package pqkem import ( "context" "time" ) // startExchange creates a fresh initiator exchange (acknowledging ackID, zero for a // bootstrap) and returns the framed offer for the caller to send — pushed over the // data path for a chained rekey, or handed to the host for signalling when viaSignal // is set. Any previous in-flight exchange for the peer is cancelled. func (m *Manager) startExchange(remoteID RemoteID, viaSignal bool, ackID ExchangeID) ([]byte, error) { init, err := NewInitiator() if err != nil { return nil, err } id, err := newExchangeID() if err != nil { return nil, err } raw, err := (&OfferMsg{ExchangeID: id, AckID: ackID, KEMOffer: init.Offer()}).Encode() if err != nil { return nil, err } ctx, cancel := context.WithCancel(m.rootCtx) m.mu.Lock() if old := m.exchanges[remoteID]; old != nil && old.cancel != nil { old.cancel() } m.exchanges[remoteID] = &exchangeCtl{ id: id, state: stateAwaitingAnswer, startedAt: time.Now(), cancel: cancel, lastSent: raw, initiator: init, viaSignal: viaSignal, } m.mu.Unlock() m.wait.Add(1) go m.initiatorLoop(ctx, remoteID, id) return raw, nil } // processOffer (responder) first acknowledges the previous exchange the offer names // (that offer riding the data path under the freshly adopted key proves it worked), // then derives the PSK for the new offer, commits it optimistically, and returns the // framed answer. A duplicate offer returns the cached answer without re-deriving. func (m *Manager) processOffer(remoteID RemoteID, o *OfferMsg) ([]byte, error) { if o.AckID != (ExchangeID{}) { m.ackConverged(remoteID, o.AckID) } m.mu.Lock() if ex := m.exchanges[remoteID]; ex != nil && ex.id == o.ExchangeID { state, last := ex.state, ex.lastSent m.mu.Unlock() if state == stateReserved { return nil, nil } return last, nil } // Reserve the slot so a concurrent duplicate offer bails. m.exchanges[remoteID] = &exchangeCtl{id: o.ExchangeID, state: stateReserved, startedAt: time.Now()} m.mu.Unlock() answerBytes, psk, err := Respond(o.KEMOffer, m.binding(remoteID)) if err != nil { return nil, err } raw, err := (&AnswerMsg{ExchangeID: o.ExchangeID, KEMAnswer: answerBytes}).Encode() if err != nil { return nil, err } m.mu.Lock() ex := m.exchanges[remoteID] if ex == nil || ex.id != o.ExchangeID { m.mu.Unlock() return nil, nil } ex.state = stateAwaitingAck ex.lastSent = raw ex.pendingPSK = psk m.psks[remoteID] = psk m.mu.Unlock() // Commit optimistically so our data path can rekey to the new PSK. if err := m.cbHandler.OnNewPSKReady(remoteID, psk); err != nil { return nil, err } return raw, nil } // processAnswer (initiator) derives and commits the PSK and parks in // stateAwaitingRekey; the next offer (chained from OnDataPathRekeyed) will acknowledge // this exchange. Only valid in stateAwaitingAnswer; advancing the state under the // lock makes a concurrent/duplicate answer bail. func (m *Manager) processAnswer(remoteID RemoteID, a *AnswerMsg) error { m.mu.Lock() ex := m.exchanges[remoteID] if ex == nil || ex.id != a.ExchangeID || ex.state != stateAwaitingAnswer { m.mu.Unlock() return nil } ex.state = stateAwaitingRekey init := ex.initiator ex.initiator = nil m.mu.Unlock() psk, err := init.Finish(a.KEMAnswer, m.binding(remoteID)) if err != nil { return err } // The initiator has converged: the responder must have derived the key to answer. m.mu.Lock() m.established[remoteID] = true m.failures[remoteID] = 0 m.psks[remoteID] = psk m.mu.Unlock() return m.cbHandler.OnNewPSKReady(remoteID, psk) } // ackConverged (responder) records convergence of the exchange named by ackID: a // later offer acknowledging it proves both sides operate on that exchange's key. Only // acts on a matching stateAwaitingAck exchange; anything else is ignored. func (m *Manager) ackConverged(remoteID RemoteID, ackID ExchangeID) { m.mu.Lock() ex := m.exchanges[remoteID] if ex == nil || ex.id != ackID || ex.state != stateAwaitingAck { m.mu.Unlock() return } delete(m.exchanges, remoteID) m.established[remoteID] = true m.failures[remoteID] = 0 _ = time.Since(ex.startedAt) // convergence latency (metrics hook, later step) m.mu.Unlock() } // initiatorLoop enforces the offer->answer convergence deadline and retransmits the // initiator's outstanding data-path offer while awaiting the answer (a // signalling-bootstrapped offer is retransmitted by the host, so it is not resent // here). Exhausting the deadline before the answer arrives is a failure. Once the // answer is in (state past awaitingAnswer) the loop exits: the next rotation is driven // by OnDataPathRekeyed, and the idle wait for it has no deadline. func (m *Manager) initiatorLoop(ctx context.Context, remoteID RemoteID, id ExchangeID) { defer m.wait.Done() t := time.NewTicker(m.retryInterval) defer t.Stop() attempts := 0 for { select { case <-ctx.Done(): return case <-t.C: m.mu.Lock() ex := m.exchanges[remoteID] if ex == nil || ex.id != id { m.mu.Unlock() return } switch ex.state { case stateAwaitingAnswer: if attempts >= m.maxRetries { delete(m.exchanges, remoteID) fail := m.registerFailureLocked(remoteID) m.mu.Unlock() m.raiseFailure(remoteID, fail) return } viaSignal := ex.viaSignal msg := ex.lastSent attempts++ m.mu.Unlock() if !viaSignal { if err := m.pushDataPath(remoteID, msg); err != nil { m.logger.Warn("pqkem: offer retransmit failed", "peer", remoteID, "err", err) } } default: // Past awaiting the answer (converged) or superseded: the loop's job // is done. The next rotation is driven externally by OnDataPathRekeyed, // so there is no deadline while idle-waiting for it (that wait can be // as long as the transport's natural rekey interval). m.mu.Unlock() return } } } } // registerFailureLocked applies policy B and reports whether OnRekeyFailed is due: // an initial exchange (peer never established) fails immediately; a rekey tolerates // up to maxRekeyFailures consecutive misses (we stay on the still-valid previous // PSK) before failing. Assumes m.mu is held. func (m *Manager) registerFailureLocked(remoteID RemoteID) bool { if !m.established[remoteID] { return true } m.failures[remoteID]++ if m.failures[remoteID] >= m.maxRekeyFailures { m.failures[remoteID] = 0 return true } return false } func (m *Manager) raiseFailure(remoteID RemoteID, fail bool) { if !fail { m.logger.Warn("pqkem: rekey attempt timed out, will retry next cycle", "peer", remoteID) return } if err := m.cbHandler.OnRekeyFailed(remoteID); err != nil { m.logger.Error("pqkem: OnRekeyFailed handler error", "peer", remoteID, "err", err) } }