featurebase/cluster.go

1132 lines
27 KiB
Go

// Copyright 2017 Pilosa Corp.
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.
package pilosa
import (
"context"
"encoding/binary"
"errors"
"fmt"
"hash/fnv"
"io"
"io/ioutil"
"log"
"math/rand"
"os"
"path/filepath"
"sort"
"sync"
"time"
"github.com/gogo/protobuf/proto"
"github.com/pilosa/pilosa/internal"
)
const (
// DefaultPartitionN is the default number of partitions in a cluster.
DefaultPartitionN = 256
// DefaultReplicaN is the default number of replicas per partition.
DefaultReplicaN = 1
// ClusterState represents the state returned in the /status endpoint.
ClusterStateStarting = "STARTING"
ClusterStateNormal = "NORMAL"
ClusterStateResizing = "RESIZING"
// ResizeJob states.
ResizeJobStateRunning = "RUNNING"
// Final states.
ResizeJobStateDone = "DONE"
ResizeJobStateAborted = "ABORTED"
)
// Node represents a node in the cluster.
type Node struct {
URI URI `json:"uri"`
}
// Nodes represents a list of nodes.
type Nodes []*Node
// Contains returns true if a node exists in the list.
func (a Nodes) Contains(n *Node) bool {
for i := range a {
if a[i] == n {
return true
}
}
return false
}
// ContainsURI returns true if host matches one of the node's uri.
func (a Nodes) ContainsURI(uri URI) bool {
for _, n := range a {
if n.URI == uri {
return true
}
}
return false
}
// Filter returns a new list of nodes with node removed.
func (a Nodes) Filter(n *Node) []*Node {
other := make([]*Node, 0, len(a))
for i := range a {
if a[i] != n {
other = append(other, a[i])
}
}
return other
}
// FilterURI returns a new list of nodes with URI removed.
func (a Nodes) FilterURI(uri URI) []*Node {
other := make([]*Node, 0, len(a))
for _, node := range a {
if node.URI != uri {
other = append(other, node)
}
}
return other
}
// URIs returns a list of all uris.
func (a Nodes) URIs() []URI {
uris := make([]URI, len(a))
for i, n := range a {
uris[i] = n.URI
}
return uris
}
// Clone returns a shallow copy of nodes.
func (a Nodes) Clone() []*Node {
other := make([]*Node, len(a))
copy(other, a)
return other
}
// ByHost implements sort.Interface for []Node based on
// the Host field.
type ByHost []*Node
func (h ByHost) Len() int { return len(h) }
func (h ByHost) Swap(i, j int) { h[i], h[j] = h[j], h[i] }
func (h ByHost) Less(i, j int) bool { return h[i].URI.String() < h[j].URI.String() }
// Cluster represents a collection of nodes.
type Cluster struct {
URI URI
Nodes []*Node // TODO phase this out?
MemberSet MemberSet
// Hashing algorithm used to assign partitions to nodes.
Hasher Hasher
// The number of partitions in the cluster.
PartitionN int
// The number of replicas a partition has.
ReplicaN int
// Threshold for logging long-running queries
LongQueryTime time.Duration
// EventReceiver receives NodeEvents pertaining to node membership.
EventReceiver EventReceiver
// Data directory path.
Path string
Topology *Topology
// Required for cluster Resize.
State string
Coordinator URI
Holder *Holder
Broadcaster Broadcaster
joiningURIs chan URI
mu sync.RWMutex
jobs map[int64]*ResizeJob
currentJob *ResizeJob
// Close management
wg sync.WaitGroup
closing chan struct{}
// The writer for any logging.
LogOutput io.Writer
}
// NewCluster returns a new instance of Cluster with defaults.
func NewCluster() *Cluster {
return &Cluster{
Hasher: &jmphasher{},
PartitionN: DefaultPartitionN,
ReplicaN: DefaultReplicaN,
EventReceiver: NopEventReceiver,
joiningURIs: make(chan URI, 10), // buffered channel
jobs: make(map[int64]*ResizeJob),
closing: make(chan struct{}),
LogOutput: os.Stderr,
}
}
// logger returns a logger for the cluster.
func (c *Cluster) logger() *log.Logger {
return log.New(c.LogOutput, "", log.LstdFlags)
}
// IsCoordinator is true if this node is the coordinator.
func (c *Cluster) IsCoordinator() bool {
return c.Coordinator == c.URI
}
// AddNode adds a node to the Cluster and updates and saves the
// new topology.
func (c *Cluster) AddNode(uri URI) error {
// add to cluster
_, added := c.AddNodeBasicSorted(uri)
if !added {
return nil
}
// add to topology
if c.Topology == nil {
return fmt.Errorf("Cluster.Topology is nil")
}
if !c.Topology.AddURI(uri) {
return nil
}
// save topology
return c.saveTopology()
}
// NodeSet returns the list of uris in the cluster.
func (c *Cluster) NodeSet() []URI {
return Nodes(c.Nodes).URIs()
}
func (c *Cluster) setState(state string) {
c.State = state
}
// localNode is not being used.
//func (c *Cluster) localNode() *Node {
// return c.NodeByURI(c.URI)
//}
// Status returns the internal ClusterStatus representation.
func (c *Cluster) Status() *internal.ClusterStatus {
return &internal.ClusterStatus{
State: c.State,
NodeSet: encodeURIs(c.NodeSet()),
}
}
// NodeByURI returns a node reference by uri.
func (c *Cluster) NodeByURI(uri URI) *Node {
for _, n := range c.Nodes {
if n.URI == uri {
return n
}
}
return nil
}
// AddNodeBasicSorted adds a node to the cluster, sorted by uri.
// Returns a pointer to the node and true if the node was added.
func (c *Cluster) AddNodeBasicSorted(uri URI) (*Node, bool) {
n := c.NodeByURI(uri)
if n != nil {
return n, false
}
n = &Node{URI: uri}
c.Nodes = append(c.Nodes, n)
// All hosts must be merged in the same order on all nodes in the cluster.
sort.Sort(ByHost(c.Nodes))
return n, true
}
// frag is a struct of basic fragment information.
type frag struct {
frame string
view string
slice uint64
}
func fragsDiff(a, b []frag) []frag {
m := make(map[frag]uint64)
for _, y := range b {
m[y]++
}
var ret []frag
for _, x := range a {
if m[x] > 0 {
m[x]--
continue
}
ret = append(ret, x)
}
return ret
}
type fragsByHost map[URI][]frag
func (a fragsByHost) add(b fragsByHost) fragsByHost {
for k, v := range b {
for _, vv := range v {
a[k] = append(a[k], vv)
}
}
return a
}
type viewsByFrame map[string][]string
func (a viewsByFrame) addView(frame, view string) {
a[frame] = append(a[frame], view)
}
func (c *Cluster) fragsByHost(idx *Index) fragsByHost {
// frameViews is a map of frame to slice of views.
frameViews := make(viewsByFrame)
inverseFrameViews := make(viewsByFrame)
for _, frame := range idx.Frames() {
for _, view := range frame.Views() {
if IsInverseView(view.Name()) {
inverseFrameViews.addView(frame.Name(), view.Name())
} else {
frameViews.addView(frame.Name(), view.Name())
}
}
}
std := c.fragCombos(idx.Name(), idx.MaxSlice(), frameViews)
inv := c.fragCombos(idx.Name(), idx.MaxInverseSlice(), inverseFrameViews)
return std.add(inv)
}
// fragCombos returns a map (by uri) of lists of fragments for a given index
// by creating every combination of frame/view specified in `frameViews` up to maxSlice.
func (c *Cluster) fragCombos(idx string, maxSlice uint64, frameViews viewsByFrame) fragsByHost {
t := make(fragsByHost)
for i := uint64(0); i <= maxSlice; i++ {
f := c.FragmentNodes(idx, i)
for _, n := range f {
// for each frame/view combination:
for frame, views := range frameViews {
for _, view := range views {
t[n.URI] = append(t[n.URI], frag{frame, view, i})
}
}
}
}
return t
}
// DataDiff returns a list of ResizeSources - for each host in the `to` cluster -
// required to move from cluster `c` to cluster `to`.
func (c *Cluster) DataDiff(to *Cluster, idx *Index) map[URI][]*internal.ResizeSource {
m := make(map[URI][]*internal.ResizeSource)
// Initialize the map with all the nodes in `to`.
for _, n := range to.Nodes {
m[n.URI] = nil
}
// For now, we want our source to be confined to the primary fragment
// (i.e. don't use replicas as source data). So if it's not already,
// base our source fragments on a cluster with replica = 1.
srcCluster := c
if c.ReplicaN > 1 {
srcCluster = NewCluster()
srcCluster.Nodes = Nodes(c.Nodes).Clone()
srcCluster.Hasher = c.Hasher
srcCluster.PartitionN = c.PartitionN
srcCluster.ReplicaN = 1
}
// Represents the fragment location for the from/to clusters.
fFrags := c.fragsByHost(idx)
tFrags := to.fragsByHost(idx)
// srcFrags is the frag map based on a source cluster of replica = 1.
srcFrags := srcCluster.fragsByHost(idx)
// srcHostsByFrag is the inverse representation of srcFrags.
srcHostsByFrag := make(map[frag]URI)
for uri, frags := range srcFrags {
for _, frag := range frags {
srcHostsByFrag[frag] = uri
}
}
// Get the frag diff for each host.
diffs := make(fragsByHost)
for host, frags := range tFrags {
if _, ok := fFrags[host]; ok {
diffs[host] = fragsDiff(frags, fFrags[host])
} else {
diffs[host] = frags
}
}
// Get the ResizeSource for each diff.
for host, diff := range diffs {
m[host] = []*internal.ResizeSource{}
for _, frag := range diff {
src := &internal.ResizeSource{
URI: (srcHostsByFrag[frag]).Encode(),
Index: idx.Name(),
Frame: frag.frame,
View: frag.view,
Slice: frag.slice,
}
m[host] = append(m[host], src)
}
}
return m
}
// Partition returns the partition that a slice belongs to.
func (c *Cluster) Partition(index string, slice uint64) int {
var buf [8]byte
binary.BigEndian.PutUint64(buf[:], slice)
// Hash the bytes and mod by partition count.
h := fnv.New64a()
h.Write([]byte(index))
h.Write(buf[:])
return int(h.Sum64() % uint64(c.PartitionN))
}
// FragmentNodes returns a list of nodes that own a fragment.
func (c *Cluster) FragmentNodes(index string, slice uint64) []*Node {
return c.PartitionNodes(c.Partition(index, slice))
}
// OwnsFragment returns true if a host owns a fragment.
func (c *Cluster) OwnsFragment(uri URI, index string, slice uint64) bool {
return Nodes(c.FragmentNodes(index, slice)).ContainsURI(uri)
}
// PartitionNodes returns a list of nodes that own a partition.
func (c *Cluster) PartitionNodes(partitionID int) []*Node {
// Default replica count to between one and the number of nodes.
// The replica count can be zero if there are no nodes.
replicaN := c.ReplicaN
if replicaN > len(c.Nodes) {
replicaN = len(c.Nodes)
} else if replicaN == 0 {
replicaN = 1
}
// Determine primary owner node.
nodeIndex := c.Hasher.Hash(uint64(partitionID), len(c.Nodes))
// Collect nodes around the ring.
nodes := make([]*Node, replicaN)
for i := 0; i < replicaN; i++ {
nodes[i] = c.Nodes[(nodeIndex+i)%len(c.Nodes)]
}
return nodes
}
// OwnsSlices find the set of slices owned by the node per Index
func (c *Cluster) OwnsSlices(index string, maxSlice uint64, uri URI) []uint64 {
var slices []uint64
for i := uint64(0); i <= maxSlice; i++ {
p := c.Partition(index, i)
// Determine primary owner node.
nodeIndex := c.Hasher.Hash(uint64(p), len(c.Nodes))
if c.Nodes[nodeIndex].URI == uri {
slices = append(slices, i)
}
}
return slices
}
// Hasher represents an interface to hash integers into buckets.
type Hasher interface {
// Hashes the key into a number between [0,N).
Hash(key uint64, n int) int
}
// NewHasher returns a new instance of the default hasher.
func NewHasher() Hasher { return &jmphasher{} }
// jmphasher represents an implementation of jmphash. Implements Hasher.
type jmphasher struct{}
// Hash returns the integer hash for the given key.
func (h *jmphasher) Hash(key uint64, n int) int {
b, j := int64(-1), int64(0)
for j < int64(n) {
b = j
key = key*uint64(2862933555777941757) + 1
j = int64(float64(b+1) * (float64(int64(1)<<31) / float64((key>>33)+1)))
}
return int(b)
}
func (c *Cluster) Open() error {
// Cluster always comes up in state STARTING until cluster membership is determined.
c.State = ClusterStateStarting
// Load topology file if it exists.
if err := c.loadTopology(); err != nil {
return fmt.Errorf("load topology: %v", err)
}
// Only the coordinator needs to consider the .topology file.
if c.IsCoordinator() {
state, err := c.considerTopology()
if err != nil {
return fmt.Errorf("considerTopology: %v", err)
}
// Add the local node to the cluster and update state.
c.AddNode(c.URI)
c.setState(state)
} else {
// Add the local node to the cluster.
c.AddNode(c.URI)
}
// Start the EventReceiver.
if err := c.EventReceiver.Start(c); err != nil {
return fmt.Errorf("starting EventReceiver: %v", err)
}
// Open MemberSet communication.
if err := c.MemberSet.Open(); err != nil {
return fmt.Errorf("opening MemberSet: %v", err)
}
// Listen for cluster-resize events.
c.wg.Add(1)
go func() { defer c.wg.Done(); c.listenForJoins() }()
return nil
}
func (c *Cluster) Close() error {
// Notify goroutines of closing and wait for completion.
close(c.closing)
c.wg.Wait()
return nil
}
func (c *Cluster) needTopologyAgreement() bool {
return c.State == ClusterStateStarting && !URISlicesAreEqual(c.Topology.NodeSet, c.NodeSet())
}
func (c *Cluster) haveTopologyAgreement() bool {
return URISlicesAreEqual(c.Topology.NodeSet, c.NodeSet())
}
func (c *Cluster) handleJoiningHost(uri URI) error {
j, err := c.GenerateResizeJob(uri)
if err != nil {
return err
}
// Run the job.
err = j.Run()
if err != nil {
return err
}
// Wait for the ResizeJob to finish or be aborted.
jobResult := <-j.result
switch jobResult {
case ResizeJobStateDone:
if err := c.CompleteCurrentJob(ResizeJobStateDone); err != nil {
return err
}
// Add uri to the cluster.
return c.AddNode(uri)
case ResizeJobStateAborted:
if err := c.CompleteCurrentJob(ResizeJobStateAborted); err != nil {
return err
}
}
return nil
}
func (c *Cluster) setStateAndBroadcast(state string) error {
c.setState(state)
// Broadcast cluster status changes to the cluster.
return c.Broadcaster.SendSync(c.Status())
}
func (c *Cluster) listenForJoins() {
var uriJoined bool
for {
// Handle all pending joins before changing state back to NORMAL.
select {
case uri := <-c.joiningURIs:
err := c.handleJoiningHost(uri)
if err != nil {
c.logger().Printf("handleJoiningHost error: err=%s", err)
continue
}
uriJoined = true
continue
default:
}
// Only change state to NORMAL if we have successfully added at least one host.
if uriJoined {
// Put the cluster back to state NORMAL and broadcast.
if err := c.setStateAndBroadcast(ClusterStateNormal); err != nil {
c.logger().Printf("setStateAndBroadcast error: err=%s", err)
}
}
// Wait for a joining host or a close.
select {
case <-c.closing:
return
case host := <-c.joiningURIs:
err := c.handleJoiningHost(host)
if err != nil {
c.logger().Printf("handleJoiningHost error: err=%s", err)
continue
}
uriJoined = true
continue
}
}
}
// GenerateResizeJob creates a new ResizeJob based on the new host being
// added. It also saves a reference to the ResizeJob in the `jobs` map
// for future lookup by JobID.
func (c *Cluster) GenerateResizeJob(addURI URI) (*ResizeJob, error) {
c.mu.Lock()
defer c.mu.Unlock()
j := c.generateResizeJob(addURI)
// Save job in jobs map for future reference.
c.jobs[j.ID] = j
// Set job as currentJob.
if c.currentJob != nil {
return nil, fmt.Errorf("there is currently a resize job running")
}
c.currentJob = j
return j, nil
}
// generateResizeJob returns a ResizeJob with instructions based on
// the difference between Cluster and a new Cluster containing addHost.
// Broadcaster is associated to the ResizeJob here for use in broadcasting
// the resize instructions to other nodes in the cluster.
func (c *Cluster) generateResizeJob(addURI URI) *ResizeJob {
j := NewResizeJob(addURI, Nodes(c.Nodes).URIs())
j.Broadcaster = c.Broadcaster
// toCluster is a clone of Cluster with the new node added for comparison.
toCluster := NewCluster()
toCluster.Nodes = Nodes(c.Nodes).Clone()
toCluster.Hasher = c.Hasher
toCluster.PartitionN = c.PartitionN
toCluster.ReplicaN = c.ReplicaN
toCluster.AddNodeBasicSorted(addURI)
// Add to the ResizeJob the instructions for each index.
for _, idx := range c.Holder.Indexes() {
// dataDiff is map[string][]*internal.ResizeSource, where string is
// a host in toCluster.
dataDiff := c.DataDiff(toCluster, idx)
for uri, sources := range dataDiff {
// If a host doesn't need to request data, mark it as complete.
if len(sources) == 0 {
j.URIs[uri] = true
continue
}
instr := &internal.ResizeInstruction{
JobID: j.ID,
URI: uri.Encode(),
Coordinator: encodeURI(c.Coordinator),
Sources: sources,
}
j.Instructions = append(j.Instructions, instr)
}
}
return j
}
// CompleteCurrentJob sets the state of the current ResizeJob
// then removes the pointer to currentJob.
func (c *Cluster) CompleteCurrentJob(state string) error {
c.mu.Lock()
defer c.mu.Unlock()
if c.currentJob == nil {
return fmt.Errorf("no resize job currently running")
}
c.currentJob.SetState(state)
c.currentJob = nil
return nil
}
// followResizeInstruction is run by any node that receives a ResizeInstruction.
func (c *Cluster) followResizeInstruction(instr *internal.ResizeInstruction) {
go func() {
// Prepare the return message.
complete := &internal.ResizeInstructionComplete{
JobID: instr.JobID,
URI: instr.URI,
Error: "",
}
// Stop processing on any error.
if err := func() error {
// Create a client for calling remote nodes.
client, err := NewClientFromURI(&c.URI, nil) // TODO: ClientOptions
if err != nil {
return err
}
// Request each source file in ResizeSources.
for _, src := range instr.Sources {
fmt.Printf("\n**** Get slice %d for index %s from host %s ****\n\n", src.Slice, src.Index, src.URI)
srcURI := decodeURI(src.URI)
// TODO: there's a possible race condition here;
// if NodeStatus has not been shared with the joining
// node (and the schema created locally), then
// the following Frame() lookup could fail.
// Retrieve frame.
f := c.Holder.Frame(src.Index, src.Frame)
if f == nil {
return ErrFrameNotFound
}
// Create view.
v, err := f.CreateViewIfNotExists(src.View)
if err != nil {
return err
}
// Create the local fragment.
frag, err := v.CreateFragmentIfNotExists(src.Slice)
if err != nil {
return err
}
// Stream slice from remote node.
rd, err := client.RetrieveSliceFromURI(context.Background(), src.Index, src.Frame, src.View, src.Slice, srcURI)
if err != nil {
return err
} else if rd == nil {
return fmt.Errorf("slice %v doesn't exist on host: %s", src.Slice, src.URI)
}
// Write to local frame and always close reader.
if err := func() error {
defer rd.Close()
if _, err := frag.ReadFrom(rd); err != nil {
return err
}
return nil
}(); err != nil {
return err
}
}
return nil
}(); err != nil {
complete.Error = err.Error()
}
node := &Node{
URI: decodeURI(instr.Coordinator),
}
if err := c.Broadcaster.SendTo(node, complete); err != nil {
c.logger().Printf("sending resizeInstructionComplete error: err=%s", err)
}
}()
}
func (c *Cluster) MarkResizeInstructionComplete(complete *internal.ResizeInstructionComplete) error {
j := c.Job(complete.JobID)
// Abort the job if an error exists in the complete object.
if complete.Error != "" {
j.result <- ResizeJobStateAborted
return errors.New(complete.Error)
}
j.mu.Lock()
defer j.mu.Unlock()
if j.isComplete() {
return fmt.Errorf("ResizeJob %d is no longer running", j.ID)
}
uri := decodeURI(complete.URI)
// Mark host complete.
j.URIs[uri] = true
if !j.urisArePending() {
j.result <- ResizeJobStateDone
}
return nil
}
// Job returns a ResizeJob by id.
func (c *Cluster) Job(id int64) *ResizeJob {
c.mu.RLock()
defer c.mu.RUnlock()
return c.job(id)
}
func (c *Cluster) job(id int64) *ResizeJob { return c.jobs[id] }
type ResizeJob struct {
ID int64
URIs map[URI]bool
Instructions []*internal.ResizeInstruction
Broadcaster Broadcaster
result chan string
mu sync.RWMutex
state string
}
// NewResizeJob returns a new instance of ResizeJob.
func NewResizeJob(addURI URI, existingURIs []URI) *ResizeJob {
// Build a map of uris to track their resize status.
uris := make(map[URI]bool)
// The value for a node will be set to true after that node
// has indicated that it has completed all resize instructions.
for _, u := range existingURIs {
uris[u] = false
}
// Include the added node in the map for tracking.
uris[addURI] = false
return &ResizeJob{
ID: rand.Int63(),
URIs: uris,
result: make(chan string),
}
}
func (j *ResizeJob) State() string {
j.mu.RLock()
defer j.mu.RUnlock()
return j.state
}
func (j *ResizeJob) SetState(state string) {
j.mu.Lock()
j.setState(state)
j.mu.Unlock()
}
func (j *ResizeJob) setState(state string) {
if j.state == "" || j.state == ResizeJobStateRunning {
j.state = state
}
}
// Run distributes ResizeInstructions.
func (j *ResizeJob) Run() error {
j.mu.RLock()
defer j.mu.RUnlock()
// Set job state to RUNNING.
j.setState(ResizeJobStateRunning)
// Job can be considered done in the case where it doesn't require any action.
if !j.urisArePending() {
j.result <- ResizeJobStateDone
return nil
}
err := j.distributeResizeInstructions()
if err != nil {
j.result <- ResizeJobStateAborted
return err
}
return nil
}
// isComplete return true if the job is any one of several completion states.
func (j *ResizeJob) isComplete() bool {
switch j.state {
case ResizeJobStateDone, ResizeJobStateAborted:
return true
default:
return false
}
}
// urisArePending returns true if any uri is still working on the resize.
func (j *ResizeJob) urisArePending() bool {
for _, complete := range j.URIs {
if !complete {
return true
}
}
return false
}
func (j *ResizeJob) distributeResizeInstructions() error {
// Loop through the ResizeInstructions in ResizeJob and send to each host.
for _, instr := range j.Instructions {
// Because the node may not be in the cluster yet, create
// a dummy node object to use in the SendTo() method.
node := &Node{
URI: decodeURI(instr.URI),
}
if err := j.Broadcaster.SendTo(node, instr); err != nil {
return err
}
}
return nil
}
type NodeSet []URI
func (u NodeSet) ToHostPortStrings() []string {
other := make([]string, 0, len(u))
for _, uri := range u {
other = append(other, uri.HostPort())
}
return other
}
// Topology represents the list of hosts in the cluster.
type Topology struct {
mu sync.RWMutex
NodeSet []URI
}
func NewTopology() *Topology {
return &Topology{}
}
// ContainsURI returns true if uri matches one of the topology's uris.
func (t *Topology) ContainsURI(uri URI) bool {
t.mu.RLock()
defer t.mu.RUnlock()
return t.containsURI(uri)
}
func (t *Topology) containsURI(uri URI) bool {
for _, turi := range t.NodeSet {
if turi == uri {
return true
}
}
return false
}
// AddNode adds the uri to the topology and returns true if added.
func (t *Topology) AddURI(uri URI) bool {
t.mu.Lock()
defer t.mu.Unlock()
if t.containsURI(uri) {
return false
}
t.NodeSet = append(t.NodeSet, uri)
return true
}
// loadTopology reads the topology for the node.
func (c *Cluster) loadTopology() error {
buf, err := ioutil.ReadFile(filepath.Join(c.Path, ".topology"))
if os.IsNotExist(err) {
c.Topology = NewTopology()
return nil
} else if err != nil {
return err
}
var pb internal.Topology
if err := proto.Unmarshal(buf, &pb); err != nil {
return err
}
top, err := decodeTopology(&pb)
if err != nil {
return err
}
c.Topology = top
return nil
}
// saveTopology writes the current topology to disk.
func (c *Cluster) saveTopology() error {
if buf, err := proto.Marshal(encodeTopology(c.Topology)); err != nil {
return err
} else if err := ioutil.WriteFile(filepath.Join(c.Path, ".topology"), buf, 0666); err != nil {
return err
}
return nil
}
func encodeTopology(topology *Topology) *internal.Topology {
if topology == nil {
return nil
}
return &internal.Topology{
NodeSet: encodeURIs(topology.NodeSet),
}
}
func decodeTopology(topology *internal.Topology) (*Topology, error) {
if topology == nil {
return nil, nil
}
t := &Topology{
NodeSet: decodeURIs(topology.NodeSet),
}
return t, nil
}
func (c *Cluster) considerTopology() (string, error) {
// If there is no .topology file, it's safe to go to state NORMAL.
if len(c.Topology.NodeSet) == 0 {
return ClusterStateNormal, nil
}
// The local node (coordinator) must be in the .topology.
if !c.Topology.ContainsURI(c.Coordinator) {
return "", fmt.Errorf("coordinator %s is not in topology: %v", c.Coordinator, c.Topology.NodeSet)
}
// If local node is the only thing in .topology, continue to state NORMAL.
if len(c.Topology.NodeSet) == 1 {
return ClusterStateNormal, nil
}
// Keep the cluster in state "STARTING" until hearing from all nodes.
// Topology contains 2+ hosts.
return ClusterStateStarting, nil
}
// ReceiveEvent represents an implementation of EventHandler.
func (c *Cluster) ReceiveEvent(e *NodeEvent) error {
// Ignore events sent from this node.
if e.URI == c.URI {
return nil
}
switch e.Event {
case NodeJoin:
// Ignore the event if this is not the coordinator.
if !c.IsCoordinator() {
return nil
}
if c.needTopologyAgreement() {
// A host that is not part of the topology can't be added to the STARTING cluster.
if !c.Topology.ContainsURI(e.URI) {
return fmt.Errorf("host is not in topology: %v", e.URI)
}
uri := e.URI
if err := c.AddNode(uri); err != nil {
return err
}
// If the result of the previous AddNode completed the joining of nodes
// in the topology, then change the state to NORMAL.
if c.haveTopologyAgreement() {
return c.setStateAndBroadcast(ClusterStateNormal)
}
return nil
}
// Don't do anything else if the cluster already contains the node.
if c.NodeByURI(e.URI) != nil {
return nil
}
// If the index does not yet have data, go ahead and add the node.
if !c.Holder.HasData() {
uri := e.URI
if err := c.AddNode(uri); err != nil {
return err
}
return c.setStateAndBroadcast(ClusterStateNormal)
}
// If the cluster has data, we need to change to RESIZING and
// kick off the resizing process.
if err := c.setStateAndBroadcast(ClusterStateResizing); err != nil {
return err
}
c.joiningURIs <- e.URI
case NodeLeave:
// TODO: implement this
case NodeUpdate:
// TODO: implement this
}
return nil
}
func (c *Cluster) mergeClusterStatus(cs *internal.ClusterStatus) error {
// Ignore status updates from self (coordinator).
if c.IsCoordinator() {
return nil
}
for _, uri := range decodeURIs(cs.NodeSet) {
c.AddNode(uri)
}
c.setState(cs.State)
return nil
}