Thread.cpp 17 KB

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  1. #include <Kernel/FileSystem/FileDescription.h>
  2. #include <Kernel/Process.h>
  3. #include <Kernel/Scheduler.h>
  4. #include <Kernel/Thread.h>
  5. #include <Kernel/VM/MemoryManager.h>
  6. #include <LibC/signal_numbers.h>
  7. //#define SIGNAL_DEBUG
  8. HashTable<Thread*>& thread_table()
  9. {
  10. ASSERT_INTERRUPTS_DISABLED();
  11. static HashTable<Thread*>* table;
  12. if (!table)
  13. table = new HashTable<Thread*>;
  14. return *table;
  15. }
  16. InlineLinkedList<Thread>* g_runnable_threads;
  17. InlineLinkedList<Thread>* g_nonrunnable_threads;
  18. static const u32 default_kernel_stack_size = 65536;
  19. static const u32 default_userspace_stack_size = 65536;
  20. Thread::Thread(Process& process)
  21. : m_process(process)
  22. , m_tid(process.m_next_tid++)
  23. {
  24. dbgprintf("Thread{%p}: New thread TID=%u in %s(%u)\n", this, m_tid, process.name().characters(), process.pid());
  25. set_default_signal_dispositions();
  26. m_fpu_state = (FPUState*)kmalloc_aligned(sizeof(FPUState), 16);
  27. memset(&m_tss, 0, sizeof(m_tss));
  28. // Only IF is set when a process boots.
  29. m_tss.eflags = 0x0202;
  30. u16 cs, ds, ss;
  31. if (m_process.is_ring0()) {
  32. cs = 0x08;
  33. ds = 0x10;
  34. ss = 0x10;
  35. } else {
  36. cs = 0x1b;
  37. ds = 0x23;
  38. ss = 0x23;
  39. }
  40. m_tss.ds = ds;
  41. m_tss.es = ds;
  42. m_tss.fs = ds;
  43. m_tss.gs = ds;
  44. m_tss.ss = ss;
  45. m_tss.cs = cs;
  46. m_tss.cr3 = m_process.page_directory().cr3();
  47. if (m_process.is_ring0()) {
  48. // FIXME: This memory is leaked.
  49. // But uh, there's also no kernel process termination, so I guess it's not technically leaked...
  50. m_kernel_stack_base = (u32)kmalloc_eternal(default_kernel_stack_size);
  51. m_tss.esp = (m_kernel_stack_base + default_kernel_stack_size) & 0xfffffff8u;
  52. } else {
  53. // Ring3 processes need a separate stack for Ring0.
  54. m_kernel_stack_region = MM.allocate_kernel_region(default_kernel_stack_size, String::format("Kernel Stack (Thread %d)", m_tid));
  55. m_kernel_stack_base = m_kernel_stack_region->vaddr().get();
  56. m_tss.ss0 = 0x10;
  57. m_tss.esp0 = m_kernel_stack_region->vaddr().offset(default_kernel_stack_size).get() & 0xfffffff8u;
  58. }
  59. // HACK: Ring2 SS in the TSS is the current PID.
  60. m_tss.ss2 = m_process.pid();
  61. m_far_ptr.offset = 0x98765432;
  62. if (m_process.pid() != 0) {
  63. InterruptDisabler disabler;
  64. thread_table().set(this);
  65. set_thread_list(g_nonrunnable_threads);
  66. }
  67. }
  68. Thread::~Thread()
  69. {
  70. dbgprintf("~Thread{%p}\n", this);
  71. kfree_aligned(m_fpu_state);
  72. {
  73. InterruptDisabler disabler;
  74. if (m_thread_list)
  75. m_thread_list->remove(this);
  76. thread_table().remove(this);
  77. }
  78. if (g_last_fpu_thread == this)
  79. g_last_fpu_thread = nullptr;
  80. if (selector())
  81. gdt_free_entry(selector());
  82. }
  83. void Thread::unblock()
  84. {
  85. m_blocker = nullptr;
  86. if (current == this) {
  87. set_state(Thread::Running);
  88. return;
  89. }
  90. ASSERT(m_state != Thread::Runnable && m_state != Thread::Running);
  91. set_state(Thread::Runnable);
  92. }
  93. void Thread::block_until(Function<bool()>&& condition)
  94. {
  95. m_blocker = make<ThreadBlockerCondition>(condition);
  96. block(Thread::BlockedCondition);
  97. Scheduler::yield();
  98. }
  99. void Thread::block(Thread::State new_state)
  100. {
  101. bool did_unlock = process().big_lock().unlock_if_locked();
  102. if (state() != Thread::Running) {
  103. dbgprintf("Thread::block: %s(%u) block(%u/%s) with state=%u/%s\n", process().name().characters(), process().pid(), new_state, to_string(new_state), state(), to_string(state()));
  104. }
  105. ASSERT(state() == Thread::Running);
  106. m_was_interrupted_while_blocked = false;
  107. set_state(new_state);
  108. Scheduler::yield();
  109. if (did_unlock)
  110. process().big_lock().lock();
  111. }
  112. void Thread::block(ThreadBlocker& blocker)
  113. {
  114. m_blocker = &blocker;
  115. block(Thread::BlockedCondition);
  116. }
  117. u64 Thread::sleep(u32 ticks)
  118. {
  119. ASSERT(state() == Thread::Running);
  120. u64 wakeup_time = g_uptime + ticks;
  121. current->block(*new Thread::ThreadBlockerSleep(wakeup_time));
  122. return wakeup_time;
  123. }
  124. const char* to_string(Thread::State state)
  125. {
  126. switch (state) {
  127. case Thread::Invalid:
  128. return "Invalid";
  129. case Thread::Runnable:
  130. return "Runnable";
  131. case Thread::Running:
  132. return "Running";
  133. case Thread::Dying:
  134. return "Dying";
  135. case Thread::Dead:
  136. return "Dead";
  137. case Thread::Stopped:
  138. return "Stopped";
  139. case Thread::Skip1SchedulerPass:
  140. return "Skip1";
  141. case Thread::Skip0SchedulerPasses:
  142. return "Skip0";
  143. case Thread::BlockedSignal:
  144. return "Signal";
  145. case Thread::BlockedLurking:
  146. return "Lurking";
  147. case Thread::BlockedCondition:
  148. return "Condition";
  149. case Thread::__Begin_Blocked_States__:
  150. case Thread::__End_Blocked_States__:
  151. break;
  152. }
  153. kprintf("to_string(Thread::State): Invalid state: %u\n", state);
  154. ASSERT_NOT_REACHED();
  155. return nullptr;
  156. }
  157. void Thread::finalize()
  158. {
  159. dbgprintf("Finalizing Thread %u in %s(%u)\n", tid(), m_process.name().characters(), pid());
  160. set_state(Thread::State::Dead);
  161. m_blocker = nullptr;
  162. if (this == &m_process.main_thread())
  163. m_process.finalize();
  164. }
  165. void Thread::finalize_dying_threads()
  166. {
  167. Vector<Thread*, 32> dying_threads;
  168. {
  169. InterruptDisabler disabler;
  170. for_each_in_state(Thread::State::Dying, [&](Thread& thread) {
  171. dying_threads.append(&thread);
  172. });
  173. }
  174. for (auto* thread : dying_threads)
  175. thread->finalize();
  176. }
  177. bool Thread::tick()
  178. {
  179. ++m_ticks;
  180. if (tss().cs & 3)
  181. ++m_process.m_ticks_in_user;
  182. else
  183. ++m_process.m_ticks_in_kernel;
  184. return --m_ticks_left;
  185. }
  186. void Thread::send_signal(u8 signal, Process* sender)
  187. {
  188. ASSERT(signal < 32);
  189. InterruptDisabler disabler;
  190. // FIXME: Figure out what to do for masked signals. Should we also ignore them here?
  191. if (should_ignore_signal(signal)) {
  192. dbg() << "signal " << signal << " was ignored by " << process();
  193. return;
  194. }
  195. if (sender)
  196. dbgprintf("signal: %s(%u) sent %d to %s(%u)\n", sender->name().characters(), sender->pid(), signal, process().name().characters(), pid());
  197. else
  198. dbgprintf("signal: kernel sent %d to %s(%u)\n", signal, process().name().characters(), pid());
  199. m_pending_signals |= 1 << signal;
  200. }
  201. bool Thread::has_unmasked_pending_signals() const
  202. {
  203. return m_pending_signals & ~m_signal_mask;
  204. }
  205. ShouldUnblockThread Thread::dispatch_one_pending_signal()
  206. {
  207. ASSERT_INTERRUPTS_DISABLED();
  208. u32 signal_candidates = m_pending_signals & ~m_signal_mask;
  209. ASSERT(signal_candidates);
  210. u8 signal = 0;
  211. for (; signal < 32; ++signal) {
  212. if (signal_candidates & (1 << signal)) {
  213. break;
  214. }
  215. }
  216. return dispatch_signal(signal);
  217. }
  218. enum class DefaultSignalAction {
  219. Terminate,
  220. Ignore,
  221. DumpCore,
  222. Stop,
  223. Continue,
  224. };
  225. DefaultSignalAction default_signal_action(u8 signal)
  226. {
  227. ASSERT(signal && signal < NSIG);
  228. switch (signal) {
  229. case SIGHUP:
  230. case SIGINT:
  231. case SIGKILL:
  232. case SIGPIPE:
  233. case SIGALRM:
  234. case SIGUSR1:
  235. case SIGUSR2:
  236. case SIGVTALRM:
  237. case SIGSTKFLT:
  238. case SIGIO:
  239. case SIGPROF:
  240. case SIGTERM:
  241. case SIGPWR:
  242. return DefaultSignalAction::Terminate;
  243. case SIGCHLD:
  244. case SIGURG:
  245. case SIGWINCH:
  246. return DefaultSignalAction::Ignore;
  247. case SIGQUIT:
  248. case SIGILL:
  249. case SIGTRAP:
  250. case SIGABRT:
  251. case SIGBUS:
  252. case SIGFPE:
  253. case SIGSEGV:
  254. case SIGXCPU:
  255. case SIGXFSZ:
  256. case SIGSYS:
  257. return DefaultSignalAction::DumpCore;
  258. case SIGCONT:
  259. return DefaultSignalAction::Continue;
  260. case SIGSTOP:
  261. case SIGTSTP:
  262. case SIGTTIN:
  263. case SIGTTOU:
  264. return DefaultSignalAction::Stop;
  265. }
  266. ASSERT_NOT_REACHED();
  267. }
  268. bool Thread::should_ignore_signal(u8 signal) const
  269. {
  270. ASSERT(signal < 32);
  271. auto& action = m_signal_action_data[signal];
  272. if (action.handler_or_sigaction.is_null())
  273. return default_signal_action(signal) == DefaultSignalAction::Ignore;
  274. if (action.handler_or_sigaction.as_ptr() == SIG_IGN)
  275. return true;
  276. return false;
  277. }
  278. ShouldUnblockThread Thread::dispatch_signal(u8 signal)
  279. {
  280. ASSERT_INTERRUPTS_DISABLED();
  281. ASSERT(signal < 32);
  282. #ifdef SIGNAL_DEBUG
  283. kprintf("dispatch_signal %s(%u) <- %u\n", process().name().characters(), pid(), signal);
  284. #endif
  285. auto& action = m_signal_action_data[signal];
  286. // FIXME: Implement SA_SIGINFO signal handlers.
  287. ASSERT(!(action.flags & SA_SIGINFO));
  288. // Mark this signal as handled.
  289. m_pending_signals &= ~(1 << signal);
  290. if (signal == SIGSTOP) {
  291. set_state(Stopped);
  292. return ShouldUnblockThread::No;
  293. }
  294. if (signal == SIGCONT && state() == Stopped)
  295. set_state(Runnable);
  296. auto handler_vaddr = action.handler_or_sigaction;
  297. if (handler_vaddr.is_null()) {
  298. switch (default_signal_action(signal)) {
  299. case DefaultSignalAction::Stop:
  300. set_state(Stopped);
  301. return ShouldUnblockThread::No;
  302. case DefaultSignalAction::DumpCore:
  303. case DefaultSignalAction::Terminate:
  304. m_process.terminate_due_to_signal(signal);
  305. return ShouldUnblockThread::No;
  306. case DefaultSignalAction::Ignore:
  307. if (state() == BlockedSignal)
  308. set_state(Runnable);
  309. return ShouldUnblockThread::No;
  310. case DefaultSignalAction::Continue:
  311. return ShouldUnblockThread::Yes;
  312. }
  313. ASSERT_NOT_REACHED();
  314. }
  315. if (handler_vaddr.as_ptr() == SIG_IGN) {
  316. #ifdef SIGNAL_DEBUG
  317. kprintf("%s(%u) ignored signal %u\n", process().name().characters(), pid(), signal);
  318. #endif
  319. return ShouldUnblockThread::Yes;
  320. }
  321. u32 old_signal_mask = m_signal_mask;
  322. u32 new_signal_mask = action.mask;
  323. if (action.flags & SA_NODEFER)
  324. new_signal_mask &= ~(1 << signal);
  325. else
  326. new_signal_mask |= 1 << signal;
  327. m_signal_mask |= new_signal_mask;
  328. Scheduler::prepare_to_modify_tss(*this);
  329. u16 ret_cs = m_tss.cs;
  330. u32 ret_eip = m_tss.eip;
  331. u32 ret_eflags = m_tss.eflags;
  332. bool interrupting_in_kernel = (ret_cs & 3) == 0;
  333. ProcessPagingScope paging_scope(m_process);
  334. m_process.create_signal_trampolines_if_needed();
  335. if (interrupting_in_kernel) {
  336. #ifdef SIGNAL_DEBUG
  337. kprintf("dispatch_signal to %s(%u) in state=%s with return to %w:%x\n", process().name().characters(), pid(), to_string(state()), ret_cs, ret_eip);
  338. #endif
  339. ASSERT(is_blocked());
  340. m_tss_to_resume_kernel = make<TSS32>(m_tss);
  341. #ifdef SIGNAL_DEBUG
  342. kprintf("resume tss pc: %w:%x stack: %w:%x flags: %x cr3: %x\n", m_tss_to_resume_kernel->cs, m_tss_to_resume_kernel->eip, m_tss_to_resume_kernel->ss, m_tss_to_resume_kernel->esp, m_tss_to_resume_kernel->eflags, m_tss_to_resume_kernel->cr3);
  343. #endif
  344. if (!m_signal_stack_user_region) {
  345. m_signal_stack_user_region = m_process.allocate_region(VirtualAddress(), default_userspace_stack_size, String::format("User Signal Stack (Thread %d)", m_tid));
  346. ASSERT(m_signal_stack_user_region);
  347. }
  348. if (!m_kernel_stack_for_signal_handler_region)
  349. m_kernel_stack_for_signal_handler_region = MM.allocate_kernel_region(default_kernel_stack_size, String::format("Kernel Signal Stack (Thread %d)", m_tid));
  350. m_tss.ss = 0x23;
  351. m_tss.esp = m_signal_stack_user_region->vaddr().offset(default_userspace_stack_size).get();
  352. m_tss.ss0 = 0x10;
  353. m_tss.esp0 = m_kernel_stack_for_signal_handler_region->vaddr().offset(default_kernel_stack_size).get();
  354. push_value_on_stack(0);
  355. } else {
  356. push_value_on_stack(ret_eip);
  357. push_value_on_stack(ret_eflags);
  358. // PUSHA
  359. u32 old_esp = m_tss.esp;
  360. push_value_on_stack(m_tss.eax);
  361. push_value_on_stack(m_tss.ecx);
  362. push_value_on_stack(m_tss.edx);
  363. push_value_on_stack(m_tss.ebx);
  364. push_value_on_stack(old_esp);
  365. push_value_on_stack(m_tss.ebp);
  366. push_value_on_stack(m_tss.esi);
  367. push_value_on_stack(m_tss.edi);
  368. // Align the stack.
  369. m_tss.esp -= 12;
  370. }
  371. // PUSH old_signal_mask
  372. push_value_on_stack(old_signal_mask);
  373. m_tss.cs = 0x1b;
  374. m_tss.ds = 0x23;
  375. m_tss.es = 0x23;
  376. m_tss.fs = 0x23;
  377. m_tss.gs = 0x23;
  378. m_tss.eip = handler_vaddr.get();
  379. // FIXME: Should we worry about the stack being 16 byte aligned when entering a signal handler?
  380. push_value_on_stack(signal);
  381. if (interrupting_in_kernel)
  382. push_value_on_stack(m_process.m_return_to_ring0_from_signal_trampoline.get());
  383. else
  384. push_value_on_stack(m_process.m_return_to_ring3_from_signal_trampoline.get());
  385. ASSERT((m_tss.esp % 16) == 0);
  386. // FIXME: This state is such a hack. It avoids trouble if 'current' is the process receiving a signal.
  387. set_state(Skip1SchedulerPass);
  388. #ifdef SIGNAL_DEBUG
  389. kprintf("signal: Okay, %s(%u) {%s} has been primed with signal handler %w:%x\n", process().name().characters(), pid(), to_string(state()), m_tss.cs, m_tss.eip);
  390. #endif
  391. return ShouldUnblockThread::Yes;
  392. }
  393. void Thread::set_default_signal_dispositions()
  394. {
  395. // FIXME: Set up all the right default actions. See signal(7).
  396. memset(&m_signal_action_data, 0, sizeof(m_signal_action_data));
  397. m_signal_action_data[SIGCHLD].handler_or_sigaction = VirtualAddress((u32)SIG_IGN);
  398. m_signal_action_data[SIGWINCH].handler_or_sigaction = VirtualAddress((u32)SIG_IGN);
  399. }
  400. void Thread::push_value_on_stack(u32 value)
  401. {
  402. m_tss.esp -= 4;
  403. u32* stack_ptr = (u32*)m_tss.esp;
  404. *stack_ptr = value;
  405. }
  406. void Thread::make_userspace_stack_for_main_thread(Vector<String> arguments, Vector<String> environment)
  407. {
  408. auto* region = m_process.allocate_region(VirtualAddress(), default_userspace_stack_size, "Stack (Main thread)");
  409. ASSERT(region);
  410. m_tss.esp = region->vaddr().offset(default_userspace_stack_size).get();
  411. char* stack_base = (char*)region->vaddr().get();
  412. int argc = arguments.size();
  413. char** argv = (char**)stack_base;
  414. char** env = argv + arguments.size() + 1;
  415. char* bufptr = stack_base + (sizeof(char*) * (arguments.size() + 1)) + (sizeof(char*) * (environment.size() + 1));
  416. size_t total_blob_size = 0;
  417. for (auto& a : arguments)
  418. total_blob_size += a.length() + 1;
  419. for (auto& e : environment)
  420. total_blob_size += e.length() + 1;
  421. size_t total_meta_size = sizeof(char*) * (arguments.size() + 1) + sizeof(char*) * (environment.size() + 1);
  422. // FIXME: It would be better if this didn't make us panic.
  423. ASSERT((total_blob_size + total_meta_size) < default_userspace_stack_size);
  424. for (int i = 0; i < arguments.size(); ++i) {
  425. argv[i] = bufptr;
  426. memcpy(bufptr, arguments[i].characters(), arguments[i].length());
  427. bufptr += arguments[i].length();
  428. *(bufptr++) = '\0';
  429. }
  430. argv[arguments.size()] = nullptr;
  431. for (int i = 0; i < environment.size(); ++i) {
  432. env[i] = bufptr;
  433. memcpy(bufptr, environment[i].characters(), environment[i].length());
  434. bufptr += environment[i].length();
  435. *(bufptr++) = '\0';
  436. }
  437. env[environment.size()] = nullptr;
  438. // NOTE: The stack needs to be 16-byte aligned.
  439. push_value_on_stack((u32)env);
  440. push_value_on_stack((u32)argv);
  441. push_value_on_stack((u32)argc);
  442. push_value_on_stack(0);
  443. }
  444. void Thread::make_userspace_stack_for_secondary_thread(void* argument)
  445. {
  446. auto* region = m_process.allocate_region(VirtualAddress(), default_userspace_stack_size, String::format("Stack (Thread %d)", tid()));
  447. ASSERT(region);
  448. m_tss.esp = region->vaddr().offset(default_userspace_stack_size).get();
  449. // NOTE: The stack needs to be 16-byte aligned.
  450. push_value_on_stack((u32)argument);
  451. push_value_on_stack(0);
  452. }
  453. Thread* Thread::clone(Process& process)
  454. {
  455. auto* clone = new Thread(process);
  456. memcpy(clone->m_signal_action_data, m_signal_action_data, sizeof(m_signal_action_data));
  457. clone->m_signal_mask = m_signal_mask;
  458. clone->m_fpu_state = (FPUState*)kmalloc_aligned(sizeof(FPUState), 16);
  459. memcpy(clone->m_fpu_state, m_fpu_state, sizeof(FPUState));
  460. clone->m_has_used_fpu = m_has_used_fpu;
  461. return clone;
  462. }
  463. KResult Thread::wait_for_connect(FileDescription& description)
  464. {
  465. ASSERT(description.is_socket());
  466. auto& socket = *description.socket();
  467. if (socket.is_connected())
  468. return KSuccess;
  469. block(*new Thread::ThreadBlockerConnect(description));
  470. Scheduler::yield();
  471. if (!socket.is_connected())
  472. return KResult(-ECONNREFUSED);
  473. return KSuccess;
  474. }
  475. void Thread::initialize()
  476. {
  477. g_runnable_threads = new InlineLinkedList<Thread>;
  478. g_nonrunnable_threads = new InlineLinkedList<Thread>;
  479. Scheduler::initialize();
  480. }
  481. Vector<Thread*> Thread::all_threads()
  482. {
  483. Vector<Thread*> threads;
  484. InterruptDisabler disabler;
  485. threads.ensure_capacity(thread_table().size());
  486. for (auto* thread : thread_table())
  487. threads.unchecked_append(thread);
  488. return threads;
  489. }
  490. bool Thread::is_thread(void* ptr)
  491. {
  492. ASSERT_INTERRUPTS_DISABLED();
  493. return thread_table().contains((Thread*)ptr);
  494. }
  495. void Thread::set_thread_list(InlineLinkedList<Thread>* thread_list)
  496. {
  497. ASSERT_INTERRUPTS_DISABLED();
  498. ASSERT(pid() != 0);
  499. if (m_thread_list == thread_list)
  500. return;
  501. if (m_thread_list)
  502. m_thread_list->remove(this);
  503. if (thread_list)
  504. thread_list->append(this);
  505. m_thread_list = thread_list;
  506. }
  507. void Thread::set_state(State new_state)
  508. {
  509. InterruptDisabler disabler;
  510. m_state = new_state;
  511. if (m_process.pid() != 0)
  512. set_thread_list(thread_list_for_state(new_state));
  513. }