mirror of
https://github.com/etcd-io/etcd.git
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1249 lines
38 KiB
Go
1249 lines
38 KiB
Go
// Copyright 2015 The etcd Authors
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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package raft
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import (
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"bytes"
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"errors"
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"fmt"
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"math"
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"math/rand"
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"sort"
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"strings"
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"sync"
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"time"
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pb "github.com/coreos/etcd/raft/raftpb"
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)
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// None is a placeholder node ID used when there is no leader.
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const None uint64 = 0
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const noLimit = math.MaxUint64
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// Possible values for StateType.
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const (
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StateFollower StateType = iota
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StateCandidate
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StateLeader
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StatePreCandidate
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numStates
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)
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type ReadOnlyOption int
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const (
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// ReadOnlySafe guarantees the linearizability of the read only request by
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// communicating with the quorum. It is the default and suggested option.
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ReadOnlySafe ReadOnlyOption = iota
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// ReadOnlyLeaseBased ensures linearizability of the read only request by
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// relying on the leader lease. It can be affected by clock drift.
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// If the clock drift is unbounded, leader might keep the lease longer than it
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// should (clock can move backward/pause without any bound). ReadIndex is not safe
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// in that case.
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ReadOnlyLeaseBased
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)
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// Possible values for CampaignType
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const (
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// campaignPreElection represents the first phase of a normal election when
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// Config.PreVote is true.
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campaignPreElection CampaignType = "CampaignPreElection"
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// campaignElection represents a normal (time-based) election (the second phase
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// of the election when Config.PreVote is true).
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campaignElection CampaignType = "CampaignElection"
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// campaignTransfer represents the type of leader transfer
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campaignTransfer CampaignType = "CampaignTransfer"
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)
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// lockedRand is a small wrapper around rand.Rand to provide
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// synchronization. Only the methods needed by the code are exposed
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// (e.g. Intn).
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type lockedRand struct {
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mu sync.Mutex
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rand *rand.Rand
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}
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func (r *lockedRand) Intn(n int) int {
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r.mu.Lock()
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v := r.rand.Intn(n)
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r.mu.Unlock()
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return v
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}
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var globalRand = &lockedRand{
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rand: rand.New(rand.NewSource(time.Now().UnixNano())),
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}
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// CampaignType represents the type of campaigning
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// the reason we use the type of string instead of uint64
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// is because it's simpler to compare and fill in raft entries
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type CampaignType string
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// StateType represents the role of a node in a cluster.
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type StateType uint64
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var stmap = [...]string{
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"StateFollower",
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"StateCandidate",
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"StateLeader",
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"StatePreCandidate",
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}
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func (st StateType) String() string {
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return stmap[uint64(st)]
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}
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// Config contains the parameters to start a raft.
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type Config struct {
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// ID is the identity of the local raft. ID cannot be 0.
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ID uint64
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// peers contains the IDs of all nodes (including self) in the raft cluster. It
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// should only be set when starting a new raft cluster. Restarting raft from
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// previous configuration will panic if peers is set. peer is private and only
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// used for testing right now.
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peers []uint64
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// ElectionTick is the number of Node.Tick invocations that must pass between
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// elections. That is, if a follower does not receive any message from the
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// leader of current term before ElectionTick has elapsed, it will become
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// candidate and start an election. ElectionTick must be greater than
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// HeartbeatTick. We suggest ElectionTick = 10 * HeartbeatTick to avoid
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// unnecessary leader switching.
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ElectionTick int
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// HeartbeatTick is the number of Node.Tick invocations that must pass between
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// heartbeats. That is, a leader sends heartbeat messages to maintain its
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// leadership every HeartbeatTick ticks.
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HeartbeatTick int
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// Storage is the storage for raft. raft generates entries and states to be
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// stored in storage. raft reads the persisted entries and states out of
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// Storage when it needs. raft reads out the previous state and configuration
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// out of storage when restarting.
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Storage Storage
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// Applied is the last applied index. It should only be set when restarting
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// raft. raft will not return entries to the application smaller or equal to
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// Applied. If Applied is unset when restarting, raft might return previous
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// applied entries. This is a very application dependent configuration.
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Applied uint64
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// MaxSizePerMsg limits the max size of each append message. Smaller value
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// lowers the raft recovery cost(initial probing and message lost during normal
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// operation). On the other side, it might affect the throughput during normal
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// replication. Note: math.MaxUint64 for unlimited, 0 for at most one entry per
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// message.
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MaxSizePerMsg uint64
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// MaxInflightMsgs limits the max number of in-flight append messages during
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// optimistic replication phase. The application transportation layer usually
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// has its own sending buffer over TCP/UDP. Setting MaxInflightMsgs to avoid
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// overflowing that sending buffer. TODO (xiangli): feedback to application to
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// limit the proposal rate?
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MaxInflightMsgs int
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// CheckQuorum specifies if the leader should check quorum activity. Leader
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// steps down when quorum is not active for an electionTimeout.
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CheckQuorum bool
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// PreVote enables the Pre-Vote algorithm described in raft thesis section
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// 9.6. This prevents disruption when a node that has been partitioned away
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// rejoins the cluster.
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PreVote bool
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// ReadOnlyOption specifies how the read only request is processed.
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//
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// ReadOnlySafe guarantees the linearizability of the read only request by
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// communicating with the quorum. It is the default and suggested option.
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//
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// ReadOnlyLeaseBased ensures linearizability of the read only request by
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// relying on the leader lease. It can be affected by clock drift.
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// If the clock drift is unbounded, leader might keep the lease longer than it
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// should (clock can move backward/pause without any bound). ReadIndex is not safe
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// in that case.
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ReadOnlyOption ReadOnlyOption
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// Logger is the logger used for raft log. For multinode which can host
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// multiple raft group, each raft group can have its own logger
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Logger Logger
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}
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func (c *Config) validate() error {
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if c.ID == None {
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return errors.New("cannot use none as id")
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}
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if c.HeartbeatTick <= 0 {
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return errors.New("heartbeat tick must be greater than 0")
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}
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if c.ElectionTick <= c.HeartbeatTick {
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return errors.New("election tick must be greater than heartbeat tick")
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}
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if c.Storage == nil {
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return errors.New("storage cannot be nil")
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}
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if c.MaxInflightMsgs <= 0 {
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return errors.New("max inflight messages must be greater than 0")
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}
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if c.Logger == nil {
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c.Logger = raftLogger
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}
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return nil
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}
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type raft struct {
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id uint64
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Term uint64
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Vote uint64
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readStates []ReadState
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// the log
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raftLog *raftLog
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maxInflight int
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maxMsgSize uint64
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prs map[uint64]*Progress
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state StateType
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votes map[uint64]bool
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msgs []pb.Message
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// the leader id
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lead uint64
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// leadTransferee is id of the leader transfer target when its value is not zero.
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// Follow the procedure defined in raft thesis 3.10.
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leadTransferee uint64
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// New configuration is ignored if there exists unapplied configuration.
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pendingConf bool
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readOnly *readOnly
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// number of ticks since it reached last electionTimeout when it is leader
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// or candidate.
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// number of ticks since it reached last electionTimeout or received a
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// valid message from current leader when it is a follower.
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electionElapsed int
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// number of ticks since it reached last heartbeatTimeout.
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// only leader keeps heartbeatElapsed.
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heartbeatElapsed int
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checkQuorum bool
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preVote bool
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heartbeatTimeout int
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electionTimeout int
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// randomizedElectionTimeout is a random number between
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// [electiontimeout, 2 * electiontimeout - 1]. It gets reset
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// when raft changes its state to follower or candidate.
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randomizedElectionTimeout int
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tick func()
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step stepFunc
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logger Logger
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}
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func newRaft(c *Config) *raft {
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if err := c.validate(); err != nil {
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panic(err.Error())
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}
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raftlog := newLog(c.Storage, c.Logger)
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hs, cs, err := c.Storage.InitialState()
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if err != nil {
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panic(err) // TODO(bdarnell)
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}
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peers := c.peers
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if len(cs.Nodes) > 0 {
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if len(peers) > 0 {
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// TODO(bdarnell): the peers argument is always nil except in
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// tests; the argument should be removed and these tests should be
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// updated to specify their nodes through a snapshot.
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panic("cannot specify both newRaft(peers) and ConfState.Nodes)")
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}
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peers = cs.Nodes
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}
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r := &raft{
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id: c.ID,
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lead: None,
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raftLog: raftlog,
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maxMsgSize: c.MaxSizePerMsg,
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maxInflight: c.MaxInflightMsgs,
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prs: make(map[uint64]*Progress),
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electionTimeout: c.ElectionTick,
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heartbeatTimeout: c.HeartbeatTick,
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logger: c.Logger,
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checkQuorum: c.CheckQuorum,
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preVote: c.PreVote,
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readOnly: newReadOnly(c.ReadOnlyOption),
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}
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for _, p := range peers {
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r.prs[p] = &Progress{Next: 1, ins: newInflights(r.maxInflight)}
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}
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if !isHardStateEqual(hs, emptyState) {
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r.loadState(hs)
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}
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if c.Applied > 0 {
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raftlog.appliedTo(c.Applied)
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}
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r.becomeFollower(r.Term, None)
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var nodesStrs []string
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for _, n := range r.nodes() {
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nodesStrs = append(nodesStrs, fmt.Sprintf("%x", n))
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}
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r.logger.Infof("newRaft %x [peers: [%s], term: %d, commit: %d, applied: %d, lastindex: %d, lastterm: %d]",
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r.id, strings.Join(nodesStrs, ","), r.Term, r.raftLog.committed, r.raftLog.applied, r.raftLog.lastIndex(), r.raftLog.lastTerm())
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return r
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}
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func (r *raft) hasLeader() bool { return r.lead != None }
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func (r *raft) softState() *SoftState { return &SoftState{Lead: r.lead, RaftState: r.state} }
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func (r *raft) hardState() pb.HardState {
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return pb.HardState{
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Term: r.Term,
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Vote: r.Vote,
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Commit: r.raftLog.committed,
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}
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}
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func (r *raft) quorum() int { return len(r.prs)/2 + 1 }
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func (r *raft) nodes() []uint64 {
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nodes := make([]uint64, 0, len(r.prs))
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for id := range r.prs {
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nodes = append(nodes, id)
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}
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sort.Sort(uint64Slice(nodes))
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return nodes
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}
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// send persists state to stable storage and then sends to its mailbox.
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func (r *raft) send(m pb.Message) {
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m.From = r.id
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if m.Type == pb.MsgVote || m.Type == pb.MsgPreVote {
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if m.Term == 0 {
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// PreVote RPCs are sent at a term other than our actual term, so the code
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// that sends these messages is responsible for setting the term.
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panic(fmt.Sprintf("term should be set when sending %s", m.Type))
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}
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} else {
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if m.Term != 0 {
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panic(fmt.Sprintf("term should not be set when sending %s (was %d)", m.Type, m.Term))
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}
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// do not attach term to MsgProp, MsgReadIndex
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// proposals are a way to forward to the leader and
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// should be treated as local message.
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// MsgReadIndex is also forwarded to leader.
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if m.Type != pb.MsgProp && m.Type != pb.MsgReadIndex {
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m.Term = r.Term
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}
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}
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r.msgs = append(r.msgs, m)
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}
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// sendAppend sends RPC, with entries to the given peer.
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func (r *raft) sendAppend(to uint64) {
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pr := r.prs[to]
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if pr.IsPaused() {
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return
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}
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m := pb.Message{}
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m.To = to
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term, errt := r.raftLog.term(pr.Next - 1)
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ents, erre := r.raftLog.entries(pr.Next, r.maxMsgSize)
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if errt != nil || erre != nil { // send snapshot if we failed to get term or entries
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if !pr.RecentActive {
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r.logger.Debugf("ignore sending snapshot to %x since it is not recently active", to)
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return
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}
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m.Type = pb.MsgSnap
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snapshot, err := r.raftLog.snapshot()
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if err != nil {
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if err == ErrSnapshotTemporarilyUnavailable {
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r.logger.Debugf("%x failed to send snapshot to %x because snapshot is temporarily unavailable", r.id, to)
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return
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}
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panic(err) // TODO(bdarnell)
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}
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if IsEmptySnap(snapshot) {
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panic("need non-empty snapshot")
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}
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m.Snapshot = snapshot
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sindex, sterm := snapshot.Metadata.Index, snapshot.Metadata.Term
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r.logger.Debugf("%x [firstindex: %d, commit: %d] sent snapshot[index: %d, term: %d] to %x [%s]",
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r.id, r.raftLog.firstIndex(), r.raftLog.committed, sindex, sterm, to, pr)
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pr.becomeSnapshot(sindex)
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r.logger.Debugf("%x paused sending replication messages to %x [%s]", r.id, to, pr)
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} else {
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m.Type = pb.MsgApp
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m.Index = pr.Next - 1
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m.LogTerm = term
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m.Entries = ents
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m.Commit = r.raftLog.committed
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if n := len(m.Entries); n != 0 {
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switch pr.State {
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// optimistically increase the next when in ProgressStateReplicate
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case ProgressStateReplicate:
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last := m.Entries[n-1].Index
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pr.optimisticUpdate(last)
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pr.ins.add(last)
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case ProgressStateProbe:
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pr.pause()
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default:
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r.logger.Panicf("%x is sending append in unhandled state %s", r.id, pr.State)
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}
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}
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}
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r.send(m)
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}
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// sendHeartbeat sends an empty MsgApp
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func (r *raft) sendHeartbeat(to uint64, ctx []byte) {
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// Attach the commit as min(to.matched, r.committed).
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// When the leader sends out heartbeat message,
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// the receiver(follower) might not be matched with the leader
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// or it might not have all the committed entries.
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// The leader MUST NOT forward the follower's commit to
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// an unmatched index.
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commit := min(r.prs[to].Match, r.raftLog.committed)
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m := pb.Message{
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To: to,
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Type: pb.MsgHeartbeat,
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Commit: commit,
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Context: ctx,
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}
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r.send(m)
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}
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// bcastAppend sends RPC, with entries to all peers that are not up-to-date
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// according to the progress recorded in r.prs.
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func (r *raft) bcastAppend() {
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for id := range r.prs {
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if id == r.id {
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continue
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}
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r.sendAppend(id)
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}
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}
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// bcastHeartbeat sends RPC, without entries to all the peers.
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func (r *raft) bcastHeartbeat() {
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lastCtx := r.readOnly.lastPendingRequestCtx()
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if len(lastCtx) == 0 {
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r.bcastHeartbeatWithCtx(nil)
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} else {
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r.bcastHeartbeatWithCtx([]byte(lastCtx))
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}
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}
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func (r *raft) bcastHeartbeatWithCtx(ctx []byte) {
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for id := range r.prs {
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if id == r.id {
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continue
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}
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r.sendHeartbeat(id, ctx)
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}
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}
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// maybeCommit attempts to advance the commit index. Returns true if
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// the commit index changed (in which case the caller should call
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// r.bcastAppend).
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func (r *raft) maybeCommit() bool {
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// TODO(bmizerany): optimize.. Currently naive
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mis := make(uint64Slice, 0, len(r.prs))
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for id := range r.prs {
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mis = append(mis, r.prs[id].Match)
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}
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sort.Sort(sort.Reverse(mis))
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mci := mis[r.quorum()-1]
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return r.raftLog.maybeCommit(mci, r.Term)
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}
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func (r *raft) reset(term uint64) {
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if r.Term != term {
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r.Term = term
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r.Vote = None
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}
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r.lead = None
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r.electionElapsed = 0
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r.heartbeatElapsed = 0
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r.resetRandomizedElectionTimeout()
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r.abortLeaderTransfer()
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r.votes = make(map[uint64]bool)
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for id := range r.prs {
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r.prs[id] = &Progress{Next: r.raftLog.lastIndex() + 1, ins: newInflights(r.maxInflight)}
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if id == r.id {
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r.prs[id].Match = r.raftLog.lastIndex()
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}
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}
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r.pendingConf = false
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r.readOnly = newReadOnly(r.readOnly.option)
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}
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func (r *raft) appendEntry(es ...pb.Entry) {
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li := r.raftLog.lastIndex()
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for i := range es {
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es[i].Term = r.Term
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es[i].Index = li + 1 + uint64(i)
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}
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r.raftLog.append(es...)
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r.prs[r.id].maybeUpdate(r.raftLog.lastIndex())
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// Regardless of maybeCommit's return, our caller will call bcastAppend.
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r.maybeCommit()
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}
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|
|
// tickElection is run by followers and candidates after r.electionTimeout.
|
|
func (r *raft) tickElection() {
|
|
r.electionElapsed++
|
|
|
|
if r.promotable() && r.pastElectionTimeout() {
|
|
r.electionElapsed = 0
|
|
r.Step(pb.Message{From: r.id, Type: pb.MsgHup})
|
|
}
|
|
}
|
|
|
|
// tickHeartbeat is run by leaders to send a MsgBeat after r.heartbeatTimeout.
|
|
func (r *raft) tickHeartbeat() {
|
|
r.heartbeatElapsed++
|
|
r.electionElapsed++
|
|
|
|
if r.electionElapsed >= r.electionTimeout {
|
|
r.electionElapsed = 0
|
|
if r.checkQuorum {
|
|
r.Step(pb.Message{From: r.id, Type: pb.MsgCheckQuorum})
|
|
}
|
|
// If current leader cannot transfer leadership in electionTimeout, it becomes leader again.
|
|
if r.state == StateLeader && r.leadTransferee != None {
|
|
r.abortLeaderTransfer()
|
|
}
|
|
}
|
|
|
|
if r.state != StateLeader {
|
|
return
|
|
}
|
|
|
|
if r.heartbeatElapsed >= r.heartbeatTimeout {
|
|
r.heartbeatElapsed = 0
|
|
r.Step(pb.Message{From: r.id, Type: pb.MsgBeat})
|
|
}
|
|
}
|
|
|
|
func (r *raft) becomeFollower(term uint64, lead uint64) {
|
|
r.step = stepFollower
|
|
r.reset(term)
|
|
r.tick = r.tickElection
|
|
r.lead = lead
|
|
r.state = StateFollower
|
|
r.logger.Infof("%x became follower at term %d", r.id, r.Term)
|
|
}
|
|
|
|
func (r *raft) becomeCandidate() {
|
|
// TODO(xiangli) remove the panic when the raft implementation is stable
|
|
if r.state == StateLeader {
|
|
panic("invalid transition [leader -> candidate]")
|
|
}
|
|
r.step = stepCandidate
|
|
r.reset(r.Term + 1)
|
|
r.tick = r.tickElection
|
|
r.Vote = r.id
|
|
r.state = StateCandidate
|
|
r.logger.Infof("%x became candidate at term %d", r.id, r.Term)
|
|
}
|
|
|
|
func (r *raft) becomePreCandidate() {
|
|
// TODO(xiangli) remove the panic when the raft implementation is stable
|
|
if r.state == StateLeader {
|
|
panic("invalid transition [leader -> pre-candidate]")
|
|
}
|
|
// Becoming a pre-candidate changes our step functions and state,
|
|
// but doesn't change anything else. In particular it does not increase
|
|
// r.Term or change r.Vote.
|
|
r.step = stepCandidate
|
|
r.tick = r.tickElection
|
|
r.state = StatePreCandidate
|
|
r.logger.Infof("%x became pre-candidate at term %d", r.id, r.Term)
|
|
}
|
|
|
|
func (r *raft) becomeLeader() {
|
|
// TODO(xiangli) remove the panic when the raft implementation is stable
|
|
if r.state == StateFollower {
|
|
panic("invalid transition [follower -> leader]")
|
|
}
|
|
r.step = stepLeader
|
|
r.reset(r.Term)
|
|
r.tick = r.tickHeartbeat
|
|
r.lead = r.id
|
|
r.state = StateLeader
|
|
ents, err := r.raftLog.entries(r.raftLog.committed+1, noLimit)
|
|
if err != nil {
|
|
r.logger.Panicf("unexpected error getting uncommitted entries (%v)", err)
|
|
}
|
|
|
|
nconf := numOfPendingConf(ents)
|
|
if nconf > 1 {
|
|
panic("unexpected multiple uncommitted config entry")
|
|
}
|
|
if nconf == 1 {
|
|
r.pendingConf = true
|
|
}
|
|
|
|
r.appendEntry(pb.Entry{Data: nil})
|
|
r.logger.Infof("%x became leader at term %d", r.id, r.Term)
|
|
}
|
|
|
|
func (r *raft) campaign(t CampaignType) {
|
|
var term uint64
|
|
var voteMsg pb.MessageType
|
|
if t == campaignPreElection {
|
|
r.becomePreCandidate()
|
|
voteMsg = pb.MsgPreVote
|
|
// PreVote RPCs are sent for the next term before we've incremented r.Term.
|
|
term = r.Term + 1
|
|
} else {
|
|
r.becomeCandidate()
|
|
voteMsg = pb.MsgVote
|
|
term = r.Term
|
|
}
|
|
if r.quorum() == r.poll(r.id, voteRespMsgType(voteMsg), true) {
|
|
// We won the election after voting for ourselves (which must mean that
|
|
// this is a single-node cluster). Advance to the next state.
|
|
if t == campaignPreElection {
|
|
r.campaign(campaignElection)
|
|
} else {
|
|
r.becomeLeader()
|
|
}
|
|
return
|
|
}
|
|
for id := range r.prs {
|
|
if id == r.id {
|
|
continue
|
|
}
|
|
r.logger.Infof("%x [logterm: %d, index: %d] sent %s request to %x at term %d",
|
|
r.id, r.raftLog.lastTerm(), r.raftLog.lastIndex(), voteMsg, id, r.Term)
|
|
|
|
var ctx []byte
|
|
if t == campaignTransfer {
|
|
ctx = []byte(t)
|
|
}
|
|
r.send(pb.Message{Term: term, To: id, Type: voteMsg, Index: r.raftLog.lastIndex(), LogTerm: r.raftLog.lastTerm(), Context: ctx})
|
|
}
|
|
}
|
|
|
|
func (r *raft) poll(id uint64, t pb.MessageType, v bool) (granted int) {
|
|
if v {
|
|
r.logger.Infof("%x received %s from %x at term %d", r.id, t, id, r.Term)
|
|
} else {
|
|
r.logger.Infof("%x received %s rejection from %x at term %d", r.id, t, id, r.Term)
|
|
}
|
|
if _, ok := r.votes[id]; !ok {
|
|
r.votes[id] = v
|
|
}
|
|
for _, vv := range r.votes {
|
|
if vv {
|
|
granted++
|
|
}
|
|
}
|
|
return granted
|
|
}
|
|
|
|
func (r *raft) Step(m pb.Message) error {
|
|
// Handle the message term, which may result in our stepping down to a follower.
|
|
switch {
|
|
case m.Term == 0:
|
|
// local message
|
|
case m.Term > r.Term:
|
|
lead := m.From
|
|
if m.Type == pb.MsgVote || m.Type == pb.MsgPreVote {
|
|
force := bytes.Equal(m.Context, []byte(campaignTransfer))
|
|
inLease := r.checkQuorum && r.lead != None && r.electionElapsed < r.electionTimeout
|
|
if !force && inLease {
|
|
// If a server receives a RequestVote request within the minimum election timeout
|
|
// of hearing from a current leader, it does not update its term or grant its vote
|
|
r.logger.Infof("%x [logterm: %d, index: %d, vote: %x] ignored %s from %x [logterm: %d, index: %d] at term %d: lease is not expired (remaining ticks: %d)",
|
|
r.id, r.raftLog.lastTerm(), r.raftLog.lastIndex(), r.Vote, m.Type, m.From, m.LogTerm, m.Index, r.Term, r.electionTimeout-r.electionElapsed)
|
|
return nil
|
|
}
|
|
lead = None
|
|
}
|
|
switch {
|
|
case m.Type == pb.MsgPreVote:
|
|
// Never change our term in response to a PreVote
|
|
case m.Type == pb.MsgPreVoteResp && !m.Reject:
|
|
// We send pre-vote requests with a term in our future. If the
|
|
// pre-vote is granted, we will increment our term when we get a
|
|
// quorum. If it is not, the term comes from the node that
|
|
// rejected our vote so we should become a follower at the new
|
|
// term.
|
|
default:
|
|
r.logger.Infof("%x [term: %d] received a %s message with higher term from %x [term: %d]",
|
|
r.id, r.Term, m.Type, m.From, m.Term)
|
|
r.becomeFollower(m.Term, lead)
|
|
}
|
|
|
|
case m.Term < r.Term:
|
|
if r.checkQuorum && (m.Type == pb.MsgHeartbeat || m.Type == pb.MsgApp) {
|
|
// We have received messages from a leader at a lower term. It is possible
|
|
// that these messages were simply delayed in the network, but this could
|
|
// also mean that this node has advanced its term number during a network
|
|
// partition, and it is now unable to either win an election or to rejoin
|
|
// the majority on the old term. If checkQuorum is false, this will be
|
|
// handled by incrementing term numbers in response to MsgVote with a
|
|
// higher term, but if checkQuorum is true we may not advance the term on
|
|
// MsgVote and must generate other messages to advance the term. The net
|
|
// result of these two features is to minimize the disruption caused by
|
|
// nodes that have been removed from the cluster's configuration: a
|
|
// removed node will send MsgVotes (or MsgPreVotes) which will be ignored,
|
|
// but it will not receive MsgApp or MsgHeartbeat, so it will not create
|
|
// disruptive term increases
|
|
r.send(pb.Message{To: m.From, Type: pb.MsgAppResp})
|
|
} else {
|
|
// ignore other cases
|
|
r.logger.Infof("%x [term: %d] ignored a %s message with lower term from %x [term: %d]",
|
|
r.id, r.Term, m.Type, m.From, m.Term)
|
|
}
|
|
return nil
|
|
}
|
|
|
|
switch m.Type {
|
|
case pb.MsgHup:
|
|
if r.state != StateLeader {
|
|
ents, err := r.raftLog.slice(r.raftLog.applied+1, r.raftLog.committed+1, noLimit)
|
|
if err != nil {
|
|
r.logger.Panicf("unexpected error getting unapplied entries (%v)", err)
|
|
}
|
|
if n := numOfPendingConf(ents); n != 0 && r.raftLog.committed > r.raftLog.applied {
|
|
r.logger.Warningf("%x cannot campaign at term %d since there are still %d pending configuration changes to apply", r.id, r.Term, n)
|
|
return nil
|
|
}
|
|
|
|
r.logger.Infof("%x is starting a new election at term %d", r.id, r.Term)
|
|
if r.preVote {
|
|
r.campaign(campaignPreElection)
|
|
} else {
|
|
r.campaign(campaignElection)
|
|
}
|
|
} else {
|
|
r.logger.Debugf("%x ignoring MsgHup because already leader", r.id)
|
|
}
|
|
|
|
case pb.MsgVote, pb.MsgPreVote:
|
|
// The m.Term > r.Term clause is for MsgPreVote. For MsgVote m.Term should
|
|
// always equal r.Term.
|
|
if (r.Vote == None || m.Term > r.Term || r.Vote == m.From) && r.raftLog.isUpToDate(m.Index, m.LogTerm) {
|
|
r.logger.Infof("%x [logterm: %d, index: %d, vote: %x] cast %s for %x [logterm: %d, index: %d] at term %d",
|
|
r.id, r.raftLog.lastTerm(), r.raftLog.lastIndex(), r.Vote, m.Type, m.From, m.LogTerm, m.Index, r.Term)
|
|
r.send(pb.Message{To: m.From, Type: voteRespMsgType(m.Type)})
|
|
if m.Type == pb.MsgVote {
|
|
// Only record real votes.
|
|
r.electionElapsed = 0
|
|
r.Vote = m.From
|
|
}
|
|
} else {
|
|
r.logger.Infof("%x [logterm: %d, index: %d, vote: %x] rejected %s from %x [logterm: %d, index: %d] at term %d",
|
|
r.id, r.raftLog.lastTerm(), r.raftLog.lastIndex(), r.Vote, m.Type, m.From, m.LogTerm, m.Index, r.Term)
|
|
r.send(pb.Message{To: m.From, Type: voteRespMsgType(m.Type), Reject: true})
|
|
}
|
|
|
|
default:
|
|
r.step(r, m)
|
|
}
|
|
return nil
|
|
}
|
|
|
|
type stepFunc func(r *raft, m pb.Message)
|
|
|
|
func stepLeader(r *raft, m pb.Message) {
|
|
// These message types do not require any progress for m.From.
|
|
switch m.Type {
|
|
case pb.MsgBeat:
|
|
r.bcastHeartbeat()
|
|
return
|
|
case pb.MsgCheckQuorum:
|
|
if !r.checkQuorumActive() {
|
|
r.logger.Warningf("%x stepped down to follower since quorum is not active", r.id)
|
|
r.becomeFollower(r.Term, None)
|
|
}
|
|
return
|
|
case pb.MsgProp:
|
|
if len(m.Entries) == 0 {
|
|
r.logger.Panicf("%x stepped empty MsgProp", r.id)
|
|
}
|
|
if _, ok := r.prs[r.id]; !ok {
|
|
// If we are not currently a member of the range (i.e. this node
|
|
// was removed from the configuration while serving as leader),
|
|
// drop any new proposals.
|
|
return
|
|
}
|
|
if r.leadTransferee != None {
|
|
r.logger.Debugf("%x [term %d] transfer leadership to %x is in progress; dropping proposal", r.id, r.Term, r.leadTransferee)
|
|
return
|
|
}
|
|
|
|
for i, e := range m.Entries {
|
|
if e.Type == pb.EntryConfChange {
|
|
if r.pendingConf {
|
|
r.logger.Infof("propose conf %s ignored since pending unapplied configuration", e.String())
|
|
m.Entries[i] = pb.Entry{Type: pb.EntryNormal}
|
|
}
|
|
r.pendingConf = true
|
|
}
|
|
}
|
|
r.appendEntry(m.Entries...)
|
|
r.bcastAppend()
|
|
return
|
|
case pb.MsgReadIndex:
|
|
if r.quorum() > 1 {
|
|
// thinking: use an interally defined context instead of the user given context.
|
|
// We can express this in terms of the term and index instead of a user-supplied value.
|
|
// This would allow multiple reads to piggyback on the same message.
|
|
switch r.readOnly.option {
|
|
case ReadOnlySafe:
|
|
r.readOnly.addRequest(r.raftLog.committed, m)
|
|
r.bcastHeartbeatWithCtx(m.Entries[0].Data)
|
|
case ReadOnlyLeaseBased:
|
|
var ri uint64
|
|
if r.checkQuorum {
|
|
ri = r.raftLog.committed
|
|
}
|
|
if m.From == None || m.From == r.id { // from local member
|
|
r.readStates = append(r.readStates, ReadState{Index: r.raftLog.committed, RequestCtx: m.Entries[0].Data})
|
|
} else {
|
|
r.send(pb.Message{To: m.From, Type: pb.MsgReadIndexResp, Index: ri, Entries: m.Entries})
|
|
}
|
|
}
|
|
} else {
|
|
r.readStates = append(r.readStates, ReadState{Index: r.raftLog.committed, RequestCtx: m.Entries[0].Data})
|
|
}
|
|
|
|
return
|
|
}
|
|
|
|
// All other message types require a progress for m.From (pr).
|
|
pr, prOk := r.prs[m.From]
|
|
if !prOk {
|
|
r.logger.Debugf("%x no progress available for %x", r.id, m.From)
|
|
return
|
|
}
|
|
switch m.Type {
|
|
case pb.MsgAppResp:
|
|
pr.RecentActive = true
|
|
|
|
if m.Reject {
|
|
r.logger.Debugf("%x received msgApp rejection(lastindex: %d) from %x for index %d",
|
|
r.id, m.RejectHint, m.From, m.Index)
|
|
if pr.maybeDecrTo(m.Index, m.RejectHint) {
|
|
r.logger.Debugf("%x decreased progress of %x to [%s]", r.id, m.From, pr)
|
|
if pr.State == ProgressStateReplicate {
|
|
pr.becomeProbe()
|
|
}
|
|
r.sendAppend(m.From)
|
|
}
|
|
} else {
|
|
oldPaused := pr.IsPaused()
|
|
if pr.maybeUpdate(m.Index) {
|
|
switch {
|
|
case pr.State == ProgressStateProbe:
|
|
pr.becomeReplicate()
|
|
case pr.State == ProgressStateSnapshot && pr.needSnapshotAbort():
|
|
r.logger.Debugf("%x snapshot aborted, resumed sending replication messages to %x [%s]", r.id, m.From, pr)
|
|
pr.becomeProbe()
|
|
case pr.State == ProgressStateReplicate:
|
|
pr.ins.freeTo(m.Index)
|
|
}
|
|
|
|
if r.maybeCommit() {
|
|
r.bcastAppend()
|
|
} else if oldPaused {
|
|
// update() reset the wait state on this node. If we had delayed sending
|
|
// an update before, send it now.
|
|
r.sendAppend(m.From)
|
|
}
|
|
// Transfer leadership is in progress.
|
|
if m.From == r.leadTransferee && pr.Match == r.raftLog.lastIndex() {
|
|
r.logger.Infof("%x sent MsgTimeoutNow to %x after received MsgAppResp", r.id, m.From)
|
|
r.sendTimeoutNow(m.From)
|
|
}
|
|
}
|
|
}
|
|
case pb.MsgHeartbeatResp:
|
|
pr.RecentActive = true
|
|
pr.resume()
|
|
|
|
// free one slot for the full inflights window to allow progress.
|
|
if pr.State == ProgressStateReplicate && pr.ins.full() {
|
|
pr.ins.freeFirstOne()
|
|
}
|
|
if pr.Match < r.raftLog.lastIndex() {
|
|
r.sendAppend(m.From)
|
|
}
|
|
|
|
if r.readOnly.option != ReadOnlySafe || len(m.Context) == 0 {
|
|
return
|
|
}
|
|
|
|
ackCount := r.readOnly.recvAck(m)
|
|
if ackCount < r.quorum() {
|
|
return
|
|
}
|
|
|
|
rss := r.readOnly.advance(m)
|
|
for _, rs := range rss {
|
|
req := rs.req
|
|
if req.From == None || req.From == r.id { // from local member
|
|
r.readStates = append(r.readStates, ReadState{Index: rs.index, RequestCtx: req.Entries[0].Data})
|
|
} else {
|
|
r.send(pb.Message{To: req.From, Type: pb.MsgReadIndexResp, Index: rs.index, Entries: req.Entries})
|
|
}
|
|
}
|
|
case pb.MsgSnapStatus:
|
|
if pr.State != ProgressStateSnapshot {
|
|
return
|
|
}
|
|
if !m.Reject {
|
|
pr.becomeProbe()
|
|
r.logger.Debugf("%x snapshot succeeded, resumed sending replication messages to %x [%s]", r.id, m.From, pr)
|
|
} else {
|
|
pr.snapshotFailure()
|
|
pr.becomeProbe()
|
|
r.logger.Debugf("%x snapshot failed, resumed sending replication messages to %x [%s]", r.id, m.From, pr)
|
|
}
|
|
// If snapshot finish, wait for the msgAppResp from the remote node before sending
|
|
// out the next msgApp.
|
|
// If snapshot failure, wait for a heartbeat interval before next try
|
|
pr.pause()
|
|
case pb.MsgUnreachable:
|
|
// During optimistic replication, if the remote becomes unreachable,
|
|
// there is huge probability that a MsgApp is lost.
|
|
if pr.State == ProgressStateReplicate {
|
|
pr.becomeProbe()
|
|
}
|
|
r.logger.Debugf("%x failed to send message to %x because it is unreachable [%s]", r.id, m.From, pr)
|
|
case pb.MsgTransferLeader:
|
|
leadTransferee := m.From
|
|
lastLeadTransferee := r.leadTransferee
|
|
if lastLeadTransferee != None {
|
|
if lastLeadTransferee == leadTransferee {
|
|
r.logger.Infof("%x [term %d] transfer leadership to %x is in progress, ignores request to same node %x",
|
|
r.id, r.Term, leadTransferee, leadTransferee)
|
|
return
|
|
}
|
|
r.abortLeaderTransfer()
|
|
r.logger.Infof("%x [term %d] abort previous transferring leadership to %x", r.id, r.Term, lastLeadTransferee)
|
|
}
|
|
if leadTransferee == r.id {
|
|
r.logger.Debugf("%x is already leader. Ignored transferring leadership to self", r.id)
|
|
return
|
|
}
|
|
// Transfer leadership to third party.
|
|
r.logger.Infof("%x [term %d] starts to transfer leadership to %x", r.id, r.Term, leadTransferee)
|
|
// Transfer leadership should be finished in one electionTimeout, so reset r.electionElapsed.
|
|
r.electionElapsed = 0
|
|
r.leadTransferee = leadTransferee
|
|
if pr.Match == r.raftLog.lastIndex() {
|
|
r.sendTimeoutNow(leadTransferee)
|
|
r.logger.Infof("%x sends MsgTimeoutNow to %x immediately as %x already has up-to-date log", r.id, leadTransferee, leadTransferee)
|
|
} else {
|
|
r.sendAppend(leadTransferee)
|
|
}
|
|
}
|
|
}
|
|
|
|
// stepCandidate is shared by StateCandidate and StatePreCandidate; the difference is
|
|
// whether they respond to MsgVoteResp or MsgPreVoteResp.
|
|
func stepCandidate(r *raft, m pb.Message) {
|
|
// Only handle vote responses corresponding to our candidacy (while in
|
|
// StateCandidate, we may get stale MsgPreVoteResp messages in this term from
|
|
// our pre-candidate state).
|
|
var myVoteRespType pb.MessageType
|
|
if r.state == StatePreCandidate {
|
|
myVoteRespType = pb.MsgPreVoteResp
|
|
} else {
|
|
myVoteRespType = pb.MsgVoteResp
|
|
}
|
|
switch m.Type {
|
|
case pb.MsgProp:
|
|
r.logger.Infof("%x no leader at term %d; dropping proposal", r.id, r.Term)
|
|
return
|
|
case pb.MsgApp:
|
|
r.becomeFollower(r.Term, m.From)
|
|
r.handleAppendEntries(m)
|
|
case pb.MsgHeartbeat:
|
|
r.becomeFollower(r.Term, m.From)
|
|
r.handleHeartbeat(m)
|
|
case pb.MsgSnap:
|
|
r.becomeFollower(m.Term, m.From)
|
|
r.handleSnapshot(m)
|
|
case myVoteRespType:
|
|
gr := r.poll(m.From, m.Type, !m.Reject)
|
|
r.logger.Infof("%x [quorum:%d] has received %d %s votes and %d vote rejections", r.id, r.quorum(), gr, m.Type, len(r.votes)-gr)
|
|
switch r.quorum() {
|
|
case gr:
|
|
if r.state == StatePreCandidate {
|
|
r.campaign(campaignElection)
|
|
} else {
|
|
r.becomeLeader()
|
|
r.bcastAppend()
|
|
}
|
|
case len(r.votes) - gr:
|
|
r.becomeFollower(r.Term, None)
|
|
}
|
|
case pb.MsgTimeoutNow:
|
|
r.logger.Debugf("%x [term %d state %v] ignored MsgTimeoutNow from %x", r.id, r.Term, r.state, m.From)
|
|
}
|
|
}
|
|
|
|
func stepFollower(r *raft, m pb.Message) {
|
|
switch m.Type {
|
|
case pb.MsgProp:
|
|
if r.lead == None {
|
|
r.logger.Infof("%x no leader at term %d; dropping proposal", r.id, r.Term)
|
|
return
|
|
}
|
|
m.To = r.lead
|
|
r.send(m)
|
|
case pb.MsgApp:
|
|
r.electionElapsed = 0
|
|
r.lead = m.From
|
|
r.handleAppendEntries(m)
|
|
case pb.MsgHeartbeat:
|
|
r.electionElapsed = 0
|
|
r.lead = m.From
|
|
r.handleHeartbeat(m)
|
|
case pb.MsgSnap:
|
|
r.electionElapsed = 0
|
|
r.lead = m.From
|
|
r.handleSnapshot(m)
|
|
case pb.MsgTransferLeader:
|
|
if r.lead == None {
|
|
r.logger.Infof("%x no leader at term %d; dropping leader transfer msg", r.id, r.Term)
|
|
return
|
|
}
|
|
m.To = r.lead
|
|
r.send(m)
|
|
case pb.MsgTimeoutNow:
|
|
if r.promotable() {
|
|
r.logger.Infof("%x [term %d] received MsgTimeoutNow from %x and starts an election to get leadership.", r.id, r.Term, m.From)
|
|
// Leadership transfers never use pre-vote even if r.preVote is true; we
|
|
// know we are not recovering from a partition so there is no need for the
|
|
// extra round trip.
|
|
r.campaign(campaignTransfer)
|
|
} else {
|
|
r.logger.Infof("%x received MsgTimeoutNow from %x but is not promotable", r.id, m.From)
|
|
}
|
|
case pb.MsgReadIndex:
|
|
if r.lead == None {
|
|
r.logger.Infof("%x no leader at term %d; dropping index reading msg", r.id, r.Term)
|
|
return
|
|
}
|
|
m.To = r.lead
|
|
r.send(m)
|
|
case pb.MsgReadIndexResp:
|
|
if len(m.Entries) != 1 {
|
|
r.logger.Errorf("%x invalid format of MsgReadIndexResp from %x, entries count: %d", r.id, m.From, len(m.Entries))
|
|
return
|
|
}
|
|
r.readStates = append(r.readStates, ReadState{Index: m.Index, RequestCtx: m.Entries[0].Data})
|
|
}
|
|
}
|
|
|
|
func (r *raft) handleAppendEntries(m pb.Message) {
|
|
if m.Index < r.raftLog.committed {
|
|
r.send(pb.Message{To: m.From, Type: pb.MsgAppResp, Index: r.raftLog.committed})
|
|
return
|
|
}
|
|
|
|
if mlastIndex, ok := r.raftLog.maybeAppend(m.Index, m.LogTerm, m.Commit, m.Entries...); ok {
|
|
r.send(pb.Message{To: m.From, Type: pb.MsgAppResp, Index: mlastIndex})
|
|
} else {
|
|
r.logger.Debugf("%x [logterm: %d, index: %d] rejected msgApp [logterm: %d, index: %d] from %x",
|
|
r.id, r.raftLog.zeroTermOnErrCompacted(r.raftLog.term(m.Index)), m.Index, m.LogTerm, m.Index, m.From)
|
|
r.send(pb.Message{To: m.From, Type: pb.MsgAppResp, Index: m.Index, Reject: true, RejectHint: r.raftLog.lastIndex()})
|
|
}
|
|
}
|
|
|
|
func (r *raft) handleHeartbeat(m pb.Message) {
|
|
r.raftLog.commitTo(m.Commit)
|
|
r.send(pb.Message{To: m.From, Type: pb.MsgHeartbeatResp, Context: m.Context})
|
|
}
|
|
|
|
func (r *raft) handleSnapshot(m pb.Message) {
|
|
sindex, sterm := m.Snapshot.Metadata.Index, m.Snapshot.Metadata.Term
|
|
if r.restore(m.Snapshot) {
|
|
r.logger.Infof("%x [commit: %d] restored snapshot [index: %d, term: %d]",
|
|
r.id, r.raftLog.committed, sindex, sterm)
|
|
r.send(pb.Message{To: m.From, Type: pb.MsgAppResp, Index: r.raftLog.lastIndex()})
|
|
} else {
|
|
r.logger.Infof("%x [commit: %d] ignored snapshot [index: %d, term: %d]",
|
|
r.id, r.raftLog.committed, sindex, sterm)
|
|
r.send(pb.Message{To: m.From, Type: pb.MsgAppResp, Index: r.raftLog.committed})
|
|
}
|
|
}
|
|
|
|
// restore recovers the state machine from a snapshot. It restores the log and the
|
|
// configuration of state machine.
|
|
func (r *raft) restore(s pb.Snapshot) bool {
|
|
if s.Metadata.Index <= r.raftLog.committed {
|
|
return false
|
|
}
|
|
if r.raftLog.matchTerm(s.Metadata.Index, s.Metadata.Term) {
|
|
r.logger.Infof("%x [commit: %d, lastindex: %d, lastterm: %d] fast-forwarded commit to snapshot [index: %d, term: %d]",
|
|
r.id, r.raftLog.committed, r.raftLog.lastIndex(), r.raftLog.lastTerm(), s.Metadata.Index, s.Metadata.Term)
|
|
r.raftLog.commitTo(s.Metadata.Index)
|
|
return false
|
|
}
|
|
|
|
r.logger.Infof("%x [commit: %d, lastindex: %d, lastterm: %d] starts to restore snapshot [index: %d, term: %d]",
|
|
r.id, r.raftLog.committed, r.raftLog.lastIndex(), r.raftLog.lastTerm(), s.Metadata.Index, s.Metadata.Term)
|
|
|
|
r.raftLog.restore(s)
|
|
r.prs = make(map[uint64]*Progress)
|
|
for _, n := range s.Metadata.ConfState.Nodes {
|
|
match, next := uint64(0), r.raftLog.lastIndex()+1
|
|
if n == r.id {
|
|
match = next - 1
|
|
}
|
|
r.setProgress(n, match, next)
|
|
r.logger.Infof("%x restored progress of %x [%s]", r.id, n, r.prs[n])
|
|
}
|
|
return true
|
|
}
|
|
|
|
// promotable indicates whether state machine can be promoted to leader,
|
|
// which is true when its own id is in progress list.
|
|
func (r *raft) promotable() bool {
|
|
_, ok := r.prs[r.id]
|
|
return ok
|
|
}
|
|
|
|
func (r *raft) addNode(id uint64) {
|
|
r.pendingConf = false
|
|
if _, ok := r.prs[id]; ok {
|
|
// Ignore any redundant addNode calls (which can happen because the
|
|
// initial bootstrapping entries are applied twice).
|
|
return
|
|
}
|
|
|
|
r.setProgress(id, 0, r.raftLog.lastIndex()+1)
|
|
}
|
|
|
|
func (r *raft) removeNode(id uint64) {
|
|
r.delProgress(id)
|
|
r.pendingConf = false
|
|
|
|
// do not try to commit or abort transferring if there is no nodes in the cluster.
|
|
if len(r.prs) == 0 {
|
|
return
|
|
}
|
|
|
|
// The quorum size is now smaller, so see if any pending entries can
|
|
// be committed.
|
|
if r.maybeCommit() {
|
|
r.bcastAppend()
|
|
}
|
|
// If the removed node is the leadTransferee, then abort the leadership transferring.
|
|
if r.state == StateLeader && r.leadTransferee == id {
|
|
r.abortLeaderTransfer()
|
|
}
|
|
}
|
|
|
|
func (r *raft) resetPendingConf() { r.pendingConf = false }
|
|
|
|
func (r *raft) setProgress(id, match, next uint64) {
|
|
r.prs[id] = &Progress{Next: next, Match: match, ins: newInflights(r.maxInflight)}
|
|
}
|
|
|
|
func (r *raft) delProgress(id uint64) {
|
|
delete(r.prs, id)
|
|
}
|
|
|
|
func (r *raft) loadState(state pb.HardState) {
|
|
if state.Commit < r.raftLog.committed || state.Commit > r.raftLog.lastIndex() {
|
|
r.logger.Panicf("%x state.commit %d is out of range [%d, %d]", r.id, state.Commit, r.raftLog.committed, r.raftLog.lastIndex())
|
|
}
|
|
r.raftLog.committed = state.Commit
|
|
r.Term = state.Term
|
|
r.Vote = state.Vote
|
|
}
|
|
|
|
// pastElectionTimeout returns true iff r.electionElapsed is greater
|
|
// than or equal to the randomized election timeout in
|
|
// [electiontimeout, 2 * electiontimeout - 1].
|
|
func (r *raft) pastElectionTimeout() bool {
|
|
return r.electionElapsed >= r.randomizedElectionTimeout
|
|
}
|
|
|
|
func (r *raft) resetRandomizedElectionTimeout() {
|
|
r.randomizedElectionTimeout = r.electionTimeout + globalRand.Intn(r.electionTimeout)
|
|
}
|
|
|
|
// checkQuorumActive returns true if the quorum is active from
|
|
// the view of the local raft state machine. Otherwise, it returns
|
|
// false.
|
|
// checkQuorumActive also resets all RecentActive to false.
|
|
func (r *raft) checkQuorumActive() bool {
|
|
var act int
|
|
|
|
for id := range r.prs {
|
|
if id == r.id { // self is always active
|
|
act++
|
|
continue
|
|
}
|
|
|
|
if r.prs[id].RecentActive {
|
|
act++
|
|
}
|
|
|
|
r.prs[id].RecentActive = false
|
|
}
|
|
|
|
return act >= r.quorum()
|
|
}
|
|
|
|
func (r *raft) sendTimeoutNow(to uint64) {
|
|
r.send(pb.Message{To: to, Type: pb.MsgTimeoutNow})
|
|
}
|
|
|
|
func (r *raft) abortLeaderTransfer() {
|
|
r.leadTransferee = None
|
|
}
|
|
|
|
func numOfPendingConf(ents []pb.Entry) int {
|
|
n := 0
|
|
for i := range ents {
|
|
if ents[i].Type == pb.EntryConfChange {
|
|
n++
|
|
}
|
|
}
|
|
return n
|
|
}
|