raft_test.go 127 KB

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  1. // Copyright 2015 The etcd Authors
  2. //
  3. // Licensed under the Apache License, Version 2.0 (the "License");
  4. // you may not use this file except in compliance with the License.
  5. // You may obtain a copy of the License at
  6. //
  7. // http://www.apache.org/licenses/LICENSE-2.0
  8. //
  9. // Unless required by applicable law or agreed to in writing, software
  10. // distributed under the License is distributed on an "AS IS" BASIS,
  11. // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  12. // See the License for the specific language governing permissions and
  13. // limitations under the License.
  14. package raft
  15. import (
  16. "bytes"
  17. "fmt"
  18. "math"
  19. "math/rand"
  20. "reflect"
  21. "strings"
  22. "testing"
  23. pb "go.etcd.io/etcd/raft/raftpb"
  24. "go.etcd.io/etcd/raft/tracker"
  25. )
  26. // nextEnts returns the appliable entries and updates the applied index
  27. func nextEnts(r *raft, s *MemoryStorage) (ents []pb.Entry) {
  28. // Transfer all unstable entries to "stable" storage.
  29. s.Append(r.raftLog.unstableEntries())
  30. r.raftLog.stableTo(r.raftLog.lastIndex(), r.raftLog.lastTerm())
  31. ents = r.raftLog.nextEnts()
  32. r.raftLog.appliedTo(r.raftLog.committed)
  33. return ents
  34. }
  35. func mustAppendEntry(r *raft, ents ...pb.Entry) {
  36. if !r.appendEntry(ents...) {
  37. panic("entry unexpectedly dropped")
  38. }
  39. }
  40. type stateMachine interface {
  41. Step(m pb.Message) error
  42. readMessages() []pb.Message
  43. }
  44. func (r *raft) readMessages() []pb.Message {
  45. msgs := r.msgs
  46. r.msgs = make([]pb.Message, 0)
  47. return msgs
  48. }
  49. func TestProgressLeader(t *testing.T) {
  50. r := newTestRaft(1, []uint64{1, 2}, 5, 1, NewMemoryStorage())
  51. r.becomeCandidate()
  52. r.becomeLeader()
  53. r.prs.Progress[2].BecomeReplicate()
  54. // Send proposals to r1. The first 5 entries should be appended to the log.
  55. propMsg := pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("foo")}}}
  56. for i := 0; i < 5; i++ {
  57. if pr := r.prs.Progress[r.id]; pr.State != tracker.StateReplicate || pr.Match != uint64(i+1) || pr.Next != pr.Match+1 {
  58. t.Errorf("unexpected progress %v", pr)
  59. }
  60. if err := r.Step(propMsg); err != nil {
  61. t.Fatalf("proposal resulted in error: %v", err)
  62. }
  63. }
  64. }
  65. // TestProgressResumeByHeartbeatResp ensures raft.heartbeat reset progress.paused by heartbeat response.
  66. func TestProgressResumeByHeartbeatResp(t *testing.T) {
  67. r := newTestRaft(1, []uint64{1, 2}, 5, 1, NewMemoryStorage())
  68. r.becomeCandidate()
  69. r.becomeLeader()
  70. r.prs.Progress[2].ProbeSent = true
  71. r.Step(pb.Message{From: 1, To: 1, Type: pb.MsgBeat})
  72. if !r.prs.Progress[2].ProbeSent {
  73. t.Errorf("paused = %v, want true", r.prs.Progress[2].ProbeSent)
  74. }
  75. r.prs.Progress[2].BecomeReplicate()
  76. r.Step(pb.Message{From: 2, To: 1, Type: pb.MsgHeartbeatResp})
  77. if r.prs.Progress[2].ProbeSent {
  78. t.Errorf("paused = %v, want false", r.prs.Progress[2].ProbeSent)
  79. }
  80. }
  81. func TestProgressPaused(t *testing.T) {
  82. r := newTestRaft(1, []uint64{1, 2}, 5, 1, NewMemoryStorage())
  83. r.becomeCandidate()
  84. r.becomeLeader()
  85. r.Step(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}})
  86. r.Step(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}})
  87. r.Step(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}})
  88. ms := r.readMessages()
  89. if len(ms) != 1 {
  90. t.Errorf("len(ms) = %d, want 1", len(ms))
  91. }
  92. }
  93. func TestProgressFlowControl(t *testing.T) {
  94. cfg := newTestConfig(1, []uint64{1, 2}, 5, 1, NewMemoryStorage())
  95. cfg.MaxInflightMsgs = 3
  96. cfg.MaxSizePerMsg = 2048
  97. r := newRaft(cfg)
  98. r.becomeCandidate()
  99. r.becomeLeader()
  100. // Throw away all the messages relating to the initial election.
  101. r.readMessages()
  102. // While node 2 is in probe state, propose a bunch of entries.
  103. r.prs.Progress[2].BecomeProbe()
  104. blob := []byte(strings.Repeat("a", 1000))
  105. for i := 0; i < 10; i++ {
  106. r.Step(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: blob}}})
  107. }
  108. ms := r.readMessages()
  109. // First append has two entries: the empty entry to confirm the
  110. // election, and the first proposal (only one proposal gets sent
  111. // because we're in probe state).
  112. if len(ms) != 1 || ms[0].Type != pb.MsgApp {
  113. t.Fatalf("expected 1 MsgApp, got %v", ms)
  114. }
  115. if len(ms[0].Entries) != 2 {
  116. t.Fatalf("expected 2 entries, got %d", len(ms[0].Entries))
  117. }
  118. if len(ms[0].Entries[0].Data) != 0 || len(ms[0].Entries[1].Data) != 1000 {
  119. t.Fatalf("unexpected entry sizes: %v", ms[0].Entries)
  120. }
  121. // When this append is acked, we change to replicate state and can
  122. // send multiple messages at once.
  123. r.Step(pb.Message{From: 2, To: 1, Type: pb.MsgAppResp, Index: ms[0].Entries[1].Index})
  124. ms = r.readMessages()
  125. if len(ms) != 3 {
  126. t.Fatalf("expected 3 messages, got %d", len(ms))
  127. }
  128. for i, m := range ms {
  129. if m.Type != pb.MsgApp {
  130. t.Errorf("%d: expected MsgApp, got %s", i, m.Type)
  131. }
  132. if len(m.Entries) != 2 {
  133. t.Errorf("%d: expected 2 entries, got %d", i, len(m.Entries))
  134. }
  135. }
  136. // Ack all three of those messages together and get the last two
  137. // messages (containing three entries).
  138. r.Step(pb.Message{From: 2, To: 1, Type: pb.MsgAppResp, Index: ms[2].Entries[1].Index})
  139. ms = r.readMessages()
  140. if len(ms) != 2 {
  141. t.Fatalf("expected 2 messages, got %d", len(ms))
  142. }
  143. for i, m := range ms {
  144. if m.Type != pb.MsgApp {
  145. t.Errorf("%d: expected MsgApp, got %s", i, m.Type)
  146. }
  147. }
  148. if len(ms[0].Entries) != 2 {
  149. t.Errorf("%d: expected 2 entries, got %d", 0, len(ms[0].Entries))
  150. }
  151. if len(ms[1].Entries) != 1 {
  152. t.Errorf("%d: expected 1 entry, got %d", 1, len(ms[1].Entries))
  153. }
  154. }
  155. func TestUncommittedEntryLimit(t *testing.T) {
  156. // Use a relatively large number of entries here to prevent regression of a
  157. // bug which computed the size before it was fixed. This test would fail
  158. // with the bug, either because we'd get dropped proposals earlier than we
  159. // expect them, or because the final tally ends up nonzero. (At the time of
  160. // writing, the former).
  161. const maxEntries = 1024
  162. testEntry := pb.Entry{Data: []byte("testdata")}
  163. maxEntrySize := maxEntries * PayloadSize(testEntry)
  164. cfg := newTestConfig(1, []uint64{1, 2, 3}, 5, 1, NewMemoryStorage())
  165. cfg.MaxUncommittedEntriesSize = uint64(maxEntrySize)
  166. cfg.MaxInflightMsgs = 2 * 1024 // avoid interference
  167. r := newRaft(cfg)
  168. r.becomeCandidate()
  169. r.becomeLeader()
  170. if n := r.uncommittedSize; n != 0 {
  171. t.Fatalf("expected zero uncommitted size, got %d bytes", n)
  172. }
  173. // Set the two followers to the replicate state. Commit to tail of log.
  174. const numFollowers = 2
  175. r.prs.Progress[2].BecomeReplicate()
  176. r.prs.Progress[3].BecomeReplicate()
  177. r.uncommittedSize = 0
  178. // Send proposals to r1. The first 5 entries should be appended to the log.
  179. propMsg := pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{testEntry}}
  180. propEnts := make([]pb.Entry, maxEntries)
  181. for i := 0; i < maxEntries; i++ {
  182. if err := r.Step(propMsg); err != nil {
  183. t.Fatalf("proposal resulted in error: %v", err)
  184. }
  185. propEnts[i] = testEntry
  186. }
  187. // Send one more proposal to r1. It should be rejected.
  188. if err := r.Step(propMsg); err != ErrProposalDropped {
  189. t.Fatalf("proposal not dropped: %v", err)
  190. }
  191. // Read messages and reduce the uncommitted size as if we had committed
  192. // these entries.
  193. ms := r.readMessages()
  194. if e := maxEntries * numFollowers; len(ms) != e {
  195. t.Fatalf("expected %d messages, got %d", e, len(ms))
  196. }
  197. r.reduceUncommittedSize(propEnts)
  198. if r.uncommittedSize != 0 {
  199. t.Fatalf("committed everything, but still tracking %d", r.uncommittedSize)
  200. }
  201. // Send a single large proposal to r1. Should be accepted even though it
  202. // pushes us above the limit because we were beneath it before the proposal.
  203. propEnts = make([]pb.Entry, 2*maxEntries)
  204. for i := range propEnts {
  205. propEnts[i] = testEntry
  206. }
  207. propMsgLarge := pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: propEnts}
  208. if err := r.Step(propMsgLarge); err != nil {
  209. t.Fatalf("proposal resulted in error: %v", err)
  210. }
  211. // Send one more proposal to r1. It should be rejected, again.
  212. if err := r.Step(propMsg); err != ErrProposalDropped {
  213. t.Fatalf("proposal not dropped: %v", err)
  214. }
  215. // Read messages and reduce the uncommitted size as if we had committed
  216. // these entries.
  217. ms = r.readMessages()
  218. if e := 1 * numFollowers; len(ms) != e {
  219. t.Fatalf("expected %d messages, got %d", e, len(ms))
  220. }
  221. r.reduceUncommittedSize(propEnts)
  222. if n := r.uncommittedSize; n != 0 {
  223. t.Fatalf("expected zero uncommitted size, got %d", n)
  224. }
  225. }
  226. func TestLeaderElection(t *testing.T) {
  227. testLeaderElection(t, false)
  228. }
  229. func TestLeaderElectionPreVote(t *testing.T) {
  230. testLeaderElection(t, true)
  231. }
  232. func testLeaderElection(t *testing.T, preVote bool) {
  233. var cfg func(*Config)
  234. candState := StateCandidate
  235. candTerm := uint64(1)
  236. if preVote {
  237. cfg = preVoteConfig
  238. // In pre-vote mode, an election that fails to complete
  239. // leaves the node in pre-candidate state without advancing
  240. // the term.
  241. candState = StatePreCandidate
  242. candTerm = 0
  243. }
  244. tests := []struct {
  245. *network
  246. state StateType
  247. expTerm uint64
  248. }{
  249. {newNetworkWithConfig(cfg, nil, nil, nil), StateLeader, 1},
  250. {newNetworkWithConfig(cfg, nil, nil, nopStepper), StateLeader, 1},
  251. {newNetworkWithConfig(cfg, nil, nopStepper, nopStepper), candState, candTerm},
  252. {newNetworkWithConfig(cfg, nil, nopStepper, nopStepper, nil), candState, candTerm},
  253. {newNetworkWithConfig(cfg, nil, nopStepper, nopStepper, nil, nil), StateLeader, 1},
  254. // three logs further along than 0, but in the same term so rejections
  255. // are returned instead of the votes being ignored.
  256. {newNetworkWithConfig(cfg,
  257. nil, entsWithConfig(cfg, 1), entsWithConfig(cfg, 1), entsWithConfig(cfg, 1, 1), nil),
  258. StateFollower, 1},
  259. }
  260. for i, tt := range tests {
  261. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  262. sm := tt.network.peers[1].(*raft)
  263. if sm.state != tt.state {
  264. t.Errorf("#%d: state = %s, want %s", i, sm.state, tt.state)
  265. }
  266. if g := sm.Term; g != tt.expTerm {
  267. t.Errorf("#%d: term = %d, want %d", i, g, tt.expTerm)
  268. }
  269. }
  270. }
  271. // TestLearnerElectionTimeout verfies that the leader should not start election even
  272. // when times out.
  273. func TestLearnerElectionTimeout(t *testing.T) {
  274. n1 := newTestLearnerRaft(1, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  275. n2 := newTestLearnerRaft(2, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  276. n1.becomeFollower(1, None)
  277. n2.becomeFollower(1, None)
  278. // n2 is learner. Learner should not start election even when times out.
  279. setRandomizedElectionTimeout(n2, n2.electionTimeout)
  280. for i := 0; i < n2.electionTimeout; i++ {
  281. n2.tick()
  282. }
  283. if n2.state != StateFollower {
  284. t.Errorf("peer 2 state: %s, want %s", n2.state, StateFollower)
  285. }
  286. }
  287. // TestLearnerPromotion verifies that the learner should not election until
  288. // it is promoted to a normal peer.
  289. func TestLearnerPromotion(t *testing.T) {
  290. n1 := newTestLearnerRaft(1, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  291. n2 := newTestLearnerRaft(2, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  292. n1.becomeFollower(1, None)
  293. n2.becomeFollower(1, None)
  294. nt := newNetwork(n1, n2)
  295. if n1.state == StateLeader {
  296. t.Error("peer 1 state is leader, want not", n1.state)
  297. }
  298. // n1 should become leader
  299. setRandomizedElectionTimeout(n1, n1.electionTimeout)
  300. for i := 0; i < n1.electionTimeout; i++ {
  301. n1.tick()
  302. }
  303. if n1.state != StateLeader {
  304. t.Errorf("peer 1 state: %s, want %s", n1.state, StateLeader)
  305. }
  306. if n2.state != StateFollower {
  307. t.Errorf("peer 2 state: %s, want %s", n2.state, StateFollower)
  308. }
  309. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgBeat})
  310. n1.applyConfChange(pb.ConfChange{NodeID: 2, Type: pb.ConfChangeAddNode})
  311. n2.applyConfChange(pb.ConfChange{NodeID: 2, Type: pb.ConfChangeAddNode})
  312. if n2.isLearner {
  313. t.Error("peer 2 is learner, want not")
  314. }
  315. // n2 start election, should become leader
  316. setRandomizedElectionTimeout(n2, n2.electionTimeout)
  317. for i := 0; i < n2.electionTimeout; i++ {
  318. n2.tick()
  319. }
  320. nt.send(pb.Message{From: 2, To: 2, Type: pb.MsgBeat})
  321. if n1.state != StateFollower {
  322. t.Errorf("peer 1 state: %s, want %s", n1.state, StateFollower)
  323. }
  324. if n2.state != StateLeader {
  325. t.Errorf("peer 2 state: %s, want %s", n2.state, StateLeader)
  326. }
  327. }
  328. // TestLearnerCannotVote checks that a learner can't vote even it receives a valid Vote request.
  329. func TestLearnerCannotVote(t *testing.T) {
  330. n2 := newTestLearnerRaft(2, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  331. n2.becomeFollower(1, None)
  332. n2.Step(pb.Message{From: 1, To: 2, Term: 2, Type: pb.MsgVote, LogTerm: 11, Index: 11})
  333. if len(n2.msgs) != 0 {
  334. t.Errorf("expect learner not to vote, but received %v messages", n2.msgs)
  335. }
  336. }
  337. func TestLeaderCycle(t *testing.T) {
  338. testLeaderCycle(t, false)
  339. }
  340. func TestLeaderCyclePreVote(t *testing.T) {
  341. testLeaderCycle(t, true)
  342. }
  343. // testLeaderCycle verifies that each node in a cluster can campaign
  344. // and be elected in turn. This ensures that elections (including
  345. // pre-vote) work when not starting from a clean slate (as they do in
  346. // TestLeaderElection)
  347. func testLeaderCycle(t *testing.T, preVote bool) {
  348. var cfg func(*Config)
  349. if preVote {
  350. cfg = preVoteConfig
  351. }
  352. n := newNetworkWithConfig(cfg, nil, nil, nil)
  353. for campaignerID := uint64(1); campaignerID <= 3; campaignerID++ {
  354. n.send(pb.Message{From: campaignerID, To: campaignerID, Type: pb.MsgHup})
  355. for _, peer := range n.peers {
  356. sm := peer.(*raft)
  357. if sm.id == campaignerID && sm.state != StateLeader {
  358. t.Errorf("preVote=%v: campaigning node %d state = %v, want StateLeader",
  359. preVote, sm.id, sm.state)
  360. } else if sm.id != campaignerID && sm.state != StateFollower {
  361. t.Errorf("preVote=%v: after campaign of node %d, "+
  362. "node %d had state = %v, want StateFollower",
  363. preVote, campaignerID, sm.id, sm.state)
  364. }
  365. }
  366. }
  367. }
  368. // TestLeaderElectionOverwriteNewerLogs tests a scenario in which a
  369. // newly-elected leader does *not* have the newest (i.e. highest term)
  370. // log entries, and must overwrite higher-term log entries with
  371. // lower-term ones.
  372. func TestLeaderElectionOverwriteNewerLogs(t *testing.T) {
  373. testLeaderElectionOverwriteNewerLogs(t, false)
  374. }
  375. func TestLeaderElectionOverwriteNewerLogsPreVote(t *testing.T) {
  376. testLeaderElectionOverwriteNewerLogs(t, true)
  377. }
  378. func testLeaderElectionOverwriteNewerLogs(t *testing.T, preVote bool) {
  379. var cfg func(*Config)
  380. if preVote {
  381. cfg = preVoteConfig
  382. }
  383. // This network represents the results of the following sequence of
  384. // events:
  385. // - Node 1 won the election in term 1.
  386. // - Node 1 replicated a log entry to node 2 but died before sending
  387. // it to other nodes.
  388. // - Node 3 won the second election in term 2.
  389. // - Node 3 wrote an entry to its logs but died without sending it
  390. // to any other nodes.
  391. //
  392. // At this point, nodes 1, 2, and 3 all have uncommitted entries in
  393. // their logs and could win an election at term 3. The winner's log
  394. // entry overwrites the losers'. (TestLeaderSyncFollowerLog tests
  395. // the case where older log entries are overwritten, so this test
  396. // focuses on the case where the newer entries are lost).
  397. n := newNetworkWithConfig(cfg,
  398. entsWithConfig(cfg, 1), // Node 1: Won first election
  399. entsWithConfig(cfg, 1), // Node 2: Got logs from node 1
  400. entsWithConfig(cfg, 2), // Node 3: Won second election
  401. votedWithConfig(cfg, 3, 2), // Node 4: Voted but didn't get logs
  402. votedWithConfig(cfg, 3, 2)) // Node 5: Voted but didn't get logs
  403. // Node 1 campaigns. The election fails because a quorum of nodes
  404. // know about the election that already happened at term 2. Node 1's
  405. // term is pushed ahead to 2.
  406. n.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  407. sm1 := n.peers[1].(*raft)
  408. if sm1.state != StateFollower {
  409. t.Errorf("state = %s, want StateFollower", sm1.state)
  410. }
  411. if sm1.Term != 2 {
  412. t.Errorf("term = %d, want 2", sm1.Term)
  413. }
  414. // Node 1 campaigns again with a higher term. This time it succeeds.
  415. n.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  416. if sm1.state != StateLeader {
  417. t.Errorf("state = %s, want StateLeader", sm1.state)
  418. }
  419. if sm1.Term != 3 {
  420. t.Errorf("term = %d, want 3", sm1.Term)
  421. }
  422. // Now all nodes agree on a log entry with term 1 at index 1 (and
  423. // term 3 at index 2).
  424. for i := range n.peers {
  425. sm := n.peers[i].(*raft)
  426. entries := sm.raftLog.allEntries()
  427. if len(entries) != 2 {
  428. t.Fatalf("node %d: len(entries) == %d, want 2", i, len(entries))
  429. }
  430. if entries[0].Term != 1 {
  431. t.Errorf("node %d: term at index 1 == %d, want 1", i, entries[0].Term)
  432. }
  433. if entries[1].Term != 3 {
  434. t.Errorf("node %d: term at index 2 == %d, want 3", i, entries[1].Term)
  435. }
  436. }
  437. }
  438. func TestVoteFromAnyState(t *testing.T) {
  439. testVoteFromAnyState(t, pb.MsgVote)
  440. }
  441. func TestPreVoteFromAnyState(t *testing.T) {
  442. testVoteFromAnyState(t, pb.MsgPreVote)
  443. }
  444. func testVoteFromAnyState(t *testing.T, vt pb.MessageType) {
  445. for st := StateType(0); st < numStates; st++ {
  446. r := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  447. r.Term = 1
  448. switch st {
  449. case StateFollower:
  450. r.becomeFollower(r.Term, 3)
  451. case StatePreCandidate:
  452. r.becomePreCandidate()
  453. case StateCandidate:
  454. r.becomeCandidate()
  455. case StateLeader:
  456. r.becomeCandidate()
  457. r.becomeLeader()
  458. }
  459. // Note that setting our state above may have advanced r.Term
  460. // past its initial value.
  461. origTerm := r.Term
  462. newTerm := r.Term + 1
  463. msg := pb.Message{
  464. From: 2,
  465. To: 1,
  466. Type: vt,
  467. Term: newTerm,
  468. LogTerm: newTerm,
  469. Index: 42,
  470. }
  471. if err := r.Step(msg); err != nil {
  472. t.Errorf("%s,%s: Step failed: %s", vt, st, err)
  473. }
  474. if len(r.msgs) != 1 {
  475. t.Errorf("%s,%s: %d response messages, want 1: %+v", vt, st, len(r.msgs), r.msgs)
  476. } else {
  477. resp := r.msgs[0]
  478. if resp.Type != voteRespMsgType(vt) {
  479. t.Errorf("%s,%s: response message is %s, want %s",
  480. vt, st, resp.Type, voteRespMsgType(vt))
  481. }
  482. if resp.Reject {
  483. t.Errorf("%s,%s: unexpected rejection", vt, st)
  484. }
  485. }
  486. // If this was a real vote, we reset our state and term.
  487. if vt == pb.MsgVote {
  488. if r.state != StateFollower {
  489. t.Errorf("%s,%s: state %s, want %s", vt, st, r.state, StateFollower)
  490. }
  491. if r.Term != newTerm {
  492. t.Errorf("%s,%s: term %d, want %d", vt, st, r.Term, newTerm)
  493. }
  494. if r.Vote != 2 {
  495. t.Errorf("%s,%s: vote %d, want 2", vt, st, r.Vote)
  496. }
  497. } else {
  498. // In a prevote, nothing changes.
  499. if r.state != st {
  500. t.Errorf("%s,%s: state %s, want %s", vt, st, r.state, st)
  501. }
  502. if r.Term != origTerm {
  503. t.Errorf("%s,%s: term %d, want %d", vt, st, r.Term, origTerm)
  504. }
  505. // if st == StateFollower or StatePreCandidate, r hasn't voted yet.
  506. // In StateCandidate or StateLeader, it's voted for itself.
  507. if r.Vote != None && r.Vote != 1 {
  508. t.Errorf("%s,%s: vote %d, want %d or 1", vt, st, r.Vote, None)
  509. }
  510. }
  511. }
  512. }
  513. func TestLogReplication(t *testing.T) {
  514. tests := []struct {
  515. *network
  516. msgs []pb.Message
  517. wcommitted uint64
  518. }{
  519. {
  520. newNetwork(nil, nil, nil),
  521. []pb.Message{
  522. {From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}},
  523. },
  524. 2,
  525. },
  526. {
  527. newNetwork(nil, nil, nil),
  528. []pb.Message{
  529. {From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}},
  530. {From: 1, To: 2, Type: pb.MsgHup},
  531. {From: 1, To: 2, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}},
  532. },
  533. 4,
  534. },
  535. }
  536. for i, tt := range tests {
  537. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  538. for _, m := range tt.msgs {
  539. tt.send(m)
  540. }
  541. for j, x := range tt.network.peers {
  542. sm := x.(*raft)
  543. if sm.raftLog.committed != tt.wcommitted {
  544. t.Errorf("#%d.%d: committed = %d, want %d", i, j, sm.raftLog.committed, tt.wcommitted)
  545. }
  546. ents := []pb.Entry{}
  547. for _, e := range nextEnts(sm, tt.network.storage[j]) {
  548. if e.Data != nil {
  549. ents = append(ents, e)
  550. }
  551. }
  552. props := []pb.Message{}
  553. for _, m := range tt.msgs {
  554. if m.Type == pb.MsgProp {
  555. props = append(props, m)
  556. }
  557. }
  558. for k, m := range props {
  559. if !bytes.Equal(ents[k].Data, m.Entries[0].Data) {
  560. t.Errorf("#%d.%d: data = %d, want %d", i, j, ents[k].Data, m.Entries[0].Data)
  561. }
  562. }
  563. }
  564. }
  565. }
  566. // TestLearnerLogReplication tests that a learner can receive entries from the leader.
  567. func TestLearnerLogReplication(t *testing.T) {
  568. n1 := newTestLearnerRaft(1, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  569. n2 := newTestLearnerRaft(2, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  570. nt := newNetwork(n1, n2)
  571. n1.becomeFollower(1, None)
  572. n2.becomeFollower(1, None)
  573. setRandomizedElectionTimeout(n1, n1.electionTimeout)
  574. for i := 0; i < n1.electionTimeout; i++ {
  575. n1.tick()
  576. }
  577. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgBeat})
  578. // n1 is leader and n2 is learner
  579. if n1.state != StateLeader {
  580. t.Errorf("peer 1 state: %s, want %s", n1.state, StateLeader)
  581. }
  582. if !n2.isLearner {
  583. t.Error("peer 2 state: not learner, want yes")
  584. }
  585. nextCommitted := n1.raftLog.committed + 1
  586. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}})
  587. if n1.raftLog.committed != nextCommitted {
  588. t.Errorf("peer 1 wants committed to %d, but still %d", nextCommitted, n1.raftLog.committed)
  589. }
  590. if n1.raftLog.committed != n2.raftLog.committed {
  591. t.Errorf("peer 2 wants committed to %d, but still %d", n1.raftLog.committed, n2.raftLog.committed)
  592. }
  593. match := n1.prs.Progress[2].Match
  594. if match != n2.raftLog.committed {
  595. t.Errorf("progress 2 of leader 1 wants match %d, but got %d", n2.raftLog.committed, match)
  596. }
  597. }
  598. func TestSingleNodeCommit(t *testing.T) {
  599. tt := newNetwork(nil)
  600. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  601. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("some data")}}})
  602. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("some data")}}})
  603. sm := tt.peers[1].(*raft)
  604. if sm.raftLog.committed != 3 {
  605. t.Errorf("committed = %d, want %d", sm.raftLog.committed, 3)
  606. }
  607. }
  608. // TestCannotCommitWithoutNewTermEntry tests the entries cannot be committed
  609. // when leader changes, no new proposal comes in and ChangeTerm proposal is
  610. // filtered.
  611. func TestCannotCommitWithoutNewTermEntry(t *testing.T) {
  612. tt := newNetwork(nil, nil, nil, nil, nil)
  613. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  614. // 0 cannot reach 2,3,4
  615. tt.cut(1, 3)
  616. tt.cut(1, 4)
  617. tt.cut(1, 5)
  618. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("some data")}}})
  619. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("some data")}}})
  620. sm := tt.peers[1].(*raft)
  621. if sm.raftLog.committed != 1 {
  622. t.Errorf("committed = %d, want %d", sm.raftLog.committed, 1)
  623. }
  624. // network recovery
  625. tt.recover()
  626. // avoid committing ChangeTerm proposal
  627. tt.ignore(pb.MsgApp)
  628. // elect 2 as the new leader with term 2
  629. tt.send(pb.Message{From: 2, To: 2, Type: pb.MsgHup})
  630. // no log entries from previous term should be committed
  631. sm = tt.peers[2].(*raft)
  632. if sm.raftLog.committed != 1 {
  633. t.Errorf("committed = %d, want %d", sm.raftLog.committed, 1)
  634. }
  635. tt.recover()
  636. // send heartbeat; reset wait
  637. tt.send(pb.Message{From: 2, To: 2, Type: pb.MsgBeat})
  638. // append an entry at current term
  639. tt.send(pb.Message{From: 2, To: 2, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("some data")}}})
  640. // expect the committed to be advanced
  641. if sm.raftLog.committed != 5 {
  642. t.Errorf("committed = %d, want %d", sm.raftLog.committed, 5)
  643. }
  644. }
  645. // TestCommitWithoutNewTermEntry tests the entries could be committed
  646. // when leader changes, no new proposal comes in.
  647. func TestCommitWithoutNewTermEntry(t *testing.T) {
  648. tt := newNetwork(nil, nil, nil, nil, nil)
  649. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  650. // 0 cannot reach 2,3,4
  651. tt.cut(1, 3)
  652. tt.cut(1, 4)
  653. tt.cut(1, 5)
  654. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("some data")}}})
  655. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("some data")}}})
  656. sm := tt.peers[1].(*raft)
  657. if sm.raftLog.committed != 1 {
  658. t.Errorf("committed = %d, want %d", sm.raftLog.committed, 1)
  659. }
  660. // network recovery
  661. tt.recover()
  662. // elect 2 as the new leader with term 2
  663. // after append a ChangeTerm entry from the current term, all entries
  664. // should be committed
  665. tt.send(pb.Message{From: 2, To: 2, Type: pb.MsgHup})
  666. if sm.raftLog.committed != 4 {
  667. t.Errorf("committed = %d, want %d", sm.raftLog.committed, 4)
  668. }
  669. }
  670. func TestDuelingCandidates(t *testing.T) {
  671. a := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  672. b := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  673. c := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  674. nt := newNetwork(a, b, c)
  675. nt.cut(1, 3)
  676. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  677. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  678. // 1 becomes leader since it receives votes from 1 and 2
  679. sm := nt.peers[1].(*raft)
  680. if sm.state != StateLeader {
  681. t.Errorf("state = %s, want %s", sm.state, StateLeader)
  682. }
  683. // 3 stays as candidate since it receives a vote from 3 and a rejection from 2
  684. sm = nt.peers[3].(*raft)
  685. if sm.state != StateCandidate {
  686. t.Errorf("state = %s, want %s", sm.state, StateCandidate)
  687. }
  688. nt.recover()
  689. // candidate 3 now increases its term and tries to vote again
  690. // we expect it to disrupt the leader 1 since it has a higher term
  691. // 3 will be follower again since both 1 and 2 rejects its vote request since 3 does not have a long enough log
  692. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  693. wlog := &raftLog{
  694. storage: &MemoryStorage{ents: []pb.Entry{{}, {Data: nil, Term: 1, Index: 1}}},
  695. committed: 1,
  696. unstable: unstable{offset: 2},
  697. }
  698. tests := []struct {
  699. sm *raft
  700. state StateType
  701. term uint64
  702. raftLog *raftLog
  703. }{
  704. {a, StateFollower, 2, wlog},
  705. {b, StateFollower, 2, wlog},
  706. {c, StateFollower, 2, newLog(NewMemoryStorage(), raftLogger)},
  707. }
  708. for i, tt := range tests {
  709. if g := tt.sm.state; g != tt.state {
  710. t.Errorf("#%d: state = %s, want %s", i, g, tt.state)
  711. }
  712. if g := tt.sm.Term; g != tt.term {
  713. t.Errorf("#%d: term = %d, want %d", i, g, tt.term)
  714. }
  715. base := ltoa(tt.raftLog)
  716. if sm, ok := nt.peers[1+uint64(i)].(*raft); ok {
  717. l := ltoa(sm.raftLog)
  718. if g := diffu(base, l); g != "" {
  719. t.Errorf("#%d: diff:\n%s", i, g)
  720. }
  721. } else {
  722. t.Logf("#%d: empty log", i)
  723. }
  724. }
  725. }
  726. func TestDuelingPreCandidates(t *testing.T) {
  727. cfgA := newTestConfig(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  728. cfgB := newTestConfig(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  729. cfgC := newTestConfig(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  730. cfgA.PreVote = true
  731. cfgB.PreVote = true
  732. cfgC.PreVote = true
  733. a := newRaft(cfgA)
  734. b := newRaft(cfgB)
  735. c := newRaft(cfgC)
  736. nt := newNetwork(a, b, c)
  737. nt.cut(1, 3)
  738. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  739. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  740. // 1 becomes leader since it receives votes from 1 and 2
  741. sm := nt.peers[1].(*raft)
  742. if sm.state != StateLeader {
  743. t.Errorf("state = %s, want %s", sm.state, StateLeader)
  744. }
  745. // 3 campaigns then reverts to follower when its PreVote is rejected
  746. sm = nt.peers[3].(*raft)
  747. if sm.state != StateFollower {
  748. t.Errorf("state = %s, want %s", sm.state, StateFollower)
  749. }
  750. nt.recover()
  751. // Candidate 3 now increases its term and tries to vote again.
  752. // With PreVote, it does not disrupt the leader.
  753. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  754. wlog := &raftLog{
  755. storage: &MemoryStorage{ents: []pb.Entry{{}, {Data: nil, Term: 1, Index: 1}}},
  756. committed: 1,
  757. unstable: unstable{offset: 2},
  758. }
  759. tests := []struct {
  760. sm *raft
  761. state StateType
  762. term uint64
  763. raftLog *raftLog
  764. }{
  765. {a, StateLeader, 1, wlog},
  766. {b, StateFollower, 1, wlog},
  767. {c, StateFollower, 1, newLog(NewMemoryStorage(), raftLogger)},
  768. }
  769. for i, tt := range tests {
  770. if g := tt.sm.state; g != tt.state {
  771. t.Errorf("#%d: state = %s, want %s", i, g, tt.state)
  772. }
  773. if g := tt.sm.Term; g != tt.term {
  774. t.Errorf("#%d: term = %d, want %d", i, g, tt.term)
  775. }
  776. base := ltoa(tt.raftLog)
  777. if sm, ok := nt.peers[1+uint64(i)].(*raft); ok {
  778. l := ltoa(sm.raftLog)
  779. if g := diffu(base, l); g != "" {
  780. t.Errorf("#%d: diff:\n%s", i, g)
  781. }
  782. } else {
  783. t.Logf("#%d: empty log", i)
  784. }
  785. }
  786. }
  787. func TestCandidateConcede(t *testing.T) {
  788. tt := newNetwork(nil, nil, nil)
  789. tt.isolate(1)
  790. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  791. tt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  792. // heal the partition
  793. tt.recover()
  794. // send heartbeat; reset wait
  795. tt.send(pb.Message{From: 3, To: 3, Type: pb.MsgBeat})
  796. data := []byte("force follower")
  797. // send a proposal to 3 to flush out a MsgApp to 1
  798. tt.send(pb.Message{From: 3, To: 3, Type: pb.MsgProp, Entries: []pb.Entry{{Data: data}}})
  799. // send heartbeat; flush out commit
  800. tt.send(pb.Message{From: 3, To: 3, Type: pb.MsgBeat})
  801. a := tt.peers[1].(*raft)
  802. if g := a.state; g != StateFollower {
  803. t.Errorf("state = %s, want %s", g, StateFollower)
  804. }
  805. if g := a.Term; g != 1 {
  806. t.Errorf("term = %d, want %d", g, 1)
  807. }
  808. wantLog := ltoa(&raftLog{
  809. storage: &MemoryStorage{
  810. ents: []pb.Entry{{}, {Data: nil, Term: 1, Index: 1}, {Term: 1, Index: 2, Data: data}},
  811. },
  812. unstable: unstable{offset: 3},
  813. committed: 2,
  814. })
  815. for i, p := range tt.peers {
  816. if sm, ok := p.(*raft); ok {
  817. l := ltoa(sm.raftLog)
  818. if g := diffu(wantLog, l); g != "" {
  819. t.Errorf("#%d: diff:\n%s", i, g)
  820. }
  821. } else {
  822. t.Logf("#%d: empty log", i)
  823. }
  824. }
  825. }
  826. func TestSingleNodeCandidate(t *testing.T) {
  827. tt := newNetwork(nil)
  828. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  829. sm := tt.peers[1].(*raft)
  830. if sm.state != StateLeader {
  831. t.Errorf("state = %d, want %d", sm.state, StateLeader)
  832. }
  833. }
  834. func TestSingleNodePreCandidate(t *testing.T) {
  835. tt := newNetworkWithConfig(preVoteConfig, nil)
  836. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  837. sm := tt.peers[1].(*raft)
  838. if sm.state != StateLeader {
  839. t.Errorf("state = %d, want %d", sm.state, StateLeader)
  840. }
  841. }
  842. func TestOldMessages(t *testing.T) {
  843. tt := newNetwork(nil, nil, nil)
  844. // make 0 leader @ term 3
  845. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  846. tt.send(pb.Message{From: 2, To: 2, Type: pb.MsgHup})
  847. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  848. // pretend we're an old leader trying to make progress; this entry is expected to be ignored.
  849. tt.send(pb.Message{From: 2, To: 1, Type: pb.MsgApp, Term: 2, Entries: []pb.Entry{{Index: 3, Term: 2}}})
  850. // commit a new entry
  851. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}})
  852. ilog := &raftLog{
  853. storage: &MemoryStorage{
  854. ents: []pb.Entry{
  855. {}, {Data: nil, Term: 1, Index: 1},
  856. {Data: nil, Term: 2, Index: 2}, {Data: nil, Term: 3, Index: 3},
  857. {Data: []byte("somedata"), Term: 3, Index: 4},
  858. },
  859. },
  860. unstable: unstable{offset: 5},
  861. committed: 4,
  862. }
  863. base := ltoa(ilog)
  864. for i, p := range tt.peers {
  865. if sm, ok := p.(*raft); ok {
  866. l := ltoa(sm.raftLog)
  867. if g := diffu(base, l); g != "" {
  868. t.Errorf("#%d: diff:\n%s", i, g)
  869. }
  870. } else {
  871. t.Logf("#%d: empty log", i)
  872. }
  873. }
  874. }
  875. // TestOldMessagesReply - optimization - reply with new term.
  876. func TestProposal(t *testing.T) {
  877. tests := []struct {
  878. *network
  879. success bool
  880. }{
  881. {newNetwork(nil, nil, nil), true},
  882. {newNetwork(nil, nil, nopStepper), true},
  883. {newNetwork(nil, nopStepper, nopStepper), false},
  884. {newNetwork(nil, nopStepper, nopStepper, nil), false},
  885. {newNetwork(nil, nopStepper, nopStepper, nil, nil), true},
  886. }
  887. for j, tt := range tests {
  888. send := func(m pb.Message) {
  889. defer func() {
  890. // only recover if we expect it to panic (success==false)
  891. if !tt.success {
  892. e := recover()
  893. if e != nil {
  894. t.Logf("#%d: err: %s", j, e)
  895. }
  896. }
  897. }()
  898. tt.send(m)
  899. }
  900. data := []byte("somedata")
  901. // promote 1 to become leader
  902. send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  903. send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: data}}})
  904. wantLog := newLog(NewMemoryStorage(), raftLogger)
  905. if tt.success {
  906. wantLog = &raftLog{
  907. storage: &MemoryStorage{
  908. ents: []pb.Entry{{}, {Data: nil, Term: 1, Index: 1}, {Term: 1, Index: 2, Data: data}},
  909. },
  910. unstable: unstable{offset: 3},
  911. committed: 2}
  912. }
  913. base := ltoa(wantLog)
  914. for i, p := range tt.peers {
  915. if sm, ok := p.(*raft); ok {
  916. l := ltoa(sm.raftLog)
  917. if g := diffu(base, l); g != "" {
  918. t.Errorf("#%d: diff:\n%s", i, g)
  919. }
  920. } else {
  921. t.Logf("#%d: empty log", i)
  922. }
  923. }
  924. sm := tt.network.peers[1].(*raft)
  925. if g := sm.Term; g != 1 {
  926. t.Errorf("#%d: term = %d, want %d", j, g, 1)
  927. }
  928. }
  929. }
  930. func TestProposalByProxy(t *testing.T) {
  931. data := []byte("somedata")
  932. tests := []*network{
  933. newNetwork(nil, nil, nil),
  934. newNetwork(nil, nil, nopStepper),
  935. }
  936. for j, tt := range tests {
  937. // promote 0 the leader
  938. tt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  939. // propose via follower
  940. tt.send(pb.Message{From: 2, To: 2, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}})
  941. wantLog := &raftLog{
  942. storage: &MemoryStorage{
  943. ents: []pb.Entry{{}, {Data: nil, Term: 1, Index: 1}, {Term: 1, Data: data, Index: 2}},
  944. },
  945. unstable: unstable{offset: 3},
  946. committed: 2}
  947. base := ltoa(wantLog)
  948. for i, p := range tt.peers {
  949. if sm, ok := p.(*raft); ok {
  950. l := ltoa(sm.raftLog)
  951. if g := diffu(base, l); g != "" {
  952. t.Errorf("#%d: diff:\n%s", i, g)
  953. }
  954. } else {
  955. t.Logf("#%d: empty log", i)
  956. }
  957. }
  958. sm := tt.peers[1].(*raft)
  959. if g := sm.Term; g != 1 {
  960. t.Errorf("#%d: term = %d, want %d", j, g, 1)
  961. }
  962. }
  963. }
  964. func TestCommit(t *testing.T) {
  965. tests := []struct {
  966. matches []uint64
  967. logs []pb.Entry
  968. smTerm uint64
  969. w uint64
  970. }{
  971. // single
  972. {[]uint64{1}, []pb.Entry{{Index: 1, Term: 1}}, 1, 1},
  973. {[]uint64{1}, []pb.Entry{{Index: 1, Term: 1}}, 2, 0},
  974. {[]uint64{2}, []pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 2}}, 2, 2},
  975. {[]uint64{1}, []pb.Entry{{Index: 1, Term: 2}}, 2, 1},
  976. // odd
  977. {[]uint64{2, 1, 1}, []pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 2}}, 1, 1},
  978. {[]uint64{2, 1, 1}, []pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 1}}, 2, 0},
  979. {[]uint64{2, 1, 2}, []pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 2}}, 2, 2},
  980. {[]uint64{2, 1, 2}, []pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 1}}, 2, 0},
  981. // even
  982. {[]uint64{2, 1, 1, 1}, []pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 2}}, 1, 1},
  983. {[]uint64{2, 1, 1, 1}, []pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 1}}, 2, 0},
  984. {[]uint64{2, 1, 1, 2}, []pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 2}}, 1, 1},
  985. {[]uint64{2, 1, 1, 2}, []pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 1}}, 2, 0},
  986. {[]uint64{2, 1, 2, 2}, []pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 2}}, 2, 2},
  987. {[]uint64{2, 1, 2, 2}, []pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 1}}, 2, 0},
  988. }
  989. for i, tt := range tests {
  990. storage := NewMemoryStorage()
  991. storage.Append(tt.logs)
  992. storage.hardState = pb.HardState{Term: tt.smTerm}
  993. sm := newTestRaft(1, []uint64{1}, 10, 2, storage)
  994. for j := 0; j < len(tt.matches); j++ {
  995. id := uint64(j) + 1
  996. if id > 1 {
  997. sm.applyConfChange(pb.ConfChange{Type: pb.ConfChangeAddNode, NodeID: id})
  998. }
  999. pr := sm.prs.Progress[id]
  1000. pr.Match, pr.Next = tt.matches[j], tt.matches[j]+1
  1001. }
  1002. sm.maybeCommit()
  1003. if g := sm.raftLog.committed; g != tt.w {
  1004. t.Errorf("#%d: committed = %d, want %d", i, g, tt.w)
  1005. }
  1006. }
  1007. }
  1008. func TestPastElectionTimeout(t *testing.T) {
  1009. tests := []struct {
  1010. elapse int
  1011. wprobability float64
  1012. round bool
  1013. }{
  1014. {5, 0, false},
  1015. {10, 0.1, true},
  1016. {13, 0.4, true},
  1017. {15, 0.6, true},
  1018. {18, 0.9, true},
  1019. {20, 1, false},
  1020. }
  1021. for i, tt := range tests {
  1022. sm := newTestRaft(1, []uint64{1}, 10, 1, NewMemoryStorage())
  1023. sm.electionElapsed = tt.elapse
  1024. c := 0
  1025. for j := 0; j < 10000; j++ {
  1026. sm.resetRandomizedElectionTimeout()
  1027. if sm.pastElectionTimeout() {
  1028. c++
  1029. }
  1030. }
  1031. got := float64(c) / 10000.0
  1032. if tt.round {
  1033. got = math.Floor(got*10+0.5) / 10.0
  1034. }
  1035. if got != tt.wprobability {
  1036. t.Errorf("#%d: probability = %v, want %v", i, got, tt.wprobability)
  1037. }
  1038. }
  1039. }
  1040. // ensure that the Step function ignores the message from old term and does not pass it to the
  1041. // actual stepX function.
  1042. func TestStepIgnoreOldTermMsg(t *testing.T) {
  1043. called := false
  1044. fakeStep := func(r *raft, m pb.Message) error {
  1045. called = true
  1046. return nil
  1047. }
  1048. sm := newTestRaft(1, []uint64{1}, 10, 1, NewMemoryStorage())
  1049. sm.step = fakeStep
  1050. sm.Term = 2
  1051. sm.Step(pb.Message{Type: pb.MsgApp, Term: sm.Term - 1})
  1052. if called {
  1053. t.Errorf("stepFunc called = %v , want %v", called, false)
  1054. }
  1055. }
  1056. // TestHandleMsgApp ensures:
  1057. // 1. Reply false if log doesn’t contain an entry at prevLogIndex whose term matches prevLogTerm.
  1058. // 2. If an existing entry conflicts with a new one (same index but different terms),
  1059. // delete the existing entry and all that follow it; append any new entries not already in the log.
  1060. // 3. If leaderCommit > commitIndex, set commitIndex = min(leaderCommit, index of last new entry).
  1061. func TestHandleMsgApp(t *testing.T) {
  1062. tests := []struct {
  1063. m pb.Message
  1064. wIndex uint64
  1065. wCommit uint64
  1066. wReject bool
  1067. }{
  1068. // Ensure 1
  1069. {pb.Message{Type: pb.MsgApp, Term: 2, LogTerm: 3, Index: 2, Commit: 3}, 2, 0, true}, // previous log mismatch
  1070. {pb.Message{Type: pb.MsgApp, Term: 2, LogTerm: 3, Index: 3, Commit: 3}, 2, 0, true}, // previous log non-exist
  1071. // Ensure 2
  1072. {pb.Message{Type: pb.MsgApp, Term: 2, LogTerm: 1, Index: 1, Commit: 1}, 2, 1, false},
  1073. {pb.Message{Type: pb.MsgApp, Term: 2, LogTerm: 0, Index: 0, Commit: 1, Entries: []pb.Entry{{Index: 1, Term: 2}}}, 1, 1, false},
  1074. {pb.Message{Type: pb.MsgApp, Term: 2, LogTerm: 2, Index: 2, Commit: 3, Entries: []pb.Entry{{Index: 3, Term: 2}, {Index: 4, Term: 2}}}, 4, 3, false},
  1075. {pb.Message{Type: pb.MsgApp, Term: 2, LogTerm: 2, Index: 2, Commit: 4, Entries: []pb.Entry{{Index: 3, Term: 2}}}, 3, 3, false},
  1076. {pb.Message{Type: pb.MsgApp, Term: 2, LogTerm: 1, Index: 1, Commit: 4, Entries: []pb.Entry{{Index: 2, Term: 2}}}, 2, 2, false},
  1077. // Ensure 3
  1078. {pb.Message{Type: pb.MsgApp, Term: 1, LogTerm: 1, Index: 1, Commit: 3}, 2, 1, false}, // match entry 1, commit up to last new entry 1
  1079. {pb.Message{Type: pb.MsgApp, Term: 1, LogTerm: 1, Index: 1, Commit: 3, Entries: []pb.Entry{{Index: 2, Term: 2}}}, 2, 2, false}, // match entry 1, commit up to last new entry 2
  1080. {pb.Message{Type: pb.MsgApp, Term: 2, LogTerm: 2, Index: 2, Commit: 3}, 2, 2, false}, // match entry 2, commit up to last new entry 2
  1081. {pb.Message{Type: pb.MsgApp, Term: 2, LogTerm: 2, Index: 2, Commit: 4}, 2, 2, false}, // commit up to log.last()
  1082. }
  1083. for i, tt := range tests {
  1084. storage := NewMemoryStorage()
  1085. storage.Append([]pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 2}})
  1086. sm := newTestRaft(1, []uint64{1}, 10, 1, storage)
  1087. sm.becomeFollower(2, None)
  1088. sm.handleAppendEntries(tt.m)
  1089. if sm.raftLog.lastIndex() != tt.wIndex {
  1090. t.Errorf("#%d: lastIndex = %d, want %d", i, sm.raftLog.lastIndex(), tt.wIndex)
  1091. }
  1092. if sm.raftLog.committed != tt.wCommit {
  1093. t.Errorf("#%d: committed = %d, want %d", i, sm.raftLog.committed, tt.wCommit)
  1094. }
  1095. m := sm.readMessages()
  1096. if len(m) != 1 {
  1097. t.Fatalf("#%d: msg = nil, want 1", i)
  1098. }
  1099. if m[0].Reject != tt.wReject {
  1100. t.Errorf("#%d: reject = %v, want %v", i, m[0].Reject, tt.wReject)
  1101. }
  1102. }
  1103. }
  1104. // TestHandleHeartbeat ensures that the follower commits to the commit in the message.
  1105. func TestHandleHeartbeat(t *testing.T) {
  1106. commit := uint64(2)
  1107. tests := []struct {
  1108. m pb.Message
  1109. wCommit uint64
  1110. }{
  1111. {pb.Message{From: 2, To: 1, Type: pb.MsgHeartbeat, Term: 2, Commit: commit + 1}, commit + 1},
  1112. {pb.Message{From: 2, To: 1, Type: pb.MsgHeartbeat, Term: 2, Commit: commit - 1}, commit}, // do not decrease commit
  1113. }
  1114. for i, tt := range tests {
  1115. storage := NewMemoryStorage()
  1116. storage.Append([]pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 2}, {Index: 3, Term: 3}})
  1117. sm := newTestRaft(1, []uint64{1, 2}, 5, 1, storage)
  1118. sm.becomeFollower(2, 2)
  1119. sm.raftLog.commitTo(commit)
  1120. sm.handleHeartbeat(tt.m)
  1121. if sm.raftLog.committed != tt.wCommit {
  1122. t.Errorf("#%d: committed = %d, want %d", i, sm.raftLog.committed, tt.wCommit)
  1123. }
  1124. m := sm.readMessages()
  1125. if len(m) != 1 {
  1126. t.Fatalf("#%d: msg = nil, want 1", i)
  1127. }
  1128. if m[0].Type != pb.MsgHeartbeatResp {
  1129. t.Errorf("#%d: type = %v, want MsgHeartbeatResp", i, m[0].Type)
  1130. }
  1131. }
  1132. }
  1133. // TestHandleHeartbeatResp ensures that we re-send log entries when we get a heartbeat response.
  1134. func TestHandleHeartbeatResp(t *testing.T) {
  1135. storage := NewMemoryStorage()
  1136. storage.Append([]pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 2}, {Index: 3, Term: 3}})
  1137. sm := newTestRaft(1, []uint64{1, 2}, 5, 1, storage)
  1138. sm.becomeCandidate()
  1139. sm.becomeLeader()
  1140. sm.raftLog.commitTo(sm.raftLog.lastIndex())
  1141. // A heartbeat response from a node that is behind; re-send MsgApp
  1142. sm.Step(pb.Message{From: 2, Type: pb.MsgHeartbeatResp})
  1143. msgs := sm.readMessages()
  1144. if len(msgs) != 1 {
  1145. t.Fatalf("len(msgs) = %d, want 1", len(msgs))
  1146. }
  1147. if msgs[0].Type != pb.MsgApp {
  1148. t.Errorf("type = %v, want MsgApp", msgs[0].Type)
  1149. }
  1150. // A second heartbeat response generates another MsgApp re-send
  1151. sm.Step(pb.Message{From: 2, Type: pb.MsgHeartbeatResp})
  1152. msgs = sm.readMessages()
  1153. if len(msgs) != 1 {
  1154. t.Fatalf("len(msgs) = %d, want 1", len(msgs))
  1155. }
  1156. if msgs[0].Type != pb.MsgApp {
  1157. t.Errorf("type = %v, want MsgApp", msgs[0].Type)
  1158. }
  1159. // Once we have an MsgAppResp, heartbeats no longer send MsgApp.
  1160. sm.Step(pb.Message{
  1161. From: 2,
  1162. Type: pb.MsgAppResp,
  1163. Index: msgs[0].Index + uint64(len(msgs[0].Entries)),
  1164. })
  1165. // Consume the message sent in response to MsgAppResp
  1166. sm.readMessages()
  1167. sm.Step(pb.Message{From: 2, Type: pb.MsgHeartbeatResp})
  1168. msgs = sm.readMessages()
  1169. if len(msgs) != 0 {
  1170. t.Fatalf("len(msgs) = %d, want 0: %+v", len(msgs), msgs)
  1171. }
  1172. }
  1173. // TestRaftFreesReadOnlyMem ensures raft will free read request from
  1174. // readOnly readIndexQueue and pendingReadIndex map.
  1175. // related issue: https://github.com/etcd-io/etcd/issues/7571
  1176. func TestRaftFreesReadOnlyMem(t *testing.T) {
  1177. sm := newTestRaft(1, []uint64{1, 2}, 5, 1, NewMemoryStorage())
  1178. sm.becomeCandidate()
  1179. sm.becomeLeader()
  1180. sm.raftLog.commitTo(sm.raftLog.lastIndex())
  1181. ctx := []byte("ctx")
  1182. // leader starts linearizable read request.
  1183. // more info: raft dissertation 6.4, step 2.
  1184. sm.Step(pb.Message{From: 2, Type: pb.MsgReadIndex, Entries: []pb.Entry{{Data: ctx}}})
  1185. msgs := sm.readMessages()
  1186. if len(msgs) != 1 {
  1187. t.Fatalf("len(msgs) = %d, want 1", len(msgs))
  1188. }
  1189. if msgs[0].Type != pb.MsgHeartbeat {
  1190. t.Fatalf("type = %v, want MsgHeartbeat", msgs[0].Type)
  1191. }
  1192. if !bytes.Equal(msgs[0].Context, ctx) {
  1193. t.Fatalf("Context = %v, want %v", msgs[0].Context, ctx)
  1194. }
  1195. if len(sm.readOnly.readIndexQueue) != 1 {
  1196. t.Fatalf("len(readIndexQueue) = %v, want 1", len(sm.readOnly.readIndexQueue))
  1197. }
  1198. if len(sm.readOnly.pendingReadIndex) != 1 {
  1199. t.Fatalf("len(pendingReadIndex) = %v, want 1", len(sm.readOnly.pendingReadIndex))
  1200. }
  1201. if _, ok := sm.readOnly.pendingReadIndex[string(ctx)]; !ok {
  1202. t.Fatalf("can't find context %v in pendingReadIndex ", ctx)
  1203. }
  1204. // heartbeat responses from majority of followers (1 in this case)
  1205. // acknowledge the authority of the leader.
  1206. // more info: raft dissertation 6.4, step 3.
  1207. sm.Step(pb.Message{From: 2, Type: pb.MsgHeartbeatResp, Context: ctx})
  1208. if len(sm.readOnly.readIndexQueue) != 0 {
  1209. t.Fatalf("len(readIndexQueue) = %v, want 0", len(sm.readOnly.readIndexQueue))
  1210. }
  1211. if len(sm.readOnly.pendingReadIndex) != 0 {
  1212. t.Fatalf("len(pendingReadIndex) = %v, want 0", len(sm.readOnly.pendingReadIndex))
  1213. }
  1214. if _, ok := sm.readOnly.pendingReadIndex[string(ctx)]; ok {
  1215. t.Fatalf("found context %v in pendingReadIndex, want none", ctx)
  1216. }
  1217. }
  1218. // TestMsgAppRespWaitReset verifies the resume behavior of a leader
  1219. // MsgAppResp.
  1220. func TestMsgAppRespWaitReset(t *testing.T) {
  1221. sm := newTestRaft(1, []uint64{1, 2, 3}, 5, 1, NewMemoryStorage())
  1222. sm.becomeCandidate()
  1223. sm.becomeLeader()
  1224. // The new leader has just emitted a new Term 4 entry; consume those messages
  1225. // from the outgoing queue.
  1226. sm.bcastAppend()
  1227. sm.readMessages()
  1228. // Node 2 acks the first entry, making it committed.
  1229. sm.Step(pb.Message{
  1230. From: 2,
  1231. Type: pb.MsgAppResp,
  1232. Index: 1,
  1233. })
  1234. if sm.raftLog.committed != 1 {
  1235. t.Fatalf("expected committed to be 1, got %d", sm.raftLog.committed)
  1236. }
  1237. // Also consume the MsgApp messages that update Commit on the followers.
  1238. sm.readMessages()
  1239. // A new command is now proposed on node 1.
  1240. sm.Step(pb.Message{
  1241. From: 1,
  1242. Type: pb.MsgProp,
  1243. Entries: []pb.Entry{{}},
  1244. })
  1245. // The command is broadcast to all nodes not in the wait state.
  1246. // Node 2 left the wait state due to its MsgAppResp, but node 3 is still waiting.
  1247. msgs := sm.readMessages()
  1248. if len(msgs) != 1 {
  1249. t.Fatalf("expected 1 message, got %d: %+v", len(msgs), msgs)
  1250. }
  1251. if msgs[0].Type != pb.MsgApp || msgs[0].To != 2 {
  1252. t.Errorf("expected MsgApp to node 2, got %v to %d", msgs[0].Type, msgs[0].To)
  1253. }
  1254. if len(msgs[0].Entries) != 1 || msgs[0].Entries[0].Index != 2 {
  1255. t.Errorf("expected to send entry 2, but got %v", msgs[0].Entries)
  1256. }
  1257. // Now Node 3 acks the first entry. This releases the wait and entry 2 is sent.
  1258. sm.Step(pb.Message{
  1259. From: 3,
  1260. Type: pb.MsgAppResp,
  1261. Index: 1,
  1262. })
  1263. msgs = sm.readMessages()
  1264. if len(msgs) != 1 {
  1265. t.Fatalf("expected 1 message, got %d: %+v", len(msgs), msgs)
  1266. }
  1267. if msgs[0].Type != pb.MsgApp || msgs[0].To != 3 {
  1268. t.Errorf("expected MsgApp to node 3, got %v to %d", msgs[0].Type, msgs[0].To)
  1269. }
  1270. if len(msgs[0].Entries) != 1 || msgs[0].Entries[0].Index != 2 {
  1271. t.Errorf("expected to send entry 2, but got %v", msgs[0].Entries)
  1272. }
  1273. }
  1274. func TestRecvMsgVote(t *testing.T) {
  1275. testRecvMsgVote(t, pb.MsgVote)
  1276. }
  1277. func TestRecvMsgPreVote(t *testing.T) {
  1278. testRecvMsgVote(t, pb.MsgPreVote)
  1279. }
  1280. func testRecvMsgVote(t *testing.T, msgType pb.MessageType) {
  1281. tests := []struct {
  1282. state StateType
  1283. index, logTerm uint64
  1284. voteFor uint64
  1285. wreject bool
  1286. }{
  1287. {StateFollower, 0, 0, None, true},
  1288. {StateFollower, 0, 1, None, true},
  1289. {StateFollower, 0, 2, None, true},
  1290. {StateFollower, 0, 3, None, false},
  1291. {StateFollower, 1, 0, None, true},
  1292. {StateFollower, 1, 1, None, true},
  1293. {StateFollower, 1, 2, None, true},
  1294. {StateFollower, 1, 3, None, false},
  1295. {StateFollower, 2, 0, None, true},
  1296. {StateFollower, 2, 1, None, true},
  1297. {StateFollower, 2, 2, None, false},
  1298. {StateFollower, 2, 3, None, false},
  1299. {StateFollower, 3, 0, None, true},
  1300. {StateFollower, 3, 1, None, true},
  1301. {StateFollower, 3, 2, None, false},
  1302. {StateFollower, 3, 3, None, false},
  1303. {StateFollower, 3, 2, 2, false},
  1304. {StateFollower, 3, 2, 1, true},
  1305. {StateLeader, 3, 3, 1, true},
  1306. {StatePreCandidate, 3, 3, 1, true},
  1307. {StateCandidate, 3, 3, 1, true},
  1308. }
  1309. max := func(a, b uint64) uint64 {
  1310. if a > b {
  1311. return a
  1312. }
  1313. return b
  1314. }
  1315. for i, tt := range tests {
  1316. sm := newTestRaft(1, []uint64{1}, 10, 1, NewMemoryStorage())
  1317. sm.state = tt.state
  1318. switch tt.state {
  1319. case StateFollower:
  1320. sm.step = stepFollower
  1321. case StateCandidate, StatePreCandidate:
  1322. sm.step = stepCandidate
  1323. case StateLeader:
  1324. sm.step = stepLeader
  1325. }
  1326. sm.Vote = tt.voteFor
  1327. sm.raftLog = &raftLog{
  1328. storage: &MemoryStorage{ents: []pb.Entry{{}, {Index: 1, Term: 2}, {Index: 2, Term: 2}}},
  1329. unstable: unstable{offset: 3},
  1330. }
  1331. // raft.Term is greater than or equal to raft.raftLog.lastTerm. In this
  1332. // test we're only testing MsgVote responses when the campaigning node
  1333. // has a different raft log compared to the recipient node.
  1334. // Additionally we're verifying behaviour when the recipient node has
  1335. // already given out its vote for its current term. We're not testing
  1336. // what the recipient node does when receiving a message with a
  1337. // different term number, so we simply initialize both term numbers to
  1338. // be the same.
  1339. term := max(sm.raftLog.lastTerm(), tt.logTerm)
  1340. sm.Term = term
  1341. sm.Step(pb.Message{Type: msgType, Term: term, From: 2, Index: tt.index, LogTerm: tt.logTerm})
  1342. msgs := sm.readMessages()
  1343. if g := len(msgs); g != 1 {
  1344. t.Fatalf("#%d: len(msgs) = %d, want 1", i, g)
  1345. continue
  1346. }
  1347. if g := msgs[0].Type; g != voteRespMsgType(msgType) {
  1348. t.Errorf("#%d, m.Type = %v, want %v", i, g, voteRespMsgType(msgType))
  1349. }
  1350. if g := msgs[0].Reject; g != tt.wreject {
  1351. t.Errorf("#%d, m.Reject = %v, want %v", i, g, tt.wreject)
  1352. }
  1353. }
  1354. }
  1355. func TestStateTransition(t *testing.T) {
  1356. tests := []struct {
  1357. from StateType
  1358. to StateType
  1359. wallow bool
  1360. wterm uint64
  1361. wlead uint64
  1362. }{
  1363. {StateFollower, StateFollower, true, 1, None},
  1364. {StateFollower, StatePreCandidate, true, 0, None},
  1365. {StateFollower, StateCandidate, true, 1, None},
  1366. {StateFollower, StateLeader, false, 0, None},
  1367. {StatePreCandidate, StateFollower, true, 0, None},
  1368. {StatePreCandidate, StatePreCandidate, true, 0, None},
  1369. {StatePreCandidate, StateCandidate, true, 1, None},
  1370. {StatePreCandidate, StateLeader, true, 0, 1},
  1371. {StateCandidate, StateFollower, true, 0, None},
  1372. {StateCandidate, StatePreCandidate, true, 0, None},
  1373. {StateCandidate, StateCandidate, true, 1, None},
  1374. {StateCandidate, StateLeader, true, 0, 1},
  1375. {StateLeader, StateFollower, true, 1, None},
  1376. {StateLeader, StatePreCandidate, false, 0, None},
  1377. {StateLeader, StateCandidate, false, 1, None},
  1378. {StateLeader, StateLeader, true, 0, 1},
  1379. }
  1380. for i, tt := range tests {
  1381. func() {
  1382. defer func() {
  1383. if r := recover(); r != nil {
  1384. if tt.wallow {
  1385. t.Errorf("%d: allow = %v, want %v", i, false, true)
  1386. }
  1387. }
  1388. }()
  1389. sm := newTestRaft(1, []uint64{1}, 10, 1, NewMemoryStorage())
  1390. sm.state = tt.from
  1391. switch tt.to {
  1392. case StateFollower:
  1393. sm.becomeFollower(tt.wterm, tt.wlead)
  1394. case StatePreCandidate:
  1395. sm.becomePreCandidate()
  1396. case StateCandidate:
  1397. sm.becomeCandidate()
  1398. case StateLeader:
  1399. sm.becomeLeader()
  1400. }
  1401. if sm.Term != tt.wterm {
  1402. t.Errorf("%d: term = %d, want %d", i, sm.Term, tt.wterm)
  1403. }
  1404. if sm.lead != tt.wlead {
  1405. t.Errorf("%d: lead = %d, want %d", i, sm.lead, tt.wlead)
  1406. }
  1407. }()
  1408. }
  1409. }
  1410. func TestAllServerStepdown(t *testing.T) {
  1411. tests := []struct {
  1412. state StateType
  1413. wstate StateType
  1414. wterm uint64
  1415. windex uint64
  1416. }{
  1417. {StateFollower, StateFollower, 3, 0},
  1418. {StatePreCandidate, StateFollower, 3, 0},
  1419. {StateCandidate, StateFollower, 3, 0},
  1420. {StateLeader, StateFollower, 3, 1},
  1421. }
  1422. tmsgTypes := [...]pb.MessageType{pb.MsgVote, pb.MsgApp}
  1423. tterm := uint64(3)
  1424. for i, tt := range tests {
  1425. sm := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1426. switch tt.state {
  1427. case StateFollower:
  1428. sm.becomeFollower(1, None)
  1429. case StatePreCandidate:
  1430. sm.becomePreCandidate()
  1431. case StateCandidate:
  1432. sm.becomeCandidate()
  1433. case StateLeader:
  1434. sm.becomeCandidate()
  1435. sm.becomeLeader()
  1436. }
  1437. for j, msgType := range tmsgTypes {
  1438. sm.Step(pb.Message{From: 2, Type: msgType, Term: tterm, LogTerm: tterm})
  1439. if sm.state != tt.wstate {
  1440. t.Errorf("#%d.%d state = %v , want %v", i, j, sm.state, tt.wstate)
  1441. }
  1442. if sm.Term != tt.wterm {
  1443. t.Errorf("#%d.%d term = %v , want %v", i, j, sm.Term, tt.wterm)
  1444. }
  1445. if sm.raftLog.lastIndex() != tt.windex {
  1446. t.Errorf("#%d.%d index = %v , want %v", i, j, sm.raftLog.lastIndex(), tt.windex)
  1447. }
  1448. if uint64(len(sm.raftLog.allEntries())) != tt.windex {
  1449. t.Errorf("#%d.%d len(ents) = %v , want %v", i, j, len(sm.raftLog.allEntries()), tt.windex)
  1450. }
  1451. wlead := uint64(2)
  1452. if msgType == pb.MsgVote {
  1453. wlead = None
  1454. }
  1455. if sm.lead != wlead {
  1456. t.Errorf("#%d, sm.lead = %d, want %d", i, sm.lead, None)
  1457. }
  1458. }
  1459. }
  1460. }
  1461. func TestCandidateResetTermMsgHeartbeat(t *testing.T) {
  1462. testCandidateResetTerm(t, pb.MsgHeartbeat)
  1463. }
  1464. func TestCandidateResetTermMsgApp(t *testing.T) {
  1465. testCandidateResetTerm(t, pb.MsgApp)
  1466. }
  1467. // testCandidateResetTerm tests when a candidate receives a
  1468. // MsgHeartbeat or MsgApp from leader, "Step" resets the term
  1469. // with leader's and reverts back to follower.
  1470. func testCandidateResetTerm(t *testing.T, mt pb.MessageType) {
  1471. a := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1472. b := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1473. c := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1474. nt := newNetwork(a, b, c)
  1475. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  1476. if a.state != StateLeader {
  1477. t.Errorf("state = %s, want %s", a.state, StateLeader)
  1478. }
  1479. if b.state != StateFollower {
  1480. t.Errorf("state = %s, want %s", b.state, StateFollower)
  1481. }
  1482. if c.state != StateFollower {
  1483. t.Errorf("state = %s, want %s", c.state, StateFollower)
  1484. }
  1485. // isolate 3 and increase term in rest
  1486. nt.isolate(3)
  1487. nt.send(pb.Message{From: 2, To: 2, Type: pb.MsgHup})
  1488. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  1489. if a.state != StateLeader {
  1490. t.Errorf("state = %s, want %s", a.state, StateLeader)
  1491. }
  1492. if b.state != StateFollower {
  1493. t.Errorf("state = %s, want %s", b.state, StateFollower)
  1494. }
  1495. // trigger campaign in isolated c
  1496. c.resetRandomizedElectionTimeout()
  1497. for i := 0; i < c.randomizedElectionTimeout; i++ {
  1498. c.tick()
  1499. }
  1500. if c.state != StateCandidate {
  1501. t.Errorf("state = %s, want %s", c.state, StateCandidate)
  1502. }
  1503. nt.recover()
  1504. // leader sends to isolated candidate
  1505. // and expects candidate to revert to follower
  1506. nt.send(pb.Message{From: 1, To: 3, Term: a.Term, Type: mt})
  1507. if c.state != StateFollower {
  1508. t.Errorf("state = %s, want %s", c.state, StateFollower)
  1509. }
  1510. // follower c term is reset with leader's
  1511. if a.Term != c.Term {
  1512. t.Errorf("follower term expected same term as leader's %d, got %d", a.Term, c.Term)
  1513. }
  1514. }
  1515. func TestLeaderStepdownWhenQuorumActive(t *testing.T) {
  1516. sm := newTestRaft(1, []uint64{1, 2, 3}, 5, 1, NewMemoryStorage())
  1517. sm.checkQuorum = true
  1518. sm.becomeCandidate()
  1519. sm.becomeLeader()
  1520. for i := 0; i < sm.electionTimeout+1; i++ {
  1521. sm.Step(pb.Message{From: 2, Type: pb.MsgHeartbeatResp, Term: sm.Term})
  1522. sm.tick()
  1523. }
  1524. if sm.state != StateLeader {
  1525. t.Errorf("state = %v, want %v", sm.state, StateLeader)
  1526. }
  1527. }
  1528. func TestLeaderStepdownWhenQuorumLost(t *testing.T) {
  1529. sm := newTestRaft(1, []uint64{1, 2, 3}, 5, 1, NewMemoryStorage())
  1530. sm.checkQuorum = true
  1531. sm.becomeCandidate()
  1532. sm.becomeLeader()
  1533. for i := 0; i < sm.electionTimeout+1; i++ {
  1534. sm.tick()
  1535. }
  1536. if sm.state != StateFollower {
  1537. t.Errorf("state = %v, want %v", sm.state, StateFollower)
  1538. }
  1539. }
  1540. func TestLeaderSupersedingWithCheckQuorum(t *testing.T) {
  1541. a := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1542. b := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1543. c := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1544. a.checkQuorum = true
  1545. b.checkQuorum = true
  1546. c.checkQuorum = true
  1547. nt := newNetwork(a, b, c)
  1548. setRandomizedElectionTimeout(b, b.electionTimeout+1)
  1549. for i := 0; i < b.electionTimeout; i++ {
  1550. b.tick()
  1551. }
  1552. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  1553. if a.state != StateLeader {
  1554. t.Errorf("state = %s, want %s", a.state, StateLeader)
  1555. }
  1556. if c.state != StateFollower {
  1557. t.Errorf("state = %s, want %s", c.state, StateFollower)
  1558. }
  1559. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  1560. // Peer b rejected c's vote since its electionElapsed had not reached to electionTimeout
  1561. if c.state != StateCandidate {
  1562. t.Errorf("state = %s, want %s", c.state, StateCandidate)
  1563. }
  1564. // Letting b's electionElapsed reach to electionTimeout
  1565. for i := 0; i < b.electionTimeout; i++ {
  1566. b.tick()
  1567. }
  1568. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  1569. if c.state != StateLeader {
  1570. t.Errorf("state = %s, want %s", c.state, StateLeader)
  1571. }
  1572. }
  1573. func TestLeaderElectionWithCheckQuorum(t *testing.T) {
  1574. a := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1575. b := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1576. c := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1577. a.checkQuorum = true
  1578. b.checkQuorum = true
  1579. c.checkQuorum = true
  1580. nt := newNetwork(a, b, c)
  1581. setRandomizedElectionTimeout(a, a.electionTimeout+1)
  1582. setRandomizedElectionTimeout(b, b.electionTimeout+2)
  1583. // Immediately after creation, votes are cast regardless of the
  1584. // election timeout.
  1585. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  1586. if a.state != StateLeader {
  1587. t.Errorf("state = %s, want %s", a.state, StateLeader)
  1588. }
  1589. if c.state != StateFollower {
  1590. t.Errorf("state = %s, want %s", c.state, StateFollower)
  1591. }
  1592. // need to reset randomizedElectionTimeout larger than electionTimeout again,
  1593. // because the value might be reset to electionTimeout since the last state changes
  1594. setRandomizedElectionTimeout(a, a.electionTimeout+1)
  1595. setRandomizedElectionTimeout(b, b.electionTimeout+2)
  1596. for i := 0; i < a.electionTimeout; i++ {
  1597. a.tick()
  1598. }
  1599. for i := 0; i < b.electionTimeout; i++ {
  1600. b.tick()
  1601. }
  1602. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  1603. if a.state != StateFollower {
  1604. t.Errorf("state = %s, want %s", a.state, StateFollower)
  1605. }
  1606. if c.state != StateLeader {
  1607. t.Errorf("state = %s, want %s", c.state, StateLeader)
  1608. }
  1609. }
  1610. // TestFreeStuckCandidateWithCheckQuorum ensures that a candidate with a higher term
  1611. // can disrupt the leader even if the leader still "officially" holds the lease, The
  1612. // leader is expected to step down and adopt the candidate's term
  1613. func TestFreeStuckCandidateWithCheckQuorum(t *testing.T) {
  1614. a := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1615. b := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1616. c := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1617. a.checkQuorum = true
  1618. b.checkQuorum = true
  1619. c.checkQuorum = true
  1620. nt := newNetwork(a, b, c)
  1621. setRandomizedElectionTimeout(b, b.electionTimeout+1)
  1622. for i := 0; i < b.electionTimeout; i++ {
  1623. b.tick()
  1624. }
  1625. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  1626. nt.isolate(1)
  1627. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  1628. if b.state != StateFollower {
  1629. t.Errorf("state = %s, want %s", b.state, StateFollower)
  1630. }
  1631. if c.state != StateCandidate {
  1632. t.Errorf("state = %s, want %s", c.state, StateCandidate)
  1633. }
  1634. if c.Term != b.Term+1 {
  1635. t.Errorf("term = %d, want %d", c.Term, b.Term+1)
  1636. }
  1637. // Vote again for safety
  1638. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  1639. if b.state != StateFollower {
  1640. t.Errorf("state = %s, want %s", b.state, StateFollower)
  1641. }
  1642. if c.state != StateCandidate {
  1643. t.Errorf("state = %s, want %s", c.state, StateCandidate)
  1644. }
  1645. if c.Term != b.Term+2 {
  1646. t.Errorf("term = %d, want %d", c.Term, b.Term+2)
  1647. }
  1648. nt.recover()
  1649. nt.send(pb.Message{From: 1, To: 3, Type: pb.MsgHeartbeat, Term: a.Term})
  1650. // Disrupt the leader so that the stuck peer is freed
  1651. if a.state != StateFollower {
  1652. t.Errorf("state = %s, want %s", a.state, StateFollower)
  1653. }
  1654. if c.Term != a.Term {
  1655. t.Errorf("term = %d, want %d", c.Term, a.Term)
  1656. }
  1657. // Vote again, should become leader this time
  1658. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  1659. if c.state != StateLeader {
  1660. t.Errorf("peer 3 state: %s, want %s", c.state, StateLeader)
  1661. }
  1662. }
  1663. func TestNonPromotableVoterWithCheckQuorum(t *testing.T) {
  1664. a := newTestRaft(1, []uint64{1, 2}, 10, 1, NewMemoryStorage())
  1665. b := newTestRaft(2, []uint64{1}, 10, 1, NewMemoryStorage())
  1666. a.checkQuorum = true
  1667. b.checkQuorum = true
  1668. nt := newNetwork(a, b)
  1669. setRandomizedElectionTimeout(b, b.electionTimeout+1)
  1670. // Need to remove 2 again to make it a non-promotable node since newNetwork overwritten some internal states
  1671. b.applyConfChange(pb.ConfChange{Type: pb.ConfChangeRemoveNode, NodeID: 2})
  1672. if b.promotable() {
  1673. t.Fatalf("promotable = %v, want false", b.promotable())
  1674. }
  1675. for i := 0; i < b.electionTimeout; i++ {
  1676. b.tick()
  1677. }
  1678. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  1679. if a.state != StateLeader {
  1680. t.Errorf("state = %s, want %s", a.state, StateLeader)
  1681. }
  1682. if b.state != StateFollower {
  1683. t.Errorf("state = %s, want %s", b.state, StateFollower)
  1684. }
  1685. if b.lead != 1 {
  1686. t.Errorf("lead = %d, want 1", b.lead)
  1687. }
  1688. }
  1689. // TestDisruptiveFollower tests isolated follower,
  1690. // with slow network incoming from leader, election times out
  1691. // to become a candidate with an increased term. Then, the
  1692. // candiate's response to late leader heartbeat forces the leader
  1693. // to step down.
  1694. func TestDisruptiveFollower(t *testing.T) {
  1695. n1 := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1696. n2 := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1697. n3 := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1698. n1.checkQuorum = true
  1699. n2.checkQuorum = true
  1700. n3.checkQuorum = true
  1701. n1.becomeFollower(1, None)
  1702. n2.becomeFollower(1, None)
  1703. n3.becomeFollower(1, None)
  1704. nt := newNetwork(n1, n2, n3)
  1705. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  1706. // check state
  1707. // n1.state == StateLeader
  1708. // n2.state == StateFollower
  1709. // n3.state == StateFollower
  1710. if n1.state != StateLeader {
  1711. t.Fatalf("node 1 state: %s, want %s", n1.state, StateLeader)
  1712. }
  1713. if n2.state != StateFollower {
  1714. t.Fatalf("node 2 state: %s, want %s", n2.state, StateFollower)
  1715. }
  1716. if n3.state != StateFollower {
  1717. t.Fatalf("node 3 state: %s, want %s", n3.state, StateFollower)
  1718. }
  1719. // etcd server "advanceTicksForElection" on restart;
  1720. // this is to expedite campaign trigger when given larger
  1721. // election timeouts (e.g. multi-datacenter deploy)
  1722. // Or leader messages are being delayed while ticks elapse
  1723. setRandomizedElectionTimeout(n3, n3.electionTimeout+2)
  1724. for i := 0; i < n3.randomizedElectionTimeout-1; i++ {
  1725. n3.tick()
  1726. }
  1727. // ideally, before last election tick elapses,
  1728. // the follower n3 receives "pb.MsgApp" or "pb.MsgHeartbeat"
  1729. // from leader n1, and then resets its "electionElapsed"
  1730. // however, last tick may elapse before receiving any
  1731. // messages from leader, thus triggering campaign
  1732. n3.tick()
  1733. // n1 is still leader yet
  1734. // while its heartbeat to candidate n3 is being delayed
  1735. // check state
  1736. // n1.state == StateLeader
  1737. // n2.state == StateFollower
  1738. // n3.state == StateCandidate
  1739. if n1.state != StateLeader {
  1740. t.Fatalf("node 1 state: %s, want %s", n1.state, StateLeader)
  1741. }
  1742. if n2.state != StateFollower {
  1743. t.Fatalf("node 2 state: %s, want %s", n2.state, StateFollower)
  1744. }
  1745. if n3.state != StateCandidate {
  1746. t.Fatalf("node 3 state: %s, want %s", n3.state, StateCandidate)
  1747. }
  1748. // check term
  1749. // n1.Term == 2
  1750. // n2.Term == 2
  1751. // n3.Term == 3
  1752. if n1.Term != 2 {
  1753. t.Fatalf("node 1 term: %d, want %d", n1.Term, 2)
  1754. }
  1755. if n2.Term != 2 {
  1756. t.Fatalf("node 2 term: %d, want %d", n2.Term, 2)
  1757. }
  1758. if n3.Term != 3 {
  1759. t.Fatalf("node 3 term: %d, want %d", n3.Term, 3)
  1760. }
  1761. // while outgoing vote requests are still queued in n3,
  1762. // leader heartbeat finally arrives at candidate n3
  1763. // however, due to delayed network from leader, leader
  1764. // heartbeat was sent with lower term than candidate's
  1765. nt.send(pb.Message{From: 1, To: 3, Term: n1.Term, Type: pb.MsgHeartbeat})
  1766. // then candidate n3 responds with "pb.MsgAppResp" of higher term
  1767. // and leader steps down from a message with higher term
  1768. // this is to disrupt the current leader, so that candidate
  1769. // with higher term can be freed with following election
  1770. // check state
  1771. // n1.state == StateFollower
  1772. // n2.state == StateFollower
  1773. // n3.state == StateCandidate
  1774. if n1.state != StateFollower {
  1775. t.Fatalf("node 1 state: %s, want %s", n1.state, StateFollower)
  1776. }
  1777. if n2.state != StateFollower {
  1778. t.Fatalf("node 2 state: %s, want %s", n2.state, StateFollower)
  1779. }
  1780. if n3.state != StateCandidate {
  1781. t.Fatalf("node 3 state: %s, want %s", n3.state, StateCandidate)
  1782. }
  1783. // check term
  1784. // n1.Term == 3
  1785. // n2.Term == 2
  1786. // n3.Term == 3
  1787. if n1.Term != 3 {
  1788. t.Fatalf("node 1 term: %d, want %d", n1.Term, 3)
  1789. }
  1790. if n2.Term != 2 {
  1791. t.Fatalf("node 2 term: %d, want %d", n2.Term, 2)
  1792. }
  1793. if n3.Term != 3 {
  1794. t.Fatalf("node 3 term: %d, want %d", n3.Term, 3)
  1795. }
  1796. }
  1797. // TestDisruptiveFollowerPreVote tests isolated follower,
  1798. // with slow network incoming from leader, election times out
  1799. // to become a pre-candidate with less log than current leader.
  1800. // Then pre-vote phase prevents this isolated node from forcing
  1801. // current leader to step down, thus less disruptions.
  1802. func TestDisruptiveFollowerPreVote(t *testing.T) {
  1803. n1 := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1804. n2 := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1805. n3 := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1806. n1.checkQuorum = true
  1807. n2.checkQuorum = true
  1808. n3.checkQuorum = true
  1809. n1.becomeFollower(1, None)
  1810. n2.becomeFollower(1, None)
  1811. n3.becomeFollower(1, None)
  1812. nt := newNetwork(n1, n2, n3)
  1813. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  1814. // check state
  1815. // n1.state == StateLeader
  1816. // n2.state == StateFollower
  1817. // n3.state == StateFollower
  1818. if n1.state != StateLeader {
  1819. t.Fatalf("node 1 state: %s, want %s", n1.state, StateLeader)
  1820. }
  1821. if n2.state != StateFollower {
  1822. t.Fatalf("node 2 state: %s, want %s", n2.state, StateFollower)
  1823. }
  1824. if n3.state != StateFollower {
  1825. t.Fatalf("node 3 state: %s, want %s", n3.state, StateFollower)
  1826. }
  1827. nt.isolate(3)
  1828. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}})
  1829. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}})
  1830. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}})
  1831. n1.preVote = true
  1832. n2.preVote = true
  1833. n3.preVote = true
  1834. nt.recover()
  1835. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  1836. // check state
  1837. // n1.state == StateLeader
  1838. // n2.state == StateFollower
  1839. // n3.state == StatePreCandidate
  1840. if n1.state != StateLeader {
  1841. t.Fatalf("node 1 state: %s, want %s", n1.state, StateLeader)
  1842. }
  1843. if n2.state != StateFollower {
  1844. t.Fatalf("node 2 state: %s, want %s", n2.state, StateFollower)
  1845. }
  1846. if n3.state != StatePreCandidate {
  1847. t.Fatalf("node 3 state: %s, want %s", n3.state, StatePreCandidate)
  1848. }
  1849. // check term
  1850. // n1.Term == 2
  1851. // n2.Term == 2
  1852. // n3.Term == 2
  1853. if n1.Term != 2 {
  1854. t.Fatalf("node 1 term: %d, want %d", n1.Term, 2)
  1855. }
  1856. if n2.Term != 2 {
  1857. t.Fatalf("node 2 term: %d, want %d", n2.Term, 2)
  1858. }
  1859. if n3.Term != 2 {
  1860. t.Fatalf("node 2 term: %d, want %d", n3.Term, 2)
  1861. }
  1862. // delayed leader heartbeat does not force current leader to step down
  1863. nt.send(pb.Message{From: 1, To: 3, Term: n1.Term, Type: pb.MsgHeartbeat})
  1864. if n1.state != StateLeader {
  1865. t.Fatalf("node 1 state: %s, want %s", n1.state, StateLeader)
  1866. }
  1867. }
  1868. func TestReadOnlyOptionSafe(t *testing.T) {
  1869. a := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1870. b := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1871. c := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1872. nt := newNetwork(a, b, c)
  1873. setRandomizedElectionTimeout(b, b.electionTimeout+1)
  1874. for i := 0; i < b.electionTimeout; i++ {
  1875. b.tick()
  1876. }
  1877. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  1878. if a.state != StateLeader {
  1879. t.Fatalf("state = %s, want %s", a.state, StateLeader)
  1880. }
  1881. tests := []struct {
  1882. sm *raft
  1883. proposals int
  1884. wri uint64
  1885. wctx []byte
  1886. }{
  1887. {a, 10, 11, []byte("ctx1")},
  1888. {b, 10, 21, []byte("ctx2")},
  1889. {c, 10, 31, []byte("ctx3")},
  1890. {a, 10, 41, []byte("ctx4")},
  1891. {b, 10, 51, []byte("ctx5")},
  1892. {c, 10, 61, []byte("ctx6")},
  1893. }
  1894. for i, tt := range tests {
  1895. for j := 0; j < tt.proposals; j++ {
  1896. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  1897. }
  1898. nt.send(pb.Message{From: tt.sm.id, To: tt.sm.id, Type: pb.MsgReadIndex, Entries: []pb.Entry{{Data: tt.wctx}}})
  1899. r := tt.sm
  1900. if len(r.readStates) == 0 {
  1901. t.Errorf("#%d: len(readStates) = 0, want non-zero", i)
  1902. }
  1903. rs := r.readStates[0]
  1904. if rs.Index != tt.wri {
  1905. t.Errorf("#%d: readIndex = %d, want %d", i, rs.Index, tt.wri)
  1906. }
  1907. if !bytes.Equal(rs.RequestCtx, tt.wctx) {
  1908. t.Errorf("#%d: requestCtx = %v, want %v", i, rs.RequestCtx, tt.wctx)
  1909. }
  1910. r.readStates = nil
  1911. }
  1912. }
  1913. func TestReadOnlyWithLearner(t *testing.T) {
  1914. a := newTestLearnerRaft(1, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  1915. b := newTestLearnerRaft(2, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  1916. nt := newNetwork(a, b)
  1917. setRandomizedElectionTimeout(b, b.electionTimeout+1)
  1918. for i := 0; i < b.electionTimeout; i++ {
  1919. b.tick()
  1920. }
  1921. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  1922. if a.state != StateLeader {
  1923. t.Fatalf("state = %s, want %s", a.state, StateLeader)
  1924. }
  1925. tests := []struct {
  1926. sm *raft
  1927. proposals int
  1928. wri uint64
  1929. wctx []byte
  1930. }{
  1931. {a, 10, 11, []byte("ctx1")},
  1932. {b, 10, 21, []byte("ctx2")},
  1933. {a, 10, 31, []byte("ctx3")},
  1934. {b, 10, 41, []byte("ctx4")},
  1935. }
  1936. for i, tt := range tests {
  1937. for j := 0; j < tt.proposals; j++ {
  1938. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  1939. }
  1940. nt.send(pb.Message{From: tt.sm.id, To: tt.sm.id, Type: pb.MsgReadIndex, Entries: []pb.Entry{{Data: tt.wctx}}})
  1941. r := tt.sm
  1942. if len(r.readStates) == 0 {
  1943. t.Fatalf("#%d: len(readStates) = 0, want non-zero", i)
  1944. }
  1945. rs := r.readStates[0]
  1946. if rs.Index != tt.wri {
  1947. t.Errorf("#%d: readIndex = %d, want %d", i, rs.Index, tt.wri)
  1948. }
  1949. if !bytes.Equal(rs.RequestCtx, tt.wctx) {
  1950. t.Errorf("#%d: requestCtx = %v, want %v", i, rs.RequestCtx, tt.wctx)
  1951. }
  1952. r.readStates = nil
  1953. }
  1954. }
  1955. func TestReadOnlyOptionLease(t *testing.T) {
  1956. a := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1957. b := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1958. c := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  1959. a.readOnly.option = ReadOnlyLeaseBased
  1960. b.readOnly.option = ReadOnlyLeaseBased
  1961. c.readOnly.option = ReadOnlyLeaseBased
  1962. a.checkQuorum = true
  1963. b.checkQuorum = true
  1964. c.checkQuorum = true
  1965. nt := newNetwork(a, b, c)
  1966. setRandomizedElectionTimeout(b, b.electionTimeout+1)
  1967. for i := 0; i < b.electionTimeout; i++ {
  1968. b.tick()
  1969. }
  1970. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  1971. if a.state != StateLeader {
  1972. t.Fatalf("state = %s, want %s", a.state, StateLeader)
  1973. }
  1974. tests := []struct {
  1975. sm *raft
  1976. proposals int
  1977. wri uint64
  1978. wctx []byte
  1979. }{
  1980. {a, 10, 11, []byte("ctx1")},
  1981. {b, 10, 21, []byte("ctx2")},
  1982. {c, 10, 31, []byte("ctx3")},
  1983. {a, 10, 41, []byte("ctx4")},
  1984. {b, 10, 51, []byte("ctx5")},
  1985. {c, 10, 61, []byte("ctx6")},
  1986. }
  1987. for i, tt := range tests {
  1988. for j := 0; j < tt.proposals; j++ {
  1989. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  1990. }
  1991. nt.send(pb.Message{From: tt.sm.id, To: tt.sm.id, Type: pb.MsgReadIndex, Entries: []pb.Entry{{Data: tt.wctx}}})
  1992. r := tt.sm
  1993. rs := r.readStates[0]
  1994. if rs.Index != tt.wri {
  1995. t.Errorf("#%d: readIndex = %d, want %d", i, rs.Index, tt.wri)
  1996. }
  1997. if !bytes.Equal(rs.RequestCtx, tt.wctx) {
  1998. t.Errorf("#%d: requestCtx = %v, want %v", i, rs.RequestCtx, tt.wctx)
  1999. }
  2000. r.readStates = nil
  2001. }
  2002. }
  2003. // TestReadOnlyForNewLeader ensures that a leader only accepts MsgReadIndex message
  2004. // when it commits at least one log entry at it term.
  2005. func TestReadOnlyForNewLeader(t *testing.T) {
  2006. nodeConfigs := []struct {
  2007. id uint64
  2008. committed uint64
  2009. applied uint64
  2010. compactIndex uint64
  2011. }{
  2012. {1, 1, 1, 0},
  2013. {2, 2, 2, 2},
  2014. {3, 2, 2, 2},
  2015. }
  2016. peers := make([]stateMachine, 0)
  2017. for _, c := range nodeConfigs {
  2018. storage := NewMemoryStorage()
  2019. storage.Append([]pb.Entry{{Index: 1, Term: 1}, {Index: 2, Term: 1}})
  2020. storage.SetHardState(pb.HardState{Term: 1, Commit: c.committed})
  2021. if c.compactIndex != 0 {
  2022. storage.Compact(c.compactIndex)
  2023. }
  2024. cfg := newTestConfig(c.id, []uint64{1, 2, 3}, 10, 1, storage)
  2025. cfg.Applied = c.applied
  2026. raft := newRaft(cfg)
  2027. peers = append(peers, raft)
  2028. }
  2029. nt := newNetwork(peers...)
  2030. // Drop MsgApp to forbid peer a to commit any log entry at its term after it becomes leader.
  2031. nt.ignore(pb.MsgApp)
  2032. // Force peer a to become leader.
  2033. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  2034. sm := nt.peers[1].(*raft)
  2035. if sm.state != StateLeader {
  2036. t.Fatalf("state = %s, want %s", sm.state, StateLeader)
  2037. }
  2038. // Ensure peer a drops read only request.
  2039. var windex uint64 = 4
  2040. wctx := []byte("ctx")
  2041. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgReadIndex, Entries: []pb.Entry{{Data: wctx}}})
  2042. if len(sm.readStates) != 0 {
  2043. t.Fatalf("len(readStates) = %d, want zero", len(sm.readStates))
  2044. }
  2045. nt.recover()
  2046. // Force peer a to commit a log entry at its term
  2047. for i := 0; i < sm.heartbeatTimeout; i++ {
  2048. sm.tick()
  2049. }
  2050. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  2051. if sm.raftLog.committed != 4 {
  2052. t.Fatalf("committed = %d, want 4", sm.raftLog.committed)
  2053. }
  2054. lastLogTerm := sm.raftLog.zeroTermOnErrCompacted(sm.raftLog.term(sm.raftLog.committed))
  2055. if lastLogTerm != sm.Term {
  2056. t.Fatalf("last log term = %d, want %d", lastLogTerm, sm.Term)
  2057. }
  2058. // Ensure peer a accepts read only request after it commits a entry at its term.
  2059. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgReadIndex, Entries: []pb.Entry{{Data: wctx}}})
  2060. if len(sm.readStates) != 1 {
  2061. t.Fatalf("len(readStates) = %d, want 1", len(sm.readStates))
  2062. }
  2063. rs := sm.readStates[0]
  2064. if rs.Index != windex {
  2065. t.Fatalf("readIndex = %d, want %d", rs.Index, windex)
  2066. }
  2067. if !bytes.Equal(rs.RequestCtx, wctx) {
  2068. t.Fatalf("requestCtx = %v, want %v", rs.RequestCtx, wctx)
  2069. }
  2070. }
  2071. func TestLeaderAppResp(t *testing.T) {
  2072. // initial progress: match = 0; next = 3
  2073. tests := []struct {
  2074. index uint64
  2075. reject bool
  2076. // progress
  2077. wmatch uint64
  2078. wnext uint64
  2079. // message
  2080. wmsgNum int
  2081. windex uint64
  2082. wcommitted uint64
  2083. }{
  2084. {3, true, 0, 3, 0, 0, 0}, // stale resp; no replies
  2085. {2, true, 0, 2, 1, 1, 0}, // denied resp; leader does not commit; decrease next and send probing msg
  2086. {2, false, 2, 4, 2, 2, 2}, // accept resp; leader commits; broadcast with commit index
  2087. {0, false, 0, 3, 0, 0, 0}, // ignore heartbeat replies
  2088. }
  2089. for i, tt := range tests {
  2090. // sm term is 1 after it becomes the leader.
  2091. // thus the last log term must be 1 to be committed.
  2092. sm := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  2093. sm.raftLog = &raftLog{
  2094. storage: &MemoryStorage{ents: []pb.Entry{{}, {Index: 1, Term: 0}, {Index: 2, Term: 1}}},
  2095. unstable: unstable{offset: 3},
  2096. }
  2097. sm.becomeCandidate()
  2098. sm.becomeLeader()
  2099. sm.readMessages()
  2100. sm.Step(pb.Message{From: 2, Type: pb.MsgAppResp, Index: tt.index, Term: sm.Term, Reject: tt.reject, RejectHint: tt.index})
  2101. p := sm.prs.Progress[2]
  2102. if p.Match != tt.wmatch {
  2103. t.Errorf("#%d match = %d, want %d", i, p.Match, tt.wmatch)
  2104. }
  2105. if p.Next != tt.wnext {
  2106. t.Errorf("#%d next = %d, want %d", i, p.Next, tt.wnext)
  2107. }
  2108. msgs := sm.readMessages()
  2109. if len(msgs) != tt.wmsgNum {
  2110. t.Errorf("#%d msgNum = %d, want %d", i, len(msgs), tt.wmsgNum)
  2111. }
  2112. for j, msg := range msgs {
  2113. if msg.Index != tt.windex {
  2114. t.Errorf("#%d.%d index = %d, want %d", i, j, msg.Index, tt.windex)
  2115. }
  2116. if msg.Commit != tt.wcommitted {
  2117. t.Errorf("#%d.%d commit = %d, want %d", i, j, msg.Commit, tt.wcommitted)
  2118. }
  2119. }
  2120. }
  2121. }
  2122. // When the leader receives a heartbeat tick, it should
  2123. // send a MsgHeartbeat with m.Index = 0, m.LogTerm=0 and empty entries.
  2124. func TestBcastBeat(t *testing.T) {
  2125. offset := uint64(1000)
  2126. // make a state machine with log.offset = 1000
  2127. s := pb.Snapshot{
  2128. Metadata: pb.SnapshotMetadata{
  2129. Index: offset,
  2130. Term: 1,
  2131. ConfState: pb.ConfState{Nodes: []uint64{1, 2, 3}},
  2132. },
  2133. }
  2134. storage := NewMemoryStorage()
  2135. storage.ApplySnapshot(s)
  2136. sm := newTestRaft(1, nil, 10, 1, storage)
  2137. sm.Term = 1
  2138. sm.becomeCandidate()
  2139. sm.becomeLeader()
  2140. for i := 0; i < 10; i++ {
  2141. mustAppendEntry(sm, pb.Entry{Index: uint64(i) + 1})
  2142. }
  2143. // slow follower
  2144. sm.prs.Progress[2].Match, sm.prs.Progress[2].Next = 5, 6
  2145. // normal follower
  2146. sm.prs.Progress[3].Match, sm.prs.Progress[3].Next = sm.raftLog.lastIndex(), sm.raftLog.lastIndex()+1
  2147. sm.Step(pb.Message{Type: pb.MsgBeat})
  2148. msgs := sm.readMessages()
  2149. if len(msgs) != 2 {
  2150. t.Fatalf("len(msgs) = %v, want 2", len(msgs))
  2151. }
  2152. wantCommitMap := map[uint64]uint64{
  2153. 2: min(sm.raftLog.committed, sm.prs.Progress[2].Match),
  2154. 3: min(sm.raftLog.committed, sm.prs.Progress[3].Match),
  2155. }
  2156. for i, m := range msgs {
  2157. if m.Type != pb.MsgHeartbeat {
  2158. t.Fatalf("#%d: type = %v, want = %v", i, m.Type, pb.MsgHeartbeat)
  2159. }
  2160. if m.Index != 0 {
  2161. t.Fatalf("#%d: prevIndex = %d, want %d", i, m.Index, 0)
  2162. }
  2163. if m.LogTerm != 0 {
  2164. t.Fatalf("#%d: prevTerm = %d, want %d", i, m.LogTerm, 0)
  2165. }
  2166. if wantCommitMap[m.To] == 0 {
  2167. t.Fatalf("#%d: unexpected to %d", i, m.To)
  2168. } else {
  2169. if m.Commit != wantCommitMap[m.To] {
  2170. t.Fatalf("#%d: commit = %d, want %d", i, m.Commit, wantCommitMap[m.To])
  2171. }
  2172. delete(wantCommitMap, m.To)
  2173. }
  2174. if len(m.Entries) != 0 {
  2175. t.Fatalf("#%d: len(entries) = %d, want 0", i, len(m.Entries))
  2176. }
  2177. }
  2178. }
  2179. // tests the output of the state machine when receiving MsgBeat
  2180. func TestRecvMsgBeat(t *testing.T) {
  2181. tests := []struct {
  2182. state StateType
  2183. wMsg int
  2184. }{
  2185. {StateLeader, 2},
  2186. // candidate and follower should ignore MsgBeat
  2187. {StateCandidate, 0},
  2188. {StateFollower, 0},
  2189. }
  2190. for i, tt := range tests {
  2191. sm := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  2192. sm.raftLog = &raftLog{storage: &MemoryStorage{ents: []pb.Entry{{}, {Index: 1, Term: 0}, {Index: 2, Term: 1}}}}
  2193. sm.Term = 1
  2194. sm.state = tt.state
  2195. switch tt.state {
  2196. case StateFollower:
  2197. sm.step = stepFollower
  2198. case StateCandidate:
  2199. sm.step = stepCandidate
  2200. case StateLeader:
  2201. sm.step = stepLeader
  2202. }
  2203. sm.Step(pb.Message{From: 1, To: 1, Type: pb.MsgBeat})
  2204. msgs := sm.readMessages()
  2205. if len(msgs) != tt.wMsg {
  2206. t.Errorf("%d: len(msgs) = %d, want %d", i, len(msgs), tt.wMsg)
  2207. }
  2208. for _, m := range msgs {
  2209. if m.Type != pb.MsgHeartbeat {
  2210. t.Errorf("%d: msg.type = %v, want %v", i, m.Type, pb.MsgHeartbeat)
  2211. }
  2212. }
  2213. }
  2214. }
  2215. func TestLeaderIncreaseNext(t *testing.T) {
  2216. previousEnts := []pb.Entry{{Term: 1, Index: 1}, {Term: 1, Index: 2}, {Term: 1, Index: 3}}
  2217. tests := []struct {
  2218. // progress
  2219. state tracker.StateType
  2220. next uint64
  2221. wnext uint64
  2222. }{
  2223. // state replicate, optimistically increase next
  2224. // previous entries + noop entry + propose + 1
  2225. {tracker.StateReplicate, 2, uint64(len(previousEnts) + 1 + 1 + 1)},
  2226. // state probe, not optimistically increase next
  2227. {tracker.StateProbe, 2, 2},
  2228. }
  2229. for i, tt := range tests {
  2230. sm := newTestRaft(1, []uint64{1, 2}, 10, 1, NewMemoryStorage())
  2231. sm.raftLog.append(previousEnts...)
  2232. sm.becomeCandidate()
  2233. sm.becomeLeader()
  2234. sm.prs.Progress[2].State = tt.state
  2235. sm.prs.Progress[2].Next = tt.next
  2236. sm.Step(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}})
  2237. p := sm.prs.Progress[2]
  2238. if p.Next != tt.wnext {
  2239. t.Errorf("#%d next = %d, want %d", i, p.Next, tt.wnext)
  2240. }
  2241. }
  2242. }
  2243. func TestSendAppendForProgressProbe(t *testing.T) {
  2244. r := newTestRaft(1, []uint64{1, 2}, 10, 1, NewMemoryStorage())
  2245. r.becomeCandidate()
  2246. r.becomeLeader()
  2247. r.readMessages()
  2248. r.prs.Progress[2].BecomeProbe()
  2249. // each round is a heartbeat
  2250. for i := 0; i < 3; i++ {
  2251. if i == 0 {
  2252. // we expect that raft will only send out one msgAPP on the first
  2253. // loop. After that, the follower is paused until a heartbeat response is
  2254. // received.
  2255. mustAppendEntry(r, pb.Entry{Data: []byte("somedata")})
  2256. r.sendAppend(2)
  2257. msg := r.readMessages()
  2258. if len(msg) != 1 {
  2259. t.Errorf("len(msg) = %d, want %d", len(msg), 1)
  2260. }
  2261. if msg[0].Index != 0 {
  2262. t.Errorf("index = %d, want %d", msg[0].Index, 0)
  2263. }
  2264. }
  2265. if !r.prs.Progress[2].ProbeSent {
  2266. t.Errorf("paused = %v, want true", r.prs.Progress[2].ProbeSent)
  2267. }
  2268. for j := 0; j < 10; j++ {
  2269. mustAppendEntry(r, pb.Entry{Data: []byte("somedata")})
  2270. r.sendAppend(2)
  2271. if l := len(r.readMessages()); l != 0 {
  2272. t.Errorf("len(msg) = %d, want %d", l, 0)
  2273. }
  2274. }
  2275. // do a heartbeat
  2276. for j := 0; j < r.heartbeatTimeout; j++ {
  2277. r.Step(pb.Message{From: 1, To: 1, Type: pb.MsgBeat})
  2278. }
  2279. if !r.prs.Progress[2].ProbeSent {
  2280. t.Errorf("paused = %v, want true", r.prs.Progress[2].ProbeSent)
  2281. }
  2282. // consume the heartbeat
  2283. msg := r.readMessages()
  2284. if len(msg) != 1 {
  2285. t.Errorf("len(msg) = %d, want %d", len(msg), 1)
  2286. }
  2287. if msg[0].Type != pb.MsgHeartbeat {
  2288. t.Errorf("type = %v, want %v", msg[0].Type, pb.MsgHeartbeat)
  2289. }
  2290. }
  2291. // a heartbeat response will allow another message to be sent
  2292. r.Step(pb.Message{From: 2, To: 1, Type: pb.MsgHeartbeatResp})
  2293. msg := r.readMessages()
  2294. if len(msg) != 1 {
  2295. t.Errorf("len(msg) = %d, want %d", len(msg), 1)
  2296. }
  2297. if msg[0].Index != 0 {
  2298. t.Errorf("index = %d, want %d", msg[0].Index, 0)
  2299. }
  2300. if !r.prs.Progress[2].ProbeSent {
  2301. t.Errorf("paused = %v, want true", r.prs.Progress[2].ProbeSent)
  2302. }
  2303. }
  2304. func TestSendAppendForProgressReplicate(t *testing.T) {
  2305. r := newTestRaft(1, []uint64{1, 2}, 10, 1, NewMemoryStorage())
  2306. r.becomeCandidate()
  2307. r.becomeLeader()
  2308. r.readMessages()
  2309. r.prs.Progress[2].BecomeReplicate()
  2310. for i := 0; i < 10; i++ {
  2311. mustAppendEntry(r, pb.Entry{Data: []byte("somedata")})
  2312. r.sendAppend(2)
  2313. msgs := r.readMessages()
  2314. if len(msgs) != 1 {
  2315. t.Errorf("len(msg) = %d, want %d", len(msgs), 1)
  2316. }
  2317. }
  2318. }
  2319. func TestSendAppendForProgressSnapshot(t *testing.T) {
  2320. r := newTestRaft(1, []uint64{1, 2}, 10, 1, NewMemoryStorage())
  2321. r.becomeCandidate()
  2322. r.becomeLeader()
  2323. r.readMessages()
  2324. r.prs.Progress[2].BecomeSnapshot(10)
  2325. for i := 0; i < 10; i++ {
  2326. mustAppendEntry(r, pb.Entry{Data: []byte("somedata")})
  2327. r.sendAppend(2)
  2328. msgs := r.readMessages()
  2329. if len(msgs) != 0 {
  2330. t.Errorf("len(msg) = %d, want %d", len(msgs), 0)
  2331. }
  2332. }
  2333. }
  2334. func TestRecvMsgUnreachable(t *testing.T) {
  2335. previousEnts := []pb.Entry{{Term: 1, Index: 1}, {Term: 1, Index: 2}, {Term: 1, Index: 3}}
  2336. s := NewMemoryStorage()
  2337. s.Append(previousEnts)
  2338. r := newTestRaft(1, []uint64{1, 2}, 10, 1, s)
  2339. r.becomeCandidate()
  2340. r.becomeLeader()
  2341. r.readMessages()
  2342. // set node 2 to state replicate
  2343. r.prs.Progress[2].Match = 3
  2344. r.prs.Progress[2].BecomeReplicate()
  2345. r.prs.Progress[2].OptimisticUpdate(5)
  2346. r.Step(pb.Message{From: 2, To: 1, Type: pb.MsgUnreachable})
  2347. if r.prs.Progress[2].State != tracker.StateProbe {
  2348. t.Errorf("state = %s, want %s", r.prs.Progress[2].State, tracker.StateProbe)
  2349. }
  2350. if wnext := r.prs.Progress[2].Match + 1; r.prs.Progress[2].Next != wnext {
  2351. t.Errorf("next = %d, want %d", r.prs.Progress[2].Next, wnext)
  2352. }
  2353. }
  2354. func TestRestore(t *testing.T) {
  2355. s := pb.Snapshot{
  2356. Metadata: pb.SnapshotMetadata{
  2357. Index: 11, // magic number
  2358. Term: 11, // magic number
  2359. ConfState: pb.ConfState{Nodes: []uint64{1, 2, 3}},
  2360. },
  2361. }
  2362. storage := NewMemoryStorage()
  2363. sm := newTestRaft(1, []uint64{1, 2}, 10, 1, storage)
  2364. if ok := sm.restore(s); !ok {
  2365. t.Fatal("restore fail, want succeed")
  2366. }
  2367. if sm.raftLog.lastIndex() != s.Metadata.Index {
  2368. t.Errorf("log.lastIndex = %d, want %d", sm.raftLog.lastIndex(), s.Metadata.Index)
  2369. }
  2370. if mustTerm(sm.raftLog.term(s.Metadata.Index)) != s.Metadata.Term {
  2371. t.Errorf("log.lastTerm = %d, want %d", mustTerm(sm.raftLog.term(s.Metadata.Index)), s.Metadata.Term)
  2372. }
  2373. sg := sm.prs.VoterNodes()
  2374. if !reflect.DeepEqual(sg, s.Metadata.ConfState.Nodes) {
  2375. t.Errorf("sm.Nodes = %+v, want %+v", sg, s.Metadata.ConfState.Nodes)
  2376. }
  2377. if ok := sm.restore(s); ok {
  2378. t.Fatal("restore succeed, want fail")
  2379. }
  2380. }
  2381. // TestRestoreWithLearner restores a snapshot which contains learners.
  2382. func TestRestoreWithLearner(t *testing.T) {
  2383. s := pb.Snapshot{
  2384. Metadata: pb.SnapshotMetadata{
  2385. Index: 11, // magic number
  2386. Term: 11, // magic number
  2387. ConfState: pb.ConfState{Nodes: []uint64{1, 2}, Learners: []uint64{3}},
  2388. },
  2389. }
  2390. storage := NewMemoryStorage()
  2391. sm := newTestLearnerRaft(3, []uint64{1, 2}, []uint64{3}, 8, 2, storage)
  2392. if ok := sm.restore(s); !ok {
  2393. t.Error("restore fail, want succeed")
  2394. }
  2395. if sm.raftLog.lastIndex() != s.Metadata.Index {
  2396. t.Errorf("log.lastIndex = %d, want %d", sm.raftLog.lastIndex(), s.Metadata.Index)
  2397. }
  2398. if mustTerm(sm.raftLog.term(s.Metadata.Index)) != s.Metadata.Term {
  2399. t.Errorf("log.lastTerm = %d, want %d", mustTerm(sm.raftLog.term(s.Metadata.Index)), s.Metadata.Term)
  2400. }
  2401. sg := sm.prs.VoterNodes()
  2402. if len(sg) != len(s.Metadata.ConfState.Nodes) {
  2403. t.Errorf("sm.Nodes = %+v, length not equal with %+v", sg, s.Metadata.ConfState.Nodes)
  2404. }
  2405. lns := sm.prs.LearnerNodes()
  2406. if len(lns) != len(s.Metadata.ConfState.Learners) {
  2407. t.Errorf("sm.LearnerNodes = %+v, length not equal with %+v", sg, s.Metadata.ConfState.Learners)
  2408. }
  2409. for _, n := range s.Metadata.ConfState.Nodes {
  2410. if sm.prs.Progress[n].IsLearner {
  2411. t.Errorf("sm.Node %x isLearner = %s, want %t", n, sm.prs.Progress[n], false)
  2412. }
  2413. }
  2414. for _, n := range s.Metadata.ConfState.Learners {
  2415. if !sm.prs.Progress[n].IsLearner {
  2416. t.Errorf("sm.Node %x isLearner = %s, want %t", n, sm.prs.Progress[n], true)
  2417. }
  2418. }
  2419. if ok := sm.restore(s); ok {
  2420. t.Error("restore succeed, want fail")
  2421. }
  2422. }
  2423. // TestRestoreVoterToLearner verifies that a normal peer can be downgraded to a
  2424. // learner through a snapshot. At the time of writing, we don't allow
  2425. // configuration changes to do this directly, but note that the snapshot may
  2426. // compress multiple changes to the configuration into one: the voter could have
  2427. // been removed, then readded as a learner and the snapshot reflects both
  2428. // changes. In that case, a voter receives a snapshot telling it that it is now
  2429. // a learner. In fact, the node has to accept that snapshot, or it is
  2430. // permanently cut off from the Raft log.
  2431. func TestRestoreVoterToLearner(t *testing.T) {
  2432. s := pb.Snapshot{
  2433. Metadata: pb.SnapshotMetadata{
  2434. Index: 11, // magic number
  2435. Term: 11, // magic number
  2436. ConfState: pb.ConfState{Nodes: []uint64{1, 2}, Learners: []uint64{3}},
  2437. },
  2438. }
  2439. storage := NewMemoryStorage()
  2440. sm := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, storage)
  2441. if sm.isLearner {
  2442. t.Errorf("%x is learner, want not", sm.id)
  2443. }
  2444. if ok := sm.restore(s); !ok {
  2445. t.Error("restore failed unexpectedly")
  2446. }
  2447. }
  2448. // TestRestoreLearnerPromotion checks that a learner can become to a follower after
  2449. // restoring snapshot.
  2450. func TestRestoreLearnerPromotion(t *testing.T) {
  2451. s := pb.Snapshot{
  2452. Metadata: pb.SnapshotMetadata{
  2453. Index: 11, // magic number
  2454. Term: 11, // magic number
  2455. ConfState: pb.ConfState{Nodes: []uint64{1, 2, 3}},
  2456. },
  2457. }
  2458. storage := NewMemoryStorage()
  2459. sm := newTestLearnerRaft(3, []uint64{1, 2}, []uint64{3}, 10, 1, storage)
  2460. if !sm.isLearner {
  2461. t.Errorf("%x is not learner, want yes", sm.id)
  2462. }
  2463. if ok := sm.restore(s); !ok {
  2464. t.Error("restore fail, want succeed")
  2465. }
  2466. if sm.isLearner {
  2467. t.Errorf("%x is learner, want not", sm.id)
  2468. }
  2469. }
  2470. // TestLearnerReceiveSnapshot tests that a learner can receive a snpahost from leader
  2471. func TestLearnerReceiveSnapshot(t *testing.T) {
  2472. // restore the state machine from a snapshot so it has a compacted log and a snapshot
  2473. s := pb.Snapshot{
  2474. Metadata: pb.SnapshotMetadata{
  2475. Index: 11, // magic number
  2476. Term: 11, // magic number
  2477. ConfState: pb.ConfState{Nodes: []uint64{1}, Learners: []uint64{2}},
  2478. },
  2479. }
  2480. n1 := newTestLearnerRaft(1, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  2481. n2 := newTestLearnerRaft(2, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  2482. n1.restore(s)
  2483. // Force set n1 appplied index.
  2484. n1.raftLog.appliedTo(n1.raftLog.committed)
  2485. nt := newNetwork(n1, n2)
  2486. setRandomizedElectionTimeout(n1, n1.electionTimeout)
  2487. for i := 0; i < n1.electionTimeout; i++ {
  2488. n1.tick()
  2489. }
  2490. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgBeat})
  2491. if n2.raftLog.committed != n1.raftLog.committed {
  2492. t.Errorf("peer 2 must commit to %d, but %d", n1.raftLog.committed, n2.raftLog.committed)
  2493. }
  2494. }
  2495. func TestRestoreIgnoreSnapshot(t *testing.T) {
  2496. previousEnts := []pb.Entry{{Term: 1, Index: 1}, {Term: 1, Index: 2}, {Term: 1, Index: 3}}
  2497. commit := uint64(1)
  2498. storage := NewMemoryStorage()
  2499. sm := newTestRaft(1, []uint64{1, 2}, 10, 1, storage)
  2500. sm.raftLog.append(previousEnts...)
  2501. sm.raftLog.commitTo(commit)
  2502. s := pb.Snapshot{
  2503. Metadata: pb.SnapshotMetadata{
  2504. Index: commit,
  2505. Term: 1,
  2506. ConfState: pb.ConfState{Nodes: []uint64{1, 2}},
  2507. },
  2508. }
  2509. // ignore snapshot
  2510. if ok := sm.restore(s); ok {
  2511. t.Errorf("restore = %t, want %t", ok, false)
  2512. }
  2513. if sm.raftLog.committed != commit {
  2514. t.Errorf("commit = %d, want %d", sm.raftLog.committed, commit)
  2515. }
  2516. // ignore snapshot and fast forward commit
  2517. s.Metadata.Index = commit + 1
  2518. if ok := sm.restore(s); ok {
  2519. t.Errorf("restore = %t, want %t", ok, false)
  2520. }
  2521. if sm.raftLog.committed != commit+1 {
  2522. t.Errorf("commit = %d, want %d", sm.raftLog.committed, commit+1)
  2523. }
  2524. }
  2525. func TestProvideSnap(t *testing.T) {
  2526. // restore the state machine from a snapshot so it has a compacted log and a snapshot
  2527. s := pb.Snapshot{
  2528. Metadata: pb.SnapshotMetadata{
  2529. Index: 11, // magic number
  2530. Term: 11, // magic number
  2531. ConfState: pb.ConfState{Nodes: []uint64{1, 2}},
  2532. },
  2533. }
  2534. storage := NewMemoryStorage()
  2535. sm := newTestRaft(1, []uint64{1}, 10, 1, storage)
  2536. sm.restore(s)
  2537. sm.becomeCandidate()
  2538. sm.becomeLeader()
  2539. // force set the next of node 2, so that node 2 needs a snapshot
  2540. sm.prs.Progress[2].Next = sm.raftLog.firstIndex()
  2541. sm.Step(pb.Message{From: 2, To: 1, Type: pb.MsgAppResp, Index: sm.prs.Progress[2].Next - 1, Reject: true})
  2542. msgs := sm.readMessages()
  2543. if len(msgs) != 1 {
  2544. t.Fatalf("len(msgs) = %d, want 1", len(msgs))
  2545. }
  2546. m := msgs[0]
  2547. if m.Type != pb.MsgSnap {
  2548. t.Errorf("m.Type = %v, want %v", m.Type, pb.MsgSnap)
  2549. }
  2550. }
  2551. func TestIgnoreProvidingSnap(t *testing.T) {
  2552. // restore the state machine from a snapshot so it has a compacted log and a snapshot
  2553. s := pb.Snapshot{
  2554. Metadata: pb.SnapshotMetadata{
  2555. Index: 11, // magic number
  2556. Term: 11, // magic number
  2557. ConfState: pb.ConfState{Nodes: []uint64{1, 2}},
  2558. },
  2559. }
  2560. storage := NewMemoryStorage()
  2561. sm := newTestRaft(1, []uint64{1}, 10, 1, storage)
  2562. sm.restore(s)
  2563. sm.becomeCandidate()
  2564. sm.becomeLeader()
  2565. // force set the next of node 2, so that node 2 needs a snapshot
  2566. // change node 2 to be inactive, expect node 1 ignore sending snapshot to 2
  2567. sm.prs.Progress[2].Next = sm.raftLog.firstIndex() - 1
  2568. sm.prs.Progress[2].RecentActive = false
  2569. sm.Step(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("somedata")}}})
  2570. msgs := sm.readMessages()
  2571. if len(msgs) != 0 {
  2572. t.Errorf("len(msgs) = %d, want 0", len(msgs))
  2573. }
  2574. }
  2575. func TestRestoreFromSnapMsg(t *testing.T) {
  2576. s := pb.Snapshot{
  2577. Metadata: pb.SnapshotMetadata{
  2578. Index: 11, // magic number
  2579. Term: 11, // magic number
  2580. ConfState: pb.ConfState{Nodes: []uint64{1, 2}},
  2581. },
  2582. }
  2583. m := pb.Message{Type: pb.MsgSnap, From: 1, Term: 2, Snapshot: s}
  2584. sm := newTestRaft(2, []uint64{1, 2}, 10, 1, NewMemoryStorage())
  2585. sm.Step(m)
  2586. if sm.lead != uint64(1) {
  2587. t.Errorf("sm.lead = %d, want 1", sm.lead)
  2588. }
  2589. // TODO(bdarnell): what should this test?
  2590. }
  2591. func TestSlowNodeRestore(t *testing.T) {
  2592. nt := newNetwork(nil, nil, nil)
  2593. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  2594. nt.isolate(3)
  2595. for j := 0; j <= 100; j++ {
  2596. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  2597. }
  2598. lead := nt.peers[1].(*raft)
  2599. nextEnts(lead, nt.storage[1])
  2600. nt.storage[1].CreateSnapshot(lead.raftLog.applied, &pb.ConfState{Nodes: lead.prs.VoterNodes()}, nil)
  2601. nt.storage[1].Compact(lead.raftLog.applied)
  2602. nt.recover()
  2603. // send heartbeats so that the leader can learn everyone is active.
  2604. // node 3 will only be considered as active when node 1 receives a reply from it.
  2605. for {
  2606. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgBeat})
  2607. if lead.prs.Progress[3].RecentActive {
  2608. break
  2609. }
  2610. }
  2611. // trigger a snapshot
  2612. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  2613. follower := nt.peers[3].(*raft)
  2614. // trigger a commit
  2615. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  2616. if follower.raftLog.committed != lead.raftLog.committed {
  2617. t.Errorf("follower.committed = %d, want %d", follower.raftLog.committed, lead.raftLog.committed)
  2618. }
  2619. }
  2620. // TestStepConfig tests that when raft step msgProp in EntryConfChange type,
  2621. // it appends the entry to log and sets pendingConf to be true.
  2622. func TestStepConfig(t *testing.T) {
  2623. // a raft that cannot make progress
  2624. r := newTestRaft(1, []uint64{1, 2}, 10, 1, NewMemoryStorage())
  2625. r.becomeCandidate()
  2626. r.becomeLeader()
  2627. index := r.raftLog.lastIndex()
  2628. r.Step(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Type: pb.EntryConfChange}}})
  2629. if g := r.raftLog.lastIndex(); g != index+1 {
  2630. t.Errorf("index = %d, want %d", g, index+1)
  2631. }
  2632. if r.pendingConfIndex != index+1 {
  2633. t.Errorf("pendingConfIndex = %d, want %d", r.pendingConfIndex, index+1)
  2634. }
  2635. }
  2636. // TestStepIgnoreConfig tests that if raft step the second msgProp in
  2637. // EntryConfChange type when the first one is uncommitted, the node will set
  2638. // the proposal to noop and keep its original state.
  2639. func TestStepIgnoreConfig(t *testing.T) {
  2640. // a raft that cannot make progress
  2641. r := newTestRaft(1, []uint64{1, 2}, 10, 1, NewMemoryStorage())
  2642. r.becomeCandidate()
  2643. r.becomeLeader()
  2644. r.Step(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Type: pb.EntryConfChange}}})
  2645. index := r.raftLog.lastIndex()
  2646. pendingConfIndex := r.pendingConfIndex
  2647. r.Step(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Type: pb.EntryConfChange}}})
  2648. wents := []pb.Entry{{Type: pb.EntryNormal, Term: 1, Index: 3, Data: nil}}
  2649. ents, err := r.raftLog.entries(index+1, noLimit)
  2650. if err != nil {
  2651. t.Fatalf("unexpected error %v", err)
  2652. }
  2653. if !reflect.DeepEqual(ents, wents) {
  2654. t.Errorf("ents = %+v, want %+v", ents, wents)
  2655. }
  2656. if r.pendingConfIndex != pendingConfIndex {
  2657. t.Errorf("pendingConfIndex = %d, want %d", r.pendingConfIndex, pendingConfIndex)
  2658. }
  2659. }
  2660. // TestNewLeaderPendingConfig tests that new leader sets its pendingConfigIndex
  2661. // based on uncommitted entries.
  2662. func TestNewLeaderPendingConfig(t *testing.T) {
  2663. tests := []struct {
  2664. addEntry bool
  2665. wpendingIndex uint64
  2666. }{
  2667. {false, 0},
  2668. {true, 1},
  2669. }
  2670. for i, tt := range tests {
  2671. r := newTestRaft(1, []uint64{1, 2}, 10, 1, NewMemoryStorage())
  2672. if tt.addEntry {
  2673. mustAppendEntry(r, pb.Entry{Type: pb.EntryNormal})
  2674. }
  2675. r.becomeCandidate()
  2676. r.becomeLeader()
  2677. if r.pendingConfIndex != tt.wpendingIndex {
  2678. t.Errorf("#%d: pendingConfIndex = %d, want %d",
  2679. i, r.pendingConfIndex, tt.wpendingIndex)
  2680. }
  2681. }
  2682. }
  2683. // TestAddNode tests that addNode could update nodes correctly.
  2684. func TestAddNode(t *testing.T) {
  2685. r := newTestRaft(1, []uint64{1}, 10, 1, NewMemoryStorage())
  2686. r.applyConfChange(pb.ConfChange{NodeID: 2, Type: pb.ConfChangeAddNode})
  2687. nodes := r.prs.VoterNodes()
  2688. wnodes := []uint64{1, 2}
  2689. if !reflect.DeepEqual(nodes, wnodes) {
  2690. t.Errorf("nodes = %v, want %v", nodes, wnodes)
  2691. }
  2692. }
  2693. // TestAddLearner tests that addLearner could update nodes correctly.
  2694. func TestAddLearner(t *testing.T) {
  2695. r := newTestRaft(1, []uint64{1}, 10, 1, NewMemoryStorage())
  2696. // Add new learner peer.
  2697. r.applyConfChange(pb.ConfChange{NodeID: 2, Type: pb.ConfChangeAddLearnerNode})
  2698. if r.isLearner {
  2699. t.Fatal("expected 1 to be voter")
  2700. }
  2701. nodes := r.prs.LearnerNodes()
  2702. wnodes := []uint64{2}
  2703. if !reflect.DeepEqual(nodes, wnodes) {
  2704. t.Errorf("nodes = %v, want %v", nodes, wnodes)
  2705. }
  2706. if !r.prs.Progress[2].IsLearner {
  2707. t.Fatal("expected 2 to be learner")
  2708. }
  2709. // Promote peer to voter.
  2710. r.applyConfChange(pb.ConfChange{NodeID: 2, Type: pb.ConfChangeAddNode})
  2711. if r.prs.Progress[2].IsLearner {
  2712. t.Fatal("expected 2 to be voter")
  2713. }
  2714. // Demote r.
  2715. r.applyConfChange(pb.ConfChange{NodeID: 1, Type: pb.ConfChangeAddLearnerNode})
  2716. if !r.prs.Progress[1].IsLearner {
  2717. t.Fatal("expected 1 to be learner")
  2718. }
  2719. if !r.isLearner {
  2720. t.Fatal("expected 1 to be learner")
  2721. }
  2722. // Promote r again.
  2723. r.applyConfChange(pb.ConfChange{NodeID: 1, Type: pb.ConfChangeAddNode})
  2724. if r.prs.Progress[1].IsLearner {
  2725. t.Fatal("expected 1 to be voter")
  2726. }
  2727. if r.isLearner {
  2728. t.Fatal("expected 1 to be voter")
  2729. }
  2730. }
  2731. // TestAddNodeCheckQuorum tests that addNode does not trigger a leader election
  2732. // immediately when checkQuorum is set.
  2733. func TestAddNodeCheckQuorum(t *testing.T) {
  2734. r := newTestRaft(1, []uint64{1}, 10, 1, NewMemoryStorage())
  2735. r.checkQuorum = true
  2736. r.becomeCandidate()
  2737. r.becomeLeader()
  2738. for i := 0; i < r.electionTimeout-1; i++ {
  2739. r.tick()
  2740. }
  2741. r.applyConfChange(pb.ConfChange{NodeID: 2, Type: pb.ConfChangeAddNode})
  2742. // This tick will reach electionTimeout, which triggers a quorum check.
  2743. r.tick()
  2744. // Node 1 should still be the leader after a single tick.
  2745. if r.state != StateLeader {
  2746. t.Errorf("state = %v, want %v", r.state, StateLeader)
  2747. }
  2748. // After another electionTimeout ticks without hearing from node 2,
  2749. // node 1 should step down.
  2750. for i := 0; i < r.electionTimeout; i++ {
  2751. r.tick()
  2752. }
  2753. if r.state != StateFollower {
  2754. t.Errorf("state = %v, want %v", r.state, StateFollower)
  2755. }
  2756. }
  2757. // TestRemoveNode tests that removeNode could update nodes and
  2758. // and removed list correctly.
  2759. func TestRemoveNode(t *testing.T) {
  2760. r := newTestRaft(1, []uint64{1, 2}, 10, 1, NewMemoryStorage())
  2761. r.applyConfChange(pb.ConfChange{NodeID: 2, Type: pb.ConfChangeRemoveNode})
  2762. w := []uint64{1}
  2763. if g := r.prs.VoterNodes(); !reflect.DeepEqual(g, w) {
  2764. t.Errorf("nodes = %v, want %v", g, w)
  2765. }
  2766. // Removing the remaining voter will panic.
  2767. defer func() {
  2768. if r := recover(); r == nil {
  2769. t.Error("did not panic")
  2770. }
  2771. }()
  2772. r.applyConfChange(pb.ConfChange{NodeID: 1, Type: pb.ConfChangeRemoveNode})
  2773. }
  2774. // TestRemoveLearner tests that removeNode could update nodes and
  2775. // and removed list correctly.
  2776. func TestRemoveLearner(t *testing.T) {
  2777. r := newTestLearnerRaft(1, []uint64{1}, []uint64{2}, 10, 1, NewMemoryStorage())
  2778. r.applyConfChange(pb.ConfChange{NodeID: 2, Type: pb.ConfChangeRemoveNode})
  2779. w := []uint64{1}
  2780. if g := r.prs.VoterNodes(); !reflect.DeepEqual(g, w) {
  2781. t.Errorf("nodes = %v, want %v", g, w)
  2782. }
  2783. w = []uint64{}
  2784. if g := r.prs.LearnerNodes(); !reflect.DeepEqual(g, w) {
  2785. t.Errorf("nodes = %v, want %v", g, w)
  2786. }
  2787. // Removing the remaining voter will panic.
  2788. defer func() {
  2789. if r := recover(); r == nil {
  2790. t.Error("did not panic")
  2791. }
  2792. }()
  2793. r.applyConfChange(pb.ConfChange{NodeID: 1, Type: pb.ConfChangeRemoveNode})
  2794. }
  2795. func TestPromotable(t *testing.T) {
  2796. id := uint64(1)
  2797. tests := []struct {
  2798. peers []uint64
  2799. wp bool
  2800. }{
  2801. {[]uint64{1}, true},
  2802. {[]uint64{1, 2, 3}, true},
  2803. {[]uint64{}, false},
  2804. {[]uint64{2, 3}, false},
  2805. }
  2806. for i, tt := range tests {
  2807. r := newTestRaft(id, tt.peers, 5, 1, NewMemoryStorage())
  2808. if g := r.promotable(); g != tt.wp {
  2809. t.Errorf("#%d: promotable = %v, want %v", i, g, tt.wp)
  2810. }
  2811. }
  2812. }
  2813. func TestRaftNodes(t *testing.T) {
  2814. tests := []struct {
  2815. ids []uint64
  2816. wids []uint64
  2817. }{
  2818. {
  2819. []uint64{1, 2, 3},
  2820. []uint64{1, 2, 3},
  2821. },
  2822. {
  2823. []uint64{3, 2, 1},
  2824. []uint64{1, 2, 3},
  2825. },
  2826. }
  2827. for i, tt := range tests {
  2828. r := newTestRaft(1, tt.ids, 10, 1, NewMemoryStorage())
  2829. if !reflect.DeepEqual(r.prs.VoterNodes(), tt.wids) {
  2830. t.Errorf("#%d: nodes = %+v, want %+v", i, r.prs.VoterNodes(), tt.wids)
  2831. }
  2832. }
  2833. }
  2834. func TestCampaignWhileLeader(t *testing.T) {
  2835. testCampaignWhileLeader(t, false)
  2836. }
  2837. func TestPreCampaignWhileLeader(t *testing.T) {
  2838. testCampaignWhileLeader(t, true)
  2839. }
  2840. func testCampaignWhileLeader(t *testing.T, preVote bool) {
  2841. cfg := newTestConfig(1, []uint64{1}, 5, 1, NewMemoryStorage())
  2842. cfg.PreVote = preVote
  2843. r := newRaft(cfg)
  2844. if r.state != StateFollower {
  2845. t.Errorf("expected new node to be follower but got %s", r.state)
  2846. }
  2847. // We don't call campaign() directly because it comes after the check
  2848. // for our current state.
  2849. r.Step(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  2850. if r.state != StateLeader {
  2851. t.Errorf("expected single-node election to become leader but got %s", r.state)
  2852. }
  2853. term := r.Term
  2854. r.Step(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  2855. if r.state != StateLeader {
  2856. t.Errorf("expected to remain leader but got %s", r.state)
  2857. }
  2858. if r.Term != term {
  2859. t.Errorf("expected to remain in term %v but got %v", term, r.Term)
  2860. }
  2861. }
  2862. // TestCommitAfterRemoveNode verifies that pending commands can become
  2863. // committed when a config change reduces the quorum requirements.
  2864. func TestCommitAfterRemoveNode(t *testing.T) {
  2865. // Create a cluster with two nodes.
  2866. s := NewMemoryStorage()
  2867. r := newTestRaft(1, []uint64{1, 2}, 5, 1, s)
  2868. r.becomeCandidate()
  2869. r.becomeLeader()
  2870. // Begin to remove the second node.
  2871. cc := pb.ConfChange{
  2872. Type: pb.ConfChangeRemoveNode,
  2873. NodeID: 2,
  2874. }
  2875. ccData, err := cc.Marshal()
  2876. if err != nil {
  2877. t.Fatal(err)
  2878. }
  2879. r.Step(pb.Message{
  2880. Type: pb.MsgProp,
  2881. Entries: []pb.Entry{
  2882. {Type: pb.EntryConfChange, Data: ccData},
  2883. },
  2884. })
  2885. // Stabilize the log and make sure nothing is committed yet.
  2886. if ents := nextEnts(r, s); len(ents) > 0 {
  2887. t.Fatalf("unexpected committed entries: %v", ents)
  2888. }
  2889. ccIndex := r.raftLog.lastIndex()
  2890. // While the config change is pending, make another proposal.
  2891. r.Step(pb.Message{
  2892. Type: pb.MsgProp,
  2893. Entries: []pb.Entry{
  2894. {Type: pb.EntryNormal, Data: []byte("hello")},
  2895. },
  2896. })
  2897. // Node 2 acknowledges the config change, committing it.
  2898. r.Step(pb.Message{
  2899. Type: pb.MsgAppResp,
  2900. From: 2,
  2901. Index: ccIndex,
  2902. })
  2903. ents := nextEnts(r, s)
  2904. if len(ents) != 2 {
  2905. t.Fatalf("expected two committed entries, got %v", ents)
  2906. }
  2907. if ents[0].Type != pb.EntryNormal || ents[0].Data != nil {
  2908. t.Fatalf("expected ents[0] to be empty, but got %v", ents[0])
  2909. }
  2910. if ents[1].Type != pb.EntryConfChange {
  2911. t.Fatalf("expected ents[1] to be EntryConfChange, got %v", ents[1])
  2912. }
  2913. // Apply the config change. This reduces quorum requirements so the
  2914. // pending command can now commit.
  2915. r.applyConfChange(cc)
  2916. ents = nextEnts(r, s)
  2917. if len(ents) != 1 || ents[0].Type != pb.EntryNormal ||
  2918. string(ents[0].Data) != "hello" {
  2919. t.Fatalf("expected one committed EntryNormal, got %v", ents)
  2920. }
  2921. }
  2922. // TestLeaderTransferToUpToDateNode verifies transferring should succeed
  2923. // if the transferee has the most up-to-date log entries when transfer starts.
  2924. func TestLeaderTransferToUpToDateNode(t *testing.T) {
  2925. nt := newNetwork(nil, nil, nil)
  2926. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  2927. lead := nt.peers[1].(*raft)
  2928. if lead.lead != 1 {
  2929. t.Fatalf("after election leader is %x, want 1", lead.lead)
  2930. }
  2931. // Transfer leadership to 2.
  2932. nt.send(pb.Message{From: 2, To: 1, Type: pb.MsgTransferLeader})
  2933. checkLeaderTransferState(t, lead, StateFollower, 2)
  2934. // After some log replication, transfer leadership back to 1.
  2935. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  2936. nt.send(pb.Message{From: 1, To: 2, Type: pb.MsgTransferLeader})
  2937. checkLeaderTransferState(t, lead, StateLeader, 1)
  2938. }
  2939. // TestLeaderTransferToUpToDateNodeFromFollower verifies transferring should succeed
  2940. // if the transferee has the most up-to-date log entries when transfer starts.
  2941. // Not like TestLeaderTransferToUpToDateNode, where the leader transfer message
  2942. // is sent to the leader, in this test case every leader transfer message is sent
  2943. // to the follower.
  2944. func TestLeaderTransferToUpToDateNodeFromFollower(t *testing.T) {
  2945. nt := newNetwork(nil, nil, nil)
  2946. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  2947. lead := nt.peers[1].(*raft)
  2948. if lead.lead != 1 {
  2949. t.Fatalf("after election leader is %x, want 1", lead.lead)
  2950. }
  2951. // Transfer leadership to 2.
  2952. nt.send(pb.Message{From: 2, To: 2, Type: pb.MsgTransferLeader})
  2953. checkLeaderTransferState(t, lead, StateFollower, 2)
  2954. // After some log replication, transfer leadership back to 1.
  2955. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  2956. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgTransferLeader})
  2957. checkLeaderTransferState(t, lead, StateLeader, 1)
  2958. }
  2959. // TestLeaderTransferWithCheckQuorum ensures transferring leader still works
  2960. // even the current leader is still under its leader lease
  2961. func TestLeaderTransferWithCheckQuorum(t *testing.T) {
  2962. nt := newNetwork(nil, nil, nil)
  2963. for i := 1; i < 4; i++ {
  2964. r := nt.peers[uint64(i)].(*raft)
  2965. r.checkQuorum = true
  2966. setRandomizedElectionTimeout(r, r.electionTimeout+i)
  2967. }
  2968. // Letting peer 2 electionElapsed reach to timeout so that it can vote for peer 1
  2969. f := nt.peers[2].(*raft)
  2970. for i := 0; i < f.electionTimeout; i++ {
  2971. f.tick()
  2972. }
  2973. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  2974. lead := nt.peers[1].(*raft)
  2975. if lead.lead != 1 {
  2976. t.Fatalf("after election leader is %x, want 1", lead.lead)
  2977. }
  2978. // Transfer leadership to 2.
  2979. nt.send(pb.Message{From: 2, To: 1, Type: pb.MsgTransferLeader})
  2980. checkLeaderTransferState(t, lead, StateFollower, 2)
  2981. // After some log replication, transfer leadership back to 1.
  2982. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  2983. nt.send(pb.Message{From: 1, To: 2, Type: pb.MsgTransferLeader})
  2984. checkLeaderTransferState(t, lead, StateLeader, 1)
  2985. }
  2986. func TestLeaderTransferToSlowFollower(t *testing.T) {
  2987. defaultLogger.EnableDebug()
  2988. nt := newNetwork(nil, nil, nil)
  2989. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  2990. nt.isolate(3)
  2991. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  2992. nt.recover()
  2993. lead := nt.peers[1].(*raft)
  2994. if lead.prs.Progress[3].Match != 1 {
  2995. t.Fatalf("node 1 has match %x for node 3, want %x", lead.prs.Progress[3].Match, 1)
  2996. }
  2997. // Transfer leadership to 3 when node 3 is lack of log.
  2998. nt.send(pb.Message{From: 3, To: 1, Type: pb.MsgTransferLeader})
  2999. checkLeaderTransferState(t, lead, StateFollower, 3)
  3000. }
  3001. func TestLeaderTransferAfterSnapshot(t *testing.T) {
  3002. nt := newNetwork(nil, nil, nil)
  3003. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3004. nt.isolate(3)
  3005. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  3006. lead := nt.peers[1].(*raft)
  3007. nextEnts(lead, nt.storage[1])
  3008. nt.storage[1].CreateSnapshot(lead.raftLog.applied, &pb.ConfState{Nodes: lead.prs.VoterNodes()}, nil)
  3009. nt.storage[1].Compact(lead.raftLog.applied)
  3010. nt.recover()
  3011. if lead.prs.Progress[3].Match != 1 {
  3012. t.Fatalf("node 1 has match %x for node 3, want %x", lead.prs.Progress[3].Match, 1)
  3013. }
  3014. // Transfer leadership to 3 when node 3 is lack of snapshot.
  3015. nt.send(pb.Message{From: 3, To: 1, Type: pb.MsgTransferLeader})
  3016. // Send pb.MsgHeartbeatResp to leader to trigger a snapshot for node 3.
  3017. nt.send(pb.Message{From: 3, To: 1, Type: pb.MsgHeartbeatResp})
  3018. checkLeaderTransferState(t, lead, StateFollower, 3)
  3019. }
  3020. func TestLeaderTransferToSelf(t *testing.T) {
  3021. nt := newNetwork(nil, nil, nil)
  3022. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3023. lead := nt.peers[1].(*raft)
  3024. // Transfer leadership to self, there will be noop.
  3025. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgTransferLeader})
  3026. checkLeaderTransferState(t, lead, StateLeader, 1)
  3027. }
  3028. func TestLeaderTransferToNonExistingNode(t *testing.T) {
  3029. nt := newNetwork(nil, nil, nil)
  3030. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3031. lead := nt.peers[1].(*raft)
  3032. // Transfer leadership to non-existing node, there will be noop.
  3033. nt.send(pb.Message{From: 4, To: 1, Type: pb.MsgTransferLeader})
  3034. checkLeaderTransferState(t, lead, StateLeader, 1)
  3035. }
  3036. func TestLeaderTransferTimeout(t *testing.T) {
  3037. nt := newNetwork(nil, nil, nil)
  3038. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3039. nt.isolate(3)
  3040. lead := nt.peers[1].(*raft)
  3041. // Transfer leadership to isolated node, wait for timeout.
  3042. nt.send(pb.Message{From: 3, To: 1, Type: pb.MsgTransferLeader})
  3043. if lead.leadTransferee != 3 {
  3044. t.Fatalf("wait transferring, leadTransferee = %v, want %v", lead.leadTransferee, 3)
  3045. }
  3046. for i := 0; i < lead.heartbeatTimeout; i++ {
  3047. lead.tick()
  3048. }
  3049. if lead.leadTransferee != 3 {
  3050. t.Fatalf("wait transferring, leadTransferee = %v, want %v", lead.leadTransferee, 3)
  3051. }
  3052. for i := 0; i < lead.electionTimeout-lead.heartbeatTimeout; i++ {
  3053. lead.tick()
  3054. }
  3055. checkLeaderTransferState(t, lead, StateLeader, 1)
  3056. }
  3057. func TestLeaderTransferIgnoreProposal(t *testing.T) {
  3058. nt := newNetwork(nil, nil, nil)
  3059. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3060. nt.isolate(3)
  3061. lead := nt.peers[1].(*raft)
  3062. // Transfer leadership to isolated node to let transfer pending, then send proposal.
  3063. nt.send(pb.Message{From: 3, To: 1, Type: pb.MsgTransferLeader})
  3064. if lead.leadTransferee != 3 {
  3065. t.Fatalf("wait transferring, leadTransferee = %v, want %v", lead.leadTransferee, 3)
  3066. }
  3067. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  3068. err := lead.Step(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{}}})
  3069. if err != ErrProposalDropped {
  3070. t.Fatalf("should return drop proposal error while transferring")
  3071. }
  3072. if lead.prs.Progress[1].Match != 1 {
  3073. t.Fatalf("node 1 has match %x, want %x", lead.prs.Progress[1].Match, 1)
  3074. }
  3075. }
  3076. func TestLeaderTransferReceiveHigherTermVote(t *testing.T) {
  3077. nt := newNetwork(nil, nil, nil)
  3078. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3079. nt.isolate(3)
  3080. lead := nt.peers[1].(*raft)
  3081. // Transfer leadership to isolated node to let transfer pending.
  3082. nt.send(pb.Message{From: 3, To: 1, Type: pb.MsgTransferLeader})
  3083. if lead.leadTransferee != 3 {
  3084. t.Fatalf("wait transferring, leadTransferee = %v, want %v", lead.leadTransferee, 3)
  3085. }
  3086. nt.send(pb.Message{From: 2, To: 2, Type: pb.MsgHup, Index: 1, Term: 2})
  3087. checkLeaderTransferState(t, lead, StateFollower, 2)
  3088. }
  3089. func TestLeaderTransferRemoveNode(t *testing.T) {
  3090. nt := newNetwork(nil, nil, nil)
  3091. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3092. nt.ignore(pb.MsgTimeoutNow)
  3093. lead := nt.peers[1].(*raft)
  3094. // The leadTransferee is removed when leadship transferring.
  3095. nt.send(pb.Message{From: 3, To: 1, Type: pb.MsgTransferLeader})
  3096. if lead.leadTransferee != 3 {
  3097. t.Fatalf("wait transferring, leadTransferee = %v, want %v", lead.leadTransferee, 3)
  3098. }
  3099. lead.applyConfChange(pb.ConfChange{NodeID: 3, Type: pb.ConfChangeRemoveNode})
  3100. checkLeaderTransferState(t, lead, StateLeader, 1)
  3101. }
  3102. // TestLeaderTransferBack verifies leadership can transfer back to self when last transfer is pending.
  3103. func TestLeaderTransferBack(t *testing.T) {
  3104. nt := newNetwork(nil, nil, nil)
  3105. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3106. nt.isolate(3)
  3107. lead := nt.peers[1].(*raft)
  3108. nt.send(pb.Message{From: 3, To: 1, Type: pb.MsgTransferLeader})
  3109. if lead.leadTransferee != 3 {
  3110. t.Fatalf("wait transferring, leadTransferee = %v, want %v", lead.leadTransferee, 3)
  3111. }
  3112. // Transfer leadership back to self.
  3113. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgTransferLeader})
  3114. checkLeaderTransferState(t, lead, StateLeader, 1)
  3115. }
  3116. // TestLeaderTransferSecondTransferToAnotherNode verifies leader can transfer to another node
  3117. // when last transfer is pending.
  3118. func TestLeaderTransferSecondTransferToAnotherNode(t *testing.T) {
  3119. nt := newNetwork(nil, nil, nil)
  3120. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3121. nt.isolate(3)
  3122. lead := nt.peers[1].(*raft)
  3123. nt.send(pb.Message{From: 3, To: 1, Type: pb.MsgTransferLeader})
  3124. if lead.leadTransferee != 3 {
  3125. t.Fatalf("wait transferring, leadTransferee = %v, want %v", lead.leadTransferee, 3)
  3126. }
  3127. // Transfer leadership to another node.
  3128. nt.send(pb.Message{From: 2, To: 1, Type: pb.MsgTransferLeader})
  3129. checkLeaderTransferState(t, lead, StateFollower, 2)
  3130. }
  3131. // TestLeaderTransferSecondTransferToSameNode verifies second transfer leader request
  3132. // to the same node should not extend the timeout while the first one is pending.
  3133. func TestLeaderTransferSecondTransferToSameNode(t *testing.T) {
  3134. nt := newNetwork(nil, nil, nil)
  3135. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3136. nt.isolate(3)
  3137. lead := nt.peers[1].(*raft)
  3138. nt.send(pb.Message{From: 3, To: 1, Type: pb.MsgTransferLeader})
  3139. if lead.leadTransferee != 3 {
  3140. t.Fatalf("wait transferring, leadTransferee = %v, want %v", lead.leadTransferee, 3)
  3141. }
  3142. for i := 0; i < lead.heartbeatTimeout; i++ {
  3143. lead.tick()
  3144. }
  3145. // Second transfer leadership request to the same node.
  3146. nt.send(pb.Message{From: 3, To: 1, Type: pb.MsgTransferLeader})
  3147. for i := 0; i < lead.electionTimeout-lead.heartbeatTimeout; i++ {
  3148. lead.tick()
  3149. }
  3150. checkLeaderTransferState(t, lead, StateLeader, 1)
  3151. }
  3152. func checkLeaderTransferState(t *testing.T, r *raft, state StateType, lead uint64) {
  3153. if r.state != state || r.lead != lead {
  3154. t.Fatalf("after transferring, node has state %v lead %v, want state %v lead %v", r.state, r.lead, state, lead)
  3155. }
  3156. if r.leadTransferee != None {
  3157. t.Fatalf("after transferring, node has leadTransferee %v, want leadTransferee %v", r.leadTransferee, None)
  3158. }
  3159. }
  3160. // TestTransferNonMember verifies that when a MsgTimeoutNow arrives at
  3161. // a node that has been removed from the group, nothing happens.
  3162. // (previously, if the node also got votes, it would panic as it
  3163. // transitioned to StateLeader)
  3164. func TestTransferNonMember(t *testing.T) {
  3165. r := newTestRaft(1, []uint64{2, 3, 4}, 5, 1, NewMemoryStorage())
  3166. r.Step(pb.Message{From: 2, To: 1, Type: pb.MsgTimeoutNow})
  3167. r.Step(pb.Message{From: 2, To: 1, Type: pb.MsgVoteResp})
  3168. r.Step(pb.Message{From: 3, To: 1, Type: pb.MsgVoteResp})
  3169. if r.state != StateFollower {
  3170. t.Fatalf("state is %s, want StateFollower", r.state)
  3171. }
  3172. }
  3173. // TestNodeWithSmallerTermCanCompleteElection tests the scenario where a node
  3174. // that has been partitioned away (and fallen behind) rejoins the cluster at
  3175. // about the same time the leader node gets partitioned away.
  3176. // Previously the cluster would come to a standstill when run with PreVote
  3177. // enabled.
  3178. func TestNodeWithSmallerTermCanCompleteElection(t *testing.T) {
  3179. n1 := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3180. n2 := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3181. n3 := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3182. n1.becomeFollower(1, None)
  3183. n2.becomeFollower(1, None)
  3184. n3.becomeFollower(1, None)
  3185. n1.preVote = true
  3186. n2.preVote = true
  3187. n3.preVote = true
  3188. // cause a network partition to isolate node 3
  3189. nt := newNetwork(n1, n2, n3)
  3190. nt.cut(1, 3)
  3191. nt.cut(2, 3)
  3192. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3193. sm := nt.peers[1].(*raft)
  3194. if sm.state != StateLeader {
  3195. t.Errorf("peer 1 state: %s, want %s", sm.state, StateLeader)
  3196. }
  3197. sm = nt.peers[2].(*raft)
  3198. if sm.state != StateFollower {
  3199. t.Errorf("peer 2 state: %s, want %s", sm.state, StateFollower)
  3200. }
  3201. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  3202. sm = nt.peers[3].(*raft)
  3203. if sm.state != StatePreCandidate {
  3204. t.Errorf("peer 3 state: %s, want %s", sm.state, StatePreCandidate)
  3205. }
  3206. nt.send(pb.Message{From: 2, To: 2, Type: pb.MsgHup})
  3207. // check whether the term values are expected
  3208. // a.Term == 3
  3209. // b.Term == 3
  3210. // c.Term == 1
  3211. sm = nt.peers[1].(*raft)
  3212. if sm.Term != 3 {
  3213. t.Errorf("peer 1 term: %d, want %d", sm.Term, 3)
  3214. }
  3215. sm = nt.peers[2].(*raft)
  3216. if sm.Term != 3 {
  3217. t.Errorf("peer 2 term: %d, want %d", sm.Term, 3)
  3218. }
  3219. sm = nt.peers[3].(*raft)
  3220. if sm.Term != 1 {
  3221. t.Errorf("peer 3 term: %d, want %d", sm.Term, 1)
  3222. }
  3223. // check state
  3224. // a == follower
  3225. // b == leader
  3226. // c == pre-candidate
  3227. sm = nt.peers[1].(*raft)
  3228. if sm.state != StateFollower {
  3229. t.Errorf("peer 1 state: %s, want %s", sm.state, StateFollower)
  3230. }
  3231. sm = nt.peers[2].(*raft)
  3232. if sm.state != StateLeader {
  3233. t.Errorf("peer 2 state: %s, want %s", sm.state, StateLeader)
  3234. }
  3235. sm = nt.peers[3].(*raft)
  3236. if sm.state != StatePreCandidate {
  3237. t.Errorf("peer 3 state: %s, want %s", sm.state, StatePreCandidate)
  3238. }
  3239. sm.logger.Infof("going to bring back peer 3 and kill peer 2")
  3240. // recover the network then immediately isolate b which is currently
  3241. // the leader, this is to emulate the crash of b.
  3242. nt.recover()
  3243. nt.cut(2, 1)
  3244. nt.cut(2, 3)
  3245. // call for election
  3246. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  3247. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3248. // do we have a leader?
  3249. sma := nt.peers[1].(*raft)
  3250. smb := nt.peers[3].(*raft)
  3251. if sma.state != StateLeader && smb.state != StateLeader {
  3252. t.Errorf("no leader")
  3253. }
  3254. }
  3255. // TestPreVoteWithSplitVote verifies that after split vote, cluster can complete
  3256. // election in next round.
  3257. func TestPreVoteWithSplitVote(t *testing.T) {
  3258. n1 := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3259. n2 := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3260. n3 := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3261. n1.becomeFollower(1, None)
  3262. n2.becomeFollower(1, None)
  3263. n3.becomeFollower(1, None)
  3264. n1.preVote = true
  3265. n2.preVote = true
  3266. n3.preVote = true
  3267. nt := newNetwork(n1, n2, n3)
  3268. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3269. // simulate leader down. followers start split vote.
  3270. nt.isolate(1)
  3271. nt.send([]pb.Message{
  3272. {From: 2, To: 2, Type: pb.MsgHup},
  3273. {From: 3, To: 3, Type: pb.MsgHup},
  3274. }...)
  3275. // check whether the term values are expected
  3276. // n2.Term == 3
  3277. // n3.Term == 3
  3278. sm := nt.peers[2].(*raft)
  3279. if sm.Term != 3 {
  3280. t.Errorf("peer 2 term: %d, want %d", sm.Term, 3)
  3281. }
  3282. sm = nt.peers[3].(*raft)
  3283. if sm.Term != 3 {
  3284. t.Errorf("peer 3 term: %d, want %d", sm.Term, 3)
  3285. }
  3286. // check state
  3287. // n2 == candidate
  3288. // n3 == candidate
  3289. sm = nt.peers[2].(*raft)
  3290. if sm.state != StateCandidate {
  3291. t.Errorf("peer 2 state: %s, want %s", sm.state, StateCandidate)
  3292. }
  3293. sm = nt.peers[3].(*raft)
  3294. if sm.state != StateCandidate {
  3295. t.Errorf("peer 3 state: %s, want %s", sm.state, StateCandidate)
  3296. }
  3297. // node 2 election timeout first
  3298. nt.send(pb.Message{From: 2, To: 2, Type: pb.MsgHup})
  3299. // check whether the term values are expected
  3300. // n2.Term == 4
  3301. // n3.Term == 4
  3302. sm = nt.peers[2].(*raft)
  3303. if sm.Term != 4 {
  3304. t.Errorf("peer 2 term: %d, want %d", sm.Term, 4)
  3305. }
  3306. sm = nt.peers[3].(*raft)
  3307. if sm.Term != 4 {
  3308. t.Errorf("peer 3 term: %d, want %d", sm.Term, 4)
  3309. }
  3310. // check state
  3311. // n2 == leader
  3312. // n3 == follower
  3313. sm = nt.peers[2].(*raft)
  3314. if sm.state != StateLeader {
  3315. t.Errorf("peer 2 state: %s, want %s", sm.state, StateLeader)
  3316. }
  3317. sm = nt.peers[3].(*raft)
  3318. if sm.state != StateFollower {
  3319. t.Errorf("peer 3 state: %s, want %s", sm.state, StateFollower)
  3320. }
  3321. }
  3322. // TestPreVoteWithCheckQuorum ensures that after a node become pre-candidate,
  3323. // it will checkQuorum correctly.
  3324. func TestPreVoteWithCheckQuorum(t *testing.T) {
  3325. n1 := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3326. n2 := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3327. n3 := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3328. n1.becomeFollower(1, None)
  3329. n2.becomeFollower(1, None)
  3330. n3.becomeFollower(1, None)
  3331. n1.preVote = true
  3332. n2.preVote = true
  3333. n3.preVote = true
  3334. n1.checkQuorum = true
  3335. n2.checkQuorum = true
  3336. n3.checkQuorum = true
  3337. nt := newNetwork(n1, n2, n3)
  3338. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3339. // isolate node 1. node 2 and node 3 have leader info
  3340. nt.isolate(1)
  3341. // check state
  3342. sm := nt.peers[1].(*raft)
  3343. if sm.state != StateLeader {
  3344. t.Fatalf("peer 1 state: %s, want %s", sm.state, StateLeader)
  3345. }
  3346. sm = nt.peers[2].(*raft)
  3347. if sm.state != StateFollower {
  3348. t.Fatalf("peer 2 state: %s, want %s", sm.state, StateFollower)
  3349. }
  3350. sm = nt.peers[3].(*raft)
  3351. if sm.state != StateFollower {
  3352. t.Fatalf("peer 3 state: %s, want %s", sm.state, StateFollower)
  3353. }
  3354. // node 2 will ignore node 3's PreVote
  3355. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  3356. nt.send(pb.Message{From: 2, To: 2, Type: pb.MsgHup})
  3357. // Do we have a leader?
  3358. if n2.state != StateLeader && n3.state != StateFollower {
  3359. t.Errorf("no leader")
  3360. }
  3361. }
  3362. // TestLearnerCampaign verifies that a learner won't campaign even if it receives
  3363. // a MsgHup or MsgTimeoutNow.
  3364. func TestLearnerCampaign(t *testing.T) {
  3365. n1 := newTestRaft(1, []uint64{1}, 10, 1, NewMemoryStorage())
  3366. n1.applyConfChange(pb.ConfChange{NodeID: 2, Type: pb.ConfChangeAddLearnerNode})
  3367. n2 := newTestRaft(2, []uint64{1}, 10, 1, NewMemoryStorage())
  3368. n2.applyConfChange(pb.ConfChange{NodeID: 2, Type: pb.ConfChangeAddLearnerNode})
  3369. nt := newNetwork(n1, n2)
  3370. nt.send(pb.Message{From: 2, To: 2, Type: pb.MsgHup})
  3371. if !n2.isLearner {
  3372. t.Fatalf("failed to make n2 a learner")
  3373. }
  3374. if n2.state != StateFollower {
  3375. t.Fatalf("n2 campaigned despite being learner")
  3376. }
  3377. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3378. if n1.state != StateLeader || n1.lead != 1 {
  3379. t.Fatalf("n1 did not become leader")
  3380. }
  3381. // NB: TransferLeader already checks that the recipient is not a learner, but
  3382. // the check could have happened by the time the recipient becomes a learner,
  3383. // in which case it will receive MsgTimeoutNow as in this test case and we
  3384. // verify that it's ignored.
  3385. nt.send(pb.Message{From: 1, To: 2, Type: pb.MsgTimeoutNow})
  3386. if n2.state != StateFollower {
  3387. t.Fatalf("n2 accepted leadership transfer despite being learner")
  3388. }
  3389. }
  3390. // simulate rolling update a cluster for Pre-Vote. cluster has 3 nodes [n1, n2, n3].
  3391. // n1 is leader with term 2
  3392. // n2 is follower with term 2
  3393. // n3 is partitioned, with term 4 and less log, state is candidate
  3394. func newPreVoteMigrationCluster(t *testing.T) *network {
  3395. n1 := newTestRaft(1, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3396. n2 := newTestRaft(2, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3397. n3 := newTestRaft(3, []uint64{1, 2, 3}, 10, 1, NewMemoryStorage())
  3398. n1.becomeFollower(1, None)
  3399. n2.becomeFollower(1, None)
  3400. n3.becomeFollower(1, None)
  3401. n1.preVote = true
  3402. n2.preVote = true
  3403. // We intentionally do not enable PreVote for n3, this is done so in order
  3404. // to simulate a rolling restart process where it's possible to have a mixed
  3405. // version cluster with replicas with PreVote enabled, and replicas without.
  3406. nt := newNetwork(n1, n2, n3)
  3407. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgHup})
  3408. // Cause a network partition to isolate n3.
  3409. nt.isolate(3)
  3410. nt.send(pb.Message{From: 1, To: 1, Type: pb.MsgProp, Entries: []pb.Entry{{Data: []byte("some data")}}})
  3411. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  3412. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  3413. // check state
  3414. // n1.state == StateLeader
  3415. // n2.state == StateFollower
  3416. // n3.state == StateCandidate
  3417. if n1.state != StateLeader {
  3418. t.Fatalf("node 1 state: %s, want %s", n1.state, StateLeader)
  3419. }
  3420. if n2.state != StateFollower {
  3421. t.Fatalf("node 2 state: %s, want %s", n2.state, StateFollower)
  3422. }
  3423. if n3.state != StateCandidate {
  3424. t.Fatalf("node 3 state: %s, want %s", n3.state, StateCandidate)
  3425. }
  3426. // check term
  3427. // n1.Term == 2
  3428. // n2.Term == 2
  3429. // n3.Term == 4
  3430. if n1.Term != 2 {
  3431. t.Fatalf("node 1 term: %d, want %d", n1.Term, 2)
  3432. }
  3433. if n2.Term != 2 {
  3434. t.Fatalf("node 2 term: %d, want %d", n2.Term, 2)
  3435. }
  3436. if n3.Term != 4 {
  3437. t.Fatalf("node 3 term: %d, want %d", n3.Term, 4)
  3438. }
  3439. // Enable prevote on n3, then recover the network
  3440. n3.preVote = true
  3441. nt.recover()
  3442. return nt
  3443. }
  3444. func TestPreVoteMigrationCanCompleteElection(t *testing.T) {
  3445. nt := newPreVoteMigrationCluster(t)
  3446. // n1 is leader with term 2
  3447. // n2 is follower with term 2
  3448. // n3 is pre-candidate with term 4, and less log
  3449. n2 := nt.peers[2].(*raft)
  3450. n3 := nt.peers[3].(*raft)
  3451. // simulate leader down
  3452. nt.isolate(1)
  3453. // Call for elections from both n2 and n3.
  3454. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  3455. nt.send(pb.Message{From: 2, To: 2, Type: pb.MsgHup})
  3456. // check state
  3457. // n2.state == Follower
  3458. // n3.state == PreCandidate
  3459. if n2.state != StateFollower {
  3460. t.Errorf("node 2 state: %s, want %s", n2.state, StateFollower)
  3461. }
  3462. if n3.state != StatePreCandidate {
  3463. t.Errorf("node 3 state: %s, want %s", n3.state, StatePreCandidate)
  3464. }
  3465. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  3466. nt.send(pb.Message{From: 2, To: 2, Type: pb.MsgHup})
  3467. // Do we have a leader?
  3468. if n2.state != StateLeader && n3.state != StateFollower {
  3469. t.Errorf("no leader")
  3470. }
  3471. }
  3472. func TestPreVoteMigrationWithFreeStuckPreCandidate(t *testing.T) {
  3473. nt := newPreVoteMigrationCluster(t)
  3474. // n1 is leader with term 2
  3475. // n2 is follower with term 2
  3476. // n3 is pre-candidate with term 4, and less log
  3477. n1 := nt.peers[1].(*raft)
  3478. n2 := nt.peers[2].(*raft)
  3479. n3 := nt.peers[3].(*raft)
  3480. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  3481. if n1.state != StateLeader {
  3482. t.Errorf("node 1 state: %s, want %s", n1.state, StateLeader)
  3483. }
  3484. if n2.state != StateFollower {
  3485. t.Errorf("node 2 state: %s, want %s", n2.state, StateFollower)
  3486. }
  3487. if n3.state != StatePreCandidate {
  3488. t.Errorf("node 3 state: %s, want %s", n3.state, StatePreCandidate)
  3489. }
  3490. // Pre-Vote again for safety
  3491. nt.send(pb.Message{From: 3, To: 3, Type: pb.MsgHup})
  3492. if n1.state != StateLeader {
  3493. t.Errorf("node 1 state: %s, want %s", n1.state, StateLeader)
  3494. }
  3495. if n2.state != StateFollower {
  3496. t.Errorf("node 2 state: %s, want %s", n2.state, StateFollower)
  3497. }
  3498. if n3.state != StatePreCandidate {
  3499. t.Errorf("node 3 state: %s, want %s", n3.state, StatePreCandidate)
  3500. }
  3501. nt.send(pb.Message{From: 1, To: 3, Type: pb.MsgHeartbeat, Term: n1.Term})
  3502. // Disrupt the leader so that the stuck peer is freed
  3503. if n1.state != StateFollower {
  3504. t.Errorf("state = %s, want %s", n1.state, StateFollower)
  3505. }
  3506. if n3.Term != n1.Term {
  3507. t.Errorf("term = %d, want %d", n3.Term, n1.Term)
  3508. }
  3509. }
  3510. func entsWithConfig(configFunc func(*Config), terms ...uint64) *raft {
  3511. storage := NewMemoryStorage()
  3512. for i, term := range terms {
  3513. storage.Append([]pb.Entry{{Index: uint64(i + 1), Term: term}})
  3514. }
  3515. cfg := newTestConfig(1, []uint64{}, 5, 1, storage)
  3516. if configFunc != nil {
  3517. configFunc(cfg)
  3518. }
  3519. sm := newRaft(cfg)
  3520. sm.reset(terms[len(terms)-1])
  3521. return sm
  3522. }
  3523. // votedWithConfig creates a raft state machine with Vote and Term set
  3524. // to the given value but no log entries (indicating that it voted in
  3525. // the given term but has not received any logs).
  3526. func votedWithConfig(configFunc func(*Config), vote, term uint64) *raft {
  3527. storage := NewMemoryStorage()
  3528. storage.SetHardState(pb.HardState{Vote: vote, Term: term})
  3529. cfg := newTestConfig(1, []uint64{}, 5, 1, storage)
  3530. if configFunc != nil {
  3531. configFunc(cfg)
  3532. }
  3533. sm := newRaft(cfg)
  3534. sm.reset(term)
  3535. return sm
  3536. }
  3537. type network struct {
  3538. peers map[uint64]stateMachine
  3539. storage map[uint64]*MemoryStorage
  3540. dropm map[connem]float64
  3541. ignorem map[pb.MessageType]bool
  3542. // msgHook is called for each message sent. It may inspect the
  3543. // message and return true to send it or false to drop it.
  3544. msgHook func(pb.Message) bool
  3545. }
  3546. // newNetwork initializes a network from peers.
  3547. // A nil node will be replaced with a new *stateMachine.
  3548. // A *stateMachine will get its k, id.
  3549. // When using stateMachine, the address list is always [1, n].
  3550. func newNetwork(peers ...stateMachine) *network {
  3551. return newNetworkWithConfig(nil, peers...)
  3552. }
  3553. // newNetworkWithConfig is like newNetwork but calls the given func to
  3554. // modify the configuration of any state machines it creates.
  3555. func newNetworkWithConfig(configFunc func(*Config), peers ...stateMachine) *network {
  3556. size := len(peers)
  3557. peerAddrs := idsBySize(size)
  3558. npeers := make(map[uint64]stateMachine, size)
  3559. nstorage := make(map[uint64]*MemoryStorage, size)
  3560. for j, p := range peers {
  3561. id := peerAddrs[j]
  3562. switch v := p.(type) {
  3563. case nil:
  3564. nstorage[id] = NewMemoryStorage()
  3565. cfg := newTestConfig(id, peerAddrs, 10, 1, nstorage[id])
  3566. if configFunc != nil {
  3567. configFunc(cfg)
  3568. }
  3569. sm := newRaft(cfg)
  3570. npeers[id] = sm
  3571. case *raft:
  3572. // TODO(tbg): this is all pretty confused. Clean this up.
  3573. learners := make(map[uint64]bool, len(v.prs.Learners))
  3574. for i := range v.prs.Learners {
  3575. learners[i] = true
  3576. }
  3577. v.id = id
  3578. v.prs = tracker.MakeProgressTracker(v.prs.MaxInflight)
  3579. if len(learners) > 0 {
  3580. v.prs.Learners = map[uint64]struct{}{}
  3581. }
  3582. for i := 0; i < size; i++ {
  3583. pr := &tracker.Progress{}
  3584. if _, ok := learners[peerAddrs[i]]; ok {
  3585. pr.IsLearner = true
  3586. v.prs.Learners[peerAddrs[i]] = struct{}{}
  3587. } else {
  3588. v.prs.Voters[0][peerAddrs[i]] = struct{}{}
  3589. }
  3590. v.prs.Progress[peerAddrs[i]] = pr
  3591. }
  3592. v.reset(v.Term)
  3593. npeers[id] = v
  3594. case *blackHole:
  3595. npeers[id] = v
  3596. default:
  3597. panic(fmt.Sprintf("unexpected state machine type: %T", p))
  3598. }
  3599. }
  3600. return &network{
  3601. peers: npeers,
  3602. storage: nstorage,
  3603. dropm: make(map[connem]float64),
  3604. ignorem: make(map[pb.MessageType]bool),
  3605. }
  3606. }
  3607. func preVoteConfig(c *Config) {
  3608. c.PreVote = true
  3609. }
  3610. func (nw *network) send(msgs ...pb.Message) {
  3611. for len(msgs) > 0 {
  3612. m := msgs[0]
  3613. p := nw.peers[m.To]
  3614. p.Step(m)
  3615. msgs = append(msgs[1:], nw.filter(p.readMessages())...)
  3616. }
  3617. }
  3618. func (nw *network) drop(from, to uint64, perc float64) {
  3619. nw.dropm[connem{from, to}] = perc
  3620. }
  3621. func (nw *network) cut(one, other uint64) {
  3622. nw.drop(one, other, 2.0) // always drop
  3623. nw.drop(other, one, 2.0) // always drop
  3624. }
  3625. func (nw *network) isolate(id uint64) {
  3626. for i := 0; i < len(nw.peers); i++ {
  3627. nid := uint64(i) + 1
  3628. if nid != id {
  3629. nw.drop(id, nid, 1.0) // always drop
  3630. nw.drop(nid, id, 1.0) // always drop
  3631. }
  3632. }
  3633. }
  3634. func (nw *network) ignore(t pb.MessageType) {
  3635. nw.ignorem[t] = true
  3636. }
  3637. func (nw *network) recover() {
  3638. nw.dropm = make(map[connem]float64)
  3639. nw.ignorem = make(map[pb.MessageType]bool)
  3640. }
  3641. func (nw *network) filter(msgs []pb.Message) []pb.Message {
  3642. mm := []pb.Message{}
  3643. for _, m := range msgs {
  3644. if nw.ignorem[m.Type] {
  3645. continue
  3646. }
  3647. switch m.Type {
  3648. case pb.MsgHup:
  3649. // hups never go over the network, so don't drop them but panic
  3650. panic("unexpected msgHup")
  3651. default:
  3652. perc := nw.dropm[connem{m.From, m.To}]
  3653. if n := rand.Float64(); n < perc {
  3654. continue
  3655. }
  3656. }
  3657. if nw.msgHook != nil {
  3658. if !nw.msgHook(m) {
  3659. continue
  3660. }
  3661. }
  3662. mm = append(mm, m)
  3663. }
  3664. return mm
  3665. }
  3666. type connem struct {
  3667. from, to uint64
  3668. }
  3669. type blackHole struct{}
  3670. func (blackHole) Step(pb.Message) error { return nil }
  3671. func (blackHole) readMessages() []pb.Message { return nil }
  3672. var nopStepper = &blackHole{}
  3673. func idsBySize(size int) []uint64 {
  3674. ids := make([]uint64, size)
  3675. for i := 0; i < size; i++ {
  3676. ids[i] = 1 + uint64(i)
  3677. }
  3678. return ids
  3679. }
  3680. // setRandomizedElectionTimeout set up the value by caller instead of choosing
  3681. // by system, in some test scenario we need to fill in some expected value to
  3682. // ensure the certainty
  3683. func setRandomizedElectionTimeout(r *raft, v int) {
  3684. r.randomizedElectionTimeout = v
  3685. }
  3686. func newTestConfig(id uint64, peers []uint64, election, heartbeat int, storage Storage) *Config {
  3687. return &Config{
  3688. ID: id,
  3689. peers: peers,
  3690. ElectionTick: election,
  3691. HeartbeatTick: heartbeat,
  3692. Storage: storage,
  3693. MaxSizePerMsg: noLimit,
  3694. MaxInflightMsgs: 256,
  3695. }
  3696. }
  3697. func newTestRaft(id uint64, peers []uint64, election, heartbeat int, storage Storage) *raft {
  3698. return newRaft(newTestConfig(id, peers, election, heartbeat, storage))
  3699. }
  3700. func newTestLearnerRaft(id uint64, peers []uint64, learners []uint64, election, heartbeat int, storage Storage) *raft {
  3701. cfg := newTestConfig(id, peers, election, heartbeat, storage)
  3702. cfg.learners = learners
  3703. return newRaft(cfg)
  3704. }