_map_iomem(addr, gas->bit_width / 8);
466 EXPORT_SYMBOL(acpi_os_map_generic_address);
468 void acpi_os_unmap_generic_address(struct acpi_generic_address *gas)
471 struct acpi_ioremap *map;
473 if (gas->space_id != ACPI_ADR_SPACE_SYSTEM_MEMORY)
476 /* Handle possible alignment issues */
477 memcpy(&addr, &gas->address, sizeof(addr));
478 if (!addr || !gas->bit_width)
481 mutex_lock(&acpi_ioremap_lock);
483 map = acpi_map_lookup(addr, gas->bit_width / 8);
485 mutex_unlock(&acpi_ioremap_lock);
488 acpi_os_drop_map_ref(map);
490 mutex_unlock(&acpi_ioremap_lock);
492 EXPORT_SYMBOL(acpi_os_unmap_generic_address);
494 #ifdef ACPI_FUTURE_USAGE
496 acpi_os_get_physical_address(void *virt, acpi_physical_address *phys)
499 return AE_BAD_PARAMETER;
501 *phys = virt_to_phys(virt);
507 #ifdef CONFIG_ACPI_REV_OVERRIDE_POSSIBLE
508 static bool acpi_rev_override;
510 int __init acpi_rev_override_setup(char *str)
512 acpi_rev_override = true;
515 __setup("acpi_rev_override", acpi_rev_override_setup);
517 #define acpi_rev_override false
520 #define ACPI_MAX_OVERRIDE_LEN 100
522 static char acpi_os_name[ACPI_MAX_OVERRIDE_LEN];
525 acpi_os_predefined_override(const struct acpi_predefined_names *init_val,
526 acpi_string *new_val)
528 if (!init_val || !new_val)
529 return AE_BAD_PARAMETER;
532 if (!memcmp(init_val->name, "_OS_", 4) && strlen(acpi_os_name)) {
533 pr_info("Overriding _OS definition to '%s'\n", acpi_os_name);
534 *new_val = acpi_os_name;
537 if (!memcmp(init_val->name, "_REV", 4) && acpi_rev_override) {
538 pr_info("Overriding _REV return value to 5\n");
539 *new_val = (char *)5;
545 static irqreturn_t acpi_irq(int irq, void *dev_id)
547 if ((*acpi_irq_handler)(acpi_irq_context)) {
551 acpi_irq_not_handled++;
557 acpi_os_install_interrupt_handler(u32 gsi, acpi_osd_handler handler,
562 acpi_irq_stats_init();
565 * ACPI interrupts different from the SCI in our copy of the FADT are
568 if (gsi != acpi_gbl_FADT.sci_interrupt)
569 return AE_BAD_PARAMETER;
571 if (acpi_irq_handler)
572 return AE_ALREADY_ACQUIRED;
574 if (acpi_gsi_to_irq(gsi, &irq) < 0) {
575 pr_err("SCI (ACPI GSI %d) not registered\n", gsi);
579 acpi_irq_handler = handler;
580 acpi_irq_context = context;
581 if (request_threaded_irq(irq, NULL, acpi_irq, IRQF_SHARED | IRQF_ONESHOT,
583 pr_err("SCI (IRQ%d) allocation failed\n", irq);
584 acpi_irq_handler = NULL;
585 return AE_NOT_ACQUIRED;
592 acpi_status acpi_os_remove_interrupt_handler(u32 gsi, acpi_osd_handler handler)
594 if (gsi != acpi_gbl_FADT.sci_interrupt || !acpi_sci_irq_valid())
595 return AE_BAD_PARAMETER;
597 free_irq(acpi_sci_irq, acpi_irq);
598 acpi_irq_handler = NULL;
599 acpi_sci_irq = INVALID_ACPI_IRQ;
605 * Running in interpreter thread context, safe to sleep
608 void acpi_os_sleep(u64 ms)
613 void acpi_os_stall(u32 us)
621 touch_nmi_watchdog();
627 * Support ACPI 3.0 AML Timer operand. Returns a 64-bit free-running,
628 * monotonically increasing timer with 100ns granularity. Do not use
629 * ktime_get() to implement this function because this function may get
630 * called after timekeeping has been suspended. Note: calling this function
631 * after timekeeping has been suspended may lead to unexpected results
632 * because when timekeeping is suspended the jiffies counter is not
633 * incremented. See also timekeeping_suspend().
635 u64 acpi_os_get_timer(void)
637 return (get_jiffies_64() - INITIAL_JIFFIES) *
638 (ACPI_100NSEC_PER_SEC / HZ);
641 acpi_status acpi_os_read_port(acpi_io_address port, u32 *value, u32 width)
652 } else if (width <= 16) {
654 } else if (width <= 32) {
657 pr_debug("%s: Access width %d not supported\n", __func__, width);
658 return AE_BAD_PARAMETER;
664 EXPORT_SYMBOL(acpi_os_read_port);
666 acpi_status acpi_os_write_port(acpi_io_address port, u32 value, u32 width)
670 } else if (width <= 16) {
672 } else if (width <= 32) {
675 pr_debug("%s: Access width %d not supported\n", __func__, width);
676 return AE_BAD_PARAMETER;
682 EXPORT_SYMBOL(acpi_os_write_port);
684 int acpi_os_read_iomem(void __iomem *virt_addr, u64 *value, u32 width)
689 *(u8 *) value = readb(virt_addr);
692 *(u16 *) value = readw(virt_addr);
695 *(u32 *) value = readl(virt_addr);
698 *(u64 *) value = readq(virt_addr);
708 acpi_os_read_memory(acpi_physical_address phys_addr, u64 *value, u32 width)
710 void __iomem *virt_addr;
711 unsigned int size = width / 8;
717 virt_addr = acpi_map_vaddr_lookup(phys_addr, size);
720 virt_addr = acpi_os_ioremap(phys_addr, size);
722 return AE_BAD_ADDRESS;
729 error = acpi_os_read_iomem(virt_addr, value, width);
741 acpi_os_write_memory(acpi_physical_address phys_addr, u64 value, u32 width)
743 void __iomem *virt_addr;
744 unsigned int size = width / 8;
748 virt_addr = acpi_map_vaddr_lookup(phys_addr, size);
751 virt_addr = acpi_os_ioremap(phys_addr, size);
753 return AE_BAD_ADDRESS;
759 writeb(value, virt_addr);
762 writew(value, virt_addr);
765 writel(value, virt_addr);
768 writeq(value, virt_addr);
784 acpi_os_read_pci_configuration(struct acpi_pci_id *pci_id, u32 reg,
785 u64 *value, u32 width)
791 return AE_BAD_PARAMETER;
807 result = raw_pci_read(pci_id->segment, pci_id->bus,
808 PCI_DEVFN(pci_id->device, pci_id->function),
809 reg, size, &value32);
812 return (result ? AE_ERROR : AE_OK);
816 acpi_os_write_pci_configuration(struct acpi_pci_id *pci_id, u32 reg,
817 u64 value, u32 width)
835 result = raw_pci_write(pci_id->segment, pci_id->bus,
836 PCI_DEVFN(pci_id->device, pci_id->function),
839 return (result ? AE_ERROR : AE_OK);
843 static void acpi_os_execute_deferred(struct work_struct *work)
845 struct acpi_os_dpc *dpc = container_of(work, struct acpi_os_dpc, work);
847 dpc->function(dpc->context);
851 #ifdef CONFIG_ACPI_DEBUGGER
852 static struct acpi_debugger acpi_debugger;
853 static bool acpi_debugger_initialized;
855 int acpi_register_debugger(struct module *owner,
856 const struct acpi_debugger_ops *ops)
860 mutex_lock(&acpi_debugger.lock);
861 if (acpi_debugger.ops) {
866 acpi_debugger.owner = owner;
867 acpi_debugger.ops = ops;
870 mutex_unlock(&acpi_debugger.lock);
873 EXPORT_SYMBOL(acpi_register_debugger);
875 void acpi_unregister_debugger(const struct acpi_debugger_ops *ops)
877 mutex_lock(&acpi_debugger.lock);
878 if (ops == acpi_debugger.ops) {
879 acpi_debugger.ops = NULL;
880 acpi_debugger.owner = NULL;
882 mutex_unlock(&acpi_debugger.lock);
884 EXPORT_SYMBOL(acpi_unregister_debugger);
886 int acpi_debugger_create_thread(acpi_osd_exec_callback function, void *context)
889 int (*func)(acpi_osd_exec_callback, void *);
890 struct module *owner;
892 if (!acpi_debugger_initialized)
894 mutex_lock(&acpi_debugger.lock);
895 if (!acpi_debugger.ops) {
899 if (!try_module_get(acpi_debugger.owner)) {
903 func = acpi_debugger.ops->create_thread;
904 owner = acpi_debugger.owner;
905 mutex_unlock(&acpi_debugger.lock);
907 ret = func(function, context);
909 mutex_lock(&acpi_debugger.lock);
912 mutex_unlock(&acpi_debugger.lock);
916 ssize_t acpi_debugger_write_log(const char *msg)
919 ssize_t (*func)(const char *);
920 struct module *owner;
922 if (!acpi_debugger_initialized)
924 mutex_lock(&acpi_debugger.lock);
925 if (!acpi_debugger.ops) {
929 if (!try_module_get(acpi_debugger.owner)) {
933 func = acpi_debugger.ops->write_log;
934 owner = acpi_debugger.owner;
935 mutex_unlock(&acpi_debugger.lock);
939 mutex_lock(&acpi_debugger.lock);
942 mutex_unlock(&acpi_debugger.lock);
946 ssize_t acpi_debugger_read_cmd(char *buffer, size_t buffer_length)
949 ssize_t (*func)(char *, size_t);
950 struct module *owner;
952 if (!acpi_debugger_initialized)
954 mutex_lock(&acpi_debugger.lock);
955 if (!acpi_debugger.ops) {
959 if (!try_module_get(acpi_debugger.owner)) {
963 func = acpi_debugger.ops->read_cmd;
964 owner = acpi_debugger.owner;
965 mutex_unlock(&acpi_debugger.lock);
967 ret = func(buffer, buffer_length);
969 mutex_lock(&acpi_debugger.lock);
972 mutex_unlock(&acpi_debugger.lock);
976 int acpi_debugger_wait_command_ready(void)
979 int (*func)(bool, char *, size_t);
980 struct module *owner;
982 if (!acpi_debugger_initialized)
984 mutex_lock(&acpi_debugger.lock);
985 if (!acpi_debugger.ops) {
989 if (!try_module_get(acpi_debugger.owner)) {
993 func = acpi_debugger.ops->wait_command_ready;
994 owner = acpi_debugger.owner;
995 mutex_unlock(&acpi_debugger.lock);
997 ret = func(acpi_gbl_method_executing,
998 acpi_gbl_db_line_buf, ACPI_DB_LINE_BUFFER_SIZE);
1000 mutex_lock(&acpi_debugger.lock);
1003 mutex_unlock(&acpi_debugger.lock);
1007 int acpi_debugger_notify_command_complete(void)
1011 struct module *owner;
1013 if (!acpi_debugger_initialized)
1015 mutex_lock(&acpi_debugger.lock);
1016 if (!acpi_debugger.ops) {
1020 if (!try_module_get(acpi_debugger.owner)) {
1024 func = acpi_debugger.ops->notify_command_complete;
1025 owner = acpi_debugger.owner;
1026 mutex_unlock(&acpi_debugger.lock);
1030 mutex_lock(&acpi_debugger.lock);
1033 mutex_unlock(&acpi_debugger.lock);
1037 int __init acpi_debugger_init(void)
1039 mutex_init(&acpi_debugger.lock);
1040 acpi_debugger_initialized = true;
1045 /*******************************************************************************
1047 * FUNCTION: acpi_os_execute
1049 * PARAMETERS: Type - Type of the callback
1050 * Function - Function to be executed
1051 * Context - Function parameters
1055 * DESCRIPTION: Depending on type, either queues function for deferred execution or
1056 * immediately executes function on a separate thread.
1058 ******************************************************************************/
1060 acpi_status acpi_os_execute(acpi_execute_type type,
1061 acpi_osd_exec_callback function, void *context)
1063 struct acpi_os_dpc *dpc;
1066 ACPI_DEBUG_PRINT((ACPI_DB_EXEC,
1067 "Scheduling function [%p(%p)] for deferred execution.\n",
1068 function, context));
1070 if (type == OSL_DEBUGGER_MAIN_THREAD) {
1071 ret = acpi_debugger_create_thread(function, context);
1073 pr_err("Kernel thread creation failed\n");
1080 * Allocate/initialize DPC structure. Note that this memory will be
1081 * freed by the callee. The kernel handles the work_struct list in a
1082 * way that allows us to also free its memory inside the callee.
1083 * Because we may want to schedule several tasks with different
1084 * parameters we can't use the approach some kernel code uses of
1085 * having a static work_struct.
1088 dpc = kzalloc(sizeof(struct acpi_os_dpc), GFP_ATOMIC);
1090 return AE_NO_MEMORY;
1092 dpc->function = function;
1093 dpc->context = context;
1094 INIT_WORK(&dpc->work, acpi_os_execute_deferred);
1097 * To prevent lockdep from complaining unnecessarily, make sure that
1098 * there is a different static lockdep key for each workqueue by using
1099 * INIT_WORK() for each of them separately.
1102 case OSL_NOTIFY_HANDLER:
1103 ret = queue_work(kacpi_notify_wq, &dpc->work);
1105 case OSL_GPE_HANDLER:
1107 * On some machines, a software-initiated SMI causes corruption
1108 * unless the SMI runs on CPU 0. An SMI can be initiated by
1109 * any AML, but typically it's done in GPE-related methods that
1110 * are run via workqueues, so we can avoid the known corruption
1111 * cases by always queueing on CPU 0.
1113 ret = queue_work_on(0, kacpid_wq, &dpc->work);
1116 pr_err("Unsupported os_execute type %d.\n", type);
1120 pr_err("Unable to queue work\n");
1130 EXPORT_SYMBOL(acpi_os_execute);
1132 void acpi_os_wait_events_complete(void)
1135 * Make sure the GPE handler or the fixed event handler is not used
1136 * on another CPU after removal.
1138 if (acpi_sci_irq_valid())
1139 synchronize_hardirq(acpi_sci_irq);
1140 flush_workqueue(kacpid_wq);
1141 flush_workqueue(kacpi_notify_wq);
1143 EXPORT_SYMBOL(acpi_os_wait_events_complete);
1145 struct acpi_hp_work {
1146 struct work_struct work;
1147 struct acpi_device *adev;
1151 static void acpi_hotplug_work_fn(struct work_struct *work)
1153 struct acpi_hp_work *hpw = container_of(work, struct acpi_hp_work, work);
1155 acpi_os_wait_events_complete();
1156 acpi_device_hotplug(hpw->adev, hpw->src);
1160 acpi_status acpi_hotplug_schedule(struct acpi_device *adev, u32 src)
1162 struct acpi_hp_work *hpw;
1164 acpi_handle_debug(adev->handle,
1165 "Scheduling hotplug event %u for deferred handling\n",
1168 hpw = kmalloc(sizeof(*hpw), GFP_KERNEL);
1170 return AE_NO_MEMORY;
1172 INIT_WORK(&hpw->work, acpi_hotplug_work_fn);
1176 * We can't run hotplug code in kacpid_wq/kacpid_notify_wq etc., because
1177 * the hotplug code may call driver .remove() functions, which may
1178 * invoke flush_scheduled_work()/acpi_os_wait_events_complete() to flush
1181 if (!queue_work(kacpi_hotplug_wq, &hpw->work)) {
1188 bool acpi_queue_hotplug_work(struct work_struct *work)
1190 return queue_work(kacpi_hotplug_wq, work);
1194 acpi_os_create_semaphore(u32 max_units, u32 initial_units, acpi_handle *handle)
1196 struct semaphore *sem = NULL;
1198 sem = acpi_os_allocate_zeroed(sizeof(struct semaphore));
1200 return AE_NO_MEMORY;
1202 sema_init(sem, initial_units);
1204 *handle = (acpi_handle *) sem;
1206 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX, "Creating semaphore[%p|%d].\n",
1207 *handle, initial_units));
1213 * TODO: A better way to delete semaphores? Linux doesn't have a
1214 * 'delete_semaphore()' function -- may result in an invalid
1215 * pointer dereference for non-synchronized consumers. Should
1216 * we at least check for blocked threads and signal/cancel them?
1219 acpi_status acpi_os_delete_semaphore(acpi_handle handle)
1221 struct semaphore *sem = (struct semaphore *)handle;
1224 return AE_BAD_PARAMETER;
1226 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX, "Deleting semaphore[%p].\n", handle));
1228 BUG_ON(!list_empty(&sem->wait_list));
1236 * TODO: Support for units > 1?
1238 acpi_status acpi_os_wait_semaphore(acpi_handle handle, u32 units, u16 timeout)
1240 acpi_status status = AE_OK;
1241 struct semaphore *sem = (struct semaphore *)handle;
1245 if (!acpi_os_initialized)
1248 if (!sem || (units < 1))
1249 return AE_BAD_PARAMETER;
1254 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX, "Waiting for semaphore[%p|%d|%d]\n",
1255 handle, units, timeout));
1257 if (timeout == ACPI_WAIT_FOREVER)
1258 jiffies = MAX_SCHEDULE_TIMEOUT;
1260 jiffies = msecs_to_jiffies(timeout);
1262 ret = down_timeout(sem, jiffies);
1266 if (ACPI_FAILURE(status)) {
1267 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX,
1268 "Failed to acquire semaphore[%p|%d|%d], %s",
1269 handle, units, timeout,
1270 acpi_format_exception(status)));
1272 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX,
1273 "Acquired semaphore[%p|%d|%d]", handle,
1281 * TODO: Support for units > 1?
1283 acpi_status acpi_os_signal_semaphore(acpi_handle handle, u32 units)
1285 struct semaphore *sem = (struct semaphore *)handle;
1287 if (!acpi_os_initialized)
1290 if (!sem || (units < 1))
1291 return AE_BAD_PARAMETER;
1296 ACPI_DEBUG_PRINT((ACPI_DB_MUTEX, "Signaling semaphore[%p|%d]\n", handle,
1304 acpi_status acpi_os_get_line(char *buffer, u32 buffer_length, u32 *bytes_read)
1306 #ifdef ENABLE_DEBUGGER
1307 if (acpi_in_debugger) {
1310 kdb_read(buffer, buffer_length);
1312 /* remove the CR kdb includes */
1313 chars = strlen(buffer) - 1;
1314 buffer[chars] = '\0';
1319 ret = acpi_debugger_read_cmd(buffer, buffer_length);
1328 EXPORT_SYMBOL(acpi_os_get_line);
1330 acpi_status acpi_os_wait_command_ready(void)
1334 ret = acpi_debugger_wait_command_ready();
1340 acpi_status acpi_os_notify_command_complete(void)
1344 ret = acpi_debugger_notify_command_complete();
1350 acpi_status acpi_os_signal(u32 function, void *info)
1353 case ACPI_SIGNAL_FATAL:
1354 pr_err("Fatal opcode executed\n");
1356 case ACPI_SIGNAL_BREAKPOINT:
1359 * ACPI spec. says to treat it as a NOP unless
1360 * you are debugging. So if/when we integrate
1361 * AML debugger into the kernel debugger its
1362 * hook will go here. But until then it is
1363 * not useful to print anything on breakpoints.
1373 static int __init acpi_os_name_setup(char *str)
1375 char *p = acpi_os_name;
1376 int count = ACPI_MAX_OVERRIDE_LEN - 1;
1381 for (; count-- && *str; str++) {
1382 if (isalnum(*str) || *str == ' ' || *str == ':')
1384 else if (*str == '\'' || *str == '"')
1395 __setup("acpi_os_name=", acpi_os_name_setup);
1398 * Disable the auto-serialization of named objects creation methods.
1400 * This feature is enabled by default. It marks the AML control methods
1401 * that contain the opcodes to create named objects as "Serialized".
1403 static int __init acpi_no_auto_serialize_setup(char *str)
1405 acpi_gbl_auto_serialize_methods = FALSE;
1406 pr_info("Auto-serialization disabled\n");
1411 __setup("acpi_no_auto_serialize", acpi_no_auto_serialize_setup);
1413 /* Check of resource interference between native drivers and ACPI
1414 * OperationRegions (SystemIO and System Memory only).
1415 * IO ports and memory declared in ACPI might be used by the ACPI subsystem
1416 * in arbitrary AML code and can interfere with legacy drivers.
1417 * acpi_enforce_resources= can be set to:
1419 * - strict (default) (2)
1420 * -> further driver trying to access the resources will not load
1422 * -> further driver trying to access the resources will load, but you
1423 * get a system message that something might go wrong...
1426 * -> ACPI Operation Region resources will not be registered
1429 #define ENFORCE_RESOURCES_STRICT 2
1430 #define ENFORCE_RESOURCES_LAX 1
1431 #define ENFORCE_RESOURCES_NO 0
1433 static unsigned int acpi_enforce_resources = ENFORCE_RESOURCES_STRICT;
1435 static int __init acpi_enforce_resources_setup(char *str)
1437 if (str == NULL || *str == '\0')
1440 if (!strcmp("strict", str))
1441 acpi_enforce_resources = ENFORCE_RESOURCES_STRICT;
1442 else if (!strcmp("lax", str))
1443 acpi_enforce_resources = ENFORCE_RESOURCES_LAX;
1444 else if (!strcmp("no", str))
1445 acpi_enforce_resources = ENFORCE_RESOURCES_NO;
1450 __setup("acpi_enforce_resources=", acpi_enforce_resources_setup);
1452 /* Check for resource conflicts between ACPI OperationRegions and native
1454 int acpi_check_resource_conflict(const struct resource *res)
1456 acpi_adr_space_type space_id;
1458 if (acpi_enforce_resources == ENFORCE_RESOURCES_NO)
1461 if (res->flags & IORESOURCE_IO)
1462 space_id = ACPI_ADR_SPACE_SYSTEM_IO;
1463 else if (res->flags & IORESOURCE_MEM)
1464 space_id = ACPI_ADR_SPACE_SYSTEM_MEMORY;
1468 if (!acpi_check_address_range(space_id, res->start, resource_size(res), 1))
1471 pr_info("Resource conflict; ACPI support missing from driver?\n");
1473 if (acpi_enforce_resources == ENFORCE_RESOURCES_STRICT)
1476 if (acpi_enforce_resources == ENFORCE_RESOURCES_LAX)
1477 pr_notice("Resource conflict: System may be unstable or behave erratically\n");
1481 EXPORT_SYMBOL(acpi_check_resource_conflict);
1483 int acpi_check_region(resource_size_t start, resource_size_t n,
1486 struct resource res = DEFINE_RES_IO_NAMED(start, n, name);
1488 return acpi_check_resource_conflict(&res);
1490 EXPORT_SYMBOL(acpi_check_region);
1493 * Let drivers know whether the resource checks are effective
1495 int acpi_resources_are_enforced(void)
1497 return acpi_enforce_resources == ENFORCE_RESOURCES_STRICT;
1499 EXPORT_SYMBOL(acpi_resources_are_enforced);
1502 * Deallocate the memory for a spinlock.
1504 void acpi_os_delete_lock(acpi_spinlock handle)
1510 * Acquire a spinlock.
1512 * handle is a pointer to the spinlock_t.
1515 acpi_cpu_flags acpi_os_acquire_lock(acpi_spinlock lockp)
1523 * Release a spinlock. See above.
1526 void acpi_os_release_lock(acpi_spinlock lockp, acpi_cpu_flags not_used)
1532 #ifndef ACPI_USE_LOCAL_CACHE
1534 /*******************************************************************************
1536 * FUNCTION: acpi_os_create_cache
1538 * PARAMETERS: name - Ascii name for the cache
1539 * size - Size of each cached object
1540 * depth - Maximum depth of the cache (in objects) <ignored>
1541 * cache - Where the new cache object is returned
1545 * DESCRIPTION: Create a cache object
1547 ******************************************************************************/
1550 acpi_os_create_cache(char *name, u16 size, u16 depth, acpi_cache_t **cache)
1552 *cache = kmem_cache_create(name, size, 0, 0, NULL);
1559 /*******************************************************************************
1561 * FUNCTION: acpi_os_purge_cache
1563 * PARAMETERS: Cache - Handle to cache object
1567 * DESCRIPTION: Free all objects within the requested cache.
1569 ******************************************************************************/
1571 acpi_status acpi_os_purge_cache(acpi_cache_t *cache)
1573 kmem_cache_shrink(cache);
1577 /*******************************************************************************
1579 * FUNCTION: acpi_os_delete_cache
1581 * PARAMETERS: Cache - Handle to cache object
1585 * DESCRIPTION: Free all objects within the requested cache and delete the
1588 ******************************************************************************/
1590 acpi_status acpi_os_delete_cache(acpi_cache_t *cache)
1592 kmem_cache_destroy(cache);
1596 /*******************************************************************************
1598 * FUNCTION: acpi_os_release_object
1600 * PARAMETERS: Cache - Handle to cache object
1601 * Object - The object to be released
1605 * DESCRIPTION: Release an object to the specified cache. If cache is full,
1606 * the object is deleted.
1608 ******************************************************************************/
1610 acpi_status acpi_os_release_object(acpi_cache_t *cache, void *object)
1612 kmem_cache_free(cache, object);
1617 static int __init acpi_no_static_ssdt_setup(char *s)
1619 acpi_gbl_disable_ssdt_table_install = TRUE;
1620 pr_info("Static SSDT installation disabled\n");
1625 early_param("acpi_no_static_ssdt", acpi_no_static_ssdt_setup);
1627 static int __init acpi_disable_return_repair(char *s)
1629 pr_notice("Predefined validation mechanism disabled\n");
1630 acpi_gbl_disable_auto_repair = TRUE;
1635 __setup("acpica_no_return_repair", acpi_disable_return_repair);
1637 acpi_status __init acpi_os_initialize(void)
1639 acpi_os_map_generic_address(&acpi_gbl_FADT.xpm1a_event_block);
1640 acpi_os_map_generic_address(&acpi_gbl_FADT.xpm1b_event_block);
1642 acpi_gbl_xgpe0_block_logical_address =
1643 (unsigned long)acpi_os_map_generic_address(&acpi_gbl_FADT.xgpe0_block);
1644 acpi_gbl_xgpe1_block_logical_address =
1645 (unsigned long)acpi_os_map_generic_address(&acpi_gbl_FADT.xgpe1_block);
1647 if (acpi_gbl_FADT.flags & ACPI_FADT_RESET_REGISTER) {
1649 * Use acpi_os_map_generic_address to pre-map the reset
1650 * register if it's in system memory.
1654 rv = acpi_os_map_generic_address(&acpi_gbl_FADT.reset_register);
1655 pr_debug("%s: Reset register mapping %s\n", __func__,
1656 rv ? "successful" : "failed");
1658 acpi_os_initialized = true;
1663 acpi_status __init acpi_os_initialize1(void)
1665 kacpid_wq = alloc_workqueue("kacpid", 0, 1);
1666 kacpi_notify_wq = alloc_workqueue("kacpi_notify", 0, 0);
1667 kacpi_hotplug_wq = alloc_ordered_workqueue("kacpi_hotplug", 0);
1669 BUG_ON(!kacpi_notify_wq);
1670 BUG_ON(!kacpi_hotplug_wq);
1675 acpi_status acpi_os_terminate(void)
1677 if (acpi_irq_handler) {
1678 acpi_os_remove_interrupt_handler(acpi_gbl_FADT.sci_interrupt,
1682 acpi_os_unmap_generic_address(&acpi_gbl_FADT.xgpe1_block);
1683 acpi_os_unmap_generic_address(&acpi_gbl_FADT.xgpe0_block);
1684 acpi_gbl_xgpe0_block_logical_address = 0UL;
1685 acpi_gbl_xgpe1_block_logical_address = 0UL;
1687 acpi_os_unmap_generic_address(&acpi_gbl_FADT.xpm1b_event_block);
1688 acpi_os_unmap_generic_address(&acpi_gbl_FADT.xpm1a_event_block);
1690 if (acpi_gbl_FADT.flags & ACPI_FADT_RESET_REGISTER)
1691 acpi_os_unmap_generic_address(&acpi_gbl_FADT.reset_register);
1693 destroy_workqueue(kacpid_wq);
1694 destroy_workqueue(kacpi_notify_wq);
1695 destroy_workqueue(kacpi_hotplug_wq);
1700 acpi_status acpi_os_prepare_sleep(u8 sleep_state, u32 pm1a_control,
1705 if (__acpi_os_prepare_sleep)
1706 rc = __acpi_os_prepare_sleep(sleep_state,
1707 pm1a_control, pm1b_control);
1711 return AE_CTRL_TERMINATE;
1716 void acpi_os_set_prepare_sleep(int (*func)(u8 sleep_state,
1717 u32 pm1a_ctrl, u32 pm1b_ctrl))
1719 __acpi_os_prepare_sleep = func;
1722 #if (ACPI_REDUCED_HARDWARE)
1723 acpi_status acpi_os_prepare_extended_sleep(u8 sleep_state, u32 val_a,
1728 if (__acpi_os_prepare_extended_sleep)
1729 rc = __acpi_os_prepare_extended_sleep(sleep_state,
1734 return AE_CTRL_TERMINATE;
1739 acpi_status acpi_os_prepare_extended_sleep(u8 sleep_state, u32 val_a,
1746 void acpi_os_set_prepare_extended_sleep(int (*func)(u8 sleep_state,
1747 u32 val_a, u32 val_b))
1749 __acpi_os_prepare_extended_sleep = func;
1752 acpi_status acpi_os_enter_sleep(u8 sleep_state,
1753 u32 reg_a_value, u32 reg_b_value)
1757 if (acpi_gbl_reduced_hardware)
1758 status = acpi_os_prepare_extended_sleep(sleep_state,
1762 status = acpi_os_prepare_sleep(sleep_state,
1763 reg_a_value, reg_b_value);