Process.h 17 KB

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  1. #pragma once
  2. #include "types.h"
  3. #include "TSS.h"
  4. #include "i386.h"
  5. #include "TTY.h"
  6. #include "Syscall.h"
  7. #include <Kernel/VirtualFileSystem.h>
  8. #include <Kernel/UnixTypes.h>
  9. #include <AK/InlineLinkedList.h>
  10. #include <AK/AKString.h>
  11. #include <AK/Vector.h>
  12. #include <AK/WeakPtr.h>
  13. #include <AK/Weakable.h>
  14. #include <AK/Lock.h>
  15. class FileDescriptor;
  16. class PageDirectory;
  17. class Region;
  18. class VMObject;
  19. class Zone;
  20. class WSWindow;
  21. class GraphicsBitmap;
  22. #define COOL_GLOBALS
  23. #ifdef COOL_GLOBALS
  24. struct CoolGlobals {
  25. pid_t current_pid;
  26. };
  27. extern CoolGlobals* g_cool_globals;
  28. #endif
  29. enum class ShouldUnblockProcess { No = 0, Yes };
  30. struct SignalActionData {
  31. LinearAddress handler_or_sigaction;
  32. dword mask { 0 };
  33. int flags { 0 };
  34. LinearAddress restorer;
  35. };
  36. struct DisplayInfo {
  37. unsigned width;
  38. unsigned height;
  39. unsigned bpp;
  40. unsigned pitch;
  41. };
  42. class Process : public InlineLinkedListNode<Process>, public Weakable<Process> {
  43. friend class InlineLinkedListNode<Process>;
  44. public:
  45. static Process* create_kernel_process(String&& name, void (*entry)());
  46. static Process* create_user_process(const String& path, uid_t, gid_t, pid_t ppid, int& error, Vector<String>&& arguments = Vector<String>(), Vector<String>&& environment = Vector<String>(), TTY* = nullptr);
  47. ~Process();
  48. static Vector<pid_t> all_pids();
  49. static Vector<Process*> all_processes();
  50. static void finalize_dying_processes();
  51. enum State {
  52. Invalid = 0,
  53. Runnable,
  54. Running,
  55. Skip1SchedulerPass,
  56. Skip0SchedulerPasses,
  57. Dying,
  58. Dead,
  59. BeingInspected,
  60. BlockedLurking,
  61. BlockedSleep,
  62. BlockedWait,
  63. BlockedRead,
  64. BlockedWrite,
  65. BlockedSignal,
  66. BlockedSelect,
  67. BlockedConnect,
  68. };
  69. enum Priority {
  70. LowPriority,
  71. NormalPriority,
  72. HighPriority,
  73. };
  74. enum RingLevel {
  75. Ring0 = 0,
  76. Ring3 = 3,
  77. };
  78. bool is_ring0() const { return m_ring == Ring0; }
  79. bool is_ring3() const { return m_ring == Ring3; }
  80. bool is_blocked() const
  81. {
  82. return m_state == BlockedSleep || m_state == BlockedWait || m_state == BlockedRead || m_state == BlockedWrite || m_state == BlockedSignal || m_state == BlockedSelect;
  83. }
  84. PageDirectory& page_directory() { return *m_page_directory; }
  85. const PageDirectory& page_directory() const { return *m_page_directory; }
  86. bool in_kernel() const { return (m_tss.cs & 0x03) == 0; }
  87. static Process* from_pid(pid_t);
  88. void set_priority(Priority p) { m_priority = p; }
  89. Priority priority() const { return m_priority; }
  90. const String& name() const { return m_name; }
  91. pid_t pid() const { return m_pid; }
  92. pid_t sid() const { return m_sid; }
  93. pid_t pgid() const { return m_pgid; }
  94. dword ticks() const { return m_ticks; }
  95. word selector() const { return m_far_ptr.selector; }
  96. TSS32& tss() { return m_tss; }
  97. State state() const { return m_state; }
  98. uid_t uid() const { return m_uid; }
  99. gid_t gid() const { return m_gid; }
  100. uid_t euid() const { return m_euid; }
  101. gid_t egid() const { return m_egid; }
  102. pid_t ppid() const { return m_ppid; }
  103. const FarPtr& far_ptr() const { return m_far_ptr; }
  104. FileDescriptor* file_descriptor(int fd);
  105. const FileDescriptor* file_descriptor(int fd) const;
  106. void block(Process::State);
  107. void unblock();
  108. void set_wakeup_time(dword t) { m_wakeup_time = t; }
  109. dword wakeup_time() const { return m_wakeup_time; }
  110. template<typename Callback> static void for_each(Callback);
  111. template<typename Callback> static void for_each_in_pgrp(pid_t, Callback);
  112. template<typename Callback> static void for_each_in_state(State, Callback);
  113. template<typename Callback> static void for_each_living(Callback);
  114. template<typename Callback> void for_each_child(Callback);
  115. bool tick();
  116. void set_ticks_left(dword t) { m_ticks_left = t; }
  117. dword ticks_left() const { return m_ticks_left; }
  118. void set_selector(word s) { m_far_ptr.selector = s; }
  119. void set_state(State s) { m_state = s; }
  120. void die();
  121. void finalize();
  122. pid_t sys$setsid();
  123. pid_t sys$getsid(pid_t);
  124. int sys$setpgid(pid_t pid, pid_t pgid);
  125. pid_t sys$getpgrp();
  126. pid_t sys$getpgid(pid_t);
  127. uid_t sys$getuid();
  128. gid_t sys$getgid();
  129. uid_t sys$geteuid();
  130. gid_t sys$getegid();
  131. pid_t sys$getpid();
  132. pid_t sys$getppid();
  133. mode_t sys$umask(mode_t);
  134. int sys$open(const char* path, int options, mode_t mode = 0);
  135. int sys$close(int fd);
  136. ssize_t sys$read(int fd, void* outbuf, size_t nread);
  137. ssize_t sys$write(int fd, const void*, size_t);
  138. int sys$fstat(int fd, stat*);
  139. int sys$lstat(const char*, stat*);
  140. int sys$stat(const char*, stat*);
  141. int sys$lseek(int fd, off_t, int whence);
  142. int sys$kill(pid_t pid, int sig);
  143. int sys$geterror() { return m_error; }
  144. [[noreturn]] void sys$exit(int status);
  145. [[noreturn]] void sys$sigreturn();
  146. pid_t sys$waitpid(pid_t, int* wstatus, int options);
  147. void* sys$mmap(const Syscall::SC_mmap_params*);
  148. int sys$munmap(void*, size_t size);
  149. int sys$set_mmap_name(void*, size_t, const char*);
  150. int sys$select(const Syscall::SC_select_params*);
  151. int sys$poll(pollfd*, int nfds, int timeout);
  152. ssize_t sys$get_dir_entries(int fd, void*, size_t);
  153. int sys$getcwd(char*, size_t);
  154. int sys$chdir(const char*);
  155. int sys$sleep(unsigned seconds);
  156. int sys$usleep(useconds_t usec);
  157. int sys$gettimeofday(timeval*);
  158. int sys$gethostname(char* name, size_t length);
  159. int sys$get_arguments(int* argc, char*** argv);
  160. int sys$get_environment(char*** environ);
  161. int sys$uname(utsname*);
  162. int sys$readlink(const char*, char*, size_t);
  163. int sys$ttyname_r(int fd, char*, size_t);
  164. int sys$ptsname_r(int fd, char*, size_t);
  165. pid_t sys$fork(RegisterDump&);
  166. int sys$execve(const char* filename, const char** argv, const char** envp);
  167. int sys$isatty(int fd);
  168. int sys$getdtablesize();
  169. int sys$dup(int oldfd);
  170. int sys$dup2(int oldfd, int newfd);
  171. int sys$sigaction(int signum, const sigaction* act, sigaction* old_act);
  172. int sys$sigprocmask(int how, const sigset_t* set, sigset_t* old_set);
  173. int sys$sigpending(sigset_t*);
  174. int sys$getgroups(int size, gid_t*);
  175. int sys$setgroups(size_t, const gid_t*);
  176. int sys$pipe(int* pipefd);
  177. int sys$killpg(int pgrp, int sig);
  178. int sys$setgid(gid_t);
  179. int sys$setuid(uid_t);
  180. unsigned sys$alarm(unsigned seconds);
  181. int sys$access(const char* pathname, int mode);
  182. int sys$fcntl(int fd, int cmd, dword extra_arg);
  183. int sys$ioctl(int fd, unsigned request, unsigned arg);
  184. int sys$mkdir(const char* pathname, mode_t mode);
  185. clock_t sys$times(tms*);
  186. int sys$utime(const char* pathname, const struct utimbuf*);
  187. int sys$link(const char* old_path, const char* new_path);
  188. int sys$unlink(const char* pathname);
  189. int sys$rmdir(const char* pathname);
  190. int sys$read_tsc(dword* lsw, dword* msw);
  191. int sys$chmod(const char* pathname, mode_t);
  192. int sys$socket(int domain, int type, int protocol);
  193. int sys$bind(int sockfd, const sockaddr* addr, socklen_t);
  194. int sys$listen(int sockfd, int backlog);
  195. int sys$accept(int sockfd, sockaddr*, socklen_t*);
  196. int sys$connect(int sockfd, const sockaddr*, socklen_t);
  197. int sys$create_shared_buffer(pid_t peer_pid, size_t, void** buffer);
  198. void* sys$get_shared_buffer(int shared_buffer_id);
  199. int sys$release_shared_buffer(int shared_buffer_id);
  200. bool wait_for_connect(Socket&, int& error);
  201. static void initialize();
  202. [[noreturn]] void crash();
  203. [[nodiscard]] static int reap(Process&);
  204. const TTY* tty() const { return m_tty; }
  205. void set_tty(TTY* tty) { m_tty = tty; }
  206. size_t region_count() const { return m_regions.size(); }
  207. const Vector<RetainPtr<Region>>& regions() const { return m_regions; }
  208. void dump_regions();
  209. void did_schedule() { ++m_times_scheduled; }
  210. dword times_scheduled() const { return m_times_scheduled; }
  211. dword m_ticks_in_user { 0 };
  212. dword m_ticks_in_kernel { 0 };
  213. dword m_ticks_in_user_for_dead_children { 0 };
  214. dword m_ticks_in_kernel_for_dead_children { 0 };
  215. pid_t waitee_pid() const { return m_waitee_pid; }
  216. dword frame_ptr() const { return m_tss.ebp; }
  217. dword stack_ptr() const { return m_tss.esp; }
  218. dword stack_top() const { return m_tss.ss == 0x10 ? m_stack_top0 : m_stack_top3; }
  219. bool validate_read_from_kernel(LinearAddress) const;
  220. bool validate_read(const void*, size_t) const;
  221. bool validate_write(void*, size_t) const;
  222. bool validate_read_str(const char* str);
  223. template<typename T> bool validate_read_typed(T* value, size_t count = 1) { return validate_read(value, sizeof(T) * count); }
  224. template<typename T> bool validate_write_typed(T* value, size_t count = 1) { return validate_write(value, sizeof(T) * count); }
  225. Inode* cwd_inode();
  226. Inode* executable_inode() { return m_executable.ptr(); }
  227. size_t number_of_open_file_descriptors() const;
  228. size_t max_open_file_descriptors() const { return m_max_open_file_descriptors; }
  229. void send_signal(byte signal, Process* sender);
  230. ShouldUnblockProcess dispatch_one_pending_signal();
  231. ShouldUnblockProcess dispatch_signal(byte signal);
  232. bool has_unmasked_pending_signals() const;
  233. void terminate_due_to_signal(byte signal);
  234. size_t amount_virtual() const;
  235. size_t amount_resident() const;
  236. size_t amount_shared() const;
  237. Process* fork(RegisterDump&);
  238. int exec(String path, Vector<String> arguments, Vector<String> environment);
  239. bool is_root() const { return m_euid == 0; }
  240. bool wakeup_requested() { return m_wakeup_requested; }
  241. void request_wakeup() { m_wakeup_requested = true; }
  242. FPUState& fpu_state() { return m_fpu_state; }
  243. bool has_used_fpu() const { return m_has_used_fpu; }
  244. void set_has_used_fpu(bool b) { m_has_used_fpu = b; }
  245. Region* allocate_region_with_vmo(LinearAddress, size_t, RetainPtr<VMObject>&&, size_t offset_in_vmo, String&& name, bool is_readable, bool is_writable);
  246. Region* allocate_file_backed_region(LinearAddress, size_t, RetainPtr<Inode>&&, String&& name, bool is_readable, bool is_writable);
  247. Region* allocate_region(LinearAddress, size_t, String&& name, bool is_readable = true, bool is_writable = true, bool commit = true);
  248. bool deallocate_region(Region& region);
  249. private:
  250. friend class MemoryManager;
  251. friend class Scheduler;
  252. friend class Region;
  253. Process(String&& name, uid_t, gid_t, pid_t ppid, RingLevel, RetainPtr<Inode>&& cwd = nullptr, RetainPtr<Inode>&& executable = nullptr, TTY* = nullptr, Process* fork_parent = nullptr);
  254. int do_exec(String path, Vector<String> arguments, Vector<String> environment);
  255. void push_value_on_stack(dword);
  256. int alloc_fd();
  257. void set_default_signal_dispositions();
  258. void disown_all_shared_buffers();
  259. RetainPtr<PageDirectory> m_page_directory;
  260. Process* m_prev { nullptr };
  261. Process* m_next { nullptr };
  262. String m_name;
  263. void (*m_entry)() { nullptr };
  264. pid_t m_pid { 0 };
  265. uid_t m_uid { 0 };
  266. gid_t m_gid { 0 };
  267. uid_t m_euid { 0 };
  268. gid_t m_egid { 0 };
  269. pid_t m_sid { 0 };
  270. pid_t m_pgid { 0 };
  271. dword m_ticks { 0 };
  272. dword m_ticks_left { 0 };
  273. dword m_stack_top0 { 0 };
  274. dword m_stack_top3 { 0 };
  275. FarPtr m_far_ptr;
  276. State m_state { Invalid };
  277. Priority m_priority { NormalPriority };
  278. dword m_wakeup_time { 0 };
  279. TSS32 m_tss;
  280. TSS32 m_tss_to_resume_kernel;
  281. FPUState m_fpu_state;
  282. struct FileDescriptorAndFlags {
  283. operator bool() const { return !!descriptor; }
  284. void clear() { descriptor = nullptr; flags = 0; }
  285. void set(RetainPtr<FileDescriptor>&& d, dword f = 0) { descriptor = move(d); flags = f; }
  286. RetainPtr<FileDescriptor> descriptor;
  287. dword flags { 0 };
  288. };
  289. Vector<FileDescriptorAndFlags> m_fds;
  290. RingLevel m_ring { Ring0 };
  291. int m_error { 0 };
  292. void* m_kernel_stack { nullptr };
  293. dword m_times_scheduled { 0 };
  294. pid_t m_waitee_pid { -1 };
  295. int m_blocked_fd { -1 };
  296. Vector<int> m_select_read_fds;
  297. Vector<int> m_select_write_fds;
  298. timeval m_select_timeout;
  299. bool m_select_has_timeout { false };
  300. size_t m_max_open_file_descriptors { 16 };
  301. SignalActionData m_signal_action_data[32];
  302. dword m_pending_signals { 0 };
  303. dword m_signal_mask { 0xffffffff };
  304. RetainPtr<Socket> m_blocked_connecting_socket;
  305. byte m_termination_status { 0 };
  306. byte m_termination_signal { 0 };
  307. RetainPtr<Inode> m_cwd;
  308. RetainPtr<Inode> m_executable;
  309. TTY* m_tty { nullptr };
  310. Region* region_from_range(LinearAddress, size_t);
  311. Vector<RetainPtr<Region>> m_regions;
  312. // FIXME: Implement some kind of ASLR?
  313. LinearAddress m_next_region;
  314. LinearAddress m_return_to_ring3_from_signal_trampoline;
  315. LinearAddress m_return_to_ring0_from_signal_trampoline;
  316. pid_t m_ppid { 0 };
  317. mode_t m_umask { 022 };
  318. bool m_was_interrupted_while_blocked { false };
  319. static void notify_waiters(pid_t waitee, int exit_status, int signal);
  320. Vector<String> m_initial_arguments;
  321. Vector<String> m_initial_environment;
  322. HashTable<gid_t> m_gids;
  323. Region* m_stack_region { nullptr };
  324. Region* m_signal_stack_user_region { nullptr };
  325. Region* m_signal_stack_kernel_region { nullptr };
  326. RetainPtr<Region> m_display_framebuffer_region;
  327. dword m_wakeup_requested { false };
  328. bool m_has_used_fpu { false };
  329. };
  330. extern Process* current;
  331. class ProcessInspectionHandle {
  332. public:
  333. ProcessInspectionHandle(Process& process)
  334. : m_process(process)
  335. , m_original_state(process.state())
  336. {
  337. if (&process != current)
  338. m_process.set_state(Process::BeingInspected);
  339. }
  340. ~ProcessInspectionHandle()
  341. {
  342. m_process.set_state(m_original_state);
  343. }
  344. Process& process() { return m_process; }
  345. static OwnPtr<ProcessInspectionHandle> from_pid(pid_t pid)
  346. {
  347. InterruptDisabler disabler;
  348. auto* process = Process::from_pid(pid);
  349. if (process)
  350. return make<ProcessInspectionHandle>(*process);
  351. return nullptr;
  352. }
  353. Process* operator->() { return &m_process; }
  354. Process& operator*() { return m_process; }
  355. private:
  356. Process& m_process;
  357. Process::State m_original_state { Process::Invalid };
  358. };
  359. static inline const char* to_string(Process::State state)
  360. {
  361. switch (state) {
  362. case Process::Invalid: return "Invalid";
  363. case Process::Runnable: return "Runnable";
  364. case Process::Running: return "Running";
  365. case Process::Dying: return "Dying";
  366. case Process::Dead: return "Dead";
  367. case Process::Skip1SchedulerPass: return "Skip1";
  368. case Process::Skip0SchedulerPasses: return "Skip0";
  369. case Process::BlockedSleep: return "Sleep";
  370. case Process::BlockedWait: return "Wait";
  371. case Process::BlockedRead: return "Read";
  372. case Process::BlockedWrite: return "Write";
  373. case Process::BlockedSignal: return "Signal";
  374. case Process::BlockedSelect: return "Select";
  375. case Process::BlockedLurking: return "Lurking";
  376. case Process::BlockedConnect: return "Connect";
  377. case Process::BeingInspected: return "Inspect";
  378. }
  379. ASSERT_NOT_REACHED();
  380. return nullptr;
  381. }
  382. static inline const char* to_string(Process::Priority state)
  383. {
  384. switch (state) {
  385. case Process::LowPriority: return "Low";
  386. case Process::NormalPriority: return "Normal";
  387. case Process::HighPriority: return "High";
  388. }
  389. ASSERT_NOT_REACHED();
  390. return nullptr;
  391. }
  392. extern void block(Process::State);
  393. extern void sleep(dword ticks);
  394. extern InlineLinkedList<Process>* g_processes;
  395. template<typename Callback>
  396. inline void Process::for_each(Callback callback)
  397. {
  398. ASSERT_INTERRUPTS_DISABLED();
  399. for (auto* process = g_processes->head(); process;) {
  400. auto* next_process = process->next();
  401. if (!callback(*process))
  402. break;
  403. process = next_process;
  404. }
  405. }
  406. template<typename Callback>
  407. inline void Process::for_each_child(Callback callback)
  408. {
  409. ASSERT_INTERRUPTS_DISABLED();
  410. pid_t my_pid = pid();
  411. for (auto* process = g_processes->head(); process;) {
  412. auto* next_process = process->next();
  413. if (process->ppid() == my_pid) {
  414. if (!callback(*process))
  415. break;
  416. }
  417. process = next_process;
  418. }
  419. }
  420. template<typename Callback>
  421. inline void Process::for_each_in_pgrp(pid_t pgid, Callback callback)
  422. {
  423. ASSERT_INTERRUPTS_DISABLED();
  424. for (auto* process = g_processes->head(); process;) {
  425. auto* next_process = process->next();
  426. if (process->pgid() == pgid) {
  427. if (!callback(*process))
  428. break;
  429. }
  430. process = next_process;
  431. }
  432. }
  433. template<typename Callback>
  434. inline void Process::for_each_in_state(State state, Callback callback)
  435. {
  436. ASSERT_INTERRUPTS_DISABLED();
  437. for (auto* process = g_processes->head(); process;) {
  438. auto* next_process = process->next();
  439. if (process->state() == state)
  440. callback(*process);
  441. process = next_process;
  442. }
  443. }
  444. template<typename Callback>
  445. inline void Process::for_each_living(Callback callback)
  446. {
  447. ASSERT_INTERRUPTS_DISABLED();
  448. for (auto* process = g_processes->head(); process;) {
  449. auto* next_process = process->next();
  450. if (process->state() != Process::Dead && process->state() != Process::Dying)
  451. callback(*process);
  452. process = next_process;
  453. }
  454. }