Process.cpp 117 KB

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  1. #include <AK/FileSystemPath.h>
  2. #include <AK/StdLibExtras.h>
  3. #include <AK/StringBuilder.h>
  4. #include <AK/Time.h>
  5. #include <AK/Types.h>
  6. #include <Kernel/Arch/i386/CPU.h>
  7. #include <Kernel/Arch/i386/PIT.h>
  8. #include <Kernel/Console.h>
  9. #include <Kernel/Devices/KeyboardDevice.h>
  10. #include <Kernel/Devices/NullDevice.h>
  11. #include <Kernel/Devices/PCSpeaker.h>
  12. #include <Kernel/Devices/RandomDevice.h>
  13. #include <Kernel/FileSystem/Custody.h>
  14. #include <Kernel/FileSystem/DevPtsFS.h>
  15. #include <Kernel/FileSystem/Ext2FileSystem.h>
  16. #include <Kernel/FileSystem/FIFO.h>
  17. #include <Kernel/FileSystem/FileDescription.h>
  18. #include <Kernel/FileSystem/InodeWatcher.h>
  19. #include <Kernel/FileSystem/ProcFS.h>
  20. #include <Kernel/FileSystem/SharedMemory.h>
  21. #include <Kernel/FileSystem/TmpFS.h>
  22. #include <Kernel/FileSystem/VirtualFileSystem.h>
  23. #include <Kernel/Heap/kmalloc.h>
  24. #include <Kernel/IO.h>
  25. #include <Kernel/KBufferBuilder.h>
  26. #include <Kernel/KSyms.h>
  27. #include <Kernel/KernelInfoPage.h>
  28. #include <Kernel/Module.h>
  29. #include <Kernel/Multiboot.h>
  30. #include <Kernel/Net/Socket.h>
  31. #include <Kernel/Process.h>
  32. #include <Kernel/ProcessTracer.h>
  33. #include <Kernel/Profiling.h>
  34. #include <Kernel/RTC.h>
  35. #include <Kernel/Scheduler.h>
  36. #include <Kernel/SharedBuffer.h>
  37. #include <Kernel/StdLib.h>
  38. #include <Kernel/Syscall.h>
  39. #include <Kernel/TTY/MasterPTY.h>
  40. #include <Kernel/Thread.h>
  41. #include <Kernel/VM/InodeVMObject.h>
  42. #include <Kernel/VM/PurgeableVMObject.h>
  43. #include <LibC/errno_numbers.h>
  44. #include <LibC/signal_numbers.h>
  45. #include <LibELF/ELFLoader.h>
  46. #include <LibELF/exec_elf.h>
  47. //#define DEBUG_POLL_SELECT
  48. //#define DEBUG_IO
  49. //#define TASK_DEBUG
  50. //#define FORK_DEBUG
  51. //#define SIGNAL_DEBUG
  52. //#define SHARED_BUFFER_DEBUG
  53. static void create_signal_trampolines();
  54. static void create_kernel_info_page();
  55. static pid_t next_pid;
  56. InlineLinkedList<Process>* g_processes;
  57. static String* s_hostname;
  58. static Lock* s_hostname_lock;
  59. static VirtualAddress s_info_page_address_for_userspace;
  60. static VirtualAddress s_info_page_address_for_kernel;
  61. VirtualAddress g_return_to_ring3_from_signal_trampoline;
  62. VirtualAddress g_return_to_ring0_from_signal_trampoline;
  63. HashMap<String, OwnPtr<Module>>* g_modules;
  64. pid_t Process::allocate_pid()
  65. {
  66. InterruptDisabler disabler;
  67. return next_pid++;
  68. }
  69. void Process::initialize()
  70. {
  71. g_modules = new HashMap<String, OwnPtr<Module>>;
  72. next_pid = 0;
  73. g_processes = new InlineLinkedList<Process>;
  74. s_hostname = new String("courage");
  75. s_hostname_lock = new Lock;
  76. create_signal_trampolines();
  77. create_kernel_info_page();
  78. }
  79. void Process::update_info_page_timestamp(const timeval& tv)
  80. {
  81. auto* info_page = (KernelInfoPage*)s_info_page_address_for_kernel.as_ptr();
  82. info_page->serial++;
  83. const_cast<timeval&>(info_page->now) = tv;
  84. }
  85. Vector<pid_t> Process::all_pids()
  86. {
  87. Vector<pid_t> pids;
  88. InterruptDisabler disabler;
  89. pids.ensure_capacity((int)g_processes->size_slow());
  90. for (auto& process : *g_processes)
  91. pids.append(process.pid());
  92. return pids;
  93. }
  94. Vector<Process*> Process::all_processes()
  95. {
  96. Vector<Process*> processes;
  97. InterruptDisabler disabler;
  98. processes.ensure_capacity((int)g_processes->size_slow());
  99. for (auto& process : *g_processes)
  100. processes.append(&process);
  101. return processes;
  102. }
  103. bool Process::in_group(gid_t gid) const
  104. {
  105. return m_gids.contains(gid);
  106. }
  107. Range Process::allocate_range(VirtualAddress vaddr, size_t size)
  108. {
  109. vaddr.mask(PAGE_MASK);
  110. size = PAGE_ROUND_UP(size);
  111. if (vaddr.is_null())
  112. return page_directory().range_allocator().allocate_anywhere(size);
  113. return page_directory().range_allocator().allocate_specific(vaddr, size);
  114. }
  115. static unsigned prot_to_region_access_flags(int prot)
  116. {
  117. unsigned access = 0;
  118. if (prot & PROT_READ)
  119. access |= Region::Access::Read;
  120. if (prot & PROT_WRITE)
  121. access |= Region::Access::Write;
  122. if (prot & PROT_EXEC)
  123. access |= Region::Access::Execute;
  124. return access;
  125. }
  126. Region& Process::allocate_split_region(const Region& source_region, const Range& range, size_t offset_in_vmobject)
  127. {
  128. m_regions.append(Region::create_user_accessible(range, source_region.vmobject(), offset_in_vmobject, source_region.name(), source_region.access()));
  129. return m_regions.last();
  130. }
  131. Region* Process::allocate_region(VirtualAddress vaddr, size_t size, const String& name, int prot, bool commit)
  132. {
  133. auto range = allocate_range(vaddr, size);
  134. if (!range.is_valid())
  135. return nullptr;
  136. m_regions.append(Region::create_user_accessible(range, name, prot_to_region_access_flags(prot)));
  137. m_regions.last().map(page_directory());
  138. if (commit)
  139. m_regions.last().commit();
  140. return &m_regions.last();
  141. }
  142. Region* Process::allocate_file_backed_region(VirtualAddress vaddr, size_t size, NonnullRefPtr<Inode> inode, const String& name, int prot)
  143. {
  144. auto range = allocate_range(vaddr, size);
  145. if (!range.is_valid())
  146. return nullptr;
  147. m_regions.append(Region::create_user_accessible(range, inode, name, prot_to_region_access_flags(prot)));
  148. m_regions.last().map(page_directory());
  149. return &m_regions.last();
  150. }
  151. Region* Process::allocate_region_with_vmobject(VirtualAddress vaddr, size_t size, NonnullRefPtr<VMObject> vmobject, size_t offset_in_vmobject, const String& name, int prot)
  152. {
  153. auto range = allocate_range(vaddr, size);
  154. if (!range.is_valid())
  155. return nullptr;
  156. offset_in_vmobject &= PAGE_MASK;
  157. m_regions.append(Region::create_user_accessible(range, move(vmobject), offset_in_vmobject, name, prot_to_region_access_flags(prot)));
  158. m_regions.last().map(page_directory());
  159. return &m_regions.last();
  160. }
  161. bool Process::deallocate_region(Region& region)
  162. {
  163. InterruptDisabler disabler;
  164. for (int i = 0; i < m_regions.size(); ++i) {
  165. if (&m_regions[i] == &region) {
  166. m_regions.remove(i);
  167. return true;
  168. }
  169. }
  170. return false;
  171. }
  172. Region* Process::region_from_range(const Range& range)
  173. {
  174. size_t size = PAGE_ROUND_UP(range.size());
  175. for (auto& region : m_regions) {
  176. if (region.vaddr() == range.base() && region.size() == size)
  177. return &region;
  178. }
  179. return nullptr;
  180. }
  181. Region* Process::region_containing(const Range& range)
  182. {
  183. for (auto& region : m_regions) {
  184. if (region.contains(range))
  185. return &region;
  186. }
  187. return nullptr;
  188. }
  189. int Process::sys$set_mmap_name(void* addr, size_t size, const char* name)
  190. {
  191. if (!validate_read_str(name))
  192. return -EFAULT;
  193. auto* region = region_from_range({ VirtualAddress((u32)addr), size });
  194. if (!region)
  195. return -EINVAL;
  196. if (!region->is_mmap())
  197. return -EPERM;
  198. region->set_name(String(name));
  199. return 0;
  200. }
  201. static bool validate_mmap_prot(int prot, bool map_stack)
  202. {
  203. bool readable = prot & PROT_READ;
  204. bool writable = prot & PROT_WRITE;
  205. bool executable = prot & PROT_EXEC;
  206. if (writable && executable)
  207. return false;
  208. if (map_stack) {
  209. if (executable)
  210. return false;
  211. if (!readable || !writable)
  212. return false;
  213. }
  214. return true;
  215. }
  216. void* Process::sys$mmap(const Syscall::SC_mmap_params* params)
  217. {
  218. if (!validate_read(params, sizeof(Syscall::SC_mmap_params)))
  219. return (void*)-EFAULT;
  220. auto& [addr, size, prot, flags, fd, offset, name] = *params;
  221. if (name && !validate_read_str(name))
  222. return (void*)-EFAULT;
  223. if (size == 0)
  224. return (void*)-EINVAL;
  225. if ((u32)addr & ~PAGE_MASK)
  226. return (void*)-EINVAL;
  227. bool map_shared = flags & MAP_SHARED;
  228. bool map_anonymous = flags & MAP_ANONYMOUS;
  229. bool map_purgeable = flags & MAP_PURGEABLE;
  230. bool map_private = flags & MAP_PRIVATE;
  231. bool map_stack = flags & MAP_STACK;
  232. bool map_fixed = flags & MAP_FIXED;
  233. if (map_shared && map_private)
  234. return (void*)-EINVAL;
  235. if (!map_shared && !map_private)
  236. return (void*)-EINVAL;
  237. if (!validate_mmap_prot(prot, map_stack))
  238. return (void*)-EINVAL;
  239. if (map_stack && (!map_private || !map_anonymous))
  240. return (void*)-EINVAL;
  241. Region* region = nullptr;
  242. if (map_purgeable) {
  243. auto vmobject = PurgeableVMObject::create_with_size(size);
  244. region = allocate_region_with_vmobject(VirtualAddress((u32)addr), size, vmobject, 0, name ? name : "mmap (purgeable)", prot);
  245. if (!region && (!map_fixed && addr != 0))
  246. region = allocate_region_with_vmobject({}, size, vmobject, 0, name ? name : "mmap (purgeable)", prot);
  247. } else if (map_anonymous) {
  248. region = allocate_region(VirtualAddress((u32)addr), size, name ? name : "mmap", prot, false);
  249. if (!region && (!map_fixed && addr != 0))
  250. region = allocate_region({}, size, name ? name : "mmap", prot, false);
  251. } else {
  252. if (offset < 0)
  253. return (void*)-EINVAL;
  254. if (static_cast<size_t>(offset) & ~PAGE_MASK)
  255. return (void*)-EINVAL;
  256. auto* description = file_description(fd);
  257. if (!description)
  258. return (void*)-EBADF;
  259. auto region_or_error = description->mmap(*this, VirtualAddress((u32)addr), static_cast<size_t>(offset), size, prot);
  260. if (region_or_error.is_error()) {
  261. // Fail if MAP_FIXED or address is 0, retry otherwise
  262. if (map_fixed || addr == 0)
  263. return (void*)(int)region_or_error.error();
  264. region_or_error = description->mmap(*this, {}, static_cast<size_t>(offset), size, prot);
  265. }
  266. if (region_or_error.is_error())
  267. return (void*)(int)region_or_error.error();
  268. region = region_or_error.value();
  269. }
  270. if (!region)
  271. return (void*)-ENOMEM;
  272. region->set_mmap(true);
  273. if (map_shared)
  274. region->set_shared(true);
  275. if (map_stack)
  276. region->set_stack(true);
  277. if (name)
  278. region->set_name(name);
  279. return region->vaddr().as_ptr();
  280. }
  281. int Process::sys$munmap(void* addr, size_t size)
  282. {
  283. Range range_to_unmap { VirtualAddress((u32)addr), size };
  284. if (auto* whole_region = region_from_range(range_to_unmap)) {
  285. if (!whole_region->is_mmap())
  286. return -EPERM;
  287. bool success = deallocate_region(*whole_region);
  288. ASSERT(success);
  289. return 0;
  290. }
  291. if (auto* old_region = region_containing(range_to_unmap)) {
  292. if (!old_region->is_mmap())
  293. return -EPERM;
  294. Range old_region_range = old_region->range();
  295. auto remaining_ranges_after_unmap = old_region_range.carve(range_to_unmap);
  296. ASSERT(!remaining_ranges_after_unmap.is_empty());
  297. auto make_replacement_region = [&](const Range& new_range) -> Region& {
  298. ASSERT(new_range.base() >= old_region_range.base());
  299. ASSERT(new_range.end() <= old_region_range.end());
  300. size_t new_range_offset_in_vmobject = old_region->offset_in_vmobject() + (new_range.base().get() - old_region_range.base().get());
  301. return allocate_split_region(*old_region, new_range, new_range_offset_in_vmobject);
  302. };
  303. Vector<Region*, 2> new_regions;
  304. for (auto& new_range : remaining_ranges_after_unmap) {
  305. new_regions.unchecked_append(&make_replacement_region(new_range));
  306. }
  307. // We manually unmap the old region here, specifying that we *don't* want the VM deallocated.
  308. old_region->unmap(Region::ShouldDeallocateVirtualMemoryRange::No);
  309. deallocate_region(*old_region);
  310. // Instead we give back the unwanted VM manually.
  311. page_directory().range_allocator().deallocate(range_to_unmap);
  312. // And finally we map the new region(s).
  313. for (auto* new_region : new_regions) {
  314. new_region->map(page_directory());
  315. }
  316. return 0;
  317. }
  318. // FIXME: We should also support munmap() across multiple regions. (#175)
  319. return -EINVAL;
  320. }
  321. int Process::sys$mprotect(void* addr, size_t size, int prot)
  322. {
  323. auto* region = region_from_range({ VirtualAddress((u32)addr), size });
  324. if (!region)
  325. return -EINVAL;
  326. if (!region->is_mmap())
  327. return -EPERM;
  328. if (!validate_mmap_prot(prot, region->is_stack()))
  329. return -EINVAL;
  330. region->set_readable(prot & PROT_READ);
  331. region->set_writable(prot & PROT_WRITE);
  332. region->set_executable(prot & PROT_EXEC);
  333. region->remap();
  334. return 0;
  335. }
  336. int Process::sys$madvise(void* address, size_t size, int advice)
  337. {
  338. auto* region = region_from_range({ VirtualAddress((u32)address), size });
  339. if (!region)
  340. return -EINVAL;
  341. if (!region->is_mmap())
  342. return -EPERM;
  343. if ((advice & MADV_SET_VOLATILE) && (advice & MADV_SET_NONVOLATILE))
  344. return -EINVAL;
  345. if (advice & MADV_SET_VOLATILE) {
  346. if (!region->vmobject().is_purgeable())
  347. return -EPERM;
  348. auto& vmobject = static_cast<PurgeableVMObject&>(region->vmobject());
  349. vmobject.set_volatile(true);
  350. return 0;
  351. }
  352. if (advice & MADV_SET_NONVOLATILE) {
  353. if (!region->vmobject().is_purgeable())
  354. return -EPERM;
  355. auto& vmobject = static_cast<PurgeableVMObject&>(region->vmobject());
  356. if (!vmobject.is_volatile())
  357. return 0;
  358. vmobject.set_volatile(false);
  359. bool was_purged = vmobject.was_purged();
  360. vmobject.set_was_purged(false);
  361. return was_purged ? 1 : 0;
  362. }
  363. if (advice & MADV_GET_VOLATILE) {
  364. if (!region->vmobject().is_purgeable())
  365. return -EPERM;
  366. auto& vmobject = static_cast<PurgeableVMObject&>(region->vmobject());
  367. return vmobject.is_volatile() ? 0 : 1;
  368. }
  369. return -EINVAL;
  370. }
  371. int Process::sys$purge(int mode)
  372. {
  373. int purged_page_count = 0;
  374. if (mode & PURGE_ALL_VOLATILE) {
  375. NonnullRefPtrVector<PurgeableVMObject> vmobjects;
  376. {
  377. InterruptDisabler disabler;
  378. MM.for_each_vmobject([&](auto& vmobject) {
  379. if (vmobject.is_purgeable())
  380. vmobjects.append(static_cast<PurgeableVMObject&>(vmobject));
  381. return IterationDecision::Continue;
  382. });
  383. }
  384. for (auto& vmobject : vmobjects) {
  385. purged_page_count += vmobject.purge();
  386. }
  387. }
  388. if (mode & PURGE_ALL_CLEAN_INODE) {
  389. NonnullRefPtrVector<InodeVMObject> vmobjects;
  390. {
  391. InterruptDisabler disabler;
  392. MM.for_each_vmobject([&](auto& vmobject) {
  393. if (vmobject.is_inode())
  394. vmobjects.append(static_cast<InodeVMObject&>(vmobject));
  395. return IterationDecision::Continue;
  396. });
  397. }
  398. for (auto& vmobject : vmobjects) {
  399. purged_page_count += vmobject.release_all_clean_pages();
  400. }
  401. }
  402. return purged_page_count;
  403. }
  404. int Process::sys$gethostname(char* buffer, ssize_t size)
  405. {
  406. if (size < 0)
  407. return -EINVAL;
  408. if (!validate_write(buffer, size))
  409. return -EFAULT;
  410. LOCKER(*s_hostname_lock);
  411. if ((size_t)size < (s_hostname->length() + 1))
  412. return -ENAMETOOLONG;
  413. strcpy(buffer, s_hostname->characters());
  414. return 0;
  415. }
  416. pid_t Process::sys$fork(RegisterDump& regs)
  417. {
  418. Thread* child_first_thread = nullptr;
  419. auto* child = new Process(child_first_thread, m_name, m_uid, m_gid, m_pid, m_ring, m_cwd, m_executable, m_tty, this);
  420. #ifdef FORK_DEBUG
  421. dbgprintf("fork: child=%p\n", child);
  422. #endif
  423. for (auto& region : m_regions) {
  424. #ifdef FORK_DEBUG
  425. dbg() << "fork: cloning Region{" << &region << "} '" << region.name() << "' @ " << region.vaddr();
  426. #endif
  427. child->m_regions.append(region.clone());
  428. child->m_regions.last().map(child->page_directory());
  429. if (&region == m_master_tls_region)
  430. child->m_master_tls_region = &child->m_regions.last();
  431. }
  432. for (auto gid : m_gids)
  433. child->m_gids.set(gid);
  434. auto& child_tss = child_first_thread->m_tss;
  435. child_tss.eax = 0; // fork() returns 0 in the child :^)
  436. child_tss.ebx = regs.ebx;
  437. child_tss.ecx = regs.ecx;
  438. child_tss.edx = regs.edx;
  439. child_tss.ebp = regs.ebp;
  440. child_tss.esp = regs.esp_if_crossRing;
  441. child_tss.esi = regs.esi;
  442. child_tss.edi = regs.edi;
  443. child_tss.eflags = regs.eflags;
  444. child_tss.eip = regs.eip;
  445. child_tss.cs = regs.cs;
  446. child_tss.ds = regs.ds;
  447. child_tss.es = regs.es;
  448. child_tss.fs = regs.fs;
  449. child_tss.gs = regs.gs;
  450. child_tss.ss = regs.ss_if_crossRing;
  451. #ifdef FORK_DEBUG
  452. dbgprintf("fork: child will begin executing at %w:%x with stack %w:%x, kstack %w:%x\n", child_tss.cs, child_tss.eip, child_tss.ss, child_tss.esp, child_tss.ss0, child_tss.esp0);
  453. #endif
  454. {
  455. InterruptDisabler disabler;
  456. g_processes->prepend(child);
  457. }
  458. #ifdef TASK_DEBUG
  459. kprintf("Process %u (%s) forked from %u @ %p\n", child->pid(), child->name().characters(), m_pid, child_tss.eip);
  460. #endif
  461. child_first_thread->set_state(Thread::State::Skip1SchedulerPass);
  462. return child->pid();
  463. }
  464. int Process::do_exec(String path, Vector<String> arguments, Vector<String> environment)
  465. {
  466. ASSERT(is_ring3());
  467. dbgprintf("%s(%d) do_exec(%s): thread_count() = %d\n", m_name.characters(), m_pid, path.characters(), thread_count());
  468. // FIXME(Thread): Kill any threads the moment we commit to the exec().
  469. if (thread_count() != 1) {
  470. dbgprintf("Gonna die because I have many threads! These are the threads:\n");
  471. for_each_thread([](Thread& thread) {
  472. dbgprintf("Thread{%p}: TID=%d, PID=%d\n", &thread, thread.tid(), thread.pid());
  473. return IterationDecision::Continue;
  474. });
  475. ASSERT(thread_count() == 1);
  476. ASSERT_NOT_REACHED();
  477. }
  478. size_t total_blob_size = 0;
  479. for (auto& a : arguments)
  480. total_blob_size += a.length() + 1;
  481. for (auto& e : environment)
  482. total_blob_size += e.length() + 1;
  483. size_t total_meta_size = sizeof(char*) * (arguments.size() + 1) + sizeof(char*) * (environment.size() + 1);
  484. // FIXME: How much stack space does process startup need?
  485. if ((total_blob_size + total_meta_size) >= Thread::default_userspace_stack_size)
  486. return -E2BIG;
  487. auto parts = path.split('/');
  488. if (parts.is_empty())
  489. return -ENOENT;
  490. auto result = VFS::the().open(path, 0, 0, current_directory());
  491. if (result.is_error())
  492. return result.error();
  493. auto description = result.value();
  494. auto metadata = description->metadata();
  495. if (!metadata.may_execute(m_euid, m_gids))
  496. return -EACCES;
  497. if (!metadata.size)
  498. return -ENOTIMPL;
  499. u32 entry_eip = 0;
  500. // FIXME: Is there a race here?
  501. auto old_page_directory = move(m_page_directory);
  502. m_page_directory = PageDirectory::create_for_userspace(*this);
  503. #ifdef MM_DEBUG
  504. dbgprintf("Process %u exec: PD=%x created\n", pid(), m_page_directory.ptr());
  505. #endif
  506. ProcessPagingScope paging_scope(*this);
  507. ASSERT(description->inode());
  508. auto vmobject = InodeVMObject::create_with_inode(*description->inode());
  509. auto* region = allocate_region_with_vmobject(VirtualAddress(), metadata.size, vmobject, 0, description->absolute_path(), PROT_READ);
  510. ASSERT(region);
  511. // NOTE: We yank this out of 'm_regions' since we're about to manipulate the vector
  512. // and we don't want it getting lost.
  513. auto executable_region = m_regions.take_last();
  514. Region* master_tls_region { nullptr };
  515. size_t master_tls_size = 0;
  516. size_t master_tls_alignment = 0;
  517. OwnPtr<ELFLoader> loader;
  518. {
  519. // Okay, here comes the sleight of hand, pay close attention..
  520. auto old_regions = move(m_regions);
  521. m_regions.append(move(executable_region));
  522. loader = make<ELFLoader>(region->vaddr().as_ptr());
  523. loader->map_section_hook = [&](VirtualAddress vaddr, size_t size, size_t alignment, size_t offset_in_image, bool is_readable, bool is_writable, bool is_executable, const String& name) -> u8* {
  524. ASSERT(size);
  525. ASSERT(alignment == PAGE_SIZE);
  526. int prot = 0;
  527. if (is_readable)
  528. prot |= PROT_READ;
  529. if (is_writable)
  530. prot |= PROT_WRITE;
  531. if (is_executable)
  532. prot |= PROT_EXEC;
  533. if (!allocate_region_with_vmobject(vaddr, size, vmobject, offset_in_image, String(name), prot))
  534. return nullptr;
  535. return vaddr.as_ptr();
  536. };
  537. loader->alloc_section_hook = [&](VirtualAddress vaddr, size_t size, size_t alignment, bool is_readable, bool is_writable, const String& name) -> u8* {
  538. ASSERT(size);
  539. ASSERT(alignment == PAGE_SIZE);
  540. int prot = 0;
  541. if (is_readable)
  542. prot |= PROT_READ;
  543. if (is_writable)
  544. prot |= PROT_WRITE;
  545. if (!allocate_region(vaddr, size, String(name), prot))
  546. return nullptr;
  547. return vaddr.as_ptr();
  548. };
  549. loader->tls_section_hook = [&](size_t size, size_t alignment) {
  550. ASSERT(size);
  551. master_tls_region = allocate_region({}, size, String(), PROT_READ | PROT_WRITE);
  552. master_tls_size = size;
  553. master_tls_alignment = alignment;
  554. return master_tls_region->vaddr().as_ptr();
  555. };
  556. bool success = loader->load();
  557. if (!success || !loader->entry().get()) {
  558. m_page_directory = move(old_page_directory);
  559. // FIXME: RAII this somehow instead.
  560. ASSERT(&current->process() == this);
  561. MM.enter_process_paging_scope(*this);
  562. executable_region = m_regions.take_first();
  563. m_regions = move(old_regions);
  564. kprintf("do_exec: Failure loading %s\n", path.characters());
  565. return -ENOEXEC;
  566. }
  567. // NOTE: At this point, we've committed to the new executable.
  568. entry_eip = loader->entry().get();
  569. }
  570. region->set_user_accessible(false);
  571. region->remap();
  572. m_elf_loader = move(loader);
  573. m_executable = description->custody();
  574. // Copy of the master TLS region that we will clone for new threads
  575. m_master_tls_region = master_tls_region;
  576. if (metadata.is_setuid())
  577. m_euid = metadata.uid;
  578. if (metadata.is_setgid())
  579. m_egid = metadata.gid;
  580. current->set_default_signal_dispositions();
  581. current->m_signal_mask = 0;
  582. current->m_pending_signals = 0;
  583. for (int i = 0; i < m_fds.size(); ++i) {
  584. auto& daf = m_fds[i];
  585. if (daf.description && daf.flags & FD_CLOEXEC) {
  586. daf.description->close();
  587. daf = {};
  588. }
  589. }
  590. // FIXME: Should we just make a new Thread here instead?
  591. Thread* new_main_thread = nullptr;
  592. if (&current->process() == this) {
  593. new_main_thread = current;
  594. } else {
  595. for_each_thread([&](auto& thread) {
  596. new_main_thread = &thread;
  597. return IterationDecision::Break;
  598. });
  599. }
  600. ASSERT(new_main_thread);
  601. // NOTE: We create the new stack before disabling interrupts since it will zero-fault
  602. // and we don't want to deal with faults after this point.
  603. u32 new_userspace_esp = new_main_thread->make_userspace_stack_for_main_thread(move(arguments), move(environment));
  604. // We cli() manually here because we don't want to get interrupted between do_exec() and Schedule::yield().
  605. // The reason is that the task redirection we've set up above will be clobbered by the timer IRQ.
  606. // If we used an InterruptDisabler that sti()'d on exit, we might timer tick'd too soon in exec().
  607. if (&current->process() == this)
  608. cli();
  609. // NOTE: Be careful to not trigger any page faults below!
  610. Scheduler::prepare_to_modify_tss(*new_main_thread);
  611. m_name = parts.take_last();
  612. new_main_thread->set_name(m_name);
  613. auto& tss = new_main_thread->m_tss;
  614. u32 old_esp0 = tss.esp0;
  615. m_master_tls_size = master_tls_size;
  616. m_master_tls_alignment = master_tls_alignment;
  617. new_main_thread->make_thread_specific_region({});
  618. memset(&tss, 0, sizeof(TSS32));
  619. tss.iomapbase = sizeof(TSS32);
  620. tss.eflags = 0x0202;
  621. tss.eip = entry_eip;
  622. tss.cs = 0x1b;
  623. tss.ds = 0x23;
  624. tss.es = 0x23;
  625. tss.fs = 0x23;
  626. tss.gs = thread_specific_selector() | 3;
  627. tss.ss = 0x23;
  628. tss.cr3 = page_directory().cr3();
  629. tss.esp = new_userspace_esp;
  630. tss.ss0 = 0x10;
  631. tss.esp0 = old_esp0;
  632. tss.ss2 = m_pid;
  633. #ifdef TASK_DEBUG
  634. kprintf("Process %u (%s) exec'd %s @ %p\n", pid(), name().characters(), path.characters(), tss.eip);
  635. #endif
  636. new_main_thread->set_state(Thread::State::Skip1SchedulerPass);
  637. big_lock().unlock_if_locked();
  638. return 0;
  639. }
  640. KResultOr<Vector<String>> Process::find_shebang_interpreter_for_executable(const String& executable_path)
  641. {
  642. // FIXME: It's a bit sad that we'll open the executable twice (in case there's no shebang)
  643. // Maybe we can find a way to plumb this opened FileDescription to the rest of the
  644. // exec implementation..
  645. auto result = VFS::the().open(executable_path, 0, 0, current_directory());
  646. if (result.is_error())
  647. return result.error();
  648. auto description = result.value();
  649. auto metadata = description->metadata();
  650. if (!metadata.may_execute(m_euid, m_gids))
  651. return KResult(-EACCES);
  652. if (metadata.size < 3)
  653. return KResult(-ENOEXEC);
  654. char first_page[PAGE_SIZE];
  655. int nread = description->read((u8*)&first_page, sizeof(first_page));
  656. int word_start = 2;
  657. int word_length = 0;
  658. if (nread > 2 && first_page[0] == '#' && first_page[1] == '!') {
  659. Vector<String> interpreter_words;
  660. for (int i = 2; i < nread; ++i) {
  661. if (first_page[i] == '\n') {
  662. break;
  663. }
  664. if (first_page[i] != ' ') {
  665. ++word_length;
  666. }
  667. if (first_page[i] == ' ') {
  668. if (word_length > 0) {
  669. interpreter_words.append(String(&first_page[word_start], word_length));
  670. }
  671. word_length = 0;
  672. word_start = i + 1;
  673. }
  674. }
  675. if (word_length > 0)
  676. interpreter_words.append(String(&first_page[word_start], word_length));
  677. if (!interpreter_words.is_empty())
  678. return interpreter_words;
  679. }
  680. return KResult(-ENOEXEC);
  681. }
  682. int Process::exec(String path, Vector<String> arguments, Vector<String> environment)
  683. {
  684. auto result = find_shebang_interpreter_for_executable(path);
  685. if (!result.is_error()) {
  686. Vector<String> new_arguments(result.value());
  687. new_arguments.append(path);
  688. arguments.remove(0);
  689. new_arguments.append(move(arguments));
  690. return exec(result.value().first(), move(new_arguments), move(environment));
  691. }
  692. // The bulk of exec() is done by do_exec(), which ensures that all locals
  693. // are cleaned up by the time we yield-teleport below.
  694. int rc = do_exec(move(path), move(arguments), move(environment));
  695. if (rc < 0)
  696. return rc;
  697. if (&current->process() == this) {
  698. Scheduler::yield();
  699. ASSERT_NOT_REACHED();
  700. }
  701. return 0;
  702. }
  703. int Process::sys$execve(const char* filename, const char** argv, const char** envp)
  704. {
  705. // NOTE: Be extremely careful with allocating any kernel memory in exec().
  706. // On success, the kernel stack will be lost.
  707. if (!validate_read_str(filename))
  708. return -EFAULT;
  709. if (!*filename)
  710. return -ENOENT;
  711. if (argv) {
  712. if (!validate_read_typed(argv))
  713. return -EFAULT;
  714. for (size_t i = 0; argv[i]; ++i) {
  715. if (!validate_read_str(argv[i]))
  716. return -EFAULT;
  717. }
  718. }
  719. if (envp) {
  720. if (!validate_read_typed(envp))
  721. return -EFAULT;
  722. for (size_t i = 0; envp[i]; ++i) {
  723. if (!validate_read_str(envp[i]))
  724. return -EFAULT;
  725. }
  726. }
  727. String path(filename);
  728. Vector<String> arguments;
  729. Vector<String> environment;
  730. {
  731. auto parts = path.split('/');
  732. if (argv) {
  733. for (size_t i = 0; argv[i]; ++i) {
  734. arguments.append(argv[i]);
  735. }
  736. } else {
  737. arguments.append(parts.last());
  738. }
  739. if (envp) {
  740. for (size_t i = 0; envp[i]; ++i)
  741. environment.append(envp[i]);
  742. }
  743. }
  744. int rc = exec(move(path), move(arguments), move(environment));
  745. ASSERT(rc < 0); // We should never continue after a successful exec!
  746. return rc;
  747. }
  748. Process* Process::create_user_process(Thread*& first_thread, const String& path, uid_t uid, gid_t gid, pid_t parent_pid, int& error, Vector<String>&& arguments, Vector<String>&& environment, TTY* tty)
  749. {
  750. // FIXME: Don't split() the path twice (sys$spawn also does it...)
  751. auto parts = path.split('/');
  752. if (arguments.is_empty()) {
  753. arguments.append(parts.last());
  754. }
  755. RefPtr<Custody> cwd;
  756. {
  757. InterruptDisabler disabler;
  758. if (auto* parent = Process::from_pid(parent_pid))
  759. cwd = parent->m_cwd;
  760. }
  761. if (!cwd)
  762. cwd = VFS::the().root_custody();
  763. auto* process = new Process(first_thread, parts.take_last(), uid, gid, parent_pid, Ring3, move(cwd), nullptr, tty);
  764. error = process->exec(path, move(arguments), move(environment));
  765. if (error != 0) {
  766. delete process;
  767. return nullptr;
  768. }
  769. {
  770. InterruptDisabler disabler;
  771. g_processes->prepend(process);
  772. }
  773. #ifdef TASK_DEBUG
  774. kprintf("Process %u (%s) spawned @ %p\n", process->pid(), process->name().characters(), first_thread->tss().eip);
  775. #endif
  776. error = 0;
  777. return process;
  778. }
  779. Process* Process::create_kernel_process(Thread*& first_thread, String&& name, void (*e)())
  780. {
  781. auto* process = new Process(first_thread, move(name), (uid_t)0, (gid_t)0, (pid_t)0, Ring0);
  782. first_thread->tss().eip = (u32)e;
  783. if (process->pid() != 0) {
  784. InterruptDisabler disabler;
  785. g_processes->prepend(process);
  786. #ifdef TASK_DEBUG
  787. kprintf("Kernel process %u (%s) spawned @ %p\n", process->pid(), process->name().characters(), first_thread->tss().eip);
  788. #endif
  789. }
  790. first_thread->set_state(Thread::State::Runnable);
  791. return process;
  792. }
  793. Process::Process(Thread*& first_thread, const String& name, uid_t uid, gid_t gid, pid_t ppid, RingLevel ring, RefPtr<Custody> cwd, RefPtr<Custody> executable, TTY* tty, Process* fork_parent)
  794. : m_name(move(name))
  795. , m_pid(allocate_pid())
  796. , m_uid(uid)
  797. , m_gid(gid)
  798. , m_euid(uid)
  799. , m_egid(gid)
  800. , m_ring(ring)
  801. , m_executable(move(executable))
  802. , m_cwd(move(cwd))
  803. , m_tty(tty)
  804. , m_ppid(ppid)
  805. {
  806. dbgprintf("Process: New process PID=%u with name=%s\n", m_pid, m_name.characters());
  807. m_page_directory = PageDirectory::create_for_userspace(*this, fork_parent ? &fork_parent->page_directory().range_allocator() : nullptr);
  808. #ifdef MM_DEBUG
  809. dbgprintf("Process %u ctor: PD=%x created\n", pid(), m_page_directory.ptr());
  810. #endif
  811. // NOTE: fork() doesn't clone all threads; the thread that called fork() becomes the main thread in the new process.
  812. if (fork_parent)
  813. first_thread = current->clone(*this);
  814. else
  815. first_thread = new Thread(*this);
  816. m_gids.set(m_gid);
  817. if (fork_parent) {
  818. m_sid = fork_parent->m_sid;
  819. m_pgid = fork_parent->m_pgid;
  820. } else {
  821. // FIXME: Use a ProcessHandle? Presumably we're executing *IN* the parent right now though..
  822. InterruptDisabler disabler;
  823. if (auto* parent = Process::from_pid(m_ppid)) {
  824. m_sid = parent->m_sid;
  825. m_pgid = parent->m_pgid;
  826. }
  827. }
  828. if (fork_parent) {
  829. m_fds.resize(fork_parent->m_fds.size());
  830. for (int i = 0; i < fork_parent->m_fds.size(); ++i) {
  831. if (!fork_parent->m_fds[i].description)
  832. continue;
  833. #ifdef FORK_DEBUG
  834. dbgprintf("fork: cloning fd %u... (%p) istty? %u\n", i, fork_parent->m_fds[i].description.ptr(), fork_parent->m_fds[i].description->is_tty());
  835. #endif
  836. m_fds[i] = fork_parent->m_fds[i];
  837. }
  838. } else {
  839. m_fds.resize(m_max_open_file_descriptors);
  840. auto& device_to_use_as_tty = tty ? (CharacterDevice&)*tty : NullDevice::the();
  841. m_fds[0].set(*device_to_use_as_tty.open(O_RDONLY).value());
  842. m_fds[1].set(*device_to_use_as_tty.open(O_WRONLY).value());
  843. m_fds[2].set(*device_to_use_as_tty.open(O_WRONLY).value());
  844. }
  845. if (fork_parent) {
  846. m_sid = fork_parent->m_sid;
  847. m_pgid = fork_parent->m_pgid;
  848. m_umask = fork_parent->m_umask;
  849. }
  850. }
  851. Process::~Process()
  852. {
  853. dbgprintf("~Process{%p} name=%s pid=%d, m_fds=%d, m_thread_count=%u\n", this, m_name.characters(), pid(), m_fds.size(), m_thread_count);
  854. ASSERT(thread_count() == 0);
  855. }
  856. void Process::dump_regions()
  857. {
  858. kprintf("Process %s(%u) regions:\n", name().characters(), pid());
  859. kprintf("BEGIN END SIZE ACCESS NAME\n");
  860. for (auto& region : m_regions) {
  861. kprintf("%08x -- %08x %08x %c%c%c%c%c%c %s\n",
  862. region.vaddr().get(),
  863. region.vaddr().offset(region.size() - 1).get(),
  864. region.size(),
  865. region.is_readable() ? 'R' : ' ',
  866. region.is_writable() ? 'W' : ' ',
  867. region.is_executable() ? 'X' : ' ',
  868. region.is_shared() ? 'S' : ' ',
  869. region.is_stack() ? 'T' : ' ',
  870. region.vmobject().is_purgeable() ? 'P' : ' ',
  871. region.name().characters());
  872. }
  873. }
  874. void Process::sys$exit(int status)
  875. {
  876. cli();
  877. #ifdef TASK_DEBUG
  878. kprintf("sys$exit: %s(%u) exit with status %d\n", name().characters(), pid(), status);
  879. #endif
  880. dump_backtrace();
  881. m_termination_status = status;
  882. m_termination_signal = 0;
  883. die();
  884. current->die_if_needed();
  885. ASSERT_NOT_REACHED();
  886. }
  887. void signal_trampoline_dummy(void)
  888. {
  889. // The trampoline preserves the current eax, pushes the signal code and
  890. // then calls the signal handler. We do this because, when interrupting a
  891. // blocking syscall, that syscall may return some special error code in eax;
  892. // This error code would likely be overwritten by the signal handler, so it's
  893. // neccessary to preserve it here.
  894. asm(
  895. ".intel_syntax noprefix\n"
  896. "asm_signal_trampoline:\n"
  897. "push ebp\n"
  898. "mov ebp, esp\n"
  899. "push eax\n" // we have to store eax 'cause it might be the return value from a syscall
  900. "sub esp, 4\n" // align the stack to 16 bytes
  901. "mov eax, [ebp+12]\n" // push the signal code
  902. "push eax\n"
  903. "call [ebp+8]\n" // call the signal handler
  904. "add esp, 8\n"
  905. "mov eax, %P0\n"
  906. "int 0x82\n" // sigreturn syscall
  907. "asm_signal_trampoline_end:\n"
  908. ".att_syntax" ::"i"(Syscall::SC_sigreturn));
  909. }
  910. extern "C" void asm_signal_trampoline(void);
  911. extern "C" void asm_signal_trampoline_end(void);
  912. void create_signal_trampolines()
  913. {
  914. InterruptDisabler disabler;
  915. // NOTE: We leak this region.
  916. auto* trampoline_region = MM.allocate_user_accessible_kernel_region(PAGE_SIZE, "Signal trampolines", Region::Access::Read | Region::Access::Write | Region::Access::Execute).leak_ptr();
  917. g_return_to_ring3_from_signal_trampoline = trampoline_region->vaddr();
  918. u8* trampoline = (u8*)asm_signal_trampoline;
  919. u8* trampoline_end = (u8*)asm_signal_trampoline_end;
  920. size_t trampoline_size = trampoline_end - trampoline;
  921. u8* code_ptr = (u8*)trampoline_region->vaddr().as_ptr();
  922. memcpy(code_ptr, trampoline, trampoline_size);
  923. trampoline_region->set_writable(false);
  924. trampoline_region->remap();
  925. }
  926. void create_kernel_info_page()
  927. {
  928. auto* info_page_region_for_userspace = MM.allocate_user_accessible_kernel_region(PAGE_SIZE, "Kernel info page", Region::Access::Read).leak_ptr();
  929. auto* info_page_region_for_kernel = MM.allocate_kernel_region_with_vmobject(info_page_region_for_userspace->vmobject(), PAGE_SIZE, "Kernel info page", Region::Access::Read | Region::Access::Write).leak_ptr();
  930. s_info_page_address_for_userspace = info_page_region_for_userspace->vaddr();
  931. s_info_page_address_for_kernel = info_page_region_for_kernel->vaddr();
  932. memset(s_info_page_address_for_kernel.as_ptr(), 0, PAGE_SIZE);
  933. }
  934. int Process::sys$restore_signal_mask(u32 mask)
  935. {
  936. current->m_signal_mask = mask;
  937. return 0;
  938. }
  939. int Process::sys$sigreturn(RegisterDump& registers)
  940. {
  941. //Here, we restore the state pushed by dispatch signal and asm_signal_trampoline.
  942. u32* stack_ptr = (u32*)registers.esp_if_crossRing;
  943. u32 smuggled_eax = *stack_ptr;
  944. //pop the stored eax, ebp, return address, handler and signal code
  945. stack_ptr += 5;
  946. current->m_signal_mask = *stack_ptr;
  947. stack_ptr++;
  948. //pop edi, esi, ebp, esp, ebx, edx, ecx and eax
  949. memcpy(&registers.edi, stack_ptr, 8 * sizeof(u32));
  950. stack_ptr += 8;
  951. registers.eip = *stack_ptr;
  952. stack_ptr++;
  953. registers.eflags = *stack_ptr;
  954. stack_ptr++;
  955. registers.esp_if_crossRing = registers.esp;
  956. return smuggled_eax;
  957. }
  958. void Process::crash(int signal, u32 eip)
  959. {
  960. ASSERT_INTERRUPTS_DISABLED();
  961. ASSERT(!is_dead());
  962. ASSERT(&current->process() == this);
  963. if (m_elf_loader && ksyms_ready)
  964. dbgprintf("\033[31;1m%p %s\033[0m\n", eip, m_elf_loader->symbolicate(eip).characters());
  965. dump_backtrace();
  966. m_termination_signal = signal;
  967. dump_regions();
  968. ASSERT(is_ring3());
  969. die();
  970. // We can not return from here, as there is nowhere
  971. // to unwind to, so die right away.
  972. current->die_if_needed();
  973. ASSERT_NOT_REACHED();
  974. }
  975. Process* Process::from_pid(pid_t pid)
  976. {
  977. ASSERT_INTERRUPTS_DISABLED();
  978. for (auto& process : *g_processes) {
  979. if (process.pid() == pid)
  980. return &process;
  981. }
  982. return nullptr;
  983. }
  984. FileDescription* Process::file_description(int fd)
  985. {
  986. if (fd < 0)
  987. return nullptr;
  988. if (fd < m_fds.size())
  989. return m_fds[fd].description.ptr();
  990. return nullptr;
  991. }
  992. const FileDescription* Process::file_description(int fd) const
  993. {
  994. if (fd < 0)
  995. return nullptr;
  996. if (fd < m_fds.size())
  997. return m_fds[fd].description.ptr();
  998. return nullptr;
  999. }
  1000. int Process::fd_flags(int fd) const
  1001. {
  1002. if (fd < 0)
  1003. return -1;
  1004. if (fd < m_fds.size())
  1005. return m_fds[fd].flags;
  1006. return -1;
  1007. }
  1008. ssize_t Process::sys$get_dir_entries(int fd, void* buffer, ssize_t size)
  1009. {
  1010. if (size < 0)
  1011. return -EINVAL;
  1012. if (!validate_write(buffer, size))
  1013. return -EFAULT;
  1014. auto* description = file_description(fd);
  1015. if (!description)
  1016. return -EBADF;
  1017. return description->get_dir_entries((u8*)buffer, size);
  1018. }
  1019. int Process::sys$lseek(int fd, off_t offset, int whence)
  1020. {
  1021. auto* description = file_description(fd);
  1022. if (!description)
  1023. return -EBADF;
  1024. return description->seek(offset, whence);
  1025. }
  1026. int Process::sys$ttyname_r(int fd, char* buffer, ssize_t size)
  1027. {
  1028. if (size < 0)
  1029. return -EINVAL;
  1030. if (!validate_write(buffer, size))
  1031. return -EFAULT;
  1032. auto* description = file_description(fd);
  1033. if (!description)
  1034. return -EBADF;
  1035. if (!description->is_tty())
  1036. return -ENOTTY;
  1037. auto tty_name = description->tty()->tty_name();
  1038. if ((size_t)size < tty_name.length() + 1)
  1039. return -ERANGE;
  1040. memcpy(buffer, tty_name.characters_without_null_termination(), tty_name.length());
  1041. buffer[tty_name.length()] = '\0';
  1042. return 0;
  1043. }
  1044. int Process::sys$ptsname_r(int fd, char* buffer, ssize_t size)
  1045. {
  1046. if (size < 0)
  1047. return -EINVAL;
  1048. if (!validate_write(buffer, size))
  1049. return -EFAULT;
  1050. auto* description = file_description(fd);
  1051. if (!description)
  1052. return -EBADF;
  1053. auto* master_pty = description->master_pty();
  1054. if (!master_pty)
  1055. return -ENOTTY;
  1056. auto pts_name = master_pty->pts_name();
  1057. if ((size_t)size < pts_name.length() + 1)
  1058. return -ERANGE;
  1059. strcpy(buffer, pts_name.characters());
  1060. return 0;
  1061. }
  1062. ssize_t Process::sys$writev(int fd, const struct iovec* iov, int iov_count)
  1063. {
  1064. if (iov_count < 0)
  1065. return -EINVAL;
  1066. if (!validate_read_typed(iov, iov_count))
  1067. return -EFAULT;
  1068. // FIXME: Return EINVAL if sum of iovecs is greater than INT_MAX
  1069. auto* description = file_description(fd);
  1070. if (!description)
  1071. return -EBADF;
  1072. int nwritten = 0;
  1073. for (int i = 0; i < iov_count; ++i) {
  1074. int rc = do_write(*description, (const u8*)iov[i].iov_base, iov[i].iov_len);
  1075. if (rc < 0) {
  1076. if (nwritten == 0)
  1077. return rc;
  1078. return nwritten;
  1079. }
  1080. nwritten += rc;
  1081. }
  1082. return nwritten;
  1083. }
  1084. ssize_t Process::do_write(FileDescription& description, const u8* data, int data_size)
  1085. {
  1086. ssize_t nwritten = 0;
  1087. if (!description.is_blocking()) {
  1088. if (!description.can_write())
  1089. return -EAGAIN;
  1090. }
  1091. if (description.should_append()) {
  1092. #ifdef IO_DEBUG
  1093. dbgprintf("seeking to end (O_APPEND)\n");
  1094. #endif
  1095. description.seek(0, SEEK_END);
  1096. }
  1097. while (nwritten < data_size) {
  1098. #ifdef IO_DEBUG
  1099. dbgprintf("while %u < %u\n", nwritten, size);
  1100. #endif
  1101. if (!description.can_write()) {
  1102. #ifdef IO_DEBUG
  1103. dbgprintf("block write on %d\n", fd);
  1104. #endif
  1105. if (current->block<Thread::WriteBlocker>(description) == Thread::BlockResult::InterruptedBySignal) {
  1106. if (nwritten == 0)
  1107. return -EINTR;
  1108. }
  1109. }
  1110. ssize_t rc = description.write(data + nwritten, data_size - nwritten);
  1111. #ifdef IO_DEBUG
  1112. dbgprintf(" -> write returned %d\n", rc);
  1113. #endif
  1114. if (rc < 0) {
  1115. // FIXME: Support returning partial nwritten with errno.
  1116. ASSERT(nwritten == 0);
  1117. return rc;
  1118. }
  1119. if (rc == 0)
  1120. break;
  1121. nwritten += rc;
  1122. }
  1123. return nwritten;
  1124. }
  1125. ssize_t Process::sys$write(int fd, const u8* data, ssize_t size)
  1126. {
  1127. if (size < 0)
  1128. return -EINVAL;
  1129. if (size == 0)
  1130. return 0;
  1131. if (!validate_read(data, size))
  1132. return -EFAULT;
  1133. #ifdef DEBUG_IO
  1134. dbgprintf("%s(%u): sys$write(%d, %p, %u)\n", name().characters(), pid(), fd, data, size);
  1135. #endif
  1136. auto* description = file_description(fd);
  1137. if (!description)
  1138. return -EBADF;
  1139. return do_write(*description, data, size);
  1140. }
  1141. ssize_t Process::sys$read(int fd, u8* buffer, ssize_t size)
  1142. {
  1143. if (size < 0)
  1144. return -EINVAL;
  1145. if (size == 0)
  1146. return 0;
  1147. if (!validate_write(buffer, size))
  1148. return -EFAULT;
  1149. #ifdef DEBUG_IO
  1150. dbgprintf("%s(%u) sys$read(%d, %p, %u)\n", name().characters(), pid(), fd, buffer, size);
  1151. #endif
  1152. auto* description = file_description(fd);
  1153. if (!description)
  1154. return -EBADF;
  1155. if (description->is_directory())
  1156. return -EISDIR;
  1157. if (description->is_blocking()) {
  1158. if (!description->can_read()) {
  1159. if (current->block<Thread::ReadBlocker>(*description) == Thread::BlockResult::InterruptedBySignal)
  1160. return -EINTR;
  1161. }
  1162. }
  1163. return description->read(buffer, size);
  1164. }
  1165. int Process::sys$close(int fd)
  1166. {
  1167. auto* description = file_description(fd);
  1168. #ifdef DEBUG_IO
  1169. dbgprintf("%s(%u) sys$close(%d) %p\n", name().characters(), pid(), fd, description);
  1170. #endif
  1171. if (!description)
  1172. return -EBADF;
  1173. int rc = description->close();
  1174. m_fds[fd] = {};
  1175. return rc;
  1176. }
  1177. int Process::sys$utime(const char* pathname, const utimbuf* buf)
  1178. {
  1179. if (!validate_read_str(pathname))
  1180. return -EFAULT;
  1181. if (buf && !validate_read_typed(buf))
  1182. return -EFAULT;
  1183. time_t atime;
  1184. time_t mtime;
  1185. if (buf) {
  1186. atime = buf->actime;
  1187. mtime = buf->modtime;
  1188. } else {
  1189. struct timeval now;
  1190. kgettimeofday(now);
  1191. mtime = now.tv_sec;
  1192. atime = now.tv_sec;
  1193. }
  1194. return VFS::the().utime(StringView(pathname), current_directory(), atime, mtime);
  1195. }
  1196. int Process::sys$access(const char* pathname, int mode)
  1197. {
  1198. if (!validate_read_str(pathname))
  1199. return -EFAULT;
  1200. return VFS::the().access(StringView(pathname), mode, current_directory());
  1201. }
  1202. int Process::sys$fcntl(int fd, int cmd, u32 arg)
  1203. {
  1204. (void)cmd;
  1205. (void)arg;
  1206. dbgprintf("sys$fcntl: fd=%d, cmd=%d, arg=%u\n", fd, cmd, arg);
  1207. auto* description = file_description(fd);
  1208. if (!description)
  1209. return -EBADF;
  1210. // NOTE: The FD flags are not shared between FileDescription objects.
  1211. // This means that dup() doesn't copy the FD_CLOEXEC flag!
  1212. switch (cmd) {
  1213. case F_DUPFD: {
  1214. int arg_fd = (int)arg;
  1215. if (arg_fd < 0)
  1216. return -EINVAL;
  1217. int new_fd = alloc_fd(arg_fd);
  1218. if (new_fd < 0)
  1219. return new_fd;
  1220. m_fds[new_fd].set(*description);
  1221. break;
  1222. }
  1223. case F_GETFD:
  1224. return m_fds[fd].flags;
  1225. case F_SETFD:
  1226. m_fds[fd].flags = arg;
  1227. break;
  1228. case F_GETFL:
  1229. return description->file_flags();
  1230. case F_SETFL:
  1231. description->set_file_flags(arg);
  1232. break;
  1233. default:
  1234. ASSERT_NOT_REACHED();
  1235. }
  1236. return 0;
  1237. }
  1238. int Process::sys$fstat(int fd, stat* statbuf)
  1239. {
  1240. if (!validate_write_typed(statbuf))
  1241. return -EFAULT;
  1242. auto* description = file_description(fd);
  1243. if (!description)
  1244. return -EBADF;
  1245. return description->fstat(*statbuf);
  1246. }
  1247. int Process::sys$lstat(const char* path, stat* statbuf)
  1248. {
  1249. if (!validate_write_typed(statbuf))
  1250. return -EFAULT;
  1251. auto metadata_or_error = VFS::the().lookup_metadata(StringView(path), current_directory(), O_NOFOLLOW_NOERROR);
  1252. if (metadata_or_error.is_error())
  1253. return metadata_or_error.error();
  1254. return metadata_or_error.value().stat(*statbuf);
  1255. }
  1256. int Process::sys$stat(const char* path, stat* statbuf)
  1257. {
  1258. if (!validate_write_typed(statbuf))
  1259. return -EFAULT;
  1260. auto metadata_or_error = VFS::the().lookup_metadata(StringView(path), current_directory());
  1261. if (metadata_or_error.is_error())
  1262. return metadata_or_error.error();
  1263. return metadata_or_error.value().stat(*statbuf);
  1264. }
  1265. int Process::sys$readlink(const char* path, char* buffer, ssize_t size)
  1266. {
  1267. if (size < 0)
  1268. return -EINVAL;
  1269. if (!validate_read_str(path))
  1270. return -EFAULT;
  1271. if (!validate_write(buffer, size))
  1272. return -EFAULT;
  1273. auto result = VFS::the().open(path, O_RDONLY | O_NOFOLLOW_NOERROR, 0, current_directory());
  1274. if (result.is_error())
  1275. return result.error();
  1276. auto description = result.value();
  1277. if (!description->metadata().is_symlink())
  1278. return -EINVAL;
  1279. auto contents = description->read_entire_file();
  1280. if (!contents)
  1281. return -EIO; // FIXME: Get a more detailed error from VFS.
  1282. memcpy(buffer, contents.data(), min(size, (ssize_t)contents.size()));
  1283. if (contents.size() + 1 < size)
  1284. buffer[contents.size()] = '\0';
  1285. return 0;
  1286. }
  1287. int Process::sys$chdir(const char* path)
  1288. {
  1289. if (!validate_read_str(path))
  1290. return -EFAULT;
  1291. auto directory_or_error = VFS::the().open_directory(StringView(path), current_directory());
  1292. if (directory_or_error.is_error())
  1293. return directory_or_error.error();
  1294. m_cwd = *directory_or_error.value();
  1295. return 0;
  1296. }
  1297. int Process::sys$fchdir(int fd)
  1298. {
  1299. auto* description = file_description(fd);
  1300. if (!description)
  1301. return -EBADF;
  1302. if (!description->is_directory())
  1303. return -ENOTDIR;
  1304. if (!description->metadata().may_execute(*this))
  1305. return -EACCES;
  1306. m_cwd = description->custody();
  1307. return 0;
  1308. }
  1309. int Process::sys$getcwd(char* buffer, ssize_t size)
  1310. {
  1311. if (size < 0)
  1312. return -EINVAL;
  1313. if (!validate_write(buffer, size))
  1314. return -EFAULT;
  1315. auto path = current_directory().absolute_path();
  1316. if ((size_t)size < path.length() + 1)
  1317. return -ERANGE;
  1318. strcpy(buffer, path.characters());
  1319. return 0;
  1320. }
  1321. int Process::number_of_open_file_descriptors() const
  1322. {
  1323. int count = 0;
  1324. for (auto& description : m_fds) {
  1325. if (description)
  1326. ++count;
  1327. }
  1328. return count;
  1329. }
  1330. int Process::sys$open(const Syscall::SC_open_params* params)
  1331. {
  1332. if (!validate_read_typed(params))
  1333. return -EFAULT;
  1334. auto& [path, path_length, options, mode] = *params;
  1335. if (!path_length)
  1336. return -EINVAL;
  1337. if (!validate_read(path, path_length))
  1338. return -EFAULT;
  1339. int fd = alloc_fd();
  1340. #ifdef DEBUG_IO
  1341. dbgprintf("%s(%u) sys$open(\"%s\") -> %d\n", name().characters(), pid(), path, fd);
  1342. #endif
  1343. if (fd < 0)
  1344. return fd;
  1345. auto result = VFS::the().open(path, options, mode & ~umask(), current_directory());
  1346. if (result.is_error())
  1347. return result.error();
  1348. auto description = result.value();
  1349. if (options & O_DIRECTORY && !description->is_directory())
  1350. return -ENOTDIR; // FIXME: This should be handled by VFS::open.
  1351. description->set_file_flags(options);
  1352. u32 fd_flags = (options & O_CLOEXEC) ? FD_CLOEXEC : 0;
  1353. m_fds[fd].set(move(description), fd_flags);
  1354. return fd;
  1355. }
  1356. int Process::sys$openat(const Syscall::SC_openat_params* params)
  1357. {
  1358. if (!validate_read_typed(params))
  1359. return -EFAULT;
  1360. auto& [dirfd, path, path_length, options, mode] = *params;
  1361. if (!validate_read(path, path_length))
  1362. return -EFAULT;
  1363. #ifdef DEBUG_IO
  1364. dbgprintf("%s(%u) sys$openat(%d, \"%s\")\n", dirfd, name().characters(), pid(), path);
  1365. #endif
  1366. int fd = alloc_fd();
  1367. if (fd < 0)
  1368. return fd;
  1369. RefPtr<Custody> base;
  1370. if (dirfd == AT_FDCWD) {
  1371. base = current_directory();
  1372. } else {
  1373. auto* base_description = file_description(dirfd);
  1374. if (!base_description)
  1375. return -EBADF;
  1376. if (!base_description->is_directory())
  1377. return -ENOTDIR;
  1378. if (!base_description->custody())
  1379. return -EINVAL;
  1380. base = base_description->custody();
  1381. }
  1382. auto result = VFS::the().open(path, options, mode & ~umask(), *base);
  1383. if (result.is_error())
  1384. return result.error();
  1385. auto description = result.value();
  1386. if (options & O_DIRECTORY && !description->is_directory())
  1387. return -ENOTDIR; // FIXME: This should be handled by VFS::open.
  1388. description->set_file_flags(options);
  1389. u32 fd_flags = (options & O_CLOEXEC) ? FD_CLOEXEC : 0;
  1390. m_fds[fd].set(move(description), fd_flags);
  1391. return fd;
  1392. }
  1393. int Process::alloc_fd(int first_candidate_fd)
  1394. {
  1395. int fd = -EMFILE;
  1396. for (int i = first_candidate_fd; i < (int)m_max_open_file_descriptors; ++i) {
  1397. if (!m_fds[i]) {
  1398. fd = i;
  1399. break;
  1400. }
  1401. }
  1402. return fd;
  1403. }
  1404. int Process::sys$pipe(int pipefd[2], int flags)
  1405. {
  1406. if (!validate_write_typed(pipefd))
  1407. return -EFAULT;
  1408. if (number_of_open_file_descriptors() + 2 > max_open_file_descriptors())
  1409. return -EMFILE;
  1410. // Reject flags other than O_CLOEXEC.
  1411. if ((flags & O_CLOEXEC) != flags)
  1412. return -EINVAL;
  1413. u32 fd_flags = (flags & O_CLOEXEC) ? FD_CLOEXEC : 0;
  1414. auto fifo = FIFO::create(m_uid);
  1415. int reader_fd = alloc_fd();
  1416. m_fds[reader_fd].set(fifo->open_direction(FIFO::Direction::Reader), fd_flags);
  1417. pipefd[0] = reader_fd;
  1418. int writer_fd = alloc_fd();
  1419. m_fds[writer_fd].set(fifo->open_direction(FIFO::Direction::Writer), fd_flags);
  1420. pipefd[1] = writer_fd;
  1421. return 0;
  1422. }
  1423. int Process::sys$killpg(int pgrp, int signum)
  1424. {
  1425. if (signum < 1 || signum >= 32)
  1426. return -EINVAL;
  1427. if (pgrp < 0)
  1428. return -EINVAL;
  1429. InterruptDisabler disabler;
  1430. return do_killpg(pgrp, signum);
  1431. }
  1432. int Process::sys$setuid(uid_t uid)
  1433. {
  1434. if (uid != m_uid && !is_superuser())
  1435. return -EPERM;
  1436. m_uid = uid;
  1437. m_euid = uid;
  1438. return 0;
  1439. }
  1440. int Process::sys$setgid(gid_t gid)
  1441. {
  1442. if (gid != m_gid && !is_superuser())
  1443. return -EPERM;
  1444. m_gid = gid;
  1445. m_egid = gid;
  1446. return 0;
  1447. }
  1448. unsigned Process::sys$alarm(unsigned seconds)
  1449. {
  1450. unsigned previous_alarm_remaining = 0;
  1451. if (m_alarm_deadline && m_alarm_deadline > g_uptime) {
  1452. previous_alarm_remaining = (m_alarm_deadline - g_uptime) / TICKS_PER_SECOND;
  1453. }
  1454. if (!seconds) {
  1455. m_alarm_deadline = 0;
  1456. return previous_alarm_remaining;
  1457. }
  1458. m_alarm_deadline = g_uptime + seconds * TICKS_PER_SECOND;
  1459. return previous_alarm_remaining;
  1460. }
  1461. int Process::sys$uname(utsname* buf)
  1462. {
  1463. if (!validate_write_typed(buf))
  1464. return -EFAULT;
  1465. strcpy(buf->sysname, "SerenityOS");
  1466. strcpy(buf->release, "1.0-dev");
  1467. strcpy(buf->version, "FIXME");
  1468. strcpy(buf->machine, "i686");
  1469. LOCKER(*s_hostname_lock);
  1470. strncpy(buf->nodename, s_hostname->characters(), sizeof(utsname::nodename));
  1471. return 0;
  1472. }
  1473. KResult Process::do_kill(Process& process, int signal)
  1474. {
  1475. // FIXME: Allow sending SIGCONT to everyone in the process group.
  1476. // FIXME: Should setuid processes have some special treatment here?
  1477. if (!is_superuser() && m_euid != process.m_uid && m_uid != process.m_uid)
  1478. return KResult(-EPERM);
  1479. if (process.is_ring0() && signal == SIGKILL) {
  1480. kprintf("%s(%u) attempted to send SIGKILL to ring 0 process %s(%u)\n", name().characters(), m_pid, process.name().characters(), process.pid());
  1481. return KResult(-EPERM);
  1482. }
  1483. process.send_signal(signal, this);
  1484. return KSuccess;
  1485. }
  1486. KResult Process::do_killpg(pid_t pgrp, int signal)
  1487. {
  1488. ASSERT(pgrp >= 0);
  1489. // Send the signal to all processes in the given group.
  1490. if (pgrp == 0) {
  1491. // Send the signal to our own pgrp.
  1492. pgrp = pgid();
  1493. }
  1494. bool group_was_empty = true;
  1495. bool any_succeeded = false;
  1496. KResult error = KSuccess;
  1497. Process::for_each_in_pgrp(pgrp, [&](auto& process) {
  1498. group_was_empty = false;
  1499. KResult res = do_kill(process, signal);
  1500. if (res.is_success())
  1501. any_succeeded = true;
  1502. else
  1503. error = res;
  1504. return IterationDecision::Continue;
  1505. });
  1506. if (group_was_empty)
  1507. return KResult(-ESRCH);
  1508. if (any_succeeded)
  1509. return KSuccess;
  1510. return error;
  1511. }
  1512. int Process::sys$kill(pid_t pid, int signal)
  1513. {
  1514. if (signal < 0 || signal >= 32)
  1515. return -EINVAL;
  1516. if (pid <= 0) {
  1517. return do_killpg(-pid, signal);
  1518. }
  1519. if (pid == -1) {
  1520. // FIXME: Send to all processes.
  1521. ASSERT(pid != -1);
  1522. }
  1523. if (pid == m_pid) {
  1524. // FIXME: If we ignore this signal anyway, we don't need to block here, right?
  1525. current->send_signal(signal, this);
  1526. (void)current->block<Thread::SemiPermanentBlocker>(Thread::SemiPermanentBlocker::Reason::Signal);
  1527. return 0;
  1528. }
  1529. InterruptDisabler disabler;
  1530. auto* peer = Process::from_pid(pid);
  1531. if (!peer)
  1532. return -ESRCH;
  1533. return do_kill(*peer, signal);
  1534. }
  1535. int Process::sys$usleep(useconds_t usec)
  1536. {
  1537. if (!usec)
  1538. return 0;
  1539. u64 wakeup_time = current->sleep(usec / 1000);
  1540. if (wakeup_time > g_uptime)
  1541. return -EINTR;
  1542. return 0;
  1543. }
  1544. int Process::sys$sleep(unsigned seconds)
  1545. {
  1546. if (!seconds)
  1547. return 0;
  1548. u64 wakeup_time = current->sleep(seconds * TICKS_PER_SECOND);
  1549. if (wakeup_time > g_uptime) {
  1550. u32 ticks_left_until_original_wakeup_time = wakeup_time - g_uptime;
  1551. return ticks_left_until_original_wakeup_time / TICKS_PER_SECOND;
  1552. }
  1553. return 0;
  1554. }
  1555. timeval kgettimeofday()
  1556. {
  1557. return const_cast<const timeval&>(((KernelInfoPage*)s_info_page_address_for_kernel.as_ptr())->now);
  1558. }
  1559. void kgettimeofday(timeval& tv)
  1560. {
  1561. tv = kgettimeofday();
  1562. }
  1563. int Process::sys$gettimeofday(timeval* tv)
  1564. {
  1565. if (!validate_write_typed(tv))
  1566. return -EFAULT;
  1567. *tv = kgettimeofday();
  1568. return 0;
  1569. }
  1570. uid_t Process::sys$getuid()
  1571. {
  1572. return m_uid;
  1573. }
  1574. gid_t Process::sys$getgid()
  1575. {
  1576. return m_gid;
  1577. }
  1578. uid_t Process::sys$geteuid()
  1579. {
  1580. return m_euid;
  1581. }
  1582. gid_t Process::sys$getegid()
  1583. {
  1584. return m_egid;
  1585. }
  1586. pid_t Process::sys$getpid()
  1587. {
  1588. return m_pid;
  1589. }
  1590. pid_t Process::sys$getppid()
  1591. {
  1592. return m_ppid;
  1593. }
  1594. mode_t Process::sys$umask(mode_t mask)
  1595. {
  1596. auto old_mask = m_umask;
  1597. m_umask = mask & 0777;
  1598. return old_mask;
  1599. }
  1600. int Process::reap(Process& process)
  1601. {
  1602. int exit_status;
  1603. {
  1604. InterruptDisabler disabler;
  1605. exit_status = (process.m_termination_status << 8) | process.m_termination_signal;
  1606. if (process.ppid()) {
  1607. auto* parent = Process::from_pid(process.ppid());
  1608. if (parent) {
  1609. parent->m_ticks_in_user_for_dead_children += process.m_ticks_in_user + process.m_ticks_in_user_for_dead_children;
  1610. parent->m_ticks_in_kernel_for_dead_children += process.m_ticks_in_kernel + process.m_ticks_in_kernel_for_dead_children;
  1611. }
  1612. }
  1613. dbgprintf("reap: %s(%u)\n", process.name().characters(), process.pid());
  1614. ASSERT(process.is_dead());
  1615. g_processes->remove(&process);
  1616. }
  1617. delete &process;
  1618. return exit_status;
  1619. }
  1620. pid_t Process::sys$waitpid(pid_t waitee, int* wstatus, int options)
  1621. {
  1622. dbgprintf("sys$waitpid(%d, %p, %d)\n", waitee, wstatus, options);
  1623. if (!options) {
  1624. // FIXME: This can't be right.. can it? Figure out how this should actually work.
  1625. options = WEXITED;
  1626. }
  1627. if (wstatus)
  1628. if (!validate_write_typed(wstatus))
  1629. return -EFAULT;
  1630. int dummy_wstatus;
  1631. int& exit_status = wstatus ? *wstatus : dummy_wstatus;
  1632. {
  1633. InterruptDisabler disabler;
  1634. if (waitee != -1 && !Process::from_pid(waitee))
  1635. return -ECHILD;
  1636. }
  1637. if (options & WNOHANG) {
  1638. // FIXME: Figure out what WNOHANG should do with stopped children.
  1639. if (waitee == -1) {
  1640. pid_t reaped_pid = 0;
  1641. InterruptDisabler disabler;
  1642. for_each_child([&reaped_pid, &exit_status](Process& process) {
  1643. if (process.is_dead()) {
  1644. reaped_pid = process.pid();
  1645. exit_status = reap(process);
  1646. }
  1647. return IterationDecision::Continue;
  1648. });
  1649. return reaped_pid;
  1650. } else {
  1651. ASSERT(waitee > 0); // FIXME: Implement other PID specs.
  1652. InterruptDisabler disabler;
  1653. auto* waitee_process = Process::from_pid(waitee);
  1654. if (!waitee_process)
  1655. return -ECHILD;
  1656. if (waitee_process->is_dead()) {
  1657. exit_status = reap(*waitee_process);
  1658. return waitee;
  1659. }
  1660. return 0;
  1661. }
  1662. }
  1663. pid_t waitee_pid = waitee;
  1664. if (current->block<Thread::WaitBlocker>(options, waitee_pid) == Thread::BlockResult::InterruptedBySignal)
  1665. return -EINTR;
  1666. InterruptDisabler disabler;
  1667. // NOTE: If waitee was -1, m_waitee_pid will have been filled in by the scheduler.
  1668. Process* waitee_process = Process::from_pid(waitee_pid);
  1669. if (!waitee_process)
  1670. return -ECHILD;
  1671. ASSERT(waitee_process);
  1672. if (waitee_process->is_dead()) {
  1673. exit_status = reap(*waitee_process);
  1674. } else {
  1675. ASSERT(waitee_process->any_thread().state() == Thread::State::Stopped);
  1676. exit_status = 0x7f;
  1677. }
  1678. return waitee_pid;
  1679. }
  1680. enum class KernelMemoryCheckResult {
  1681. NotInsideKernelMemory,
  1682. AccessGranted,
  1683. AccessDenied
  1684. };
  1685. static KernelMemoryCheckResult check_kernel_memory_access(VirtualAddress vaddr, bool is_write)
  1686. {
  1687. auto& sections = multiboot_info_ptr->u.elf_sec;
  1688. auto* kernel_program_headers = (Elf32_Phdr*)(sections.addr);
  1689. for (unsigned i = 0; i < sections.num; ++i) {
  1690. auto& segment = kernel_program_headers[i];
  1691. if (segment.p_type != PT_LOAD || !segment.p_vaddr || !segment.p_memsz)
  1692. continue;
  1693. if (vaddr.get() < segment.p_vaddr || vaddr.get() > (segment.p_vaddr + segment.p_memsz))
  1694. continue;
  1695. if (is_write && !(kernel_program_headers[i].p_flags & PF_W))
  1696. return KernelMemoryCheckResult::AccessDenied;
  1697. if (!is_write && !(kernel_program_headers[i].p_flags & PF_R))
  1698. return KernelMemoryCheckResult::AccessDenied;
  1699. return KernelMemoryCheckResult::AccessGranted;
  1700. }
  1701. return KernelMemoryCheckResult::NotInsideKernelMemory;
  1702. }
  1703. bool Process::validate_read_from_kernel(VirtualAddress vaddr, ssize_t size) const
  1704. {
  1705. if (vaddr.is_null())
  1706. return false;
  1707. // We check extra carefully here since the first 4MB of the address space is identity-mapped.
  1708. // This code allows access outside of the known used address ranges to get caught.
  1709. auto kmc_result = check_kernel_memory_access(vaddr, false);
  1710. if (kmc_result == KernelMemoryCheckResult::AccessGranted)
  1711. return true;
  1712. if (kmc_result == KernelMemoryCheckResult::AccessDenied)
  1713. return false;
  1714. if (is_kmalloc_address(vaddr.as_ptr()))
  1715. return true;
  1716. return MM.validate_kernel_read(*this, vaddr, size);
  1717. }
  1718. bool Process::validate_read_str(const char* str)
  1719. {
  1720. if (!validate_read(str, 1))
  1721. return false;
  1722. return validate_read(str, strlen(str) + 1);
  1723. }
  1724. bool Process::validate_read(const void* address, ssize_t size) const
  1725. {
  1726. ASSERT(size >= 0);
  1727. VirtualAddress first_address((u32)address);
  1728. VirtualAddress last_address = first_address.offset(size - 1);
  1729. if (last_address < first_address)
  1730. return false;
  1731. if (is_ring0()) {
  1732. auto kmc_result = check_kernel_memory_access(first_address, false);
  1733. if (kmc_result == KernelMemoryCheckResult::AccessGranted)
  1734. return true;
  1735. if (kmc_result == KernelMemoryCheckResult::AccessDenied)
  1736. return false;
  1737. if (is_kmalloc_address(address))
  1738. return true;
  1739. }
  1740. if (!size)
  1741. return false;
  1742. return MM.validate_user_read(*this, first_address, size);
  1743. }
  1744. bool Process::validate_write(void* address, ssize_t size) const
  1745. {
  1746. ASSERT(size >= 0);
  1747. VirtualAddress first_address((u32)address);
  1748. if (is_ring0()) {
  1749. if (is_kmalloc_address(address))
  1750. return true;
  1751. auto kmc_result = check_kernel_memory_access(first_address, true);
  1752. if (kmc_result == KernelMemoryCheckResult::AccessGranted)
  1753. return true;
  1754. if (kmc_result == KernelMemoryCheckResult::AccessDenied)
  1755. return false;
  1756. }
  1757. if (!size)
  1758. return false;
  1759. return MM.validate_user_write(*this, first_address, size);
  1760. }
  1761. pid_t Process::sys$getsid(pid_t pid)
  1762. {
  1763. if (pid == 0)
  1764. return m_sid;
  1765. InterruptDisabler disabler;
  1766. auto* process = Process::from_pid(pid);
  1767. if (!process)
  1768. return -ESRCH;
  1769. if (m_sid != process->m_sid)
  1770. return -EPERM;
  1771. return process->m_sid;
  1772. }
  1773. pid_t Process::sys$setsid()
  1774. {
  1775. InterruptDisabler disabler;
  1776. bool found_process_with_same_pgid_as_my_pid = false;
  1777. Process::for_each_in_pgrp(pid(), [&](auto&) {
  1778. found_process_with_same_pgid_as_my_pid = true;
  1779. return IterationDecision::Break;
  1780. });
  1781. if (found_process_with_same_pgid_as_my_pid)
  1782. return -EPERM;
  1783. m_sid = m_pid;
  1784. m_pgid = m_pid;
  1785. return m_sid;
  1786. }
  1787. pid_t Process::sys$getpgid(pid_t pid)
  1788. {
  1789. if (pid == 0)
  1790. return m_pgid;
  1791. InterruptDisabler disabler; // FIXME: Use a ProcessHandle
  1792. auto* process = Process::from_pid(pid);
  1793. if (!process)
  1794. return -ESRCH;
  1795. return process->m_pgid;
  1796. }
  1797. pid_t Process::sys$getpgrp()
  1798. {
  1799. return m_pgid;
  1800. }
  1801. static pid_t get_sid_from_pgid(pid_t pgid)
  1802. {
  1803. InterruptDisabler disabler;
  1804. auto* group_leader = Process::from_pid(pgid);
  1805. if (!group_leader)
  1806. return -1;
  1807. return group_leader->sid();
  1808. }
  1809. int Process::sys$setpgid(pid_t specified_pid, pid_t specified_pgid)
  1810. {
  1811. InterruptDisabler disabler; // FIXME: Use a ProcessHandle
  1812. pid_t pid = specified_pid ? specified_pid : m_pid;
  1813. if (specified_pgid < 0)
  1814. return -EINVAL;
  1815. auto* process = Process::from_pid(pid);
  1816. if (!process)
  1817. return -ESRCH;
  1818. pid_t new_pgid = specified_pgid ? specified_pgid : process->m_pid;
  1819. pid_t current_sid = get_sid_from_pgid(process->m_pgid);
  1820. pid_t new_sid = get_sid_from_pgid(new_pgid);
  1821. if (current_sid != new_sid) {
  1822. // Can't move a process between sessions.
  1823. return -EPERM;
  1824. }
  1825. // FIXME: There are more EPERM conditions to check for here..
  1826. process->m_pgid = new_pgid;
  1827. return 0;
  1828. }
  1829. int Process::sys$ioctl(int fd, unsigned request, unsigned arg)
  1830. {
  1831. auto* description = file_description(fd);
  1832. if (!description)
  1833. return -EBADF;
  1834. return description->file().ioctl(*description, request, arg);
  1835. }
  1836. int Process::sys$getdtablesize()
  1837. {
  1838. return m_max_open_file_descriptors;
  1839. }
  1840. int Process::sys$dup(int old_fd)
  1841. {
  1842. auto* description = file_description(old_fd);
  1843. if (!description)
  1844. return -EBADF;
  1845. int new_fd = alloc_fd(0);
  1846. if (new_fd < 0)
  1847. return new_fd;
  1848. m_fds[new_fd].set(*description);
  1849. return new_fd;
  1850. }
  1851. int Process::sys$dup2(int old_fd, int new_fd)
  1852. {
  1853. auto* description = file_description(old_fd);
  1854. if (!description)
  1855. return -EBADF;
  1856. if (new_fd < 0 || new_fd >= m_max_open_file_descriptors)
  1857. return -EINVAL;
  1858. m_fds[new_fd].set(*description);
  1859. return new_fd;
  1860. }
  1861. int Process::sys$sigprocmask(int how, const sigset_t* set, sigset_t* old_set)
  1862. {
  1863. if (old_set) {
  1864. if (!validate_write_typed(old_set))
  1865. return -EFAULT;
  1866. *old_set = current->m_signal_mask;
  1867. }
  1868. if (set) {
  1869. if (!validate_read_typed(set))
  1870. return -EFAULT;
  1871. switch (how) {
  1872. case SIG_BLOCK:
  1873. current->m_signal_mask &= ~(*set);
  1874. break;
  1875. case SIG_UNBLOCK:
  1876. current->m_signal_mask |= *set;
  1877. break;
  1878. case SIG_SETMASK:
  1879. current->m_signal_mask = *set;
  1880. break;
  1881. default:
  1882. return -EINVAL;
  1883. }
  1884. }
  1885. return 0;
  1886. }
  1887. int Process::sys$sigpending(sigset_t* set)
  1888. {
  1889. if (!validate_write_typed(set))
  1890. return -EFAULT;
  1891. *set = current->m_pending_signals;
  1892. return 0;
  1893. }
  1894. int Process::sys$sigaction(int signum, const sigaction* act, sigaction* old_act)
  1895. {
  1896. if (signum < 1 || signum >= 32 || signum == SIGKILL || signum == SIGSTOP)
  1897. return -EINVAL;
  1898. if (!validate_read_typed(act))
  1899. return -EFAULT;
  1900. InterruptDisabler disabler; // FIXME: This should use a narrower lock. Maybe a way to ignore signals temporarily?
  1901. auto& action = current->m_signal_action_data[signum];
  1902. if (old_act) {
  1903. if (!validate_write_typed(old_act))
  1904. return -EFAULT;
  1905. old_act->sa_flags = action.flags;
  1906. old_act->sa_sigaction = (decltype(old_act->sa_sigaction))action.handler_or_sigaction.get();
  1907. }
  1908. action.flags = act->sa_flags;
  1909. action.handler_or_sigaction = VirtualAddress((u32)act->sa_sigaction);
  1910. return 0;
  1911. }
  1912. int Process::sys$getgroups(ssize_t count, gid_t* gids)
  1913. {
  1914. if (count < 0)
  1915. return -EINVAL;
  1916. if (!count)
  1917. return m_gids.size();
  1918. if (count != (int)m_gids.size())
  1919. return -EINVAL;
  1920. if (!validate_write_typed(gids, m_gids.size()))
  1921. return -EFAULT;
  1922. size_t i = 0;
  1923. for (auto gid : m_gids)
  1924. gids[i++] = gid;
  1925. return 0;
  1926. }
  1927. int Process::sys$setgroups(ssize_t count, const gid_t* gids)
  1928. {
  1929. if (count < 0)
  1930. return -EINVAL;
  1931. if (!is_superuser())
  1932. return -EPERM;
  1933. if (!validate_read(gids, count))
  1934. return -EFAULT;
  1935. m_gids.clear();
  1936. m_gids.set(m_gid);
  1937. for (int i = 0; i < count; ++i)
  1938. m_gids.set(gids[i]);
  1939. return 0;
  1940. }
  1941. int Process::sys$mkdir(const char* pathname, mode_t mode)
  1942. {
  1943. if (!validate_read_str(pathname))
  1944. return -EFAULT;
  1945. size_t pathname_length = strlen(pathname);
  1946. if (pathname_length == 0)
  1947. return -EINVAL;
  1948. if (pathname_length >= 255)
  1949. return -ENAMETOOLONG;
  1950. return VFS::the().mkdir(StringView(pathname, pathname_length), mode & ~umask(), current_directory());
  1951. }
  1952. int Process::sys$realpath(const char* pathname, char* buffer, size_t size)
  1953. {
  1954. if (!validate_read_str(pathname))
  1955. return -EFAULT;
  1956. size_t pathname_length = strlen(pathname);
  1957. if (pathname_length == 0)
  1958. return -EINVAL;
  1959. if (pathname_length >= size)
  1960. return -ENAMETOOLONG;
  1961. if (!validate_write(buffer, size))
  1962. return -EFAULT;
  1963. auto custody_or_error = VFS::the().resolve_path(pathname, current_directory());
  1964. if (custody_or_error.is_error())
  1965. return custody_or_error.error();
  1966. auto& custody = custody_or_error.value();
  1967. // FIXME: Once resolve_path is fixed to deal with .. and . , remove the use of FileSystemPath::canonical_path.
  1968. FileSystemPath canonical_path(custody->absolute_path());
  1969. if (!canonical_path.is_valid()) {
  1970. dbg() << "FileSystemPath failed to canonicalize " << custody->absolute_path();
  1971. ASSERT_NOT_REACHED();
  1972. }
  1973. strncpy(buffer, canonical_path.string().characters(), size);
  1974. return 0;
  1975. };
  1976. clock_t Process::sys$times(tms* times)
  1977. {
  1978. if (!validate_write_typed(times))
  1979. return -EFAULT;
  1980. times->tms_utime = m_ticks_in_user;
  1981. times->tms_stime = m_ticks_in_kernel;
  1982. times->tms_cutime = m_ticks_in_user_for_dead_children;
  1983. times->tms_cstime = m_ticks_in_kernel_for_dead_children;
  1984. return g_uptime & 0x7fffffff;
  1985. }
  1986. int Process::sys$select(const Syscall::SC_select_params* params)
  1987. {
  1988. // FIXME: Return -EINVAL if timeout is invalid.
  1989. if (!validate_read_typed(params))
  1990. return -EFAULT;
  1991. auto& [nfds, readfds, writefds, exceptfds, timeout] = *params;
  1992. if (writefds && !validate_write_typed(writefds))
  1993. return -EFAULT;
  1994. if (readfds && !validate_write_typed(readfds))
  1995. return -EFAULT;
  1996. if (exceptfds && !validate_write_typed(exceptfds))
  1997. return -EFAULT;
  1998. if (timeout && !validate_read_typed(timeout))
  1999. return -EFAULT;
  2000. if (nfds < 0)
  2001. return -EINVAL;
  2002. timeval computed_timeout;
  2003. bool select_has_timeout = false;
  2004. if (timeout && (timeout->tv_sec || timeout->tv_usec)) {
  2005. timeval_add(kgettimeofday(), *timeout, computed_timeout);
  2006. select_has_timeout = true;
  2007. }
  2008. Thread::SelectBlocker::FDVector rfds;
  2009. Thread::SelectBlocker::FDVector wfds;
  2010. Thread::SelectBlocker::FDVector efds;
  2011. auto transfer_fds = [&](auto* fds, auto& vector) -> int {
  2012. vector.clear_with_capacity();
  2013. if (!fds)
  2014. return 0;
  2015. for (int fd = 0; fd < params->nfds; ++fd) {
  2016. if (FD_ISSET(fd, fds)) {
  2017. if (!file_description(fd)) {
  2018. dbg() << *current << " sys$select: Bad fd number " << fd;
  2019. return -EBADF;
  2020. }
  2021. vector.append(fd);
  2022. }
  2023. }
  2024. return 0;
  2025. };
  2026. if (int error = transfer_fds(writefds, wfds))
  2027. return error;
  2028. if (int error = transfer_fds(readfds, rfds))
  2029. return error;
  2030. if (int error = transfer_fds(exceptfds, efds))
  2031. return error;
  2032. #if defined(DEBUG_IO) || defined(DEBUG_POLL_SELECT)
  2033. dbgprintf("%s<%u> selecting on (read:%u, write:%u), timeout=%p\n", name().characters(), pid(), rfds.size(), wfds.size(), timeout);
  2034. #endif
  2035. if (!timeout || select_has_timeout) {
  2036. if (current->block<Thread::SelectBlocker>(computed_timeout, select_has_timeout, rfds, wfds, efds) == Thread::BlockResult::InterruptedBySignal)
  2037. return -EINTR;
  2038. }
  2039. int marked_fd_count = 0;
  2040. auto mark_fds = [&](auto* fds, auto& vector, auto should_mark) {
  2041. if (!fds)
  2042. return;
  2043. FD_ZERO(fds);
  2044. for (int fd : vector) {
  2045. if (auto* description = file_description(fd); description && should_mark(*description)) {
  2046. FD_SET(fd, fds);
  2047. ++marked_fd_count;
  2048. }
  2049. }
  2050. };
  2051. mark_fds(readfds, rfds, [](auto& description) { return description.can_read(); });
  2052. mark_fds(writefds, wfds, [](auto& description) { return description.can_write(); });
  2053. // FIXME: We should also mark exceptfds as appropriate.
  2054. return marked_fd_count;
  2055. }
  2056. int Process::sys$poll(pollfd* fds, int nfds, int timeout)
  2057. {
  2058. if (!validate_read_typed(fds))
  2059. return -EFAULT;
  2060. Thread::SelectBlocker::FDVector rfds;
  2061. Thread::SelectBlocker::FDVector wfds;
  2062. for (int i = 0; i < nfds; ++i) {
  2063. if (fds[i].events & POLLIN)
  2064. rfds.append(fds[i].fd);
  2065. if (fds[i].events & POLLOUT)
  2066. wfds.append(fds[i].fd);
  2067. }
  2068. timeval actual_timeout;
  2069. bool has_timeout = false;
  2070. if (timeout >= 0) {
  2071. // poll is in ms, we want s/us.
  2072. struct timeval tvtimeout;
  2073. tvtimeout.tv_sec = 0;
  2074. while (timeout >= 1000) {
  2075. tvtimeout.tv_sec += 1;
  2076. timeout -= 1000;
  2077. }
  2078. tvtimeout.tv_usec = timeout * 1000;
  2079. timeval_add(kgettimeofday(), tvtimeout, actual_timeout);
  2080. has_timeout = true;
  2081. }
  2082. #if defined(DEBUG_IO) || defined(DEBUG_POLL_SELECT)
  2083. dbgprintf("%s<%u> polling on (read:%u, write:%u), timeout=%d\n", name().characters(), pid(), rfds.size(), wfds.size(), timeout);
  2084. #endif
  2085. if (has_timeout || timeout < 0) {
  2086. if (current->block<Thread::SelectBlocker>(actual_timeout, has_timeout, rfds, wfds, Thread::SelectBlocker::FDVector()) == Thread::BlockResult::InterruptedBySignal)
  2087. return -EINTR;
  2088. }
  2089. int fds_with_revents = 0;
  2090. for (int i = 0; i < nfds; ++i) {
  2091. auto* description = file_description(fds[i].fd);
  2092. if (!description) {
  2093. fds[i].revents = POLLNVAL;
  2094. continue;
  2095. }
  2096. fds[i].revents = 0;
  2097. if (fds[i].events & POLLIN && description->can_read())
  2098. fds[i].revents |= POLLIN;
  2099. if (fds[i].events & POLLOUT && description->can_write())
  2100. fds[i].revents |= POLLOUT;
  2101. if (fds[i].revents)
  2102. ++fds_with_revents;
  2103. }
  2104. return fds_with_revents;
  2105. }
  2106. Custody& Process::current_directory()
  2107. {
  2108. if (!m_cwd)
  2109. m_cwd = VFS::the().root_custody();
  2110. return *m_cwd;
  2111. }
  2112. int Process::sys$link(const char* old_path, const char* new_path)
  2113. {
  2114. if (!validate_read_str(old_path))
  2115. return -EFAULT;
  2116. if (!validate_read_str(new_path))
  2117. return -EFAULT;
  2118. return VFS::the().link(StringView(old_path), StringView(new_path), current_directory());
  2119. }
  2120. int Process::sys$unlink(const char* pathname)
  2121. {
  2122. if (!validate_read_str(pathname))
  2123. return -EFAULT;
  2124. return VFS::the().unlink(StringView(pathname), current_directory());
  2125. }
  2126. int Process::sys$symlink(const char* target, const char* linkpath)
  2127. {
  2128. if (!validate_read_str(target))
  2129. return -EFAULT;
  2130. if (!validate_read_str(linkpath))
  2131. return -EFAULT;
  2132. return VFS::the().symlink(StringView(target), StringView(linkpath), current_directory());
  2133. }
  2134. int Process::sys$rmdir(const char* pathname)
  2135. {
  2136. if (!validate_read_str(pathname))
  2137. return -EFAULT;
  2138. return VFS::the().rmdir(StringView(pathname), current_directory());
  2139. }
  2140. int Process::sys$read_tsc(u32* lsw, u32* msw)
  2141. {
  2142. if (!validate_write_typed(lsw))
  2143. return -EFAULT;
  2144. if (!validate_write_typed(msw))
  2145. return -EFAULT;
  2146. read_tsc(*lsw, *msw);
  2147. if (!is_superuser())
  2148. *lsw &= ~0xfff;
  2149. return 0;
  2150. }
  2151. int Process::sys$chmod(const char* pathname, mode_t mode)
  2152. {
  2153. if (!validate_read_str(pathname))
  2154. return -EFAULT;
  2155. return VFS::the().chmod(StringView(pathname), mode, current_directory());
  2156. }
  2157. int Process::sys$fchmod(int fd, mode_t mode)
  2158. {
  2159. auto* description = file_description(fd);
  2160. if (!description)
  2161. return -EBADF;
  2162. return description->fchmod(mode);
  2163. }
  2164. int Process::sys$fchown(int fd, uid_t uid, gid_t gid)
  2165. {
  2166. auto* description = file_description(fd);
  2167. if (!description)
  2168. return -EBADF;
  2169. return description->chown(uid, gid);
  2170. }
  2171. int Process::sys$chown(const char* pathname, uid_t uid, gid_t gid)
  2172. {
  2173. if (!validate_read_str(pathname))
  2174. return -EFAULT;
  2175. return VFS::the().chown(StringView(pathname), uid, gid, current_directory());
  2176. }
  2177. void Process::finalize()
  2178. {
  2179. ASSERT(current == g_finalizer);
  2180. dbgprintf("Finalizing Process %s(%u)\n", m_name.characters(), m_pid);
  2181. m_fds.clear();
  2182. m_tty = nullptr;
  2183. m_executable = nullptr;
  2184. m_cwd = nullptr;
  2185. m_elf_loader = nullptr;
  2186. disown_all_shared_buffers();
  2187. {
  2188. InterruptDisabler disabler;
  2189. if (auto* parent_process = Process::from_pid(m_ppid)) {
  2190. // FIXME(Thread): What should we do here? Should we look at all threads' signal actions?
  2191. if (parent_process->thread_count() && parent_process->any_thread().m_signal_action_data[SIGCHLD].flags & SA_NOCLDWAIT) {
  2192. // NOTE: If the parent doesn't care about this process, let it go.
  2193. m_ppid = 0;
  2194. } else {
  2195. parent_process->send_signal(SIGCHLD, this);
  2196. }
  2197. }
  2198. }
  2199. m_dead = true;
  2200. }
  2201. void Process::die()
  2202. {
  2203. // Let go of the TTY, otherwise a slave PTY may keep the master PTY from
  2204. // getting an EOF when the last process using the slave PTY dies.
  2205. // If the master PTY owner relies on an EOF to know when to wait() on a
  2206. // slave owner, we have to allow the PTY pair to be torn down.
  2207. m_tty = nullptr;
  2208. if (m_tracer)
  2209. m_tracer->set_dead();
  2210. {
  2211. // Tell the threads to unwind and die.
  2212. InterruptDisabler disabler;
  2213. for_each_thread([](Thread& thread) {
  2214. kprintf("Mark PID %u TID %u for death\n", thread.pid(), thread.tid());
  2215. thread.set_should_die();
  2216. return IterationDecision::Continue;
  2217. });
  2218. }
  2219. }
  2220. size_t Process::amount_dirty_private() const
  2221. {
  2222. // FIXME: This gets a bit more complicated for Regions sharing the same underlying VMObject.
  2223. // The main issue I'm thinking of is when the VMObject has physical pages that none of the Regions are mapping.
  2224. // That's probably a situation that needs to be looked at in general.
  2225. size_t amount = 0;
  2226. for (auto& region : m_regions) {
  2227. if (!region.is_shared())
  2228. amount += region.amount_dirty();
  2229. }
  2230. return amount;
  2231. }
  2232. size_t Process::amount_clean_inode() const
  2233. {
  2234. HashTable<const InodeVMObject*> vmobjects;
  2235. for (auto& region : m_regions) {
  2236. if (region.vmobject().is_inode())
  2237. vmobjects.set(&static_cast<const InodeVMObject&>(region.vmobject()));
  2238. }
  2239. size_t amount = 0;
  2240. for (auto& vmobject : vmobjects)
  2241. amount += vmobject->amount_clean();
  2242. return amount;
  2243. }
  2244. size_t Process::amount_virtual() const
  2245. {
  2246. size_t amount = 0;
  2247. for (auto& region : m_regions) {
  2248. amount += region.size();
  2249. }
  2250. return amount;
  2251. }
  2252. size_t Process::amount_resident() const
  2253. {
  2254. // FIXME: This will double count if multiple regions use the same physical page.
  2255. size_t amount = 0;
  2256. for (auto& region : m_regions) {
  2257. amount += region.amount_resident();
  2258. }
  2259. return amount;
  2260. }
  2261. size_t Process::amount_shared() const
  2262. {
  2263. // FIXME: This will double count if multiple regions use the same physical page.
  2264. // FIXME: It doesn't work at the moment, since it relies on PhysicalPage ref counts,
  2265. // and each PhysicalPage is only reffed by its VMObject. This needs to be refactored
  2266. // so that every Region contributes +1 ref to each of its PhysicalPages.
  2267. size_t amount = 0;
  2268. for (auto& region : m_regions) {
  2269. amount += region.amount_shared();
  2270. }
  2271. return amount;
  2272. }
  2273. size_t Process::amount_purgeable_volatile() const
  2274. {
  2275. size_t amount = 0;
  2276. for (auto& region : m_regions) {
  2277. if (region.vmobject().is_purgeable() && static_cast<const PurgeableVMObject&>(region.vmobject()).is_volatile())
  2278. amount += region.amount_resident();
  2279. }
  2280. return amount;
  2281. }
  2282. size_t Process::amount_purgeable_nonvolatile() const
  2283. {
  2284. size_t amount = 0;
  2285. for (auto& region : m_regions) {
  2286. if (region.vmobject().is_purgeable() && !static_cast<const PurgeableVMObject&>(region.vmobject()).is_volatile())
  2287. amount += region.amount_resident();
  2288. }
  2289. return amount;
  2290. }
  2291. int Process::sys$socket(int domain, int type, int protocol)
  2292. {
  2293. if ((type & SOCK_TYPE_MASK) == SOCK_RAW && !is_superuser())
  2294. return -EACCES;
  2295. int fd = alloc_fd();
  2296. if (fd < 0)
  2297. return fd;
  2298. auto result = Socket::create(domain, type, protocol);
  2299. if (result.is_error())
  2300. return result.error();
  2301. auto description = FileDescription::create(*result.value());
  2302. unsigned flags = 0;
  2303. if (type & SOCK_CLOEXEC)
  2304. flags |= FD_CLOEXEC;
  2305. if (type & SOCK_NONBLOCK)
  2306. description->set_blocking(false);
  2307. m_fds[fd].set(move(description), flags);
  2308. return fd;
  2309. }
  2310. int Process::sys$bind(int sockfd, const sockaddr* address, socklen_t address_length)
  2311. {
  2312. if (!validate_read(address, address_length))
  2313. return -EFAULT;
  2314. auto* description = file_description(sockfd);
  2315. if (!description)
  2316. return -EBADF;
  2317. if (!description->is_socket())
  2318. return -ENOTSOCK;
  2319. auto& socket = *description->socket();
  2320. return socket.bind(address, address_length);
  2321. }
  2322. int Process::sys$listen(int sockfd, int backlog)
  2323. {
  2324. auto* description = file_description(sockfd);
  2325. if (!description)
  2326. return -EBADF;
  2327. if (!description->is_socket())
  2328. return -ENOTSOCK;
  2329. auto& socket = *description->socket();
  2330. if (socket.is_connected())
  2331. return -EINVAL;
  2332. return socket.listen(backlog);
  2333. }
  2334. int Process::sys$accept(int accepting_socket_fd, sockaddr* address, socklen_t* address_size)
  2335. {
  2336. if (!validate_write_typed(address_size))
  2337. return -EFAULT;
  2338. if (!validate_write(address, *address_size))
  2339. return -EFAULT;
  2340. int accepted_socket_fd = alloc_fd();
  2341. if (accepted_socket_fd < 0)
  2342. return accepted_socket_fd;
  2343. auto* accepting_socket_description = file_description(accepting_socket_fd);
  2344. if (!accepting_socket_description)
  2345. return -EBADF;
  2346. if (!accepting_socket_description->is_socket())
  2347. return -ENOTSOCK;
  2348. auto& socket = *accepting_socket_description->socket();
  2349. if (!socket.can_accept()) {
  2350. if (accepting_socket_description->is_blocking()) {
  2351. if (current->block<Thread::AcceptBlocker>(*accepting_socket_description) == Thread::BlockResult::InterruptedBySignal)
  2352. return -EINTR;
  2353. } else {
  2354. return -EAGAIN;
  2355. }
  2356. }
  2357. auto accepted_socket = socket.accept();
  2358. ASSERT(accepted_socket);
  2359. bool success = accepted_socket->get_peer_address(address, address_size);
  2360. ASSERT(success);
  2361. auto accepted_socket_description = FileDescription::create(*accepted_socket);
  2362. // NOTE: The accepted socket inherits fd flags from the accepting socket.
  2363. // I'm not sure if this matches other systems but it makes sense to me.
  2364. accepted_socket_description->set_blocking(accepting_socket_description->is_blocking());
  2365. m_fds[accepted_socket_fd].set(move(accepted_socket_description), m_fds[accepting_socket_fd].flags);
  2366. // NOTE: Moving this state to Completed is what causes connect() to unblock on the client side.
  2367. accepted_socket->set_setup_state(Socket::SetupState::Completed);
  2368. return accepted_socket_fd;
  2369. }
  2370. int Process::sys$connect(int sockfd, const sockaddr* address, socklen_t address_size)
  2371. {
  2372. if (!validate_read(address, address_size))
  2373. return -EFAULT;
  2374. int fd = alloc_fd();
  2375. if (fd < 0)
  2376. return fd;
  2377. auto* description = file_description(sockfd);
  2378. if (!description)
  2379. return -EBADF;
  2380. if (!description->is_socket())
  2381. return -ENOTSOCK;
  2382. auto& socket = *description->socket();
  2383. return socket.connect(*description, address, address_size, description->is_blocking() ? ShouldBlock::Yes : ShouldBlock::No);
  2384. }
  2385. ssize_t Process::sys$sendto(const Syscall::SC_sendto_params* params)
  2386. {
  2387. if (!validate_read_typed(params))
  2388. return -EFAULT;
  2389. auto& [sockfd, data, data_length, flags, addr, addr_length] = *params;
  2390. if (!validate_read(data, data_length))
  2391. return -EFAULT;
  2392. if (addr && !validate_read(addr, addr_length))
  2393. return -EFAULT;
  2394. auto* description = file_description(sockfd);
  2395. if (!description)
  2396. return -EBADF;
  2397. if (!description->is_socket())
  2398. return -ENOTSOCK;
  2399. auto& socket = *description->socket();
  2400. return socket.sendto(*description, data, data_length, flags, addr, addr_length);
  2401. }
  2402. ssize_t Process::sys$recvfrom(const Syscall::SC_recvfrom_params* params)
  2403. {
  2404. if (!validate_read_typed(params))
  2405. return -EFAULT;
  2406. auto& [sockfd, buffer, buffer_length, flags, addr, addr_length] = *params;
  2407. if (!validate_write(buffer, buffer_length))
  2408. return -EFAULT;
  2409. if (addr_length) {
  2410. if (!validate_write_typed(addr_length))
  2411. return -EFAULT;
  2412. if (!validate_write(addr, *addr_length))
  2413. return -EFAULT;
  2414. } else if (addr) {
  2415. return -EINVAL;
  2416. }
  2417. auto* description = file_description(sockfd);
  2418. if (!description)
  2419. return -EBADF;
  2420. if (!description->is_socket())
  2421. return -ENOTSOCK;
  2422. auto& socket = *description->socket();
  2423. bool original_blocking = description->is_blocking();
  2424. if (flags & MSG_DONTWAIT)
  2425. description->set_blocking(false);
  2426. auto nrecv = socket.recvfrom(*description, buffer, buffer_length, flags, addr, addr_length);
  2427. if (flags & MSG_DONTWAIT)
  2428. description->set_blocking(original_blocking);
  2429. return nrecv;
  2430. }
  2431. int Process::sys$getsockname(int sockfd, sockaddr* addr, socklen_t* addrlen)
  2432. {
  2433. if (!validate_read_typed(addrlen))
  2434. return -EFAULT;
  2435. if (*addrlen <= 0)
  2436. return -EINVAL;
  2437. if (!validate_write(addr, *addrlen))
  2438. return -EFAULT;
  2439. auto* description = file_description(sockfd);
  2440. if (!description)
  2441. return -EBADF;
  2442. if (!description->is_socket())
  2443. return -ENOTSOCK;
  2444. auto& socket = *description->socket();
  2445. if (!socket.get_local_address(addr, addrlen))
  2446. return -EINVAL; // FIXME: Should this be another error? I'm not sure.
  2447. return 0;
  2448. }
  2449. int Process::sys$getpeername(int sockfd, sockaddr* addr, socklen_t* addrlen)
  2450. {
  2451. if (!validate_read_typed(addrlen))
  2452. return -EFAULT;
  2453. if (*addrlen <= 0)
  2454. return -EINVAL;
  2455. if (!validate_write(addr, *addrlen))
  2456. return -EFAULT;
  2457. auto* description = file_description(sockfd);
  2458. if (!description)
  2459. return -EBADF;
  2460. if (!description->is_socket())
  2461. return -ENOTSOCK;
  2462. auto& socket = *description->socket();
  2463. if (socket.setup_state() != Socket::SetupState::Completed)
  2464. return -ENOTCONN;
  2465. if (!socket.get_peer_address(addr, addrlen))
  2466. return -EINVAL; // FIXME: Should this be another error? I'm not sure.
  2467. return 0;
  2468. }
  2469. int Process::sys$sched_setparam(pid_t pid, const struct sched_param* param)
  2470. {
  2471. if (!validate_read_typed(param))
  2472. return -EFAULT;
  2473. InterruptDisabler disabler;
  2474. auto* peer = this;
  2475. if (pid != 0)
  2476. peer = Process::from_pid(pid);
  2477. if (!peer)
  2478. return -ESRCH;
  2479. if (!is_superuser() && m_euid != peer->m_uid && m_uid != peer->m_uid)
  2480. return -EPERM;
  2481. if (param->sched_priority < THREAD_PRIORITY_MIN || param->sched_priority > THREAD_PRIORITY_MAX)
  2482. return -EINVAL;
  2483. peer->any_thread().set_priority((u32)param->sched_priority);
  2484. return 0;
  2485. }
  2486. int Process::sys$sched_getparam(pid_t pid, struct sched_param* param)
  2487. {
  2488. if (!validate_read_typed(param))
  2489. return -EFAULT;
  2490. InterruptDisabler disabler;
  2491. auto* peer = this;
  2492. if (pid != 0)
  2493. peer = Process::from_pid(pid);
  2494. if (!peer)
  2495. return -ESRCH;
  2496. if (!is_superuser() && m_euid != peer->m_uid && m_uid != peer->m_uid)
  2497. return -EPERM;
  2498. param->sched_priority = (int)peer->any_thread().priority();
  2499. return 0;
  2500. }
  2501. int Process::sys$getsockopt(const Syscall::SC_getsockopt_params* params)
  2502. {
  2503. if (!validate_read_typed(params))
  2504. return -EFAULT;
  2505. auto& [sockfd, level, option, value, value_size] = *params;
  2506. if (!validate_write_typed(value_size))
  2507. return -EFAULT;
  2508. if (!validate_write(value, *value_size))
  2509. return -EFAULT;
  2510. auto* description = file_description(sockfd);
  2511. if (!description)
  2512. return -EBADF;
  2513. if (!description->is_socket())
  2514. return -ENOTSOCK;
  2515. auto& socket = *description->socket();
  2516. return socket.getsockopt(*description, level, option, value, value_size);
  2517. }
  2518. int Process::sys$setsockopt(const Syscall::SC_setsockopt_params* params)
  2519. {
  2520. if (!validate_read_typed(params))
  2521. return -EFAULT;
  2522. auto& [sockfd, level, option, value, value_size] = *params;
  2523. if (!validate_read(value, value_size))
  2524. return -EFAULT;
  2525. auto* description = file_description(sockfd);
  2526. if (!description)
  2527. return -EBADF;
  2528. if (!description->is_socket())
  2529. return -ENOTSOCK;
  2530. auto& socket = *description->socket();
  2531. return socket.setsockopt(level, option, value, value_size);
  2532. }
  2533. void Process::disown_all_shared_buffers()
  2534. {
  2535. LOCKER(shared_buffers().lock());
  2536. Vector<SharedBuffer*, 32> buffers_to_disown;
  2537. for (auto& it : shared_buffers().resource())
  2538. buffers_to_disown.append(it.value.ptr());
  2539. for (auto* shared_buffer : buffers_to_disown)
  2540. shared_buffer->disown(m_pid);
  2541. }
  2542. int Process::sys$create_shared_buffer(int size, void** buffer)
  2543. {
  2544. if (!size || size < 0)
  2545. return -EINVAL;
  2546. size = PAGE_ROUND_UP(size);
  2547. if (!validate_write_typed(buffer))
  2548. return -EFAULT;
  2549. LOCKER(shared_buffers().lock());
  2550. static int s_next_shared_buffer_id;
  2551. int shared_buffer_id = ++s_next_shared_buffer_id;
  2552. auto shared_buffer = make<SharedBuffer>(shared_buffer_id, size);
  2553. shared_buffer->share_with(m_pid);
  2554. *buffer = shared_buffer->ref_for_process_and_get_address(*this);
  2555. ASSERT((int)shared_buffer->size() >= size);
  2556. #ifdef SHARED_BUFFER_DEBUG
  2557. kprintf("%s(%u): Created shared buffer %d @ %p (%u bytes, vmobject is %u)\n", name().characters(), pid(), shared_buffer_id, *buffer, size, shared_buffer->size());
  2558. #endif
  2559. shared_buffers().resource().set(shared_buffer_id, move(shared_buffer));
  2560. return shared_buffer_id;
  2561. }
  2562. int Process::sys$share_buffer_with(int shared_buffer_id, pid_t peer_pid)
  2563. {
  2564. if (!peer_pid || peer_pid < 0 || peer_pid == m_pid)
  2565. return -EINVAL;
  2566. LOCKER(shared_buffers().lock());
  2567. auto it = shared_buffers().resource().find(shared_buffer_id);
  2568. if (it == shared_buffers().resource().end())
  2569. return -EINVAL;
  2570. auto& shared_buffer = *(*it).value;
  2571. if (!shared_buffer.is_shared_with(m_pid))
  2572. return -EPERM;
  2573. {
  2574. InterruptDisabler disabler;
  2575. auto* peer = Process::from_pid(peer_pid);
  2576. if (!peer)
  2577. return -ESRCH;
  2578. }
  2579. shared_buffer.share_with(peer_pid);
  2580. return 0;
  2581. }
  2582. int Process::sys$share_buffer_globally(int shared_buffer_id)
  2583. {
  2584. LOCKER(shared_buffers().lock());
  2585. auto it = shared_buffers().resource().find(shared_buffer_id);
  2586. if (it == shared_buffers().resource().end())
  2587. return -EINVAL;
  2588. auto& shared_buffer = *(*it).value;
  2589. if (!shared_buffer.is_shared_with(m_pid))
  2590. return -EPERM;
  2591. shared_buffer.share_globally();
  2592. return 0;
  2593. }
  2594. int Process::sys$release_shared_buffer(int shared_buffer_id)
  2595. {
  2596. LOCKER(shared_buffers().lock());
  2597. auto it = shared_buffers().resource().find(shared_buffer_id);
  2598. if (it == shared_buffers().resource().end())
  2599. return -EINVAL;
  2600. auto& shared_buffer = *(*it).value;
  2601. if (!shared_buffer.is_shared_with(m_pid))
  2602. return -EPERM;
  2603. #ifdef SHARED_BUFFER_DEBUG
  2604. kprintf("%s(%u): Releasing shared buffer %d, buffer count: %u\n", name().characters(), pid(), shared_buffer_id, shared_buffers().resource().size());
  2605. #endif
  2606. shared_buffer.deref_for_process(*this);
  2607. return 0;
  2608. }
  2609. void* Process::sys$get_shared_buffer(int shared_buffer_id)
  2610. {
  2611. LOCKER(shared_buffers().lock());
  2612. auto it = shared_buffers().resource().find(shared_buffer_id);
  2613. if (it == shared_buffers().resource().end())
  2614. return (void*)-EINVAL;
  2615. auto& shared_buffer = *(*it).value;
  2616. if (!shared_buffer.is_shared_with(m_pid))
  2617. return (void*)-EPERM;
  2618. #ifdef SHARED_BUFFER_DEBUG
  2619. kprintf("%s(%u): Retaining shared buffer %d, buffer count: %u\n", name().characters(), pid(), shared_buffer_id, shared_buffers().resource().size());
  2620. #endif
  2621. return shared_buffer.ref_for_process_and_get_address(*this);
  2622. }
  2623. int Process::sys$seal_shared_buffer(int shared_buffer_id)
  2624. {
  2625. LOCKER(shared_buffers().lock());
  2626. auto it = shared_buffers().resource().find(shared_buffer_id);
  2627. if (it == shared_buffers().resource().end())
  2628. return -EINVAL;
  2629. auto& shared_buffer = *(*it).value;
  2630. if (!shared_buffer.is_shared_with(m_pid))
  2631. return -EPERM;
  2632. #ifdef SHARED_BUFFER_DEBUG
  2633. kprintf("%s(%u): Sealing shared buffer %d\n", name().characters(), pid(), shared_buffer_id);
  2634. #endif
  2635. shared_buffer.seal();
  2636. return 0;
  2637. }
  2638. int Process::sys$get_shared_buffer_size(int shared_buffer_id)
  2639. {
  2640. LOCKER(shared_buffers().lock());
  2641. auto it = shared_buffers().resource().find(shared_buffer_id);
  2642. if (it == shared_buffers().resource().end())
  2643. return -EINVAL;
  2644. auto& shared_buffer = *(*it).value;
  2645. if (!shared_buffer.is_shared_with(m_pid))
  2646. return -EPERM;
  2647. #ifdef SHARED_BUFFER_DEBUG
  2648. kprintf("%s(%u): Get shared buffer %d size: %u\n", name().characters(), pid(), shared_buffer_id, shared_buffers().resource().size());
  2649. #endif
  2650. return shared_buffer.size();
  2651. }
  2652. int Process::sys$set_shared_buffer_volatile(int shared_buffer_id, bool state)
  2653. {
  2654. LOCKER(shared_buffers().lock());
  2655. auto it = shared_buffers().resource().find(shared_buffer_id);
  2656. if (it == shared_buffers().resource().end())
  2657. return -EINVAL;
  2658. auto& shared_buffer = *(*it).value;
  2659. if (!shared_buffer.is_shared_with(m_pid))
  2660. return -EPERM;
  2661. #ifdef SHARED_BUFFER_DEBUG
  2662. kprintf("%s(%u): Set shared buffer %d volatile: %u\n", name().characters(), pid(), shared_buffer_id, state);
  2663. #endif
  2664. if (!state) {
  2665. bool was_purged = shared_buffer.vmobject().was_purged();
  2666. shared_buffer.vmobject().set_volatile(state);
  2667. shared_buffer.vmobject().set_was_purged(false);
  2668. return was_purged ? 1 : 0;
  2669. }
  2670. shared_buffer.vmobject().set_volatile(true);
  2671. return 0;
  2672. }
  2673. void Process::terminate_due_to_signal(u8 signal)
  2674. {
  2675. ASSERT_INTERRUPTS_DISABLED();
  2676. ASSERT(signal < 32);
  2677. dbgprintf("terminate_due_to_signal %s(%u) <- %u\n", name().characters(), pid(), signal);
  2678. m_termination_status = 0;
  2679. m_termination_signal = signal;
  2680. die();
  2681. }
  2682. void Process::send_signal(u8 signal, Process* sender)
  2683. {
  2684. // FIXME(Thread): Find the appropriate thread to deliver the signal to.
  2685. any_thread().send_signal(signal, sender);
  2686. }
  2687. int Process::sys$create_thread(void* (*entry)(void*), void* argument, const Syscall::SC_create_thread_params* params)
  2688. {
  2689. if (!validate_read((const void*)entry, sizeof(void*)))
  2690. return -EFAULT;
  2691. if (!validate_read_typed(params))
  2692. return -EFAULT;
  2693. u32 user_stack_address = reinterpret_cast<u32>(params->m_stack_location) + params->m_stack_size;
  2694. if (!MM.validate_user_stack(*this, VirtualAddress(user_stack_address - 4)))
  2695. return -EFAULT;
  2696. // FIXME: return EAGAIN if Thread::all_threads().size() is greater than PTHREAD_THREADS_MAX
  2697. int requested_thread_priority = params->m_schedule_priority;
  2698. if (requested_thread_priority < THREAD_PRIORITY_MIN || requested_thread_priority > THREAD_PRIORITY_MAX)
  2699. return -EINVAL;
  2700. bool is_thread_joinable = (0 == params->m_detach_state);
  2701. // FIXME: Do something with guard pages?
  2702. auto* thread = new Thread(*this);
  2703. // We know this thread is not the main_thread,
  2704. // So give it a unique name until the user calls $set_thread_name on it
  2705. // length + 4 to give space for our extra junk at the end
  2706. StringBuilder builder(m_name.length() + 4);
  2707. builder.append(m_name);
  2708. builder.appendf("[%d]", thread->tid());
  2709. thread->set_name(builder.to_string());
  2710. thread->set_priority(requested_thread_priority);
  2711. thread->set_joinable(is_thread_joinable);
  2712. auto& tss = thread->tss();
  2713. tss.eip = (u32)entry;
  2714. tss.eflags = 0x0202;
  2715. tss.cr3 = page_directory().cr3();
  2716. tss.esp = user_stack_address;
  2717. // NOTE: The stack needs to be 16-byte aligned.
  2718. thread->push_value_on_stack((u32)argument);
  2719. thread->push_value_on_stack(0);
  2720. thread->make_thread_specific_region({});
  2721. thread->set_state(Thread::State::Runnable);
  2722. return thread->tid();
  2723. }
  2724. void Process::sys$exit_thread(void* exit_value)
  2725. {
  2726. cli();
  2727. current->m_exit_value = exit_value;
  2728. current->set_should_die();
  2729. big_lock().unlock_if_locked();
  2730. current->die_if_needed();
  2731. ASSERT_NOT_REACHED();
  2732. }
  2733. int Process::sys$detach_thread(int tid)
  2734. {
  2735. Thread* thread = nullptr;
  2736. for_each_thread([&](auto& child_thread) {
  2737. if (child_thread.tid() == tid) {
  2738. thread = &child_thread;
  2739. return IterationDecision::Break;
  2740. }
  2741. return IterationDecision::Continue;
  2742. });
  2743. if (!thread)
  2744. return -ESRCH;
  2745. if (!thread->is_joinable())
  2746. return -EINVAL;
  2747. thread->set_joinable(false);
  2748. return 0;
  2749. }
  2750. int Process::sys$join_thread(int tid, void** exit_value)
  2751. {
  2752. if (exit_value && !validate_write_typed(exit_value))
  2753. return -EFAULT;
  2754. Thread* thread = nullptr;
  2755. for_each_thread([&](auto& child_thread) {
  2756. if (child_thread.tid() == tid) {
  2757. thread = &child_thread;
  2758. return IterationDecision::Break;
  2759. }
  2760. return IterationDecision::Continue;
  2761. });
  2762. if (!thread)
  2763. return -ESRCH;
  2764. if (thread == current)
  2765. return -EDEADLK;
  2766. if (thread->m_joinee == current)
  2767. return -EDEADLK;
  2768. ASSERT(thread->m_joiner != current);
  2769. if (thread->m_joiner)
  2770. return -EINVAL;
  2771. if (!thread->is_joinable())
  2772. return -EINVAL;
  2773. void* joinee_exit_value = nullptr;
  2774. // FIXME: pthread_join() should not be interruptable. Enforce this somehow?
  2775. auto result = current->block<Thread::JoinBlocker>(*thread, joinee_exit_value);
  2776. (void)result;
  2777. // NOTE: 'thread' is very possibly deleted at this point. Clear it just to be safe.
  2778. thread = nullptr;
  2779. if (exit_value)
  2780. *exit_value = joinee_exit_value;
  2781. return 0;
  2782. }
  2783. int Process::sys$set_thread_name(int tid, const char* buffer, int buffer_size)
  2784. {
  2785. if (buffer_size < 0)
  2786. return -EINVAL;
  2787. if (!validate_read(buffer, buffer_size))
  2788. return -EFAULT;
  2789. const size_t max_thread_name_size = 64;
  2790. if (strnlen(buffer, (size_t)buffer_size) > max_thread_name_size)
  2791. return -EINVAL;
  2792. Thread* thread = nullptr;
  2793. for_each_thread([&](auto& child_thread) {
  2794. if (child_thread.tid() == tid) {
  2795. thread = &child_thread;
  2796. return IterationDecision::Break;
  2797. }
  2798. return IterationDecision::Continue;
  2799. });
  2800. if (!thread)
  2801. return -ESRCH;
  2802. thread->set_name({ buffer, (size_t)buffer_size });
  2803. return 0;
  2804. }
  2805. int Process::sys$get_thread_name(int tid, char* buffer, int buffer_size)
  2806. {
  2807. if (buffer_size <= 0)
  2808. return -EINVAL;
  2809. if (!validate_write(buffer, buffer_size))
  2810. return -EFAULT;
  2811. Thread* thread = nullptr;
  2812. for_each_thread([&](auto& child_thread) {
  2813. if (child_thread.tid() == tid) {
  2814. thread = &child_thread;
  2815. return IterationDecision::Break;
  2816. }
  2817. return IterationDecision::Continue;
  2818. });
  2819. if (!thread)
  2820. return -ESRCH;
  2821. if (thread->name().length() >= (size_t)buffer_size)
  2822. return -ENAMETOOLONG;
  2823. strncpy(buffer, thread->name().characters(), buffer_size);
  2824. return 0;
  2825. }
  2826. int Process::sys$gettid()
  2827. {
  2828. return current->tid();
  2829. }
  2830. int Process::sys$donate(int tid)
  2831. {
  2832. if (tid < 0)
  2833. return -EINVAL;
  2834. InterruptDisabler disabler;
  2835. Thread* beneficiary = nullptr;
  2836. for_each_thread([&](Thread& thread) {
  2837. if (thread.tid() == tid) {
  2838. beneficiary = &thread;
  2839. return IterationDecision::Break;
  2840. }
  2841. return IterationDecision::Continue;
  2842. });
  2843. if (!beneficiary)
  2844. return -ENOTHREAD;
  2845. Scheduler::donate_to(beneficiary, "sys$donate");
  2846. return 0;
  2847. }
  2848. int Process::sys$rename(const char* oldpath, const char* newpath)
  2849. {
  2850. if (!validate_read_str(oldpath))
  2851. return -EFAULT;
  2852. if (!validate_read_str(newpath))
  2853. return -EFAULT;
  2854. return VFS::the().rename(StringView(oldpath), StringView(newpath), current_directory());
  2855. }
  2856. int Process::sys$shm_open(const char* name, int flags, mode_t mode)
  2857. {
  2858. if (!validate_read_str(name))
  2859. return -EFAULT;
  2860. int fd = alloc_fd();
  2861. if (fd < 0)
  2862. return fd;
  2863. auto shm_or_error = SharedMemory::open(String(name), flags, mode);
  2864. if (shm_or_error.is_error())
  2865. return shm_or_error.error();
  2866. auto description = FileDescription::create(shm_or_error.value());
  2867. m_fds[fd].set(move(description), FD_CLOEXEC);
  2868. return fd;
  2869. }
  2870. int Process::sys$shm_unlink(const char* name)
  2871. {
  2872. if (!validate_read_str(name))
  2873. return -EFAULT;
  2874. return SharedMemory::unlink(String(name));
  2875. }
  2876. int Process::sys$ftruncate(int fd, off_t length)
  2877. {
  2878. auto* description = file_description(fd);
  2879. if (!description)
  2880. return -EBADF;
  2881. // FIXME: Check that fd is writable, otherwise EINVAL.
  2882. return description->truncate(length);
  2883. }
  2884. int Process::sys$watch_file(const char* path, int path_length)
  2885. {
  2886. if (path_length < 0)
  2887. return -EINVAL;
  2888. if (!validate_read(path, path_length))
  2889. return -EFAULT;
  2890. auto custody_or_error = VFS::the().resolve_path({ path, (size_t)path_length }, current_directory());
  2891. if (custody_or_error.is_error())
  2892. return custody_or_error.error();
  2893. auto& custody = custody_or_error.value();
  2894. auto& inode = custody->inode();
  2895. if (!inode.fs().supports_watchers())
  2896. return -ENOTSUP;
  2897. int fd = alloc_fd();
  2898. if (fd < 0)
  2899. return fd;
  2900. m_fds[fd].set(FileDescription::create(*InodeWatcher::create(inode)));
  2901. return fd;
  2902. }
  2903. int Process::sys$systrace(pid_t pid)
  2904. {
  2905. InterruptDisabler disabler;
  2906. auto* peer = Process::from_pid(pid);
  2907. if (!peer)
  2908. return -ESRCH;
  2909. if (peer->uid() != m_euid)
  2910. return -EACCES;
  2911. int fd = alloc_fd();
  2912. if (fd < 0)
  2913. return fd;
  2914. auto description = FileDescription::create(peer->ensure_tracer());
  2915. m_fds[fd].set(move(description), 0);
  2916. return fd;
  2917. }
  2918. int Process::sys$halt()
  2919. {
  2920. if (!is_superuser())
  2921. return -EPERM;
  2922. dbgprintf("acquiring FS locks...\n");
  2923. FS::lock_all();
  2924. dbgprintf("syncing mounted filesystems...\n");
  2925. FS::sync();
  2926. dbgprintf("attempting system shutdown...\n");
  2927. IO::out16(0x604, 0x2000);
  2928. return ESUCCESS;
  2929. }
  2930. int Process::sys$reboot()
  2931. {
  2932. if (!is_superuser())
  2933. return -EPERM;
  2934. dbgprintf("acquiring FS locks...\n");
  2935. FS::lock_all();
  2936. dbgprintf("syncing mounted filesystems...\n");
  2937. FS::sync();
  2938. dbgprintf("attempting reboot via KB Controller...\n");
  2939. IO::out8(0x64, 0xFE);
  2940. return ESUCCESS;
  2941. }
  2942. int Process::sys$mount(const char* device_path, const char* mountpoint, const char* fstype)
  2943. {
  2944. if (!is_superuser())
  2945. return -EPERM;
  2946. if (!validate_read_str(device_path) || !validate_read_str(mountpoint) || !validate_read_str(fstype))
  2947. return -EFAULT;
  2948. dbg() << "mount " << fstype << ": device " << device_path << " @ " << mountpoint;
  2949. auto custody_or_error = VFS::the().resolve_path(mountpoint, current_directory());
  2950. if (custody_or_error.is_error())
  2951. return custody_or_error.error();
  2952. auto& mountpoint_custody = custody_or_error.value();
  2953. RefPtr<FS> fs { nullptr };
  2954. if (strcmp(fstype, "ext2") == 0 || strcmp(fstype, "Ext2FS") == 0) {
  2955. auto metadata_or_error = VFS::the().lookup_metadata(device_path, current_directory());
  2956. if (metadata_or_error.is_error())
  2957. return metadata_or_error.error();
  2958. auto major = metadata_or_error.value().major_device;
  2959. auto minor = metadata_or_error.value().minor_device;
  2960. auto* device = Device::get_device(major, minor);
  2961. if (!device) {
  2962. dbg() << "mount: device (" << major << "," << minor << ") not found";
  2963. return -ENODEV;
  2964. }
  2965. if (!device->is_disk_device()) {
  2966. dbg() << "mount: device (" << major << "," << minor << ") is not a DiskDevice";
  2967. return -ENODEV;
  2968. }
  2969. auto& disk_device = static_cast<DiskDevice&>(*device);
  2970. dbg() << "mount: attempting to mount device (" << major << "," << minor << ") on " << mountpoint;
  2971. fs = Ext2FS::create(disk_device);
  2972. } else if (strcmp(fstype, "proc") == 0 || strcmp(fstype, "ProcFS") == 0)
  2973. fs = ProcFS::create();
  2974. else if (strcmp(fstype, "devpts") == 0 || strcmp(fstype, "DevPtsFS") == 0)
  2975. fs = DevPtsFS::create();
  2976. else if (strcmp(fstype, "tmp") == 0 || strcmp(fstype, "TmpFS") == 0)
  2977. fs = TmpFS::create();
  2978. else
  2979. return -ENODEV;
  2980. if (!fs->initialize()) {
  2981. dbg() << "mount: failed to initialize " << fstype << " filesystem on " << device_path;
  2982. return -ENODEV;
  2983. }
  2984. auto result = VFS::the().mount(fs.release_nonnull(), mountpoint_custody);
  2985. dbg() << "mount: successfully mounted " << device_path << " on " << mountpoint;
  2986. return result;
  2987. }
  2988. int Process::sys$umount(const char* mountpoint)
  2989. {
  2990. if (!is_superuser())
  2991. return -EPERM;
  2992. if (!validate_read_str(mountpoint))
  2993. return -EFAULT;
  2994. auto metadata_or_error = VFS::the().lookup_metadata(mountpoint, current_directory());
  2995. if (metadata_or_error.is_error())
  2996. return metadata_or_error.error();
  2997. auto guest_inode_id = metadata_or_error.value().inode;
  2998. return VFS::the().unmount(guest_inode_id);
  2999. }
  3000. ProcessTracer& Process::ensure_tracer()
  3001. {
  3002. if (!m_tracer)
  3003. m_tracer = ProcessTracer::create(m_pid);
  3004. return *m_tracer;
  3005. }
  3006. void Process::FileDescriptionAndFlags::clear()
  3007. {
  3008. description = nullptr;
  3009. flags = 0;
  3010. }
  3011. void Process::FileDescriptionAndFlags::set(NonnullRefPtr<FileDescription>&& d, u32 f)
  3012. {
  3013. description = move(d);
  3014. flags = f;
  3015. }
  3016. int Process::sys$mknod(const char* pathname, mode_t mode, dev_t dev)
  3017. {
  3018. if (!validate_read_str(pathname))
  3019. return -EFAULT;
  3020. return VFS::the().mknod(StringView(pathname), mode, dev, current_directory());
  3021. }
  3022. int Process::sys$dump_backtrace()
  3023. {
  3024. dump_backtrace();
  3025. return 0;
  3026. }
  3027. int Process::sys$dbgputch(u8 ch)
  3028. {
  3029. IO::out8(0xe9, ch);
  3030. return 0;
  3031. }
  3032. int Process::sys$dbgputstr(const u8* characters, int length)
  3033. {
  3034. if (!length)
  3035. return 0;
  3036. if (!validate_read(characters, length))
  3037. return -EFAULT;
  3038. for (int i = 0; i < length; ++i)
  3039. IO::out8(0xe9, characters[i]);
  3040. return 0;
  3041. }
  3042. KBuffer Process::backtrace(ProcessInspectionHandle& handle) const
  3043. {
  3044. KBufferBuilder builder;
  3045. for_each_thread([&](Thread& thread) {
  3046. builder.appendf("Thread %d (%s):\n", thread.tid(), thread.name().characters());
  3047. builder.append(thread.backtrace(handle));
  3048. return IterationDecision::Continue;
  3049. });
  3050. return builder.build();
  3051. }
  3052. int Process::sys$set_process_icon(int icon_id)
  3053. {
  3054. LOCKER(shared_buffers().lock());
  3055. auto it = shared_buffers().resource().find(icon_id);
  3056. if (it == shared_buffers().resource().end())
  3057. return -EINVAL;
  3058. auto& shared_buffer = *(*it).value;
  3059. if (!shared_buffer.is_shared_with(m_pid))
  3060. return -EPERM;
  3061. m_icon_id = icon_id;
  3062. return 0;
  3063. }
  3064. int Process::sys$get_process_name(char* buffer, int buffer_size)
  3065. {
  3066. if (buffer_size <= 0)
  3067. return -EINVAL;
  3068. if (!validate_write(buffer, buffer_size))
  3069. return -EFAULT;
  3070. if (m_name.length() >= (size_t)buffer_size)
  3071. return -ENAMETOOLONG;
  3072. strncpy(buffer, m_name.characters(), (size_t)buffer_size);
  3073. return 0;
  3074. }
  3075. // We don't use the flag yet, but we could use it for distinguishing
  3076. // random source like Linux, unlike the OpenBSD equivalent. However, if we
  3077. // do, we should be able of the caveats that Linux has dealt with.
  3078. int Process::sys$getrandom(void* buffer, size_t buffer_size, unsigned int flags __attribute__((unused)))
  3079. {
  3080. if (buffer_size <= 0)
  3081. return -EINVAL;
  3082. if (!validate_write(buffer, buffer_size))
  3083. return -EFAULT;
  3084. // We prefer to get whole words of entropy.
  3085. // If the length is unaligned, we can work with bytes instead.
  3086. // Mask out the bottom two bits for words.
  3087. size_t words_len = buffer_size & ~3;
  3088. if (words_len) {
  3089. uint32_t* words = (uint32_t*)buffer;
  3090. for (size_t i = 0; i < words_len / 4; i++)
  3091. words[i] = RandomDevice::random_value();
  3092. }
  3093. // The remaining non-whole word bytes we can fill in.
  3094. size_t bytes_len = buffer_size & 3;
  3095. if (bytes_len) {
  3096. uint8_t* bytes = (uint8_t*)buffer + words_len;
  3097. // Get a whole word of entropy to use.
  3098. uint32_t word = RandomDevice::random_value();
  3099. for (size_t i = 0; i < bytes_len; i++)
  3100. bytes[i] = ((uint8_t*)&word)[i];
  3101. }
  3102. return 0;
  3103. }
  3104. int Process::sys$setkeymap(const Syscall::SC_setkeymap_params* params)
  3105. {
  3106. if (!is_superuser())
  3107. return -EPERM;
  3108. if (!validate_read_typed(params))
  3109. return -EFAULT;
  3110. if (!validate_read(params->map, 0x80))
  3111. return -EFAULT;
  3112. if (!validate_read(params->shift_map, 0x80))
  3113. return -EFAULT;
  3114. if (!validate_read(params->alt_map, 0x80))
  3115. return -EFAULT;
  3116. if (!validate_read(params->altgr_map, 0x80))
  3117. return -EFAULT;
  3118. KeyboardDevice::the().set_maps(params->map, params->shift_map, params->alt_map, params->altgr_map);
  3119. return 0;
  3120. }
  3121. int Process::sys$clock_gettime(clockid_t clock_id, timespec* ts)
  3122. {
  3123. if (!validate_write_typed(ts))
  3124. return -EFAULT;
  3125. switch (clock_id) {
  3126. case CLOCK_MONOTONIC:
  3127. ts->tv_sec = g_uptime / TICKS_PER_SECOND;
  3128. ts->tv_nsec = (g_uptime % TICKS_PER_SECOND) * 1000000;
  3129. break;
  3130. default:
  3131. return -EINVAL;
  3132. }
  3133. return 0;
  3134. }
  3135. int Process::sys$clock_nanosleep(const Syscall::SC_clock_nanosleep_params* params)
  3136. {
  3137. if (!validate_read_typed(params))
  3138. return -EFAULT;
  3139. auto& [clock_id, flags, requested_sleep, remaining_sleep] = *params;
  3140. if (requested_sleep && !validate_read_typed(requested_sleep))
  3141. return -EFAULT;
  3142. if (remaining_sleep && !validate_write_typed(remaining_sleep))
  3143. return -EFAULT;
  3144. bool is_absolute = flags & TIMER_ABSTIME;
  3145. switch (clock_id) {
  3146. case CLOCK_MONOTONIC: {
  3147. u64 wakeup_time;
  3148. if (is_absolute) {
  3149. u64 time_to_wake = (requested_sleep->tv_sec * 1000 + requested_sleep->tv_nsec / 1000000);
  3150. wakeup_time = current->sleep_until(time_to_wake);
  3151. } else {
  3152. u32 ticks_to_sleep = (requested_sleep->tv_sec * 1000 + requested_sleep->tv_nsec / 1000000);
  3153. if (!ticks_to_sleep)
  3154. return 0;
  3155. wakeup_time = current->sleep(ticks_to_sleep);
  3156. }
  3157. if (wakeup_time > g_uptime) {
  3158. u32 ticks_left = wakeup_time - g_uptime;
  3159. if (!is_absolute && remaining_sleep) {
  3160. remaining_sleep->tv_sec = ticks_left / TICKS_PER_SECOND;
  3161. ticks_left -= remaining_sleep->tv_sec * TICKS_PER_SECOND;
  3162. remaining_sleep->tv_nsec = ticks_left * 1000000;
  3163. }
  3164. return -EINTR;
  3165. }
  3166. return 0;
  3167. }
  3168. default:
  3169. return -EINVAL;
  3170. }
  3171. }
  3172. int Process::sys$sync()
  3173. {
  3174. VFS::the().sync();
  3175. return 0;
  3176. }
  3177. int Process::sys$putch(char ch)
  3178. {
  3179. Console::the().put_char(ch);
  3180. return 0;
  3181. }
  3182. int Process::sys$yield()
  3183. {
  3184. current->yield_without_holding_big_lock();
  3185. return 0;
  3186. }
  3187. int Process::sys$beep()
  3188. {
  3189. PCSpeaker::tone_on(440);
  3190. u64 wakeup_time = current->sleep(100);
  3191. PCSpeaker::tone_off();
  3192. if (wakeup_time > g_uptime)
  3193. return -EINTR;
  3194. return 0;
  3195. }
  3196. int Process::sys$module_load(const char* path, size_t path_length)
  3197. {
  3198. if (!is_superuser())
  3199. return -EPERM;
  3200. if (!validate_read(path, path_length))
  3201. return -EFAULT;
  3202. auto description_or_error = VFS::the().open(path, 0, 0, current_directory());
  3203. if (description_or_error.is_error())
  3204. return description_or_error.error();
  3205. auto& description = description_or_error.value();
  3206. auto payload = description->read_entire_file();
  3207. auto storage = KBuffer::create_with_size(payload.size());
  3208. memcpy(storage.data(), payload.data(), payload.size());
  3209. payload.clear();
  3210. // FIXME: ELFImage should really be taking a size argument as well...
  3211. auto elf_image = make<ELFImage>(storage.data());
  3212. if (!elf_image->parse())
  3213. return -ENOEXEC;
  3214. HashMap<String, u8*> section_storage_by_name;
  3215. auto module = make<Module>();
  3216. elf_image->for_each_section_of_type(SHT_PROGBITS, [&](const ELFImage::Section& section) {
  3217. auto section_storage = KBuffer::copy(section.raw_data(), section.size());
  3218. section_storage_by_name.set(section.name(), section_storage.data());
  3219. module->sections.append(move(section_storage));
  3220. return IterationDecision::Continue;
  3221. });
  3222. bool missing_symbols = false;
  3223. elf_image->for_each_section_of_type(SHT_PROGBITS, [&](const ELFImage::Section& section) {
  3224. auto* section_storage = section_storage_by_name.get(section.name()).value_or(nullptr);
  3225. ASSERT(section_storage);
  3226. section.relocations().for_each_relocation([&](const ELFImage::Relocation& relocation) {
  3227. auto& patch_ptr = *reinterpret_cast<ptrdiff_t*>(section_storage + relocation.offset());
  3228. switch (relocation.type()) {
  3229. case R_386_PC32: {
  3230. // PC-relative relocation
  3231. dbg() << "PC-relative relocation: " << relocation.symbol().name();
  3232. u32 symbol_address = address_for_kernel_symbol(relocation.symbol().name());
  3233. if (symbol_address == 0)
  3234. missing_symbols = true;
  3235. dbg() << " Symbol address: " << (void*)symbol_address;
  3236. ptrdiff_t relative_offset = (char*)symbol_address - ((char*)&patch_ptr + 4);
  3237. patch_ptr = relative_offset;
  3238. break;
  3239. }
  3240. case R_386_32: // Absolute relocation
  3241. dbg() << "Absolute relocation: '" << relocation.symbol().name() << "' value:" << relocation.symbol().value() << ", index:" << relocation.symbol_index();
  3242. if (relocation.symbol().bind() == STB_LOCAL) {
  3243. auto* section_storage_containing_symbol = section_storage_by_name.get(relocation.symbol().section().name()).value_or(nullptr);
  3244. ASSERT(section_storage_containing_symbol);
  3245. u32 symbol_address = (ptrdiff_t)(section_storage_containing_symbol + relocation.symbol().value());
  3246. if (symbol_address == 0)
  3247. missing_symbols = true;
  3248. dbg() << " Symbol address: " << (void*)symbol_address;
  3249. patch_ptr += symbol_address;
  3250. } else if (relocation.symbol().bind() == STB_GLOBAL) {
  3251. u32 symbol_address = address_for_kernel_symbol(relocation.symbol().name());
  3252. if (symbol_address == 0)
  3253. missing_symbols = true;
  3254. dbg() << " Symbol address: " << (void*)symbol_address;
  3255. patch_ptr += symbol_address;
  3256. } else {
  3257. ASSERT_NOT_REACHED();
  3258. }
  3259. break;
  3260. }
  3261. return IterationDecision::Continue;
  3262. });
  3263. return IterationDecision::Continue;
  3264. });
  3265. if (missing_symbols)
  3266. return -ENOENT;
  3267. auto* text_base = section_storage_by_name.get(".text").value_or(nullptr);
  3268. if (!text_base) {
  3269. dbg() << "No .text section found in module!";
  3270. return -EINVAL;
  3271. }
  3272. elf_image->for_each_symbol([&](const ELFImage::Symbol& symbol) {
  3273. dbg() << " - " << symbol.type() << " '" << symbol.name() << "' @ " << (void*)symbol.value() << ", size=" << symbol.size();
  3274. if (!strcmp(symbol.name(), "module_init")) {
  3275. module->module_init = (ModuleInitPtr)(text_base + symbol.value());
  3276. } else if (!strcmp(symbol.name(), "module_fini")) {
  3277. module->module_fini = (ModuleFiniPtr)(text_base + symbol.value());
  3278. } else if (!strcmp(symbol.name(), "module_name")) {
  3279. const u8* storage = section_storage_by_name.get(symbol.section().name()).value_or(nullptr);
  3280. if (storage)
  3281. module->name = String((const char*)(storage + symbol.value()));
  3282. }
  3283. return IterationDecision::Continue;
  3284. });
  3285. if (!module->module_init)
  3286. return -EINVAL;
  3287. if (g_modules->contains(module->name)) {
  3288. dbg() << "a module with the name " << module->name << " is already loaded; please unload it first";
  3289. return -EEXIST;
  3290. }
  3291. module->module_init();
  3292. auto name = module->name;
  3293. g_modules->set(name, move(module));
  3294. return 0;
  3295. }
  3296. int Process::sys$module_unload(const char* name, size_t name_length)
  3297. {
  3298. if (!is_superuser())
  3299. return -EPERM;
  3300. if (!validate_read(name, name_length))
  3301. return -EFAULT;
  3302. auto it = g_modules->find(name);
  3303. if (it == g_modules->end())
  3304. return -ENOENT;
  3305. if (it->value->module_fini)
  3306. it->value->module_fini();
  3307. g_modules->remove(it);
  3308. return 0;
  3309. }
  3310. int Process::sys$profiling_enable(pid_t pid)
  3311. {
  3312. InterruptDisabler disabler;
  3313. auto* process = Process::from_pid(pid);
  3314. if (!process)
  3315. return -ESRCH;
  3316. if (!is_superuser() && process->uid() != m_uid)
  3317. return -EPERM;
  3318. Profiling::start(*process);
  3319. process->set_profiling(true);
  3320. return 0;
  3321. }
  3322. int Process::sys$profiling_disable(pid_t pid)
  3323. {
  3324. InterruptDisabler disabler;
  3325. auto* process = Process::from_pid(pid);
  3326. if (!process)
  3327. return -ESRCH;
  3328. if (!is_superuser() && process->uid() != m_uid)
  3329. return -EPERM;
  3330. process->set_profiling(false);
  3331. Profiling::stop();
  3332. return 0;
  3333. }
  3334. void* Process::sys$get_kernel_info_page()
  3335. {
  3336. return s_info_page_address_for_userspace.as_ptr();
  3337. }
  3338. Thread& Process::any_thread()
  3339. {
  3340. Thread* found_thread = nullptr;
  3341. for_each_thread([&](auto& thread) {
  3342. found_thread = &thread;
  3343. return IterationDecision::Break;
  3344. });
  3345. ASSERT(found_thread);
  3346. return *found_thread;
  3347. }
  3348. WaitQueue& Process::futex_queue(i32* userspace_address)
  3349. {
  3350. auto& queue = m_futex_queues.ensure((u32)userspace_address);
  3351. if (!queue)
  3352. queue = make<WaitQueue>();
  3353. return *queue;
  3354. }
  3355. int Process::sys$futex(const Syscall::SC_futex_params* params)
  3356. {
  3357. if (!validate_read_typed(params))
  3358. return -EFAULT;
  3359. auto& [userspace_address, futex_op, value, timeout] = *params;
  3360. if (!validate_read_typed(userspace_address))
  3361. return -EFAULT;
  3362. if (timeout && !validate_read_typed(timeout))
  3363. return -EFAULT;
  3364. switch (futex_op) {
  3365. case FUTEX_WAIT:
  3366. if (*userspace_address != value)
  3367. return -EAGAIN;
  3368. // FIXME: This is supposed to be interruptible by a signal, but right now WaitQueue cannot be interrupted.
  3369. // FIXME: Support timeout!
  3370. current->wait_on(futex_queue(userspace_address));
  3371. break;
  3372. case FUTEX_WAKE:
  3373. if (value == 0)
  3374. return 0;
  3375. if (value == 1) {
  3376. futex_queue(userspace_address).wake_one();
  3377. } else {
  3378. // FIXME: Wake exactly (value) waiters.
  3379. futex_queue(userspace_address).wake_all();
  3380. }
  3381. break;
  3382. }
  3383. return 0;
  3384. }
  3385. int Process::sys$set_thread_boost(int tid, int amount)
  3386. {
  3387. if (amount < 0 || amount > 20)
  3388. return -EINVAL;
  3389. InterruptDisabler disabler;
  3390. auto* thread = Thread::from_tid(tid);
  3391. if (!thread)
  3392. return -ESRCH;
  3393. if (thread->state() == Thread::State::Dead || thread->state() == Thread::State::Dying)
  3394. return -ESRCH;
  3395. if (!is_superuser() && thread->process().uid() != euid())
  3396. return -EPERM;
  3397. thread->set_priority_boost(amount);
  3398. return 0;
  3399. }
  3400. int Process::sys$set_process_boost(pid_t pid, int amount)
  3401. {
  3402. if (amount < 0 || amount > 20)
  3403. return -EINVAL;
  3404. InterruptDisabler disabler;
  3405. auto* process = Process::from_pid(pid);
  3406. if (!process || process->is_dead())
  3407. return -ESRCH;
  3408. if (!is_superuser() && process->uid() != euid())
  3409. return -EPERM;
  3410. process->m_priority_boost = amount;
  3411. return 0;
  3412. }