node.go 12 KB

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  1. /*
  2. Copyright 2014 CoreOS, Inc.
  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. http://www.apache.org/licenses/LICENSE-2.0
  7. Unless required by applicable law or agreed to in writing, software
  8. distributed under the License is distributed on an "AS IS" BASIS,
  9. WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  10. See the License for the specific language governing permissions and
  11. limitations under the License.
  12. */
  13. package raft
  14. import (
  15. "errors"
  16. "log"
  17. "reflect"
  18. "github.com/coreos/etcd/Godeps/_workspace/src/golang.org/x/net/context"
  19. pb "github.com/coreos/etcd/raft/raftpb"
  20. )
  21. var (
  22. emptyState = pb.HardState{}
  23. // ErrStopped is returned by methods on Nodes that have been stopped.
  24. ErrStopped = errors.New("raft: stopped")
  25. )
  26. // SoftState provides state that is useful for logging and debugging.
  27. // The state is volatile and does not need to be persisted to the WAL.
  28. type SoftState struct {
  29. Lead uint64
  30. RaftState StateType
  31. Nodes []uint64
  32. }
  33. func (a *SoftState) equal(b *SoftState) bool {
  34. return reflect.DeepEqual(a, b)
  35. }
  36. // Ready encapsulates the entries and messages that are ready to read,
  37. // be saved to stable storage, committed or sent to other peers.
  38. // All fields in Ready are read-only.
  39. type Ready struct {
  40. // The current volatile state of a Node.
  41. // SoftState will be nil if there is no update.
  42. // It is not required to consume or store SoftState.
  43. *SoftState
  44. // The current state of a Node to be saved to stable storage BEFORE
  45. // Messages are sent.
  46. // HardState will be equal to empty state if there is no update.
  47. pb.HardState
  48. // Entries specifies entries to be saved to stable storage BEFORE
  49. // Messages are sent.
  50. Entries []pb.Entry
  51. // Snapshot specifies the snapshot to be saved to stable storage.
  52. Snapshot pb.Snapshot
  53. // CommittedEntries specifies entries to be committed to a
  54. // store/state-machine. These have previously been committed to stable
  55. // store.
  56. CommittedEntries []pb.Entry
  57. // Messages specifies outbound messages to be sent AFTER Entries are
  58. // committed to stable storage.
  59. Messages []pb.Message
  60. }
  61. func isHardStateEqual(a, b pb.HardState) bool {
  62. return a.Term == b.Term && a.Vote == b.Vote && a.Commit == b.Commit
  63. }
  64. // IsEmptyHardState returns true if the given HardState is empty.
  65. func IsEmptyHardState(st pb.HardState) bool {
  66. return isHardStateEqual(st, emptyState)
  67. }
  68. // IsEmptySnap returns true if the given Snapshot is empty.
  69. func IsEmptySnap(sp pb.Snapshot) bool {
  70. return sp.Metadata.Index == 0
  71. }
  72. func (rd Ready) containsUpdates() bool {
  73. return rd.SoftState != nil || !IsEmptyHardState(rd.HardState) ||
  74. !IsEmptySnap(rd.Snapshot) || len(rd.Entries) > 0 ||
  75. len(rd.CommittedEntries) > 0 || len(rd.Messages) > 0
  76. }
  77. // Node represents a node in a raft cluster.
  78. type Node interface {
  79. // Tick increments the internal logical clock for the Node by a single tick. Election
  80. // timeouts and heartbeat timeouts are in units of ticks.
  81. Tick()
  82. // Campaign causes the Node to transition to candidate state and start campaigning to become leader.
  83. Campaign(ctx context.Context) error
  84. // Propose proposes that data be appended to the log.
  85. Propose(ctx context.Context, data []byte) error
  86. // ProposeConfChange proposes config change.
  87. // At most one ConfChange can be in the process of going through consensus.
  88. // Application needs to call ApplyConfChange when applying EntryConfChange type entry.
  89. ProposeConfChange(ctx context.Context, cc pb.ConfChange) error
  90. // Step advances the state machine using the given message. ctx.Err() will be returned, if any.
  91. Step(ctx context.Context, msg pb.Message) error
  92. // Ready returns a channel that returns the current point-in-time state
  93. // Users of the Node must call Advance after applying the state returned by Ready
  94. Ready() <-chan Ready
  95. // Advance notifies the Node that the application has applied and saved progress up to the last Ready.
  96. // It prepares the node to return the next available Ready.
  97. Advance()
  98. // ApplyConfChange applies config change to the local node.
  99. // Returns an opaque ConfState protobuf which must be recorded
  100. // in snapshots. Will never return nil; it returns a pointer only
  101. // to match MemoryStorage.Compact.
  102. ApplyConfChange(cc pb.ConfChange) *pb.ConfState
  103. // Stop performs any necessary termination of the Node
  104. Stop()
  105. }
  106. type Peer struct {
  107. ID uint64
  108. Context []byte
  109. }
  110. // StartNode returns a new Node given a unique raft id, a list of raft peers, and
  111. // the election and heartbeat timeouts in units of ticks.
  112. // It appends a ConfChangeAddNode entry for each given peer to the initial log.
  113. func StartNode(id uint64, peers []Peer, election, heartbeat int, storage Storage) Node {
  114. n := newNode()
  115. r := newRaft(id, nil, election, heartbeat, storage)
  116. for _, peer := range peers {
  117. cc := pb.ConfChange{Type: pb.ConfChangeAddNode, NodeID: peer.ID, Context: peer.Context}
  118. d, err := cc.Marshal()
  119. if err != nil {
  120. panic("unexpected marshal error")
  121. }
  122. e := pb.Entry{Type: pb.EntryConfChange, Term: 1, Index: r.raftLog.lastIndex() + 1, Data: d}
  123. r.raftLog.append(e)
  124. }
  125. // Mark these initial entries as committed.
  126. // TODO(bdarnell): These entries are still unstable; do we need to preserve
  127. // the invariant that committed < unstable?
  128. r.raftLog.committed = r.raftLog.lastIndex()
  129. // Now apply them, mainly so that the application can call Campaign
  130. // immediately after StartNode in tests. Note that these nodes will
  131. // be added to raft twice: here and when the application's Ready
  132. // loop calls ApplyConfChange. The calls to addNode must come after
  133. // all calls to raftLog.append so progress.next is set after these
  134. // bootstrapping entries (it is an error if we try to append these
  135. // entries since they have already been committed).
  136. // We do not set raftLog.applied so the application will be able
  137. // to observe all conf changes via Ready.CommittedEntries.
  138. for _, peer := range peers {
  139. r.addNode(peer.ID)
  140. }
  141. go n.run(r)
  142. return &n
  143. }
  144. // RestartNode is identical to StartNode but does not take a list of peers.
  145. // The current membership of the cluster will be restored from the Storage.
  146. func RestartNode(id uint64, election, heartbeat int, storage Storage) Node {
  147. n := newNode()
  148. r := newRaft(id, nil, election, heartbeat, storage)
  149. go n.run(r)
  150. return &n
  151. }
  152. // node is the canonical implementation of the Node interface
  153. type node struct {
  154. propc chan pb.Message
  155. recvc chan pb.Message
  156. confc chan pb.ConfChange
  157. confstatec chan pb.ConfState
  158. readyc chan Ready
  159. advancec chan struct{}
  160. tickc chan struct{}
  161. done chan struct{}
  162. stop chan struct{}
  163. }
  164. func newNode() node {
  165. return node{
  166. propc: make(chan pb.Message),
  167. recvc: make(chan pb.Message),
  168. confc: make(chan pb.ConfChange),
  169. confstatec: make(chan pb.ConfState),
  170. readyc: make(chan Ready),
  171. advancec: make(chan struct{}),
  172. tickc: make(chan struct{}),
  173. done: make(chan struct{}),
  174. stop: make(chan struct{}),
  175. }
  176. }
  177. func (n *node) Stop() {
  178. select {
  179. case n.stop <- struct{}{}:
  180. // Not already stopped, so trigger it
  181. case <-n.done:
  182. // Node has already been stopped - no need to do anything
  183. return
  184. }
  185. // Block until the stop has been acknowledged by run()
  186. <-n.done
  187. }
  188. func (n *node) run(r *raft) {
  189. var propc chan pb.Message
  190. var readyc chan Ready
  191. var advancec chan struct{}
  192. var prevLastUnstablei uint64
  193. var prevLastUnstablet uint64
  194. var havePrevLastUnstablei bool
  195. var prevSnapi uint64
  196. var rd Ready
  197. lead := None
  198. prevSoftSt := r.softState()
  199. prevHardSt := r.HardState
  200. for {
  201. if advancec != nil {
  202. readyc = nil
  203. } else {
  204. rd = newReady(r, prevSoftSt, prevHardSt)
  205. if rd.containsUpdates() {
  206. readyc = n.readyc
  207. } else {
  208. readyc = nil
  209. }
  210. }
  211. if lead != r.leader() {
  212. if r.hasLeader() {
  213. if lead == None {
  214. log.Printf("raft.node: %x elected leader %x at term %d", r.id, r.leader(), r.Term)
  215. } else {
  216. log.Printf("raft.node: %x changed leader from %x to %x at term %d", r.id, lead, r.leader(), r.Term)
  217. }
  218. propc = n.propc
  219. } else {
  220. log.Printf("raft.node: %x lost leader %x at term %d", r.id, lead, r.Term)
  221. propc = nil
  222. }
  223. lead = r.leader()
  224. }
  225. select {
  226. // TODO: maybe buffer the config propose if there exists one (the way
  227. // described in raft dissertation)
  228. // Currently it is dropped in Step silently.
  229. case m := <-propc:
  230. m.From = r.id
  231. r.Step(m)
  232. case m := <-n.recvc:
  233. // filter out response message from unknow From.
  234. if _, ok := r.prs[m.From]; ok || !IsResponseMsg(m) {
  235. r.Step(m) // raft never returns an error
  236. }
  237. case cc := <-n.confc:
  238. if cc.NodeID == None {
  239. r.resetPendingConf()
  240. select {
  241. case n.confstatec <- pb.ConfState{Nodes: r.nodes()}:
  242. case <-n.done:
  243. }
  244. break
  245. }
  246. switch cc.Type {
  247. case pb.ConfChangeAddNode:
  248. r.addNode(cc.NodeID)
  249. case pb.ConfChangeRemoveNode:
  250. r.removeNode(cc.NodeID)
  251. case pb.ConfChangeUpdateNode:
  252. r.resetPendingConf()
  253. default:
  254. panic("unexpected conf type")
  255. }
  256. select {
  257. case n.confstatec <- pb.ConfState{Nodes: r.nodes()}:
  258. case <-n.done:
  259. }
  260. case <-n.tickc:
  261. r.tick()
  262. case readyc <- rd:
  263. if rd.SoftState != nil {
  264. prevSoftSt = rd.SoftState
  265. }
  266. if len(rd.Entries) > 0 {
  267. prevLastUnstablei = rd.Entries[len(rd.Entries)-1].Index
  268. prevLastUnstablet = rd.Entries[len(rd.Entries)-1].Term
  269. havePrevLastUnstablei = true
  270. }
  271. if !IsEmptyHardState(rd.HardState) {
  272. prevHardSt = rd.HardState
  273. }
  274. if !IsEmptySnap(rd.Snapshot) {
  275. prevSnapi = rd.Snapshot.Metadata.Index
  276. }
  277. r.msgs = nil
  278. advancec = n.advancec
  279. case <-advancec:
  280. if prevHardSt.Commit != 0 {
  281. r.raftLog.appliedTo(prevHardSt.Commit)
  282. }
  283. if havePrevLastUnstablei {
  284. r.raftLog.stableTo(prevLastUnstablei, prevLastUnstablet)
  285. havePrevLastUnstablei = false
  286. }
  287. r.raftLog.stableSnapTo(prevSnapi)
  288. advancec = nil
  289. case <-n.stop:
  290. close(n.done)
  291. return
  292. }
  293. }
  294. }
  295. // Tick increments the internal logical clock for this Node. Election timeouts
  296. // and heartbeat timeouts are in units of ticks.
  297. func (n *node) Tick() {
  298. select {
  299. case n.tickc <- struct{}{}:
  300. case <-n.done:
  301. }
  302. }
  303. func (n *node) Campaign(ctx context.Context) error { return n.step(ctx, pb.Message{Type: pb.MsgHup}) }
  304. func (n *node) Propose(ctx context.Context, data []byte) error {
  305. return n.step(ctx, pb.Message{Type: pb.MsgProp, Entries: []pb.Entry{{Data: data}}})
  306. }
  307. func (n *node) Step(ctx context.Context, m pb.Message) error {
  308. // ignore unexpected local messages receiving over network
  309. if IsLocalMsg(m) {
  310. // TODO: return an error?
  311. return nil
  312. }
  313. return n.step(ctx, m)
  314. }
  315. func (n *node) ProposeConfChange(ctx context.Context, cc pb.ConfChange) error {
  316. data, err := cc.Marshal()
  317. if err != nil {
  318. return err
  319. }
  320. return n.Step(ctx, pb.Message{Type: pb.MsgProp, Entries: []pb.Entry{{Type: pb.EntryConfChange, Data: data}}})
  321. }
  322. // Step advances the state machine using msgs. The ctx.Err() will be returned,
  323. // if any.
  324. func (n *node) step(ctx context.Context, m pb.Message) error {
  325. ch := n.recvc
  326. if m.Type == pb.MsgProp {
  327. ch = n.propc
  328. }
  329. select {
  330. case ch <- m:
  331. return nil
  332. case <-ctx.Done():
  333. return ctx.Err()
  334. case <-n.done:
  335. return ErrStopped
  336. }
  337. }
  338. func (n *node) Ready() <-chan Ready { return n.readyc }
  339. func (n *node) Advance() {
  340. select {
  341. case n.advancec <- struct{}{}:
  342. case <-n.done:
  343. }
  344. }
  345. func (n *node) ApplyConfChange(cc pb.ConfChange) *pb.ConfState {
  346. var cs pb.ConfState
  347. select {
  348. case n.confc <- cc:
  349. case <-n.done:
  350. }
  351. select {
  352. case cs = <-n.confstatec:
  353. case <-n.done:
  354. }
  355. return &cs
  356. }
  357. func newReady(r *raft, prevSoftSt *SoftState, prevHardSt pb.HardState) Ready {
  358. rd := Ready{
  359. Entries: r.raftLog.unstableEntries(),
  360. CommittedEntries: r.raftLog.nextEnts(),
  361. Messages: r.msgs,
  362. }
  363. if softSt := r.softState(); !softSt.equal(prevSoftSt) {
  364. rd.SoftState = softSt
  365. }
  366. if !isHardStateEqual(r.HardState, prevHardSt) {
  367. rd.HardState = r.HardState
  368. }
  369. if r.raftLog.unstable.snapshot != nil {
  370. rd.Snapshot = *r.raftLog.unstable.snapshot
  371. }
  372. return rd
  373. }