peer.go 8.6 KB

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  1. // Copyright 2015 CoreOS, Inc.
  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 rafthttp
  15. import (
  16. "time"
  17. "github.com/coreos/etcd/Godeps/_workspace/src/golang.org/x/net/context"
  18. "github.com/coreos/etcd/etcdserver/stats"
  19. "github.com/coreos/etcd/pkg/types"
  20. "github.com/coreos/etcd/raft"
  21. "github.com/coreos/etcd/raft/raftpb"
  22. "github.com/coreos/etcd/snap"
  23. )
  24. const (
  25. // ConnReadTimeout and ConnWriteTimeout are the i/o timeout set on each connection rafthttp pkg creates.
  26. // A 5 seconds timeout is good enough for recycling bad connections. Or we have to wait for
  27. // tcp keepalive failing to detect a bad connection, which is at minutes level.
  28. // For long term streaming connections, rafthttp pkg sends application level linkHeartbeatMessage
  29. // to keep the connection alive.
  30. // For short term pipeline connections, the connection MUST be killed to avoid it being
  31. // put back to http pkg connection pool.
  32. ConnReadTimeout = 5 * time.Second
  33. ConnWriteTimeout = 5 * time.Second
  34. recvBufSize = 4096
  35. // maxPendingProposals holds the proposals during one leader election process.
  36. // Generally one leader election takes at most 1 sec. It should have
  37. // 0-2 election conflicts, and each one takes 0.5 sec.
  38. // We assume the number of concurrent proposers is smaller than 4096.
  39. // One client blocks on its proposal for at least 1 sec, so 4096 is enough
  40. // to hold all proposals.
  41. maxPendingProposals = 4096
  42. streamAppV2 = "streamMsgAppV2"
  43. streamMsg = "streamMsg"
  44. pipelineMsg = "pipeline"
  45. sendSnap = "sendMsgSnap"
  46. )
  47. type Peer interface {
  48. // send sends the message to the remote peer. The function is non-blocking
  49. // and has no promise that the message will be received by the remote.
  50. // When it fails to send message out, it will report the status to underlying
  51. // raft.
  52. send(m raftpb.Message)
  53. // sendSnap sends the merged snapshot message to the remote peer. Its behavior
  54. // is similar to send.
  55. sendSnap(m snap.Message)
  56. // update updates the urls of remote peer.
  57. update(urls types.URLs)
  58. // attachOutgoingConn attaches the outgoing connection to the peer for
  59. // stream usage. After the call, the ownership of the outgoing
  60. // connection hands over to the peer. The peer will close the connection
  61. // when it is no longer used.
  62. attachOutgoingConn(conn *outgoingConn)
  63. // activeSince returns the time that the connection with the
  64. // peer becomes active.
  65. activeSince() time.Time
  66. // stop performs any necessary finalization and terminates the peer
  67. // elegantly.
  68. stop()
  69. }
  70. // peer is the representative of a remote raft node. Local raft node sends
  71. // messages to the remote through peer.
  72. // Each peer has two underlying mechanisms to send out a message: stream and
  73. // pipeline.
  74. // A stream is a receiver initialized long-polling connection, which
  75. // is always open to transfer messages. Besides general stream, peer also has
  76. // a optimized stream for sending msgApp since msgApp accounts for large part
  77. // of all messages. Only raft leader uses the optimized stream to send msgApp
  78. // to the remote follower node.
  79. // A pipeline is a series of http clients that send http requests to the remote.
  80. // It is only used when the stream has not been established.
  81. type peer struct {
  82. // id of the remote raft peer node
  83. id types.ID
  84. r Raft
  85. v3demo bool
  86. status *peerStatus
  87. picker *urlPicker
  88. msgAppV2Writer *streamWriter
  89. writer *streamWriter
  90. pipeline *pipeline
  91. snapSender *snapshotSender // snapshot sender to send v3 snapshot messages
  92. msgAppV2Reader *streamReader
  93. sendc chan raftpb.Message
  94. recvc chan raftpb.Message
  95. propc chan raftpb.Message
  96. newURLsC chan types.URLs
  97. // for testing
  98. pausec chan struct{}
  99. resumec chan struct{}
  100. stopc chan struct{}
  101. done chan struct{}
  102. }
  103. func startPeer(transport *Transport, urls types.URLs, local, to, cid types.ID, r Raft, fs *stats.FollowerStats, errorc chan error, v3demo bool) *peer {
  104. status := newPeerStatus(to)
  105. picker := newURLPicker(urls)
  106. p := &peer{
  107. id: to,
  108. r: r,
  109. v3demo: v3demo,
  110. status: status,
  111. picker: picker,
  112. msgAppV2Writer: startStreamWriter(to, status, fs, r),
  113. writer: startStreamWriter(to, status, fs, r),
  114. pipeline: newPipeline(transport, picker, local, to, cid, status, fs, r, errorc),
  115. snapSender: newSnapshotSender(transport, picker, local, to, cid, status, r, errorc),
  116. sendc: make(chan raftpb.Message),
  117. recvc: make(chan raftpb.Message, recvBufSize),
  118. propc: make(chan raftpb.Message, maxPendingProposals),
  119. newURLsC: make(chan types.URLs),
  120. pausec: make(chan struct{}),
  121. resumec: make(chan struct{}),
  122. stopc: make(chan struct{}),
  123. done: make(chan struct{}),
  124. }
  125. // Use go-routine for process of MsgProp because it is
  126. // blocking when there is no leader.
  127. ctx, cancel := context.WithCancel(context.Background())
  128. go func() {
  129. for {
  130. select {
  131. case mm := <-p.propc:
  132. if err := r.Process(ctx, mm); err != nil {
  133. plog.Warningf("failed to process raft message (%v)", err)
  134. }
  135. case <-p.stopc:
  136. return
  137. }
  138. }
  139. }()
  140. p.msgAppV2Reader = startStreamReader(transport, picker, streamTypeMsgAppV2, local, to, cid, status, p.recvc, p.propc, errorc)
  141. reader := startStreamReader(transport, picker, streamTypeMessage, local, to, cid, status, p.recvc, p.propc, errorc)
  142. go func() {
  143. var paused bool
  144. for {
  145. select {
  146. case m := <-p.sendc:
  147. if paused {
  148. continue
  149. }
  150. writec, name := p.pick(m)
  151. select {
  152. case writec <- m:
  153. default:
  154. p.r.ReportUnreachable(m.To)
  155. if isMsgSnap(m) {
  156. p.r.ReportSnapshot(m.To, raft.SnapshotFailure)
  157. }
  158. if status.isActive() {
  159. plog.MergeWarningf("dropped internal raft message to %s since %s's sending buffer is full (bad/overloaded network)", p.id, name)
  160. }
  161. plog.Debugf("dropped %s to %s since %s's sending buffer is full", m.Type, p.id, name)
  162. }
  163. case mm := <-p.recvc:
  164. if err := r.Process(context.TODO(), mm); err != nil {
  165. plog.Warningf("failed to process raft message (%v)", err)
  166. }
  167. case urls := <-p.newURLsC:
  168. picker.update(urls)
  169. case <-p.pausec:
  170. paused = true
  171. case <-p.resumec:
  172. paused = false
  173. case <-p.stopc:
  174. cancel()
  175. p.msgAppV2Writer.stop()
  176. p.writer.stop()
  177. p.pipeline.stop()
  178. p.snapSender.stop()
  179. p.msgAppV2Reader.stop()
  180. reader.stop()
  181. close(p.done)
  182. return
  183. }
  184. }
  185. }()
  186. return p
  187. }
  188. func (p *peer) send(m raftpb.Message) {
  189. select {
  190. case p.sendc <- m:
  191. case <-p.done:
  192. }
  193. }
  194. func (p *peer) sendSnap(m snap.Message) {
  195. go p.snapSender.send(m)
  196. }
  197. func (p *peer) update(urls types.URLs) {
  198. select {
  199. case p.newURLsC <- urls:
  200. case <-p.done:
  201. }
  202. }
  203. func (p *peer) attachOutgoingConn(conn *outgoingConn) {
  204. var ok bool
  205. switch conn.t {
  206. case streamTypeMsgAppV2:
  207. ok = p.msgAppV2Writer.attach(conn)
  208. case streamTypeMessage:
  209. ok = p.writer.attach(conn)
  210. default:
  211. plog.Panicf("unhandled stream type %s", conn.t)
  212. }
  213. if !ok {
  214. conn.Close()
  215. }
  216. }
  217. func (p *peer) activeSince() time.Time { return p.status.activeSince }
  218. // Pause pauses the peer. The peer will simply drops all incoming
  219. // messages without returning an error.
  220. func (p *peer) Pause() {
  221. select {
  222. case p.pausec <- struct{}{}:
  223. case <-p.done:
  224. }
  225. }
  226. // Resume resumes a paused peer.
  227. func (p *peer) Resume() {
  228. select {
  229. case p.resumec <- struct{}{}:
  230. case <-p.done:
  231. }
  232. }
  233. func (p *peer) stop() {
  234. close(p.stopc)
  235. <-p.done
  236. }
  237. // pick picks a chan for sending the given message. The picked chan and the picked chan
  238. // string name are returned.
  239. func (p *peer) pick(m raftpb.Message) (writec chan<- raftpb.Message, picked string) {
  240. var ok bool
  241. // Considering MsgSnap may have a big size, e.g., 1G, and will block
  242. // stream for a long time, only use one of the N pipelines to send MsgSnap.
  243. if isMsgSnap(m) {
  244. return p.pipeline.msgc, pipelineMsg
  245. } else if writec, ok = p.msgAppV2Writer.writec(); ok && isMsgApp(m) {
  246. return writec, streamAppV2
  247. } else if writec, ok = p.writer.writec(); ok {
  248. return writec, streamMsg
  249. }
  250. return p.pipeline.msgc, pipelineMsg
  251. }
  252. func isMsgApp(m raftpb.Message) bool { return m.Type == raftpb.MsgApp }
  253. func isMsgSnap(m raftpb.Message) bool { return m.Type == raftpb.MsgSnap }