ProcessModel.cpp 16 KB

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  1. /*
  2. * Copyright (c) 2018-2021, Andreas Kling <kling@serenityos.org>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #include "ProcessModel.h"
  7. #include <AK/JsonObject.h>
  8. #include <AK/JsonValue.h>
  9. #include <LibCore/File.h>
  10. #include <LibCore/ProcessStatisticsReader.h>
  11. #include <LibGUI/FileIconProvider.h>
  12. static ProcessModel* s_the;
  13. ProcessModel& ProcessModel::the()
  14. {
  15. VERIFY(s_the);
  16. return *s_the;
  17. }
  18. ProcessModel::ProcessModel()
  19. {
  20. VERIFY(!s_the);
  21. s_the = this;
  22. auto file = Core::File::construct("/proc/cpuinfo");
  23. if (file->open(Core::OpenMode::ReadOnly)) {
  24. auto json = JsonValue::from_string({ file->read_all() });
  25. auto cpuinfo_array = json.value().as_array();
  26. cpuinfo_array.for_each([&](auto& value) {
  27. auto& cpu_object = value.as_object();
  28. auto cpu_id = cpu_object.get("processor").as_u32();
  29. m_cpus.append(make<CpuInfo>(cpu_id));
  30. });
  31. }
  32. if (m_cpus.is_empty())
  33. m_cpus.append(make<CpuInfo>(0));
  34. m_kernel_process_icon = GUI::Icon::default_icon("gear");
  35. }
  36. ProcessModel::~ProcessModel()
  37. {
  38. }
  39. int ProcessModel::row_count(const GUI::ModelIndex&) const
  40. {
  41. return m_tids.size();
  42. }
  43. int ProcessModel::column_count(const GUI::ModelIndex&) const
  44. {
  45. return Column::__Count;
  46. }
  47. String ProcessModel::column_name(int column) const
  48. {
  49. switch (column) {
  50. case Column::Icon:
  51. return "";
  52. case Column::PID:
  53. return "PID";
  54. case Column::TID:
  55. return "TID";
  56. case Column::PPID:
  57. return "PPID";
  58. case Column::PGID:
  59. return "PGID";
  60. case Column::SID:
  61. return "SID";
  62. case Column::State:
  63. return "State";
  64. case Column::User:
  65. return "User";
  66. case Column::Priority:
  67. return "Pr";
  68. case Column::Virtual:
  69. return "Virtual";
  70. case Column::Physical:
  71. return "Physical";
  72. case Column::DirtyPrivate:
  73. return "Private";
  74. case Column::CleanInode:
  75. return "CleanI";
  76. case Column::PurgeableVolatile:
  77. return "Purg:V";
  78. case Column::PurgeableNonvolatile:
  79. return "Purg:N";
  80. case Column::CPU:
  81. return "CPU";
  82. case Column::Processor:
  83. return "Processor";
  84. case Column::Name:
  85. return "Name";
  86. case Column::Syscalls:
  87. return "Syscalls";
  88. case Column::InodeFaults:
  89. return "F:Inode";
  90. case Column::ZeroFaults:
  91. return "F:Zero";
  92. case Column::CowFaults:
  93. return "F:CoW";
  94. case Column::IPv4SocketReadBytes:
  95. return "IPv4 In";
  96. case Column::IPv4SocketWriteBytes:
  97. return "IPv4 Out";
  98. case Column::UnixSocketReadBytes:
  99. return "Unix In";
  100. case Column::UnixSocketWriteBytes:
  101. return "Unix Out";
  102. case Column::FileReadBytes:
  103. return "File In";
  104. case Column::FileWriteBytes:
  105. return "File Out";
  106. case Column::Pledge:
  107. return "Pledge";
  108. case Column::Veil:
  109. return "Veil";
  110. default:
  111. VERIFY_NOT_REACHED();
  112. }
  113. }
  114. static String pretty_byte_size(size_t size)
  115. {
  116. return String::formatted("{}K", size / 1024);
  117. }
  118. GUI::Variant ProcessModel::data(const GUI::ModelIndex& index, GUI::ModelRole role) const
  119. {
  120. VERIFY(is_within_range(index));
  121. if (role == GUI::ModelRole::TextAlignment) {
  122. switch (index.column()) {
  123. case Column::Icon:
  124. case Column::Name:
  125. case Column::State:
  126. case Column::User:
  127. case Column::Pledge:
  128. case Column::Veil:
  129. return Gfx::TextAlignment::CenterLeft;
  130. case Column::PID:
  131. case Column::TID:
  132. case Column::PPID:
  133. case Column::PGID:
  134. case Column::SID:
  135. case Column::Priority:
  136. case Column::Virtual:
  137. case Column::Physical:
  138. case Column::DirtyPrivate:
  139. case Column::CleanInode:
  140. case Column::PurgeableVolatile:
  141. case Column::PurgeableNonvolatile:
  142. case Column::CPU:
  143. case Column::Processor:
  144. case Column::Syscalls:
  145. case Column::InodeFaults:
  146. case Column::ZeroFaults:
  147. case Column::CowFaults:
  148. case Column::FileReadBytes:
  149. case Column::FileWriteBytes:
  150. case Column::UnixSocketReadBytes:
  151. case Column::UnixSocketWriteBytes:
  152. case Column::IPv4SocketReadBytes:
  153. case Column::IPv4SocketWriteBytes:
  154. return Gfx::TextAlignment::CenterRight;
  155. default:
  156. VERIFY_NOT_REACHED();
  157. }
  158. }
  159. auto it = m_threads.find(m_tids[index.row()]);
  160. auto& thread = *(*it).value;
  161. if (role == GUI::ModelRole::Sort) {
  162. switch (index.column()) {
  163. case Column::Icon:
  164. return 0;
  165. case Column::PID:
  166. return thread.current_state.pid;
  167. case Column::TID:
  168. return thread.current_state.tid;
  169. case Column::PPID:
  170. return thread.current_state.ppid;
  171. case Column::PGID:
  172. return thread.current_state.pgid;
  173. case Column::SID:
  174. return thread.current_state.sid;
  175. case Column::State:
  176. return thread.current_state.state;
  177. case Column::User:
  178. return thread.current_state.user;
  179. case Column::Priority:
  180. return thread.current_state.priority;
  181. case Column::Virtual:
  182. return (int)thread.current_state.amount_virtual;
  183. case Column::Physical:
  184. return (int)thread.current_state.amount_resident;
  185. case Column::DirtyPrivate:
  186. return (int)thread.current_state.amount_dirty_private;
  187. case Column::CleanInode:
  188. return (int)thread.current_state.amount_clean_inode;
  189. case Column::PurgeableVolatile:
  190. return (int)thread.current_state.amount_purgeable_volatile;
  191. case Column::PurgeableNonvolatile:
  192. return (int)thread.current_state.amount_purgeable_nonvolatile;
  193. case Column::CPU:
  194. return thread.current_state.cpu_percent;
  195. case Column::Processor:
  196. return thread.current_state.cpu;
  197. case Column::Name:
  198. return thread.current_state.name;
  199. case Column::Syscalls:
  200. return thread.current_state.syscall_count;
  201. case Column::InodeFaults:
  202. return thread.current_state.inode_faults;
  203. case Column::ZeroFaults:
  204. return thread.current_state.zero_faults;
  205. case Column::CowFaults:
  206. return thread.current_state.cow_faults;
  207. case Column::IPv4SocketReadBytes:
  208. return thread.current_state.ipv4_socket_read_bytes;
  209. case Column::IPv4SocketWriteBytes:
  210. return thread.current_state.ipv4_socket_write_bytes;
  211. case Column::UnixSocketReadBytes:
  212. return thread.current_state.unix_socket_read_bytes;
  213. case Column::UnixSocketWriteBytes:
  214. return thread.current_state.unix_socket_write_bytes;
  215. case Column::FileReadBytes:
  216. return thread.current_state.file_read_bytes;
  217. case Column::FileWriteBytes:
  218. return thread.current_state.file_write_bytes;
  219. case Column::Pledge:
  220. return thread.current_state.pledge;
  221. case Column::Veil:
  222. return thread.current_state.veil;
  223. }
  224. VERIFY_NOT_REACHED();
  225. }
  226. if (role == GUI::ModelRole::Display) {
  227. switch (index.column()) {
  228. case Column::Icon: {
  229. if (thread.current_state.kernel)
  230. return m_kernel_process_icon;
  231. return GUI::FileIconProvider::icon_for_executable(thread.current_state.executable);
  232. }
  233. case Column::PID:
  234. return thread.current_state.pid;
  235. case Column::TID:
  236. return thread.current_state.tid;
  237. case Column::PPID:
  238. return thread.current_state.ppid;
  239. case Column::PGID:
  240. return thread.current_state.pgid;
  241. case Column::SID:
  242. return thread.current_state.sid;
  243. case Column::State:
  244. return thread.current_state.state;
  245. case Column::User:
  246. return thread.current_state.user;
  247. case Column::Priority:
  248. return thread.current_state.priority;
  249. case Column::Virtual:
  250. return pretty_byte_size(thread.current_state.amount_virtual);
  251. case Column::Physical:
  252. return pretty_byte_size(thread.current_state.amount_resident);
  253. case Column::DirtyPrivate:
  254. return pretty_byte_size(thread.current_state.amount_dirty_private);
  255. case Column::CleanInode:
  256. return pretty_byte_size(thread.current_state.amount_clean_inode);
  257. case Column::PurgeableVolatile:
  258. return pretty_byte_size(thread.current_state.amount_purgeable_volatile);
  259. case Column::PurgeableNonvolatile:
  260. return pretty_byte_size(thread.current_state.amount_purgeable_nonvolatile);
  261. case Column::CPU:
  262. return String::formatted("{:.2}", thread.current_state.cpu_percent);
  263. case Column::Processor:
  264. return thread.current_state.cpu;
  265. case Column::Name:
  266. if (thread.current_state.kernel)
  267. return String::formatted("{} (*)", thread.current_state.name);
  268. return thread.current_state.name;
  269. case Column::Syscalls:
  270. return thread.current_state.syscall_count;
  271. case Column::InodeFaults:
  272. return thread.current_state.inode_faults;
  273. case Column::ZeroFaults:
  274. return thread.current_state.zero_faults;
  275. case Column::CowFaults:
  276. return thread.current_state.cow_faults;
  277. case Column::IPv4SocketReadBytes:
  278. return thread.current_state.ipv4_socket_read_bytes;
  279. case Column::IPv4SocketWriteBytes:
  280. return thread.current_state.ipv4_socket_write_bytes;
  281. case Column::UnixSocketReadBytes:
  282. return thread.current_state.unix_socket_read_bytes;
  283. case Column::UnixSocketWriteBytes:
  284. return thread.current_state.unix_socket_write_bytes;
  285. case Column::FileReadBytes:
  286. return thread.current_state.file_read_bytes;
  287. case Column::FileWriteBytes:
  288. return thread.current_state.file_write_bytes;
  289. case Column::Pledge:
  290. return thread.current_state.pledge;
  291. case Column::Veil:
  292. return thread.current_state.veil;
  293. }
  294. }
  295. return {};
  296. }
  297. Vector<GUI::ModelIndex> ProcessModel::matches(const StringView& searching, unsigned flags, const GUI::ModelIndex&)
  298. {
  299. Vector<GUI::ModelIndex> found_indices;
  300. for (auto& thread : m_threads) {
  301. if (string_matches(thread.value->current_state.name, searching, flags)) {
  302. auto maybe_tid_index = m_tids.find_first_index(thread.key);
  303. if (!maybe_tid_index.has_value())
  304. continue;
  305. found_indices.append(create_index(maybe_tid_index.value(), Column::Name));
  306. if (flags & FirstMatchOnly)
  307. break;
  308. }
  309. }
  310. return found_indices;
  311. }
  312. void ProcessModel::update()
  313. {
  314. auto previous_tid_count = m_tids.size();
  315. auto all_processes = Core::ProcessStatisticsReader::get_all(m_proc_all);
  316. HashTable<int> live_tids;
  317. u64 sum_time_scheduled = 0, sum_time_scheduled_kernel = 0;
  318. u64 total_time_scheduled_diff = 0;
  319. if (all_processes.has_value()) {
  320. if (m_has_total_scheduled_time)
  321. total_time_scheduled_diff = all_processes->total_time_scheduled - m_total_time_scheduled;
  322. m_total_time_scheduled = all_processes->total_time_scheduled;
  323. m_total_time_scheduled_kernel = all_processes->total_time_scheduled_kernel;
  324. m_has_total_scheduled_time = true;
  325. for (auto& process : all_processes.value().processes) {
  326. for (auto& thread : process.threads) {
  327. ThreadState state;
  328. state.kernel = process.kernel;
  329. state.pid = process.pid;
  330. state.user = process.username;
  331. state.pledge = process.pledge;
  332. state.veil = process.veil;
  333. state.syscall_count = thread.syscall_count;
  334. state.inode_faults = thread.inode_faults;
  335. state.zero_faults = thread.zero_faults;
  336. state.cow_faults = thread.cow_faults;
  337. state.unix_socket_read_bytes = thread.unix_socket_read_bytes;
  338. state.unix_socket_write_bytes = thread.unix_socket_write_bytes;
  339. state.ipv4_socket_read_bytes = thread.ipv4_socket_read_bytes;
  340. state.ipv4_socket_write_bytes = thread.ipv4_socket_write_bytes;
  341. state.file_read_bytes = thread.file_read_bytes;
  342. state.file_write_bytes = thread.file_write_bytes;
  343. state.amount_virtual = process.amount_virtual;
  344. state.amount_resident = process.amount_resident;
  345. state.amount_dirty_private = process.amount_dirty_private;
  346. state.amount_clean_inode = process.amount_clean_inode;
  347. state.amount_purgeable_volatile = process.amount_purgeable_volatile;
  348. state.amount_purgeable_nonvolatile = process.amount_purgeable_nonvolatile;
  349. state.name = thread.name;
  350. state.executable = process.executable;
  351. state.ppid = process.ppid;
  352. state.tid = thread.tid;
  353. state.pgid = process.pgid;
  354. state.sid = process.sid;
  355. state.time_user = thread.time_user;
  356. state.time_kernel = thread.time_kernel;
  357. state.cpu = thread.cpu;
  358. state.cpu_percent = 0;
  359. state.priority = thread.priority;
  360. state.state = thread.state;
  361. sum_time_scheduled += thread.time_user + thread.time_kernel;
  362. sum_time_scheduled_kernel += thread.time_kernel;
  363. auto& thread_data = *m_threads.ensure(thread.tid, [] { return make<Thread>(); });
  364. thread_data.previous_state = move(thread_data.current_state);
  365. thread_data.current_state = move(state);
  366. live_tids.set(thread.tid);
  367. }
  368. }
  369. }
  370. m_tids.clear();
  371. for (auto& c : m_cpus) {
  372. c.total_cpu_percent = 0.0;
  373. c.total_cpu_percent_kernel = 0.0;
  374. }
  375. Vector<int, 16> tids_to_remove;
  376. for (auto& it : m_threads) {
  377. if (!live_tids.contains(it.key)) {
  378. tids_to_remove.append(it.key);
  379. continue;
  380. }
  381. auto& thread = *it.value;
  382. u64 time_scheduled_diff = (thread.current_state.time_user + thread.current_state.time_kernel)
  383. - (thread.previous_state.time_user + thread.previous_state.time_kernel);
  384. u64 time_scheduled_diff_kernel = thread.current_state.time_kernel - thread.previous_state.time_kernel;
  385. thread.current_state.cpu_percent = total_time_scheduled_diff > 0 ? (float)((time_scheduled_diff * 1000) / total_time_scheduled_diff) / 10.0f : 0;
  386. thread.current_state.cpu_percent_kernel = total_time_scheduled_diff > 0 ? (float)((time_scheduled_diff_kernel * 1000) / total_time_scheduled_diff) / 10.0f : 0;
  387. if (it.value->current_state.pid != 0) {
  388. auto& cpu_info = m_cpus[thread.current_state.cpu];
  389. cpu_info.total_cpu_percent += thread.current_state.cpu_percent;
  390. cpu_info.total_cpu_percent_kernel += thread.current_state.cpu_percent_kernel;
  391. m_tids.append(it.key);
  392. }
  393. }
  394. for (auto tid : tids_to_remove)
  395. m_threads.remove(tid);
  396. if (on_cpu_info_change)
  397. on_cpu_info_change(m_cpus);
  398. if (on_state_update)
  399. on_state_update(all_processes.has_value() ? all_processes->processes.size() : 0, m_threads.size());
  400. // FIXME: This is a rather hackish way of invalidating indices.
  401. // It would be good if GUI::Model had a way to orchestrate removal/insertion while preserving indices.
  402. did_update(previous_tid_count == m_tids.size() ? GUI::Model::UpdateFlag::DontInvalidateIndices : GUI::Model::UpdateFlag::InvalidateAllIndices);
  403. }