Process.h 39 KB

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  1. /*
  2. * Copyright (c) 2018-2021, Andreas Kling <kling@serenityos.org>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #pragma once
  7. #include <AK/Concepts.h>
  8. #include <AK/HashMap.h>
  9. #include <AK/IntrusiveList.h>
  10. #include <AK/IntrusiveListRelaxedConst.h>
  11. #include <AK/NonnullRefPtrVector.h>
  12. #include <AK/OwnPtr.h>
  13. #include <AK/String.h>
  14. #include <AK/Userspace.h>
  15. #include <AK/Variant.h>
  16. #include <AK/WeakPtr.h>
  17. #include <AK/Weakable.h>
  18. #include <Kernel/API/Syscall.h>
  19. #include <Kernel/Assertions.h>
  20. #include <Kernel/AtomicEdgeAction.h>
  21. #include <Kernel/FileSystem/InodeMetadata.h>
  22. #include <Kernel/FileSystem/OpenFileDescription.h>
  23. #include <Kernel/FileSystem/UnveilNode.h>
  24. #include <Kernel/Forward.h>
  25. #include <Kernel/FutexQueue.h>
  26. #include <Kernel/Locking/Mutex.h>
  27. #include <Kernel/Locking/MutexProtected.h>
  28. #include <Kernel/Memory/AddressSpace.h>
  29. #include <Kernel/PerformanceEventBuffer.h>
  30. #include <Kernel/ProcessExposed.h>
  31. #include <Kernel/ProcessGroup.h>
  32. #include <Kernel/StdLib.h>
  33. #include <Kernel/Thread.h>
  34. #include <Kernel/UnixTypes.h>
  35. #include <LibC/elf.h>
  36. #include <LibC/signal_numbers.h>
  37. namespace Kernel {
  38. MutexProtected<String>& hostname();
  39. Time kgettimeofday();
  40. #define ENUMERATE_PLEDGE_PROMISES \
  41. __ENUMERATE_PLEDGE_PROMISE(stdio) \
  42. __ENUMERATE_PLEDGE_PROMISE(rpath) \
  43. __ENUMERATE_PLEDGE_PROMISE(wpath) \
  44. __ENUMERATE_PLEDGE_PROMISE(cpath) \
  45. __ENUMERATE_PLEDGE_PROMISE(dpath) \
  46. __ENUMERATE_PLEDGE_PROMISE(inet) \
  47. __ENUMERATE_PLEDGE_PROMISE(id) \
  48. __ENUMERATE_PLEDGE_PROMISE(proc) \
  49. __ENUMERATE_PLEDGE_PROMISE(ptrace) \
  50. __ENUMERATE_PLEDGE_PROMISE(exec) \
  51. __ENUMERATE_PLEDGE_PROMISE(unix) \
  52. __ENUMERATE_PLEDGE_PROMISE(recvfd) \
  53. __ENUMERATE_PLEDGE_PROMISE(sendfd) \
  54. __ENUMERATE_PLEDGE_PROMISE(fattr) \
  55. __ENUMERATE_PLEDGE_PROMISE(tty) \
  56. __ENUMERATE_PLEDGE_PROMISE(chown) \
  57. __ENUMERATE_PLEDGE_PROMISE(thread) \
  58. __ENUMERATE_PLEDGE_PROMISE(video) \
  59. __ENUMERATE_PLEDGE_PROMISE(accept) \
  60. __ENUMERATE_PLEDGE_PROMISE(settime) \
  61. __ENUMERATE_PLEDGE_PROMISE(sigaction) \
  62. __ENUMERATE_PLEDGE_PROMISE(setkeymap) \
  63. __ENUMERATE_PLEDGE_PROMISE(prot_exec) \
  64. __ENUMERATE_PLEDGE_PROMISE(map_fixed) \
  65. __ENUMERATE_PLEDGE_PROMISE(getkeymap)
  66. enum class Pledge : u32 {
  67. #define __ENUMERATE_PLEDGE_PROMISE(x) x,
  68. ENUMERATE_PLEDGE_PROMISES
  69. #undef __ENUMERATE_PLEDGE_PROMISE
  70. };
  71. enum class VeilState {
  72. None,
  73. Dropped,
  74. Locked,
  75. };
  76. using FutexQueues = HashMap<FlatPtr, RefPtr<FutexQueue>>;
  77. struct LoadResult;
  78. class Process final
  79. : public ListedRefCounted<Process, LockType::Spinlock>
  80. , public Weakable<Process> {
  81. class ProtectedValues {
  82. public:
  83. ProcessID pid { 0 };
  84. ProcessID ppid { 0 };
  85. SessionID sid { 0 };
  86. UserID euid { 0 };
  87. GroupID egid { 0 };
  88. UserID uid { 0 };
  89. GroupID gid { 0 };
  90. UserID suid { 0 };
  91. GroupID sgid { 0 };
  92. Vector<GroupID> extra_gids;
  93. bool dumpable { false };
  94. Atomic<bool> has_promises { false };
  95. Atomic<u32> promises { 0 };
  96. Atomic<bool> has_execpromises { false };
  97. Atomic<u32> execpromises { 0 };
  98. mode_t umask { 022 };
  99. VirtualAddress signal_trampoline;
  100. Atomic<u32> thread_count { 0 };
  101. u8 termination_status { 0 };
  102. u8 termination_signal { 0 };
  103. };
  104. public:
  105. AK_MAKE_NONCOPYABLE(Process);
  106. AK_MAKE_NONMOVABLE(Process);
  107. MAKE_ALIGNED_ALLOCATED(Process, PAGE_SIZE);
  108. friend class Thread;
  109. friend class Coredump;
  110. friend class ProcFSProcessOpenFileDescriptions;
  111. // Helper class to temporarily unprotect a process's protected data so you can write to it.
  112. class ProtectedDataMutationScope {
  113. public:
  114. explicit ProtectedDataMutationScope(Process& process)
  115. : m_process(process)
  116. {
  117. m_process.unprotect_data();
  118. }
  119. ~ProtectedDataMutationScope() { m_process.protect_data(); }
  120. private:
  121. Process& m_process;
  122. };
  123. enum class State : u8 {
  124. Running = 0,
  125. Dying,
  126. Dead
  127. };
  128. public:
  129. class ProcessProcFSTraits;
  130. inline static Process& current()
  131. {
  132. auto* current_thread = Processor::current_thread();
  133. VERIFY(current_thread);
  134. return current_thread->process();
  135. }
  136. inline static bool has_current()
  137. {
  138. return Processor::current_thread() != nullptr;
  139. }
  140. template<typename EntryFunction>
  141. static void kernel_process_trampoline(void* data)
  142. {
  143. EntryFunction* func = reinterpret_cast<EntryFunction*>(data);
  144. (*func)();
  145. delete func;
  146. }
  147. enum class RegisterProcess {
  148. No,
  149. Yes
  150. };
  151. template<typename EntryFunction>
  152. static RefPtr<Process> create_kernel_process(RefPtr<Thread>& first_thread, NonnullOwnPtr<KString> name, EntryFunction entry, u32 affinity = THREAD_AFFINITY_DEFAULT, RegisterProcess do_register = RegisterProcess::Yes)
  153. {
  154. auto* entry_func = new EntryFunction(move(entry));
  155. return create_kernel_process(first_thread, move(name), &Process::kernel_process_trampoline<EntryFunction>, entry_func, affinity, do_register);
  156. }
  157. static RefPtr<Process> create_kernel_process(RefPtr<Thread>& first_thread, NonnullOwnPtr<KString> name, void (*entry)(void*), void* entry_data = nullptr, u32 affinity = THREAD_AFFINITY_DEFAULT, RegisterProcess do_register = RegisterProcess::Yes);
  158. static ErrorOr<NonnullRefPtr<Process>> try_create_user_process(RefPtr<Thread>& first_thread, StringView path, UserID, GroupID, NonnullOwnPtrVector<KString> arguments, NonnullOwnPtrVector<KString> environment, TTY*);
  159. static void register_new(Process&);
  160. ~Process();
  161. RefPtr<Thread> create_kernel_thread(void (*entry)(void*), void* entry_data, u32 priority, NonnullOwnPtr<KString> name, u32 affinity = THREAD_AFFINITY_DEFAULT, bool joinable = true);
  162. bool is_profiling() const { return m_profiling; }
  163. void set_profiling(bool profiling) { m_profiling = profiling; }
  164. bool should_generate_coredump() const { return m_should_generate_coredump; }
  165. void set_should_generate_coredump(bool b) { m_should_generate_coredump = b; }
  166. bool is_dying() const { return m_state.load(AK::MemoryOrder::memory_order_acquire) != State::Running; }
  167. bool is_dead() const { return m_state.load(AK::MemoryOrder::memory_order_acquire) == State::Dead; }
  168. bool is_stopped() const { return m_is_stopped; }
  169. bool set_stopped(bool stopped) { return m_is_stopped.exchange(stopped); }
  170. bool is_kernel_process() const { return m_is_kernel_process; }
  171. bool is_user_process() const { return !m_is_kernel_process; }
  172. static RefPtr<Process> from_pid(ProcessID);
  173. static SessionID get_sid_from_pgid(ProcessGroupID pgid);
  174. StringView name() const { return m_name->view(); }
  175. ProcessID pid() const { return m_protected_values.pid; }
  176. SessionID sid() const { return m_protected_values.sid; }
  177. bool is_session_leader() const { return sid().value() == pid().value(); }
  178. ProcessGroupID pgid() const { return m_pg ? m_pg->pgid() : 0; }
  179. bool is_group_leader() const { return pgid().value() == pid().value(); }
  180. Vector<GroupID> const& extra_gids() const { return m_protected_values.extra_gids; }
  181. UserID euid() const { return m_protected_values.euid; }
  182. GroupID egid() const { return m_protected_values.egid; }
  183. UserID uid() const { return m_protected_values.uid; }
  184. GroupID gid() const { return m_protected_values.gid; }
  185. UserID suid() const { return m_protected_values.suid; }
  186. GroupID sgid() const { return m_protected_values.sgid; }
  187. ProcessID ppid() const { return m_protected_values.ppid; }
  188. bool is_dumpable() const { return m_protected_values.dumpable; }
  189. void set_dumpable(bool);
  190. mode_t umask() const { return m_protected_values.umask; }
  191. bool in_group(GroupID) const;
  192. // Breakable iteration functions
  193. template<IteratorFunction<Process&> Callback>
  194. static void for_each(Callback);
  195. template<IteratorFunction<Process&> Callback>
  196. static void for_each_in_pgrp(ProcessGroupID, Callback);
  197. template<IteratorFunction<Process&> Callback>
  198. void for_each_child(Callback);
  199. template<IteratorFunction<Thread&> Callback>
  200. IterationDecision for_each_thread(Callback);
  201. template<IteratorFunction<Thread&> Callback>
  202. IterationDecision for_each_thread(Callback callback) const;
  203. // Non-breakable iteration functions
  204. template<VoidFunction<Process&> Callback>
  205. static void for_each(Callback);
  206. template<VoidFunction<Process&> Callback>
  207. static void for_each_in_pgrp(ProcessGroupID, Callback);
  208. template<VoidFunction<Process&> Callback>
  209. void for_each_child(Callback);
  210. template<VoidFunction<Thread&> Callback>
  211. IterationDecision for_each_thread(Callback);
  212. template<VoidFunction<Thread&> Callback>
  213. IterationDecision for_each_thread(Callback callback) const;
  214. void die();
  215. void finalize();
  216. ThreadTracer* tracer() { return m_tracer.ptr(); }
  217. bool is_traced() const { return !!m_tracer; }
  218. ErrorOr<void> start_tracing_from(ProcessID tracer);
  219. void stop_tracing();
  220. void tracer_trap(Thread&, const RegisterState&);
  221. ErrorOr<FlatPtr> sys$emuctl();
  222. ErrorOr<FlatPtr> sys$yield();
  223. ErrorOr<FlatPtr> sys$sync();
  224. ErrorOr<FlatPtr> sys$beep();
  225. ErrorOr<FlatPtr> sys$get_process_name(Userspace<char*> buffer, size_t buffer_size);
  226. ErrorOr<FlatPtr> sys$set_process_name(Userspace<const char*> user_name, size_t user_name_length);
  227. ErrorOr<FlatPtr> sys$create_inode_watcher(u32 flags);
  228. ErrorOr<FlatPtr> sys$inode_watcher_add_watch(Userspace<const Syscall::SC_inode_watcher_add_watch_params*> user_params);
  229. ErrorOr<FlatPtr> sys$inode_watcher_remove_watch(int fd, int wd);
  230. ErrorOr<FlatPtr> sys$dbgputstr(Userspace<const char*>, size_t);
  231. ErrorOr<FlatPtr> sys$dump_backtrace();
  232. ErrorOr<FlatPtr> sys$gettid();
  233. ErrorOr<FlatPtr> sys$setsid();
  234. ErrorOr<FlatPtr> sys$getsid(pid_t);
  235. ErrorOr<FlatPtr> sys$setpgid(pid_t pid, pid_t pgid);
  236. ErrorOr<FlatPtr> sys$getpgrp();
  237. ErrorOr<FlatPtr> sys$getpgid(pid_t);
  238. ErrorOr<FlatPtr> sys$getuid();
  239. ErrorOr<FlatPtr> sys$getgid();
  240. ErrorOr<FlatPtr> sys$geteuid();
  241. ErrorOr<FlatPtr> sys$getegid();
  242. ErrorOr<FlatPtr> sys$getpid();
  243. ErrorOr<FlatPtr> sys$getppid();
  244. ErrorOr<FlatPtr> sys$getresuid(Userspace<UserID*>, Userspace<UserID*>, Userspace<UserID*>);
  245. ErrorOr<FlatPtr> sys$getresgid(Userspace<GroupID*>, Userspace<GroupID*>, Userspace<GroupID*>);
  246. ErrorOr<FlatPtr> sys$umask(mode_t);
  247. ErrorOr<FlatPtr> sys$open(Userspace<const Syscall::SC_open_params*>);
  248. ErrorOr<FlatPtr> sys$close(int fd);
  249. ErrorOr<FlatPtr> sys$read(int fd, Userspace<u8*>, size_t);
  250. ErrorOr<FlatPtr> sys$pread(int fd, Userspace<u8*>, size_t, Userspace<off_t const*>);
  251. ErrorOr<FlatPtr> sys$readv(int fd, Userspace<const struct iovec*> iov, int iov_count);
  252. ErrorOr<FlatPtr> sys$write(int fd, Userspace<const u8*>, size_t);
  253. ErrorOr<FlatPtr> sys$writev(int fd, Userspace<const struct iovec*> iov, int iov_count);
  254. ErrorOr<FlatPtr> sys$fstat(int fd, Userspace<stat*>);
  255. ErrorOr<FlatPtr> sys$stat(Userspace<const Syscall::SC_stat_params*>);
  256. ErrorOr<FlatPtr> sys$lseek(int fd, Userspace<off_t*>, int whence);
  257. ErrorOr<FlatPtr> sys$ftruncate(int fd, Userspace<off_t const*>);
  258. ErrorOr<FlatPtr> sys$kill(pid_t pid_or_pgid, int sig);
  259. [[noreturn]] void sys$exit(int status);
  260. ErrorOr<FlatPtr> sys$sigreturn(RegisterState& registers);
  261. ErrorOr<FlatPtr> sys$waitid(Userspace<const Syscall::SC_waitid_params*>);
  262. ErrorOr<FlatPtr> sys$mmap(Userspace<const Syscall::SC_mmap_params*>);
  263. ErrorOr<FlatPtr> sys$mremap(Userspace<const Syscall::SC_mremap_params*>);
  264. ErrorOr<FlatPtr> sys$munmap(Userspace<void*>, size_t);
  265. ErrorOr<FlatPtr> sys$set_mmap_name(Userspace<const Syscall::SC_set_mmap_name_params*>);
  266. ErrorOr<FlatPtr> sys$mprotect(Userspace<void*>, size_t, int prot);
  267. ErrorOr<FlatPtr> sys$madvise(Userspace<void*>, size_t, int advice);
  268. ErrorOr<FlatPtr> sys$msyscall(Userspace<void*>);
  269. ErrorOr<FlatPtr> sys$msync(Userspace<void*>, size_t, int flags);
  270. ErrorOr<FlatPtr> sys$purge(int mode);
  271. ErrorOr<FlatPtr> sys$poll(Userspace<const Syscall::SC_poll_params*>);
  272. ErrorOr<FlatPtr> sys$get_dir_entries(int fd, Userspace<void*>, size_t);
  273. ErrorOr<FlatPtr> sys$getcwd(Userspace<char*>, size_t);
  274. ErrorOr<FlatPtr> sys$chdir(Userspace<const char*>, size_t);
  275. ErrorOr<FlatPtr> sys$fchdir(int fd);
  276. ErrorOr<FlatPtr> sys$adjtime(Userspace<const timeval*>, Userspace<timeval*>);
  277. ErrorOr<FlatPtr> sys$clock_gettime(clockid_t, Userspace<timespec*>);
  278. ErrorOr<FlatPtr> sys$clock_settime(clockid_t, Userspace<const timespec*>);
  279. ErrorOr<FlatPtr> sys$clock_nanosleep(Userspace<const Syscall::SC_clock_nanosleep_params*>);
  280. ErrorOr<FlatPtr> sys$gethostname(Userspace<char*>, size_t);
  281. ErrorOr<FlatPtr> sys$sethostname(Userspace<const char*>, size_t);
  282. ErrorOr<FlatPtr> sys$uname(Userspace<utsname*>);
  283. ErrorOr<FlatPtr> sys$readlink(Userspace<const Syscall::SC_readlink_params*>);
  284. ErrorOr<FlatPtr> sys$ttyname(int fd, Userspace<char*>, size_t);
  285. ErrorOr<FlatPtr> sys$ptsname(int fd, Userspace<char*>, size_t);
  286. ErrorOr<FlatPtr> sys$fork(RegisterState&);
  287. ErrorOr<FlatPtr> sys$execve(Userspace<const Syscall::SC_execve_params*>);
  288. ErrorOr<FlatPtr> sys$dup2(int old_fd, int new_fd);
  289. ErrorOr<FlatPtr> sys$sigaction(int signum, Userspace<const sigaction*> act, Userspace<sigaction*> old_act);
  290. ErrorOr<FlatPtr> sys$sigaltstack(Userspace<const stack_t*> ss, Userspace<stack_t*> old_ss);
  291. ErrorOr<FlatPtr> sys$sigprocmask(int how, Userspace<const sigset_t*> set, Userspace<sigset_t*> old_set);
  292. ErrorOr<FlatPtr> sys$sigpending(Userspace<sigset_t*>);
  293. ErrorOr<FlatPtr> sys$sigtimedwait(Userspace<sigset_t const*>, Userspace<siginfo_t*>, Userspace<const timespec*>);
  294. ErrorOr<FlatPtr> sys$getgroups(size_t, Userspace<gid_t*>);
  295. ErrorOr<FlatPtr> sys$setgroups(size_t, Userspace<const gid_t*>);
  296. ErrorOr<FlatPtr> sys$pipe(int pipefd[2], int flags);
  297. ErrorOr<FlatPtr> sys$killpg(pid_t pgrp, int sig);
  298. ErrorOr<FlatPtr> sys$seteuid(UserID);
  299. ErrorOr<FlatPtr> sys$setegid(GroupID);
  300. ErrorOr<FlatPtr> sys$setuid(UserID);
  301. ErrorOr<FlatPtr> sys$setgid(GroupID);
  302. ErrorOr<FlatPtr> sys$setreuid(UserID, UserID);
  303. ErrorOr<FlatPtr> sys$setresuid(UserID, UserID, UserID);
  304. ErrorOr<FlatPtr> sys$setresgid(GroupID, GroupID, GroupID);
  305. ErrorOr<FlatPtr> sys$alarm(unsigned seconds);
  306. ErrorOr<FlatPtr> sys$access(Userspace<const char*> pathname, size_t path_length, int mode);
  307. ErrorOr<FlatPtr> sys$fcntl(int fd, int cmd, u32 extra_arg);
  308. ErrorOr<FlatPtr> sys$ioctl(int fd, unsigned request, FlatPtr arg);
  309. ErrorOr<FlatPtr> sys$mkdir(Userspace<const char*> pathname, size_t path_length, mode_t mode);
  310. ErrorOr<FlatPtr> sys$times(Userspace<tms*>);
  311. ErrorOr<FlatPtr> sys$utime(Userspace<const char*> pathname, size_t path_length, Userspace<const struct utimbuf*>);
  312. ErrorOr<FlatPtr> sys$link(Userspace<const Syscall::SC_link_params*>);
  313. ErrorOr<FlatPtr> sys$unlink(Userspace<const char*> pathname, size_t path_length);
  314. ErrorOr<FlatPtr> sys$symlink(Userspace<const Syscall::SC_symlink_params*>);
  315. ErrorOr<FlatPtr> sys$rmdir(Userspace<const char*> pathname, size_t path_length);
  316. ErrorOr<FlatPtr> sys$mount(Userspace<const Syscall::SC_mount_params*>);
  317. ErrorOr<FlatPtr> sys$umount(Userspace<const char*> mountpoint, size_t mountpoint_length);
  318. ErrorOr<FlatPtr> sys$chmod(Userspace<const char*> pathname, size_t path_length, mode_t);
  319. ErrorOr<FlatPtr> sys$fchmod(int fd, mode_t);
  320. ErrorOr<FlatPtr> sys$chown(Userspace<const Syscall::SC_chown_params*>);
  321. ErrorOr<FlatPtr> sys$fchown(int fd, UserID, GroupID);
  322. ErrorOr<FlatPtr> sys$fsync(int fd);
  323. ErrorOr<FlatPtr> sys$socket(int domain, int type, int protocol);
  324. ErrorOr<FlatPtr> sys$bind(int sockfd, Userspace<const sockaddr*> addr, socklen_t);
  325. ErrorOr<FlatPtr> sys$listen(int sockfd, int backlog);
  326. ErrorOr<FlatPtr> sys$accept4(Userspace<const Syscall::SC_accept4_params*>);
  327. ErrorOr<FlatPtr> sys$connect(int sockfd, Userspace<const sockaddr*>, socklen_t);
  328. ErrorOr<FlatPtr> sys$shutdown(int sockfd, int how);
  329. ErrorOr<FlatPtr> sys$sendmsg(int sockfd, Userspace<const struct msghdr*>, int flags);
  330. ErrorOr<FlatPtr> sys$recvmsg(int sockfd, Userspace<struct msghdr*>, int flags);
  331. ErrorOr<FlatPtr> sys$getsockopt(Userspace<const Syscall::SC_getsockopt_params*>);
  332. ErrorOr<FlatPtr> sys$setsockopt(Userspace<const Syscall::SC_setsockopt_params*>);
  333. ErrorOr<FlatPtr> sys$getsockname(Userspace<const Syscall::SC_getsockname_params*>);
  334. ErrorOr<FlatPtr> sys$getpeername(Userspace<const Syscall::SC_getpeername_params*>);
  335. ErrorOr<FlatPtr> sys$socketpair(Userspace<const Syscall::SC_socketpair_params*>);
  336. ErrorOr<FlatPtr> sys$sched_setparam(pid_t pid, Userspace<const struct sched_param*>);
  337. ErrorOr<FlatPtr> sys$sched_getparam(pid_t pid, Userspace<struct sched_param*>);
  338. ErrorOr<FlatPtr> sys$create_thread(void* (*)(void*), Userspace<const Syscall::SC_create_thread_params*>);
  339. [[noreturn]] void sys$exit_thread(Userspace<void*>, Userspace<void*>, size_t);
  340. ErrorOr<FlatPtr> sys$join_thread(pid_t tid, Userspace<void**> exit_value);
  341. ErrorOr<FlatPtr> sys$detach_thread(pid_t tid);
  342. ErrorOr<FlatPtr> sys$set_thread_name(pid_t tid, Userspace<const char*> buffer, size_t buffer_size);
  343. ErrorOr<FlatPtr> sys$get_thread_name(pid_t tid, Userspace<char*> buffer, size_t buffer_size);
  344. ErrorOr<FlatPtr> sys$kill_thread(pid_t tid, int signal);
  345. ErrorOr<FlatPtr> sys$rename(Userspace<const Syscall::SC_rename_params*>);
  346. ErrorOr<FlatPtr> sys$mknod(Userspace<const Syscall::SC_mknod_params*>);
  347. ErrorOr<FlatPtr> sys$realpath(Userspace<const Syscall::SC_realpath_params*>);
  348. ErrorOr<FlatPtr> sys$getrandom(Userspace<void*>, size_t, unsigned int);
  349. ErrorOr<FlatPtr> sys$getkeymap(Userspace<const Syscall::SC_getkeymap_params*>);
  350. ErrorOr<FlatPtr> sys$setkeymap(Userspace<const Syscall::SC_setkeymap_params*>);
  351. ErrorOr<FlatPtr> sys$profiling_enable(pid_t, u64);
  352. ErrorOr<FlatPtr> sys$profiling_disable(pid_t);
  353. ErrorOr<FlatPtr> sys$profiling_free_buffer(pid_t);
  354. ErrorOr<FlatPtr> sys$futex(Userspace<const Syscall::SC_futex_params*>);
  355. ErrorOr<FlatPtr> sys$pledge(Userspace<const Syscall::SC_pledge_params*>);
  356. ErrorOr<FlatPtr> sys$unveil(Userspace<const Syscall::SC_unveil_params*>);
  357. ErrorOr<FlatPtr> sys$perf_event(int type, FlatPtr arg1, FlatPtr arg2);
  358. ErrorOr<FlatPtr> sys$perf_register_string(Userspace<char const*>, size_t);
  359. ErrorOr<FlatPtr> sys$get_stack_bounds(Userspace<FlatPtr*> stack_base, Userspace<size_t*> stack_size);
  360. ErrorOr<FlatPtr> sys$ptrace(Userspace<const Syscall::SC_ptrace_params*>);
  361. ErrorOr<FlatPtr> sys$sendfd(int sockfd, int fd);
  362. ErrorOr<FlatPtr> sys$recvfd(int sockfd, int options);
  363. ErrorOr<FlatPtr> sys$sysconf(int name);
  364. ErrorOr<FlatPtr> sys$disown(ProcessID);
  365. ErrorOr<FlatPtr> sys$allocate_tls(Userspace<const char*> initial_data, size_t);
  366. ErrorOr<FlatPtr> sys$prctl(int option, FlatPtr arg1, FlatPtr arg2);
  367. ErrorOr<FlatPtr> sys$set_coredump_metadata(Userspace<const Syscall::SC_set_coredump_metadata_params*>);
  368. ErrorOr<FlatPtr> sys$anon_create(size_t, int options);
  369. ErrorOr<FlatPtr> sys$statvfs(Userspace<const Syscall::SC_statvfs_params*> user_params);
  370. ErrorOr<FlatPtr> sys$fstatvfs(int fd, statvfs* buf);
  371. ErrorOr<FlatPtr> sys$map_time_page();
  372. template<bool sockname, typename Params>
  373. ErrorOr<void> get_sock_or_peer_name(Params const&);
  374. static void initialize();
  375. [[noreturn]] void crash(int signal, FlatPtr ip, bool out_of_memory = false);
  376. [[nodiscard]] siginfo_t wait_info() const;
  377. const TTY* tty() const { return m_tty; }
  378. void set_tty(TTY*);
  379. u32 m_ticks_in_user { 0 };
  380. u32 m_ticks_in_kernel { 0 };
  381. u32 m_ticks_in_user_for_dead_children { 0 };
  382. u32 m_ticks_in_kernel_for_dead_children { 0 };
  383. Custody& current_directory();
  384. Custody* executable() { return m_executable.ptr(); }
  385. const Custody* executable() const { return m_executable.ptr(); }
  386. NonnullOwnPtrVector<KString> const& arguments() const { return m_arguments; };
  387. NonnullOwnPtrVector<KString> const& environment() const { return m_environment; };
  388. ErrorOr<void> exec(NonnullOwnPtr<KString> path, NonnullOwnPtrVector<KString> arguments, NonnullOwnPtrVector<KString> environment, int recursion_depth = 0);
  389. ErrorOr<LoadResult> load(NonnullRefPtr<OpenFileDescription> main_program_description, RefPtr<OpenFileDescription> interpreter_description, const ElfW(Ehdr) & main_program_header);
  390. bool is_superuser() const { return euid() == 0; }
  391. void terminate_due_to_signal(u8 signal);
  392. ErrorOr<void> send_signal(u8 signal, Process* sender);
  393. u8 termination_signal() const { return m_protected_values.termination_signal; }
  394. u16 thread_count() const
  395. {
  396. return m_protected_values.thread_count.load(AK::MemoryOrder::memory_order_relaxed);
  397. }
  398. Mutex& big_lock() { return m_big_lock; }
  399. Mutex& ptrace_lock() { return m_ptrace_lock; }
  400. bool has_promises() const { return m_protected_values.has_promises; }
  401. bool has_promised(Pledge pledge) const { return (m_protected_values.promises & (1U << (u32)pledge)) != 0; }
  402. VeilState veil_state() const
  403. {
  404. return m_veil_state;
  405. }
  406. const UnveilNode& unveiled_paths() const
  407. {
  408. return m_unveiled_paths;
  409. }
  410. bool wait_for_tracer_at_next_execve() const
  411. {
  412. return m_wait_for_tracer_at_next_execve;
  413. }
  414. void set_wait_for_tracer_at_next_execve(bool val)
  415. {
  416. m_wait_for_tracer_at_next_execve = val;
  417. }
  418. ErrorOr<void> peek_user_data(Span<u8> destination, Userspace<const u8*> address);
  419. ErrorOr<FlatPtr> peek_user_data(Userspace<const FlatPtr*> address);
  420. ErrorOr<void> poke_user_data(Userspace<FlatPtr*> address, FlatPtr data);
  421. void disowned_by_waiter(Process& process);
  422. void unblock_waiters(Thread::WaitBlocker::UnblockFlags, u8 signal = 0);
  423. Thread::WaitBlockerSet& wait_blocker_set() { return m_wait_blocker_set; }
  424. template<typename Callback>
  425. void for_each_coredump_property(Callback callback) const
  426. {
  427. for (auto const& property : m_coredump_properties) {
  428. if (property.key && property.value)
  429. callback(*property.key, *property.value);
  430. }
  431. }
  432. ErrorOr<void> set_coredump_property(NonnullOwnPtr<KString> key, NonnullOwnPtr<KString> value);
  433. ErrorOr<void> try_set_coredump_property(StringView key, StringView value);
  434. const NonnullRefPtrVector<Thread>& threads_for_coredump(Badge<Coredump>) const { return m_threads_for_coredump; }
  435. PerformanceEventBuffer* perf_events() { return m_perf_event_buffer; }
  436. PerformanceEventBuffer const* perf_events() const { return m_perf_event_buffer; }
  437. Memory::AddressSpace& address_space() { return *m_space; }
  438. Memory::AddressSpace const& address_space() const { return *m_space; }
  439. VirtualAddress signal_trampoline() const { return m_protected_values.signal_trampoline; }
  440. ErrorOr<void> require_promise(Pledge);
  441. ErrorOr<void> require_no_promises() const;
  442. private:
  443. friend class MemoryManager;
  444. friend class Scheduler;
  445. friend class Region;
  446. friend class PerformanceManager;
  447. bool add_thread(Thread&);
  448. bool remove_thread(Thread&);
  449. Process(NonnullOwnPtr<KString> name, UserID, GroupID, ProcessID ppid, bool is_kernel_process, RefPtr<Custody> cwd, RefPtr<Custody> executable, TTY* tty);
  450. static ErrorOr<NonnullRefPtr<Process>> try_create(RefPtr<Thread>& first_thread, NonnullOwnPtr<KString> name, UserID, GroupID, ProcessID ppid, bool is_kernel_process, RefPtr<Custody> cwd = nullptr, RefPtr<Custody> executable = nullptr, TTY* = nullptr, Process* fork_parent = nullptr);
  451. ErrorOr<void> attach_resources(NonnullOwnPtr<Memory::AddressSpace>&&, RefPtr<Thread>& first_thread, Process* fork_parent);
  452. static ProcessID allocate_pid();
  453. void kill_threads_except_self();
  454. void kill_all_threads();
  455. ErrorOr<void> dump_core();
  456. bool dump_perfcore();
  457. bool create_perf_events_buffer_if_needed();
  458. void delete_perf_events_buffer();
  459. ErrorOr<void> do_exec(NonnullRefPtr<OpenFileDescription> main_program_description, NonnullOwnPtrVector<KString> arguments, NonnullOwnPtrVector<KString> environment, RefPtr<OpenFileDescription> interpreter_description, Thread*& new_main_thread, u32& prev_flags, const ElfW(Ehdr) & main_program_header);
  460. ErrorOr<FlatPtr> do_write(OpenFileDescription&, const UserOrKernelBuffer&, size_t);
  461. ErrorOr<FlatPtr> do_statvfs(FileSystem const& path, Custody const*, statvfs* buf);
  462. ErrorOr<RefPtr<OpenFileDescription>> find_elf_interpreter_for_executable(StringView path, ElfW(Ehdr) const& main_executable_header, size_t main_executable_header_size, size_t file_size);
  463. ErrorOr<void> do_kill(Process&, int signal);
  464. ErrorOr<void> do_killpg(ProcessGroupID pgrp, int signal);
  465. ErrorOr<void> do_killall(int signal);
  466. ErrorOr<void> do_killself(int signal);
  467. ErrorOr<siginfo_t> do_waitid(Variant<Empty, NonnullRefPtr<Process>, NonnullRefPtr<ProcessGroup>> waitee, int options);
  468. static ErrorOr<NonnullOwnPtr<KString>> get_syscall_path_argument(Userspace<const char*> user_path, size_t path_length);
  469. static ErrorOr<NonnullOwnPtr<KString>> get_syscall_path_argument(const Syscall::StringArgument&);
  470. bool has_tracee_thread(ProcessID tracer_pid);
  471. void clear_futex_queues_on_exec();
  472. void setup_socket_fd(int fd, NonnullRefPtr<OpenFileDescription> description, int type);
  473. ErrorOr<void> remap_range_as_stack(FlatPtr address, size_t size);
  474. public:
  475. NonnullRefPtr<ProcessProcFSTraits> procfs_traits() const { return *m_procfs_traits; }
  476. ErrorOr<void> procfs_get_fds_stats(KBufferBuilder& builder) const;
  477. ErrorOr<void> procfs_get_perf_events(KBufferBuilder& builder) const;
  478. ErrorOr<void> procfs_get_unveil_stats(KBufferBuilder& builder) const;
  479. ErrorOr<void> procfs_get_pledge_stats(KBufferBuilder& builder) const;
  480. ErrorOr<void> procfs_get_virtual_memory_stats(KBufferBuilder& builder) const;
  481. ErrorOr<void> procfs_get_binary_link(KBufferBuilder& builder) const;
  482. ErrorOr<void> procfs_get_current_work_directory_link(KBufferBuilder& builder) const;
  483. mode_t binary_link_required_mode() const;
  484. ErrorOr<size_t> procfs_get_thread_stack(ThreadID thread_id, KBufferBuilder& builder) const;
  485. ErrorOr<void> traverse_stacks_directory(FileSystemID, Function<ErrorOr<void>(FileSystem::DirectoryEntryView const&)> callback) const;
  486. ErrorOr<NonnullRefPtr<Inode>> lookup_stacks_directory(const ProcFS&, StringView name) const;
  487. ErrorOr<size_t> procfs_get_file_description_link(unsigned fd, KBufferBuilder& builder) const;
  488. ErrorOr<void> traverse_file_descriptions_directory(FileSystemID, Function<ErrorOr<void>(FileSystem::DirectoryEntryView const&)> callback) const;
  489. ErrorOr<NonnullRefPtr<Inode>> lookup_file_descriptions_directory(const ProcFS&, StringView name) const;
  490. ErrorOr<void> procfs_get_tty_link(KBufferBuilder& builder) const;
  491. private:
  492. inline PerformanceEventBuffer* current_perf_events_buffer()
  493. {
  494. if (g_profiling_all_threads)
  495. return g_global_perf_events;
  496. if (m_profiling)
  497. return m_perf_event_buffer.ptr();
  498. return nullptr;
  499. }
  500. mutable IntrusiveListNode<Process> m_list_node;
  501. NonnullOwnPtr<KString> m_name;
  502. OwnPtr<Memory::AddressSpace> m_space;
  503. RefPtr<ProcessGroup> m_pg;
  504. AtomicEdgeAction<u32> m_protected_data_refs;
  505. void protect_data();
  506. void unprotect_data();
  507. OwnPtr<ThreadTracer> m_tracer;
  508. public:
  509. class OpenFileDescriptionAndFlags {
  510. public:
  511. bool is_valid() const { return !m_description.is_null(); }
  512. bool is_allocated() const { return m_is_allocated; }
  513. void allocate()
  514. {
  515. VERIFY(!m_is_allocated);
  516. VERIFY(!is_valid());
  517. m_is_allocated = true;
  518. }
  519. void deallocate()
  520. {
  521. VERIFY(m_is_allocated);
  522. VERIFY(!is_valid());
  523. m_is_allocated = false;
  524. }
  525. OpenFileDescription* description() { return m_description; }
  526. const OpenFileDescription* description() const { return m_description; }
  527. u32 flags() const { return m_flags; }
  528. void set_flags(u32 flags) { m_flags = flags; }
  529. void clear();
  530. void set(NonnullRefPtr<OpenFileDescription>&&, u32 flags = 0);
  531. private:
  532. RefPtr<OpenFileDescription> m_description;
  533. bool m_is_allocated { false };
  534. u32 m_flags { 0 };
  535. };
  536. class ScopedDescriptionAllocation;
  537. class OpenFileDescriptions {
  538. AK_MAKE_NONCOPYABLE(OpenFileDescriptions);
  539. friend class Process;
  540. public:
  541. ALWAYS_INLINE const OpenFileDescriptionAndFlags& operator[](size_t i) const { return at(i); }
  542. ALWAYS_INLINE OpenFileDescriptionAndFlags& operator[](size_t i) { return at(i); }
  543. ErrorOr<void> try_clone(const Kernel::Process::OpenFileDescriptions& other)
  544. {
  545. SpinlockLocker lock_other(other.m_fds_lock);
  546. TRY(try_resize(other.m_fds_metadatas.size()));
  547. for (size_t i = 0; i < other.m_fds_metadatas.size(); ++i) {
  548. m_fds_metadatas[i] = other.m_fds_metadatas[i];
  549. }
  550. return {};
  551. }
  552. const OpenFileDescriptionAndFlags& at(size_t i) const;
  553. OpenFileDescriptionAndFlags& at(size_t i);
  554. OpenFileDescriptionAndFlags const* get_if_valid(size_t i) const;
  555. OpenFileDescriptionAndFlags* get_if_valid(size_t i);
  556. void enumerate(Function<void(const OpenFileDescriptionAndFlags&)>) const;
  557. void change_each(Function<void(OpenFileDescriptionAndFlags&)>);
  558. ErrorOr<ScopedDescriptionAllocation> allocate(int first_candidate_fd = 0);
  559. size_t open_count() const;
  560. ErrorOr<void> try_resize(size_t size) { return m_fds_metadatas.try_resize(size); }
  561. static constexpr size_t max_open()
  562. {
  563. return s_max_open_file_descriptors;
  564. }
  565. void clear()
  566. {
  567. SpinlockLocker lock(m_fds_lock);
  568. m_fds_metadatas.clear();
  569. }
  570. ErrorOr<NonnullRefPtr<OpenFileDescription>> open_file_description(int fd) const;
  571. private:
  572. OpenFileDescriptions() = default;
  573. static constexpr size_t s_max_open_file_descriptors { FD_SETSIZE };
  574. mutable Spinlock m_fds_lock;
  575. Vector<OpenFileDescriptionAndFlags> m_fds_metadatas;
  576. };
  577. class ScopedDescriptionAllocation {
  578. AK_MAKE_NONCOPYABLE(ScopedDescriptionAllocation);
  579. public:
  580. ScopedDescriptionAllocation() = default;
  581. ScopedDescriptionAllocation(int tracked_fd, OpenFileDescriptionAndFlags* description)
  582. : fd(tracked_fd)
  583. , m_description(description)
  584. {
  585. }
  586. ScopedDescriptionAllocation(ScopedDescriptionAllocation&& other)
  587. : fd(other.fd)
  588. {
  589. // Take over the responsibility of tracking to deallocation.
  590. swap(m_description, other.m_description);
  591. }
  592. ~ScopedDescriptionAllocation()
  593. {
  594. if (m_description && m_description->is_allocated() && !m_description->is_valid()) {
  595. m_description->deallocate();
  596. }
  597. }
  598. const int fd { -1 };
  599. private:
  600. OpenFileDescriptionAndFlags* m_description { nullptr };
  601. };
  602. class ProcessProcFSTraits : public ProcFSExposedComponent {
  603. public:
  604. static ErrorOr<NonnullRefPtr<ProcessProcFSTraits>> try_create(Badge<Process>, Process& process)
  605. {
  606. return adopt_nonnull_ref_or_enomem(new (nothrow) ProcessProcFSTraits(process));
  607. }
  608. virtual InodeIndex component_index() const override;
  609. virtual ErrorOr<NonnullRefPtr<Inode>> to_inode(const ProcFS& procfs_instance) const override;
  610. virtual ErrorOr<void> traverse_as_directory(FileSystemID, Function<ErrorOr<void>(FileSystem::DirectoryEntryView const&)>) const override;
  611. virtual mode_t required_mode() const override { return 0555; }
  612. virtual UserID owner_user() const override;
  613. virtual GroupID owner_group() const override;
  614. private:
  615. explicit ProcessProcFSTraits(Process& process)
  616. : m_process(process.make_weak_ptr())
  617. {
  618. }
  619. // NOTE: We need to weakly hold on to the process, because otherwise
  620. // we would be creating a reference cycle.
  621. WeakPtr<Process> m_process;
  622. };
  623. OpenFileDescriptions& fds() { return m_fds; }
  624. const OpenFileDescriptions& fds() const { return m_fds; }
  625. private:
  626. SpinlockProtected<Thread::ListInProcess>& thread_list() { return m_thread_list; }
  627. SpinlockProtected<Thread::ListInProcess> const& thread_list() const { return m_thread_list; }
  628. SpinlockProtected<Thread::ListInProcess> m_thread_list;
  629. OpenFileDescriptions m_fds;
  630. const bool m_is_kernel_process;
  631. Atomic<State> m_state { State::Running };
  632. bool m_profiling { false };
  633. Atomic<bool, AK::MemoryOrder::memory_order_relaxed> m_is_stopped { false };
  634. bool m_should_generate_coredump { false };
  635. RefPtr<Custody> m_executable;
  636. RefPtr<Custody> m_cwd;
  637. NonnullOwnPtrVector<KString> m_arguments;
  638. NonnullOwnPtrVector<KString> m_environment;
  639. RefPtr<TTY> m_tty;
  640. WeakPtr<Memory::Region> m_master_tls_region;
  641. size_t m_master_tls_size { 0 };
  642. size_t m_master_tls_alignment { 0 };
  643. Mutex m_big_lock { "Process" };
  644. Mutex m_ptrace_lock { "ptrace" };
  645. RefPtr<Timer> m_alarm_timer;
  646. VeilState m_veil_state { VeilState::None };
  647. UnveilNode m_unveiled_paths { "/", { .full_path = "/" } };
  648. OwnPtr<PerformanceEventBuffer> m_perf_event_buffer;
  649. FutexQueues m_futex_queues;
  650. Spinlock m_futex_lock;
  651. // This member is used in the implementation of ptrace's PT_TRACEME flag.
  652. // If it is set to true, the process will stop at the next execve syscall
  653. // and wait for a tracer to attach.
  654. bool m_wait_for_tracer_at_next_execve { false };
  655. Thread::WaitBlockerSet m_wait_blocker_set;
  656. struct CoredumpProperty {
  657. OwnPtr<KString> key;
  658. OwnPtr<KString> value;
  659. };
  660. Array<CoredumpProperty, 4> m_coredump_properties;
  661. NonnullRefPtrVector<Thread> m_threads_for_coredump;
  662. mutable RefPtr<ProcessProcFSTraits> m_procfs_traits;
  663. static_assert(sizeof(ProtectedValues) < (PAGE_SIZE));
  664. alignas(4096) ProtectedValues m_protected_values;
  665. u8 m_protected_values_padding[PAGE_SIZE - sizeof(ProtectedValues)];
  666. public:
  667. using List = IntrusiveListRelaxedConst<&Process::m_list_node>;
  668. static SpinlockProtected<Process::List>& all_instances();
  669. };
  670. // Note: Process object should be 2 pages of 4096 bytes each.
  671. // It's not expected that the Process object will expand further because the first
  672. // page is used for all unprotected values (which should be plenty of space for them).
  673. // The second page is being used exclusively for write-protected values.
  674. static_assert(AssertSize<Process, (PAGE_SIZE * 2)>());
  675. extern RecursiveSpinlock g_profiling_lock;
  676. template<IteratorFunction<Process&> Callback>
  677. inline void Process::for_each(Callback callback)
  678. {
  679. VERIFY_INTERRUPTS_DISABLED();
  680. Process::all_instances().with([&](const auto& list) {
  681. for (auto it = list.begin(); it != list.end();) {
  682. auto& process = *it;
  683. ++it;
  684. if (callback(process) == IterationDecision::Break)
  685. break;
  686. }
  687. });
  688. }
  689. template<IteratorFunction<Process&> Callback>
  690. inline void Process::for_each_child(Callback callback)
  691. {
  692. ProcessID my_pid = pid();
  693. Process::all_instances().with([&](const auto& list) {
  694. for (auto it = list.begin(); it != list.end();) {
  695. auto& process = *it;
  696. ++it;
  697. if (process.ppid() == my_pid || process.has_tracee_thread(pid())) {
  698. if (callback(process) == IterationDecision::Break)
  699. break;
  700. }
  701. }
  702. });
  703. }
  704. template<IteratorFunction<Thread&> Callback>
  705. inline IterationDecision Process::for_each_thread(Callback callback) const
  706. {
  707. return thread_list().with([&](auto& thread_list) -> IterationDecision {
  708. for (auto& thread : thread_list) {
  709. IterationDecision decision = callback(thread);
  710. if (decision != IterationDecision::Continue)
  711. return decision;
  712. }
  713. return IterationDecision::Continue;
  714. });
  715. }
  716. template<IteratorFunction<Thread&> Callback>
  717. inline IterationDecision Process::for_each_thread(Callback callback)
  718. {
  719. return thread_list().with([&](auto& thread_list) -> IterationDecision {
  720. for (auto& thread : thread_list) {
  721. IterationDecision decision = callback(thread);
  722. if (decision != IterationDecision::Continue)
  723. return decision;
  724. }
  725. return IterationDecision::Continue;
  726. });
  727. }
  728. template<IteratorFunction<Process&> Callback>
  729. inline void Process::for_each_in_pgrp(ProcessGroupID pgid, Callback callback)
  730. {
  731. Process::all_instances().with([&](const auto& list) {
  732. for (auto it = list.begin(); it != list.end();) {
  733. auto& process = *it;
  734. ++it;
  735. if (!process.is_dead() && process.pgid() == pgid) {
  736. if (callback(process) == IterationDecision::Break)
  737. break;
  738. }
  739. }
  740. });
  741. }
  742. template<VoidFunction<Process&> Callback>
  743. inline void Process::for_each(Callback callback)
  744. {
  745. return for_each([&](auto& item) {
  746. callback(item);
  747. return IterationDecision::Continue;
  748. });
  749. }
  750. template<VoidFunction<Process&> Callback>
  751. inline void Process::for_each_child(Callback callback)
  752. {
  753. return for_each_child([&](auto& item) {
  754. callback(item);
  755. return IterationDecision::Continue;
  756. });
  757. }
  758. template<VoidFunction<Thread&> Callback>
  759. inline IterationDecision Process::for_each_thread(Callback callback) const
  760. {
  761. thread_list().with([&](auto& thread_list) {
  762. for (auto& thread : thread_list)
  763. callback(thread);
  764. });
  765. return IterationDecision::Continue;
  766. }
  767. template<VoidFunction<Thread&> Callback>
  768. inline IterationDecision Process::for_each_thread(Callback callback)
  769. {
  770. thread_list().with([&](auto& thread_list) {
  771. for (auto& thread : thread_list)
  772. callback(thread);
  773. });
  774. return IterationDecision::Continue;
  775. }
  776. template<VoidFunction<Process&> Callback>
  777. inline void Process::for_each_in_pgrp(ProcessGroupID pgid, Callback callback)
  778. {
  779. return for_each_in_pgrp(pgid, [&](auto& item) {
  780. callback(item);
  781. return IterationDecision::Continue;
  782. });
  783. }
  784. inline bool InodeMetadata::may_read(const Process& process) const
  785. {
  786. return may_read(process.euid(), process.egid(), process.extra_gids());
  787. }
  788. inline bool InodeMetadata::may_write(const Process& process) const
  789. {
  790. return may_write(process.euid(), process.egid(), process.extra_gids());
  791. }
  792. inline bool InodeMetadata::may_execute(const Process& process) const
  793. {
  794. return may_execute(process.euid(), process.egid(), process.extra_gids());
  795. }
  796. inline ProcessID Thread::pid() const
  797. {
  798. return m_process->pid();
  799. }
  800. }
  801. #define VERIFY_PROCESS_BIG_LOCK_ACQUIRED(process) \
  802. VERIFY(process->big_lock().is_locked_by_current_thread());
  803. #define VERIFY_NO_PROCESS_BIG_LOCK(process) \
  804. VERIFY(!process->big_lock().is_locked_by_current_thread());
  805. inline static ErrorOr<NonnullOwnPtr<KString>> try_copy_kstring_from_user(const Kernel::Syscall::StringArgument& string)
  806. {
  807. Userspace<char const*> characters((FlatPtr)string.characters);
  808. return try_copy_kstring_from_user(characters, string.length);
  809. }
  810. template<>
  811. struct AK::Formatter<Kernel::Process> : AK::Formatter<FormatString> {
  812. ErrorOr<void> format(FormatBuilder& builder, Kernel::Process const& value)
  813. {
  814. return AK::Formatter<FormatString>::format(builder, "{}({})", value.name(), value.pid().value());
  815. }
  816. };