Task.h 7.0 KB

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  1. #pragma once
  2. #include "types.h"
  3. #include "InlineLinkedList.h"
  4. #include <AK/String.h>
  5. #include "TSS.h"
  6. #include <AK/Vector.h>
  7. #include "i386.h"
  8. #include <VirtualFileSystem/VirtualFileSystem.h>
  9. #include "TTY.h"
  10. //#define TASK_SANITY_CHECKS
  11. class FileHandle;
  12. class Zone;
  13. class Task : public InlineLinkedListNode<Task> {
  14. friend class InlineLinkedListNode<Task>;
  15. struct Region;
  16. struct Subregion;
  17. public:
  18. static Task* createKernelTask(void (*entry)(), String&& name);
  19. static Task* createUserTask(const String& path, uid_t, gid_t, pid_t parentPID, int& error, const char** args = nullptr, TTY* = nullptr);
  20. ~Task();
  21. static Vector<Task*> allTasks();
  22. #ifdef TASK_SANITY_CHECKS
  23. static void checkSanity(const char* msg = nullptr);
  24. #else
  25. static void checkSanity(const char*) { }
  26. #endif
  27. enum State {
  28. Invalid = 0,
  29. Runnable = 1,
  30. Running = 2,
  31. Terminated = 3,
  32. Crashing = 4,
  33. Exiting = 5,
  34. BlockedSleep = 6,
  35. BlockedWait = 7,
  36. BlockedRead = 8,
  37. };
  38. enum RingLevel {
  39. Ring0 = 0,
  40. Ring3 = 3,
  41. };
  42. bool isRing0() const { return m_ring == Ring0; }
  43. bool isRing3() const { return m_ring == Ring3; }
  44. static Task* fromPID(pid_t);
  45. static Task* kernelTask();
  46. const String& name() const { return m_name; }
  47. pid_t pid() const { return m_pid; }
  48. DWORD ticks() const { return m_ticks; }
  49. WORD selector() const { return m_farPtr.selector; }
  50. TSS32& tss() { return m_tss; }
  51. State state() const { return m_state; }
  52. uid_t uid() const { return m_uid; }
  53. uid_t gid() const { return m_gid; }
  54. pid_t parentPID() const { return m_parentPID; }
  55. const FarPtr& farPtr() const { return m_farPtr; }
  56. FileHandle* fileHandleIfExists(int fd);
  57. static void doHouseKeeping();
  58. void block(Task::State);
  59. void unblock();
  60. void setWakeupTime(DWORD t) { m_wakeupTime = t; }
  61. DWORD wakeupTime() const { return m_wakeupTime; }
  62. static void prepForIRETToNewTask();
  63. bool tick() { ++m_ticks; return --m_ticksLeft; }
  64. void setTicksLeft(DWORD t) { m_ticksLeft = t; }
  65. void setSelector(WORD s) { m_farPtr.selector = s; }
  66. void setState(State s) { m_state = s; }
  67. uid_t sys$getuid();
  68. gid_t sys$getgid();
  69. pid_t sys$getpid();
  70. int sys$open(const char* path, int options);
  71. int sys$close(int fd);
  72. ssize_t sys$read(int fd, void* outbuf, size_t nread);
  73. ssize_t sys$write(int fd, const void*, size_t);
  74. int sys$lstat(const char*, Unix::stat*);
  75. int sys$stat(const char*, Unix::stat*);
  76. int sys$lseek(int fd, off_t, int whence);
  77. int sys$kill(pid_t pid, int sig);
  78. int sys$geterror() { return m_error; }
  79. void sys$exit(int status);
  80. int sys$spawn(const char* path, const char** args);
  81. pid_t sys$waitpid(pid_t, int* wstatus, int options);
  82. void* sys$mmap(void*, size_t size);
  83. int sys$munmap(void*, size_t size);
  84. int sys$set_mmap_name(void*, size_t, const char*);
  85. int sys$get_dir_entries(int fd, void*, size_t);
  86. int sys$getcwd(char*, size_t);
  87. int sys$chdir(const char*);
  88. int sys$sleep(unsigned seconds);
  89. int sys$gettimeofday(timeval*);
  90. int sys$gethostname(char* name, size_t length);
  91. int sys$get_arguments(int* argc, char*** argv);
  92. int sys$get_environment(char*** environ);
  93. int sys$uname(utsname*);
  94. int sys$readlink(const char*, char*, size_t);
  95. int sys$ttyname_r(int fd, char*, size_t);
  96. static void initialize();
  97. static void taskDidCrash(Task*);
  98. const TTY* tty() const { return m_tty; }
  99. size_t regionCount() const { return m_regions.size(); }
  100. const Vector<RetainPtr<Region>>& regions() const { return m_regions; }
  101. size_t subregionCount() const { return m_regions.size(); }
  102. const Vector<OwnPtr<Subregion>>& subregions() const { return m_subregions; }
  103. void dumpRegions();
  104. void didSchedule() { ++m_timesScheduled; }
  105. dword timesScheduled() const { return m_timesScheduled; }
  106. pid_t waitee() const { return m_waitee; }
  107. size_t fileHandleCount() const { return m_fileHandles.size(); }
  108. dword framePtr() const { return m_tss.ebp; }
  109. dword stackPtr() const { return m_tss.esp; }
  110. dword stackTop() const { return m_tss.ss == 0x10 ? m_stackTop0 : m_stackTop3; }
  111. bool isValidAddressForKernel(LinearAddress) const;
  112. bool validate_user_read(LinearAddress) const;
  113. bool validate_user_write(LinearAddress) const;
  114. InodeIdentifier cwdInode() const { return m_cwd ? m_cwd->inode : InodeIdentifier(); }
  115. InodeIdentifier executableInode() const { return m_executable ? m_executable->inode : InodeIdentifier(); }
  116. private:
  117. friend class MemoryManager;
  118. friend bool scheduleNewTask();
  119. Task(String&& name, uid_t, gid_t, pid_t parentPID, RingLevel, RetainPtr<VirtualFileSystem::Node>&& cwd = nullptr, RetainPtr<VirtualFileSystem::Node>&& executable = nullptr, TTY* = nullptr);
  120. void allocateLDT();
  121. dword* m_pageDirectory { nullptr };
  122. Task* m_prev { nullptr };
  123. Task* m_next { nullptr };
  124. String m_name;
  125. void (*m_entry)() { nullptr };
  126. pid_t m_pid { 0 };
  127. uid_t m_uid { 0 };
  128. gid_t m_gid { 0 };
  129. DWORD m_ticks { 0 };
  130. DWORD m_ticksLeft { 0 };
  131. DWORD m_stackTop0 { 0 };
  132. DWORD m_stackTop3 { 0 };
  133. FarPtr m_farPtr;
  134. State m_state { Invalid };
  135. DWORD m_wakeupTime { 0 };
  136. TSS32 m_tss;
  137. Descriptor* m_ldtEntries { nullptr };
  138. Vector<OwnPtr<FileHandle>> m_fileHandles;
  139. RingLevel m_ring { Ring0 };
  140. int m_error { 0 };
  141. void* m_kernelStack { nullptr };
  142. dword m_timesScheduled { 0 };
  143. pid_t m_waitee { -1 };
  144. int m_waiteeStatus { 0 };
  145. int m_fdBlockedOnRead { -1 };
  146. size_t m_maxFileHandles { 16 };
  147. RetainPtr<VirtualFileSystem::Node> m_cwd;
  148. RetainPtr<VirtualFileSystem::Node> m_executable;
  149. TTY* m_tty { nullptr };
  150. struct Region : public Retainable<Region> {
  151. Region(LinearAddress, size_t, RetainPtr<Zone>&&, String&&);
  152. ~Region();
  153. LinearAddress linearAddress;
  154. size_t size { 0 };
  155. RetainPtr<Zone> zone;
  156. String name;
  157. };
  158. struct Subregion {
  159. Subregion(Region&, dword offset, size_t, LinearAddress, String&& name);
  160. ~Subregion();
  161. RetainPtr<Region> region;
  162. dword offset;
  163. size_t size { 0 };
  164. LinearAddress linearAddress;
  165. String name;
  166. };
  167. Region* allocateRegion(size_t, String&& name);
  168. Region* allocateRegion(size_t, String&& name, LinearAddress);
  169. bool deallocateRegion(Region& region);
  170. Region* regionFromRange(LinearAddress, size_t);
  171. Vector<RetainPtr<Region>> m_regions;
  172. Vector<OwnPtr<Subregion>> m_subregions;
  173. // FIXME: Implement some kind of ASLR?
  174. LinearAddress m_nextRegion;
  175. pid_t m_parentPID { 0 };
  176. static void notify_waiters(pid_t waitee, int exit_status, int signal);
  177. void murder(int signal);
  178. Vector<String> m_arguments;
  179. Vector<String> m_initialEnvironment;
  180. };
  181. extern void task_init();
  182. extern void yield();
  183. extern bool scheduleNewTask();
  184. extern void switchNow();
  185. extern void block(Task::State);
  186. extern void sleep(DWORD ticks);
  187. /* The currently executing task. NULL during kernel bootup. */
  188. extern Task* current;