acpi_pm.rs 8.8 KB

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  1. use crate::{
  2. alloc::string::ToString,
  3. arch::{io::PortIOArch, CurrentPortIOArch},
  4. driver::acpi::{
  5. acpi_manager,
  6. pmtmr::{ACPI_PM_MASK, PMTMR_TICKS_PER_SEC},
  7. },
  8. libs::spinlock::SpinLock,
  9. time::{
  10. clocksource::{Clocksource, ClocksourceData, ClocksourceFlags, ClocksourceMask, CycleNum},
  11. PIT_TICK_RATE,
  12. },
  13. };
  14. use acpi::fadt::Fadt;
  15. use alloc::sync::{Arc, Weak};
  16. use core::intrinsics::unlikely;
  17. use core::sync::atomic::{AtomicU32, Ordering};
  18. use log::info;
  19. use system_error::SystemError;
  20. // 参考:https://code.dragonos.org.cn/xref/linux-6.6.21/drivers/clocksource/acpi_pm.c
  21. /// acpi_pmtmr所在的I/O端口
  22. pub static PMTMR_IO_PORT: AtomicU32 = AtomicU32::new(0);
  23. /// # 读取acpi_pmtmr当前值,并对齐进行掩码操作
  24. #[inline(always)]
  25. fn read_pmtmr() -> u32 {
  26. return unsafe { CurrentPortIOArch::in32(PMTMR_IO_PORT.load(Ordering::SeqCst) as u16) }
  27. & ACPI_PM_MASK as u32;
  28. }
  29. //参考: https://code.dragonos.org.cn/xref/linux-6.6.21/drivers/clocksource/acpi_pm.c#41
  30. /// # 读取acpi_pmtmr的值,并进行多次读取以保证获取正确的值
  31. ///
  32. /// ## 返回值
  33. /// - u32: 读取到的acpi_pmtmr值
  34. #[allow(dead_code)]
  35. pub fn acpi_pm_read_verified() -> u32 {
  36. let mut v2: u32;
  37. // 因为某些损坏芯片组(如ICH4、PIIX4和PIIX4E)可能导致APCI PM时钟源未锁存
  38. // 因此需要多次读取以保证获取正确的值
  39. loop {
  40. let v1 = read_pmtmr();
  41. v2 = read_pmtmr();
  42. let v3 = read_pmtmr();
  43. if !(unlikely((v2 > v3 || v1 < v3) && v1 > v2 || v1 < v3 && v2 > v3)) {
  44. break;
  45. }
  46. }
  47. return v2;
  48. }
  49. /// # 作为时钟源的读取函数
  50. ///
  51. /// ## 返回值
  52. /// - u64: acpi_pmtmr的当前值
  53. fn acpi_pm_read() -> u64 {
  54. return read_pmtmr() as u64;
  55. }
  56. pub static mut CLOCKSOURCE_ACPI_PM: Option<Arc<Acpipm>> = None;
  57. pub fn clocksource_acpi_pm() -> Arc<Acpipm> {
  58. return unsafe { CLOCKSOURCE_ACPI_PM.as_ref().unwrap().clone() };
  59. }
  60. #[derive(Debug)]
  61. pub struct Acpipm(SpinLock<InnerAcpipm>);
  62. #[derive(Debug)]
  63. struct InnerAcpipm {
  64. data: ClocksourceData,
  65. self_reaf: Weak<Acpipm>,
  66. }
  67. impl Acpipm {
  68. pub fn new() -> Arc<Self> {
  69. let data = ClocksourceData {
  70. name: "acpi_pm".to_string(),
  71. rating: 200,
  72. mask: ClocksourceMask::new(ACPI_PM_MASK),
  73. mult: 0,
  74. shift: 0,
  75. max_idle_ns: Default::default(),
  76. flags: ClocksourceFlags::CLOCK_SOURCE_IS_CONTINUOUS,
  77. watchdog_last: CycleNum::new(0),
  78. uncertainty_margin: 0,
  79. maxadj: 0,
  80. };
  81. let acpi_pm = Arc::new(Acpipm(SpinLock::new(InnerAcpipm {
  82. data,
  83. self_reaf: Default::default(),
  84. })));
  85. acpi_pm.0.lock().self_reaf = Arc::downgrade(&acpi_pm);
  86. return acpi_pm;
  87. }
  88. }
  89. impl Clocksource for Acpipm {
  90. fn read(&self) -> CycleNum {
  91. return CycleNum::new(acpi_pm_read());
  92. }
  93. fn clocksource_data(&self) -> ClocksourceData {
  94. let inner = self.0.lock_irqsave();
  95. return inner.data.clone();
  96. }
  97. fn clocksource(&self) -> Arc<dyn Clocksource> {
  98. return self.0.lock_irqsave().self_reaf.upgrade().unwrap();
  99. }
  100. fn update_clocksource_data(&self, data: ClocksourceData) -> Result<(), SystemError> {
  101. let d = &mut self.0.lock_irqsave().data;
  102. d.set_flags(data.flags);
  103. d.set_mask(data.mask);
  104. d.set_max_idle_ns(data.max_idle_ns);
  105. d.set_mult(data.mult);
  106. d.set_name(data.name);
  107. d.set_rating(data.rating);
  108. d.set_shift(data.shift);
  109. d.watchdog_last = data.watchdog_last;
  110. return Ok(());
  111. }
  112. }
  113. // 参考:https://code.dragonos.org.cn/xref/linux-6.6.21/arch/x86/include/asm/mach_timer.h?fi=mach_prepare_counter
  114. #[allow(dead_code)]
  115. pub const CALIBRATE_TIME_MSEC: u64 = 30;
  116. pub const CALIBRATE_LATCH: u64 = (PIT_TICK_RATE * CALIBRATE_TIME_MSEC + 1000 / 2) / 1000;
  117. #[inline(always)]
  118. #[allow(dead_code)]
  119. pub fn mach_prepare_counter() {
  120. unsafe {
  121. // 将Gate位设置为高电平,从而禁用扬声器
  122. CurrentPortIOArch::out8(0x61, (CurrentPortIOArch::in8(0x61) & !0x02) | 0x01);
  123. // 针对计数器/定时器控制器的通道2进行配置,设置为模式0,二进制计数
  124. CurrentPortIOArch::out8(0x43, 0xb0);
  125. CurrentPortIOArch::out8(0x42, (CALIBRATE_LATCH & 0xff) as u8);
  126. CurrentPortIOArch::out8(0x42, (CALIBRATE_LATCH >> 8) as u8);
  127. }
  128. }
  129. #[allow(dead_code)]
  130. pub fn mach_countup(count: &mut u32) {
  131. let mut tmp: u32 = 0;
  132. loop {
  133. tmp += 1;
  134. if (unsafe { CurrentPortIOArch::in8(0x61) } & 0x20) != 0 {
  135. break;
  136. }
  137. }
  138. *count = tmp;
  139. }
  140. #[allow(dead_code)]
  141. const PMTMR_EXPECTED_RATE: u64 =
  142. (CALIBRATE_LATCH * (PMTMR_TICKS_PER_SEC >> 10)) / (PIT_TICK_RATE >> 10);
  143. /// # 验证ACPI PM Timer的运行速率是否在预期范围内(在x86_64架构以外的情况下验证)
  144. ///
  145. /// ## 返回值
  146. /// - i32:如果为0则表示在预期范围内,否则不在
  147. #[cfg(not(target_arch = "x86_64"))]
  148. #[allow(dead_code)]
  149. fn verify_pmtmr_rate() -> bool {
  150. use log::info;
  151. let mut count: u32 = 0;
  152. mach_prepare_counter();
  153. let value1 = clocksource_acpi_pm().read().data();
  154. mach_countup(&mut count);
  155. let value2 = clocksource_acpi_pm().read().data();
  156. let delta = (value2 - value1) & ACPI_PM_MASK;
  157. if (delta < (PMTMR_EXPECTED_RATE * 19) / 20) || (delta > (PMTMR_EXPECTED_RATE * 21) / 20) {
  158. info!(
  159. "PM Timer running at invalid rate: {}",
  160. 100 * delta / PMTMR_EXPECTED_RATE
  161. );
  162. return false;
  163. }
  164. return true;
  165. }
  166. #[cfg(target_arch = "x86_64")]
  167. fn verify_pmtmr_rate() -> bool {
  168. return true;
  169. }
  170. const ACPI_PM_MONOTONIC_CHECKS: u32 = 10;
  171. const ACPI_PM_READ_CHECKS: u32 = 10000;
  172. /// # 解析fadt
  173. fn find_acpi_pm_clock() -> Result<(), SystemError> {
  174. let fadt = acpi_manager()
  175. .tables()
  176. .unwrap()
  177. .find_table::<Fadt>()
  178. .expect("failed to find FADT table");
  179. let pm_timer_block = fadt.pm_timer_block().map_err(|_| SystemError::ENODEV)?;
  180. let pm_timer_block = pm_timer_block.ok_or(SystemError::ENODEV)?;
  181. let pmtmr_addr = pm_timer_block.address;
  182. PMTMR_IO_PORT.store(pmtmr_addr as u32, Ordering::SeqCst);
  183. info!(
  184. "apic_pmtmr I/O port: {}",
  185. PMTMR_IO_PORT.load(Ordering::SeqCst)
  186. );
  187. return Ok(());
  188. }
  189. /// # 初始化ACPI PM Timer作为系统时钟源
  190. // #[unified_init(INITCALL_FS)]
  191. #[inline(never)]
  192. #[allow(dead_code)]
  193. pub fn init_acpi_pm_clocksource() -> Result<(), SystemError> {
  194. let acpi_pm = Acpipm::new();
  195. // 解析fadt
  196. find_acpi_pm_clock()?;
  197. // 检查pmtmr_io_port是否被设置
  198. if PMTMR_IO_PORT.load(Ordering::SeqCst) == 0 {
  199. return Err(SystemError::ENODEV);
  200. }
  201. unsafe {
  202. CLOCKSOURCE_ACPI_PM = Some(acpi_pm);
  203. }
  204. // 验证ACPI PM Timer作为时钟源的稳定性和一致性
  205. for j in 0..ACPI_PM_MONOTONIC_CHECKS {
  206. let mut cnt = 100 * j;
  207. while cnt > 0 {
  208. cnt -= 1;
  209. }
  210. let value1 = clocksource_acpi_pm().read().data();
  211. let mut i = 0;
  212. for _ in 0..ACPI_PM_READ_CHECKS {
  213. let value2 = clocksource_acpi_pm().read().data();
  214. if value2 == value1 {
  215. i += 1;
  216. continue;
  217. }
  218. if value2 > value1 {
  219. break;
  220. }
  221. if (value2 < value1) && (value2 < 0xfff) {
  222. break;
  223. }
  224. info!("PM Timer had inconsistens results: {} {}", value1, value2);
  225. PMTMR_IO_PORT.store(0, Ordering::SeqCst);
  226. return Err(SystemError::EINVAL);
  227. }
  228. if i == ACPI_PM_READ_CHECKS {
  229. info!("PM Timer failed consistency check: {}", value1);
  230. PMTMR_IO_PORT.store(0, Ordering::SeqCst);
  231. return Err(SystemError::EINVAL);
  232. }
  233. }
  234. // 检查ACPI PM Timer的频率是否正确
  235. if !verify_pmtmr_rate() {
  236. PMTMR_IO_PORT.store(0, Ordering::SeqCst);
  237. }
  238. // 检查TSC时钟源的监视器是否被禁用,如果被禁用则将时钟源的标志设置为CLOCK_SOURCE_MUST_VERIFY
  239. // 没有实现clocksource_selecet_watchdog函数,所以这里设置为false
  240. let tsc_clocksource_watchdog_disabled = false;
  241. if tsc_clocksource_watchdog_disabled {
  242. clocksource_acpi_pm().0.lock_irqsave().data.flags |=
  243. ClocksourceFlags::CLOCK_SOURCE_MUST_VERIFY;
  244. }
  245. // 注册ACPI PM Timer
  246. let acpi_pmtmr = clocksource_acpi_pm() as Arc<dyn Clocksource>;
  247. match acpi_pmtmr.register(100, PMTMR_TICKS_PER_SEC as u32) {
  248. Ok(_) => {
  249. info!("ACPI PM Timer registered as clocksource sccessfully");
  250. return Ok(());
  251. }
  252. Err(_) => {
  253. info!("ACPI PM Timer init registered failed");
  254. return Err(SystemError::ENOSYS);
  255. }
  256. };
  257. }