mod.rs 13 KB

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  1. use std::collections::HashMap;
  2. use std::sync::Arc;
  3. use std::time::Instant;
  4. pub use anyhow::Result;
  5. use parking_lot::Mutex;
  6. use rand::{thread_rng, Rng};
  7. use tokio::time::Duration;
  8. use ruaft::rpcs::register_server;
  9. use ruaft::utils::DropGuard;
  10. use ruaft::{Raft, RpcClient};
  11. pub mod persister;
  12. struct ConfigState {
  13. rafts: Vec<Option<Raft>>,
  14. connected: Vec<bool>,
  15. }
  16. struct LogState {
  17. committed_logs: Vec<Vec<i32>>,
  18. results: Vec<Result<()>>,
  19. max_index: usize,
  20. }
  21. pub struct Config {
  22. network: Arc<std::sync::Mutex<labrpc::Network>>,
  23. server_count: usize,
  24. state: Mutex<ConfigState>,
  25. log: Arc<Mutex<LogState>>,
  26. }
  27. impl Config {
  28. fn server_name(i: usize) -> String {
  29. format!("ruaft-server-{}", i)
  30. }
  31. fn client_name(client: usize, server: usize) -> String {
  32. format!("ruaft-client-{}-to-{}", client, server)
  33. }
  34. pub fn begin<S: std::fmt::Display>(&self, msg: S) {
  35. eprintln!("{}", msg);
  36. }
  37. pub fn check_one_leader(&self) -> Result<usize> {
  38. for _ in 0..10 {
  39. let millis = 450 + thread_rng().gen_range(0, 100);
  40. sleep_millis(millis);
  41. let mut leaders = HashMap::new();
  42. let state = self.state.lock();
  43. for i in 0..self.server_count {
  44. if state.connected[i] {
  45. if let Some(raft) = &state.rafts[i] {
  46. let (term, is_leader) = raft.get_state();
  47. if is_leader {
  48. leaders.entry(term.0).or_insert(vec![]).push(i)
  49. }
  50. }
  51. }
  52. }
  53. let mut last_term_with_leader = 0;
  54. let mut last_leader = 0;
  55. for (term, leaders) in leaders {
  56. if leaders.len() > 1 {
  57. bail!("term {} has {} (>1) leaders", term, leaders.len());
  58. }
  59. if term > last_term_with_leader {
  60. last_term_with_leader = term;
  61. last_leader = leaders[0];
  62. }
  63. }
  64. if last_term_with_leader != 0 {
  65. return Ok(last_leader);
  66. }
  67. }
  68. Err(anyhow!("expected one leader, got none"))
  69. }
  70. pub fn check_no_leader(&self) -> Result<()> {
  71. let state = self.state.lock();
  72. for i in 0..self.server_count {
  73. if state.connected[i] {
  74. if let Some(raft) = &state.rafts[i] {
  75. if raft.get_state().1 {
  76. bail!(
  77. "expected no leader, but {} claims to be leader",
  78. i
  79. );
  80. }
  81. }
  82. }
  83. }
  84. Ok(())
  85. }
  86. pub fn check_terms(&self) -> Result<Option<usize>> {
  87. let mut term = None;
  88. let state = self.state.lock();
  89. for i in 0..self.server_count {
  90. if state.connected[i] {
  91. if let Some(raft) = &state.rafts[i] {
  92. let raft_term = raft.get_state().0;
  93. if let Some(term) = term {
  94. if term != raft_term {
  95. bail!("Servers disagree on term")
  96. }
  97. } else {
  98. term.replace(raft_term);
  99. }
  100. }
  101. }
  102. }
  103. // Unwrap type Term into usize.
  104. Ok(term.map(|term| term.0))
  105. }
  106. /// Returns the number of peers that committed at least `index` commands,
  107. /// as well as the command at the index.
  108. pub fn committed_count(&self, index: usize) -> Result<(usize, i32)> {
  109. let mut count = 0;
  110. let mut cmd = Self::INVALID_COMMAND;
  111. for i in 0..self.server_count {
  112. let log = self.log.lock();
  113. if let Err(e) = &log.results[i] {
  114. bail!(e.to_string())
  115. }
  116. if log.committed_logs[i].len() > index {
  117. let command = log.committed_logs[i][index];
  118. if count > 0 && command != cmd {
  119. bail!(
  120. "committed values do not match: index {}, {}, {}",
  121. index,
  122. cmd,
  123. command
  124. )
  125. }
  126. count += 1;
  127. cmd = command;
  128. }
  129. }
  130. Ok((count, cmd))
  131. }
  132. pub fn wait(
  133. &self,
  134. index: usize,
  135. min_count: usize,
  136. at_term: Option<usize>,
  137. ) -> Result<Option<i32>> {
  138. let mut sleep_time_mills = 10;
  139. for _ in 0..30 {
  140. let (count, _) = self.committed_count(index)?;
  141. if count >= min_count {
  142. break;
  143. }
  144. sleep_millis(sleep_time_mills);
  145. if sleep_time_mills < 1000 {
  146. sleep_time_mills <<= 1;
  147. }
  148. if let Some(at_term) = at_term {
  149. let state = self.state.lock();
  150. for raft in &state.rafts {
  151. if let Some(raft) = raft {
  152. let (term, _) = raft.get_state();
  153. if term.0 > at_term {
  154. return Ok(None);
  155. }
  156. }
  157. }
  158. }
  159. }
  160. let (count, cmd) = self.committed_count(index)?;
  161. if count < min_count {
  162. bail!(
  163. "only {} decided for index {}; wanted {}",
  164. count,
  165. index,
  166. min_count
  167. )
  168. }
  169. Ok(Some(cmd))
  170. }
  171. pub fn one(
  172. &self,
  173. cmd: i32,
  174. expected_servers: usize,
  175. retry: bool,
  176. ) -> Result<usize> {
  177. let start = Instant::now();
  178. let mut cnt = 0;
  179. while start.elapsed() < Duration::from_secs(10) {
  180. let mut first_index = None;
  181. for _ in 0..self.server_count {
  182. cnt += 1;
  183. cnt %= self.server_count;
  184. let state = self.state.lock();
  185. if state.connected[cnt] {
  186. if let Some(raft) = &state.rafts[cnt] {
  187. if let Some((_, index)) =
  188. raft.start(ruaft::Command(cmd))
  189. {
  190. first_index.replace(index);
  191. }
  192. }
  193. }
  194. }
  195. if let Some(index) = first_index {
  196. let agreement_start = Instant::now();
  197. while agreement_start.elapsed() < Duration::from_secs(2) {
  198. let (commit_count, committed_command) =
  199. self.committed_count(index)?;
  200. if commit_count > 0
  201. && commit_count >= expected_servers
  202. && committed_command == cmd
  203. {
  204. return Ok(index);
  205. }
  206. sleep_millis(20);
  207. }
  208. if !retry {
  209. break;
  210. }
  211. } else {
  212. sleep_millis(50);
  213. }
  214. }
  215. Err(anyhow!("one({}) failed to reach agreement", cmd))
  216. }
  217. pub fn connect(&self, index: usize) {
  218. self.set_connect(index, true);
  219. }
  220. pub fn disconnect(&self, index: usize) {
  221. self.set_connect(index, false);
  222. }
  223. pub fn set_connect(&self, index: usize, yes: bool) {
  224. let mut state = self.state.lock();
  225. state.connected[index] = yes;
  226. let mut network = unlock(&self.network);
  227. // Outgoing clients.
  228. for j in 0..self.server_count {
  229. if state.connected[j] {
  230. network.set_enable_client(Self::client_name(index, j), yes)
  231. }
  232. }
  233. // Incoming clients.
  234. for j in 0..self.server_count {
  235. if state.connected[j] {
  236. network.set_enable_client(Self::client_name(j, index), yes);
  237. }
  238. }
  239. }
  240. pub fn crash1(&mut self, index: usize) {
  241. self.disconnect(index);
  242. unlock(self.network.as_ref()).remove_server(Self::server_name(index));
  243. let raft = {
  244. let mut state = self.state.lock();
  245. state.rafts[index].take()
  246. };
  247. if let Some(raft) = raft {
  248. raft.kill();
  249. }
  250. }
  251. pub fn start1(&mut self, index: usize) -> Result<()> {
  252. if self.state.lock().rafts[index].is_some() {
  253. self.crash1(index);
  254. }
  255. let mut clients = vec![];
  256. {
  257. let mut network = unlock(&self.network);
  258. for j in 0..self.server_count {
  259. clients.push(RpcClient::new(network.make_client(
  260. Self::client_name(index, j),
  261. Self::server_name(j),
  262. )))
  263. }
  264. }
  265. let persister = Arc::new(persister::Persister::new());
  266. let log_clone = self.log.clone();
  267. let raft =
  268. Raft::new(clients, index, persister, move |cmd_index, cmd| {
  269. Self::apply_command(log_clone.clone(), index, cmd_index, cmd.0)
  270. });
  271. self.state.lock().rafts[index].replace(raft.clone());
  272. let raft = Arc::new(raft);
  273. register_server(raft, Self::server_name(index), self.network.as_ref())?;
  274. Ok(())
  275. }
  276. /// Start a new command, returns (term, index).
  277. pub fn leader_start(
  278. &self,
  279. leader: usize,
  280. cmd: i32,
  281. ) -> Option<(usize, usize)> {
  282. self.state.lock().rafts[leader]
  283. .as_ref()
  284. .map(|raft| {
  285. raft.start(ruaft::Command(cmd))
  286. .map(|(term, index)| (term.0, index))
  287. })
  288. .unwrap()
  289. }
  290. pub fn total_rpcs(&self) -> usize {
  291. unlock(&self.network).get_total_rpc_count()
  292. }
  293. pub fn end(&self) {}
  294. pub fn cleanup(&self) {
  295. let mut network = unlock(&self.network);
  296. for i in 0..self.server_count {
  297. network.remove_server(Self::server_name(i));
  298. }
  299. for raft in &mut self.state.lock().rafts {
  300. if let Some(raft) = raft.take() {
  301. raft.kill();
  302. }
  303. }
  304. }
  305. pub fn deferred_cleanup(&self) -> impl Drop + '_ {
  306. DropGuard::new(move || self.cleanup())
  307. }
  308. }
  309. impl Config {
  310. const INVALID_COMMAND: i32 = -1;
  311. fn apply_command(
  312. log_state: Arc<Mutex<LogState>>,
  313. server_index: usize,
  314. index: usize,
  315. command: i32,
  316. ) {
  317. let mut log_state = log_state.lock();
  318. let committed_logs = &mut log_state.committed_logs;
  319. let mut err = None;
  320. for (one_index, one_server) in committed_logs.iter().enumerate() {
  321. if one_server.len() > index && one_server[index] != command {
  322. err = Some((
  323. one_index,
  324. Err(anyhow!(
  325. "commit index ={} server={} {} != server={} {}",
  326. index,
  327. server_index,
  328. command,
  329. one_index,
  330. one_server[index],
  331. )),
  332. ));
  333. break;
  334. }
  335. }
  336. let one_server = &mut committed_logs[server_index];
  337. if one_server.len() <= index {
  338. one_server.resize(index + 1, Self::INVALID_COMMAND);
  339. }
  340. one_server[index] = command;
  341. if index > 1 && one_server[index - 1] == Self::INVALID_COMMAND {
  342. log_state.results[server_index] = Err(anyhow!(
  343. "server {} apply out of order {}",
  344. server_index,
  345. index
  346. ));
  347. } else if let Some((one_index, err)) = err {
  348. log_state.results[one_index] = err
  349. }
  350. if index > log_state.max_index {
  351. log_state.max_index = index;
  352. }
  353. }
  354. }
  355. fn unlock<T>(locked: &std::sync::Mutex<T>) -> std::sync::MutexGuard<T> {
  356. locked.lock().expect("Unlocking network should not fail")
  357. }
  358. pub fn make_config(server_count: usize, unreliable: bool) -> Config {
  359. let network = labrpc::Network::run_daemon();
  360. {
  361. let mut unlocked_network = unlock(&network);
  362. unlocked_network.set_reliable(!unreliable);
  363. unlocked_network.set_long_delays(true);
  364. }
  365. let state = Mutex::new(ConfigState {
  366. rafts: vec![None; server_count],
  367. connected: vec![true; server_count],
  368. });
  369. let log = Arc::new(Mutex::new(LogState {
  370. committed_logs: vec![vec![]; server_count],
  371. results: vec![],
  372. max_index: 0,
  373. }));
  374. log.lock().results.resize_with(server_count, || Ok(()));
  375. let mut cfg = Config {
  376. network,
  377. server_count,
  378. state,
  379. log,
  380. };
  381. for i in 0..server_count {
  382. cfg.start1(i).expect("Starting server should not fail");
  383. }
  384. cfg
  385. }
  386. pub fn sleep_millis(mills: u64) {
  387. std::thread::sleep(std::time::Duration::from_millis(mills))
  388. }
  389. const LONG_ELECTION_TIMEOUT_MILLIS: u64 = 1000;
  390. pub fn sleep_election_timeouts(count: u64) {
  391. sleep_millis(LONG_ELECTION_TIMEOUT_MILLIS * count)
  392. }