mirror of
https://source.quilibrium.com/quilibrium/ceremonyclient.git
synced 2024-12-25 08:05:17 +00:00
502 lines
12 KiB
Go
502 lines
12 KiB
Go
package master
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import (
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gcrypto "crypto"
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"encoding/hex"
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"math/big"
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"sync"
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"time"
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"github.com/iden3/go-iden3-crypto/poseidon"
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pcrypto "github.com/libp2p/go-libp2p/core/crypto"
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"github.com/libp2p/go-libp2p/core/peer"
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"github.com/pkg/errors"
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"go.uber.org/zap"
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"source.quilibrium.com/quilibrium/monorepo/node/config"
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"source.quilibrium.com/quilibrium/monorepo/node/consensus"
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qtime "source.quilibrium.com/quilibrium/monorepo/node/consensus/time"
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"source.quilibrium.com/quilibrium/monorepo/node/crypto"
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"source.quilibrium.com/quilibrium/monorepo/node/execution"
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"source.quilibrium.com/quilibrium/monorepo/node/keys"
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"source.quilibrium.com/quilibrium/monorepo/node/p2p"
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"source.quilibrium.com/quilibrium/monorepo/node/protobufs"
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"source.quilibrium.com/quilibrium/monorepo/node/store"
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)
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type SyncStatusType int
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const (
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SyncStatusNotSyncing = iota
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SyncStatusAwaitingResponse
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SyncStatusSynchronizing
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)
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type MasterClockConsensusEngine struct {
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*protobufs.UnimplementedValidationServiceServer
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difficulty uint32
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logger *zap.Logger
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state consensus.EngineState
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pubSub p2p.PubSub
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keyManager keys.KeyManager
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dataProver crypto.InclusionProver
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frameProver crypto.FrameProver
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lastFrameReceivedAt time.Time
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frameChan chan *protobufs.ClockFrame
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executionEngines map[string]execution.ExecutionEngine
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filter []byte
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input []byte
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syncingStatus SyncStatusType
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syncingTarget []byte
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engineMx sync.Mutex
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seenFramesMx sync.Mutex
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historicFramesMx sync.Mutex
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seenFrames []*protobufs.ClockFrame
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historicFrames []*protobufs.ClockFrame
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clockStore store.ClockStore
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masterTimeReel *qtime.MasterTimeReel
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peerInfoManager p2p.PeerInfoManager
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report *protobufs.SelfTestReport
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frameValidationCh chan *protobufs.ClockFrame
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beacon peer.ID
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currentReceivingSyncPeers int
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currentReceivingSyncPeersMx sync.Mutex
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collectedProverSlots []*protobufs.InclusionAggregateProof
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collectedProverSlotsMx sync.Mutex
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engineConfig *config.EngineConfig
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}
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var _ consensus.ConsensusEngine = (*MasterClockConsensusEngine)(nil)
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var MASTER_CLOCK_RATE = uint32(1000000)
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func NewMasterClockConsensusEngine(
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engineConfig *config.EngineConfig,
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logger *zap.Logger,
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clockStore store.ClockStore,
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keyManager keys.KeyManager,
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pubSub p2p.PubSub,
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dataProver crypto.InclusionProver,
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frameProver crypto.FrameProver,
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masterTimeReel *qtime.MasterTimeReel,
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peerInfoManager p2p.PeerInfoManager,
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report *protobufs.SelfTestReport,
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) *MasterClockConsensusEngine {
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if logger == nil {
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panic(errors.New("logger is nil"))
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}
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if engineConfig == nil {
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panic(errors.New("engine config is nil"))
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}
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if keyManager == nil {
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panic(errors.New("key manager is nil"))
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}
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if pubSub == nil {
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panic(errors.New("pubsub is nil"))
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}
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if dataProver == nil {
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panic(errors.New("data prover is nil"))
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}
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if frameProver == nil {
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panic(errors.New("frame prover is nil"))
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}
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if masterTimeReel == nil {
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panic(errors.New("master time reel is nil"))
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}
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seed, err := hex.DecodeString(engineConfig.GenesisSeed)
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if err != nil {
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panic(errors.New("genesis seed is nil"))
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}
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e := &MasterClockConsensusEngine{
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difficulty: MASTER_CLOCK_RATE,
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logger: logger,
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state: consensus.EngineStateStopped,
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keyManager: keyManager,
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pubSub: pubSub,
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executionEngines: map[string]execution.ExecutionEngine{},
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frameChan: make(chan *protobufs.ClockFrame),
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input: seed,
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lastFrameReceivedAt: time.Time{},
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syncingStatus: SyncStatusNotSyncing,
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clockStore: clockStore,
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dataProver: dataProver,
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frameProver: frameProver,
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masterTimeReel: masterTimeReel,
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peerInfoManager: peerInfoManager,
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report: report,
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frameValidationCh: make(chan *protobufs.ClockFrame),
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collectedProverSlots: []*protobufs.InclusionAggregateProof{},
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engineConfig: engineConfig,
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}
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e.addPeerManifestReport(e.pubSub.GetPeerID(), report)
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if e.filter, err = hex.DecodeString(
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"0000000000000000000000000000000000000000000000000000000000000000",
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); err != nil {
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panic(errors.Wrap(err, "could not parse filter value"))
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}
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e.getProvingKey(engineConfig)
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if err := e.createCommunicationKeys(); err != nil {
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panic(err)
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}
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logger.Info("constructing consensus engine")
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return e
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}
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func (e *MasterClockConsensusEngine) Start() <-chan error {
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e.logger.Info("starting master consensus engine")
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e.state = consensus.EngineStateStarting
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errChan := make(chan error)
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e.peerInfoManager.Start()
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e.state = consensus.EngineStateLoading
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e.logger.Info("syncing last seen state")
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err := e.masterTimeReel.Start()
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if err != nil {
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panic(err)
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}
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beaconPubKey, err := pcrypto.UnmarshalEd448PublicKey(
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config.GetGenesis().Beacon,
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)
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if err != nil {
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panic(err)
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}
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e.beacon, err = peer.IDFromPublicKey(beaconPubKey)
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if err != nil {
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panic(err)
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}
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frame, err := e.masterTimeReel.Head()
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if err != nil {
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panic(err)
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}
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e.logger.Info("building historic frame cache")
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e.buildHistoricFrameCache(frame)
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go func() {
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for {
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select {
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case newFrame := <-e.frameValidationCh:
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head, err := e.masterTimeReel.Head()
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if err != nil {
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panic(err)
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}
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if head.FrameNumber > newFrame.FrameNumber ||
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newFrame.FrameNumber-head.FrameNumber > 128 {
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e.logger.Debug(
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"frame out of range, ignoring",
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zap.Uint64("number", newFrame.FrameNumber),
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)
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continue
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}
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if err := e.frameProver.VerifyMasterClockFrame(newFrame); err != nil {
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e.logger.Error("could not verify clock frame", zap.Error(err))
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continue
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}
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e.masterTimeReel.Insert(newFrame, false)
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}
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}
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}()
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e.logger.Info("subscribing to pubsub messages")
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e.pubSub.Subscribe(e.filter, e.handleMessage)
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e.state = consensus.EngineStateCollecting
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go func() {
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for {
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e.logger.Info(
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"peers in store",
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zap.Int("peer_store_count", e.pubSub.GetPeerstoreCount()),
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zap.Int("network_peer_count", e.pubSub.GetNetworkPeersCount()),
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)
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time.Sleep(10 * time.Second)
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}
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}()
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go func() {
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for e.state < consensus.EngineStateStopping {
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frame, err := e.masterTimeReel.Head()
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if err != nil {
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panic(err)
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}
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if frame, err = e.prove(frame); err != nil {
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e.logger.Error("could not prove", zap.Error(err))
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continue
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}
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if err = e.publishProof(frame); err != nil {
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e.logger.Error("could not publish", zap.Error(err))
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}
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}
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}()
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go func() {
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errChan <- nil
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}()
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return errChan
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}
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func (e *MasterClockConsensusEngine) Stop(force bool) <-chan error {
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e.logger.Info("stopping consensus engine")
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e.state = consensus.EngineStateStopping
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errChan := make(chan error)
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wg := sync.WaitGroup{}
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wg.Add(len(e.executionEngines))
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for name := range e.executionEngines {
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name := name
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go func(name string) {
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frame, err := e.masterTimeReel.Head()
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if err != nil {
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errChan <- err
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return
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}
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err = <-e.UnregisterExecutor(name, frame.FrameNumber, force)
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if err != nil {
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errChan <- err
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}
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wg.Done()
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}(name)
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}
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e.logger.Info("waiting for execution engines to stop")
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wg.Wait()
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e.logger.Info("execution engines stopped")
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e.masterTimeReel.Stop()
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e.peerInfoManager.Stop()
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e.state = consensus.EngineStateStopped
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go func() {
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errChan <- nil
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}()
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return errChan
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}
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func (
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e *MasterClockConsensusEngine,
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) GetPeerManifests() *protobufs.PeerManifestsResponse {
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response := &protobufs.PeerManifestsResponse{
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PeerManifests: []*protobufs.PeerManifest{},
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}
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peerMap := e.peerInfoManager.GetPeerMap()
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for peerId, peerManifest := range peerMap {
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peerId := peerId
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peerManifest := peerManifest
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manifest := &protobufs.PeerManifest{
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PeerId: []byte(peerId),
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Cores: peerManifest.Cores,
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Memory: new(big.Int).SetBytes(peerManifest.Memory).Bytes(),
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Storage: new(big.Int).SetBytes(peerManifest.Storage).Bytes(),
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MasterHeadFrame: peerManifest.MasterHeadFrame,
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LastSeen: peerManifest.LastSeen,
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}
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for _, capability := range peerManifest.Capabilities {
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metadata := make([]byte, len(capability.AdditionalMetadata))
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copy(metadata[:], capability.AdditionalMetadata[:])
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manifest.Capabilities = append(
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manifest.Capabilities,
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&protobufs.Capability{
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ProtocolIdentifier: capability.ProtocolIdentifier,
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AdditionalMetadata: metadata,
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},
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)
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}
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response.PeerManifests = append(
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response.PeerManifests,
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manifest,
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)
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}
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return response
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}
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func (e *MasterClockConsensusEngine) GetDifficulty() uint32 {
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return e.difficulty
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}
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func (e *MasterClockConsensusEngine) GetFrame() *protobufs.ClockFrame {
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frame, err := e.masterTimeReel.Head()
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if err != nil {
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panic(err)
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}
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return frame
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}
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func (e *MasterClockConsensusEngine) GetState() consensus.EngineState {
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return e.state
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}
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func (
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e *MasterClockConsensusEngine,
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) GetFrameChannel() <-chan *protobufs.ClockFrame {
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return e.frameChan
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}
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func (e *MasterClockConsensusEngine) buildHistoricFrameCache(
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latestFrame *protobufs.ClockFrame,
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) {
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e.historicFrames = []*protobufs.ClockFrame{}
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if latestFrame.FrameNumber != 0 {
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min := uint64(0)
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if latestFrame.FrameNumber-255 > min && latestFrame.FrameNumber > 255 {
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min = latestFrame.FrameNumber - 255
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}
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iter, err := e.clockStore.RangeMasterClockFrames(
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e.filter,
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min,
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latestFrame.FrameNumber-1,
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)
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if err != nil {
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panic(err)
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}
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for iter.First(); iter.Valid(); iter.Next() {
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frame, err := iter.Value()
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if err != nil {
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panic(err)
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}
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e.historicFrames = append(e.historicFrames, frame)
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}
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if err = iter.Close(); err != nil {
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panic(err)
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}
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}
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e.historicFrames = append(e.historicFrames, latestFrame)
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}
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func (e *MasterClockConsensusEngine) addPeerManifestReport(
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peerId []byte,
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report *protobufs.SelfTestReport,
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) {
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manifest := &p2p.PeerManifest{
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PeerId: peerId,
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Cores: report.Cores,
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Memory: report.Memory,
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Storage: report.Storage,
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Capabilities: []p2p.Capability{},
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MasterHeadFrame: report.MasterHeadFrame,
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LastSeen: time.Now().UnixMilli(),
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}
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for _, capability := range manifest.Capabilities {
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metadata := make([]byte, len(capability.AdditionalMetadata))
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copy(metadata[:], capability.AdditionalMetadata[:])
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manifest.Capabilities = append(
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manifest.Capabilities,
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p2p.Capability{
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ProtocolIdentifier: capability.ProtocolIdentifier,
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AdditionalMetadata: metadata,
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},
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)
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}
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e.peerInfoManager.AddPeerInfo(manifest)
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}
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func (e *MasterClockConsensusEngine) getProvingKey(
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engineConfig *config.EngineConfig,
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) (gcrypto.Signer, keys.KeyType, []byte, []byte) {
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provingKey, err := e.keyManager.GetSigningKey(engineConfig.ProvingKeyId)
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if errors.Is(err, keys.KeyNotFoundErr) {
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e.logger.Info("could not get proving key, generating")
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provingKey, err = e.keyManager.CreateSigningKey(
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engineConfig.ProvingKeyId,
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keys.KeyTypeEd448,
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)
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}
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if err != nil {
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e.logger.Error("could not get proving key", zap.Error(err))
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panic(err)
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}
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rawKey, err := e.keyManager.GetRawKey(engineConfig.ProvingKeyId)
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if err != nil {
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e.logger.Error("could not get proving key type", zap.Error(err))
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panic(err)
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}
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provingKeyType := rawKey.Type
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h, err := poseidon.HashBytes(rawKey.PublicKey)
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if err != nil {
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e.logger.Error("could not hash proving key", zap.Error(err))
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panic(err)
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}
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provingKeyAddress := h.Bytes()
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provingKeyAddress = append(
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make([]byte, 32-len(provingKeyAddress)),
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provingKeyAddress...,
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)
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return provingKey, provingKeyType, rawKey.PublicKey, provingKeyAddress
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}
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func (e *MasterClockConsensusEngine) createCommunicationKeys() error {
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_, err := e.keyManager.GetAgreementKey("q-ratchet-idk")
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if err != nil {
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if errors.Is(err, keys.KeyNotFoundErr) {
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_, err = e.keyManager.CreateAgreementKey(
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"q-ratchet-idk",
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keys.KeyTypeX448,
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)
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if err != nil {
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return errors.Wrap(err, "create communication keys")
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}
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} else {
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return errors.Wrap(err, "create communication keys")
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}
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}
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_, err = e.keyManager.GetAgreementKey("q-ratchet-spk")
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if err != nil {
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if errors.Is(err, keys.KeyNotFoundErr) {
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_, err = e.keyManager.CreateAgreementKey(
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"q-ratchet-spk",
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keys.KeyTypeX448,
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)
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if err != nil {
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return errors.Wrap(err, "create communication keys")
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}
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} else {
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return errors.Wrap(err, "create communication keys")
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}
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}
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return nil
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}
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