# Roadmap to an Enterprise-Grade Cluster **Status:** ADOPTED as M11 — **ALL NINE PHASES COMPLETE.** m11p1–m11p5 ✅, m11p7 ✅, m11p8 ✅, m11p9 ✅ (2026-06-13 — continuous correctness: new fault classes (disk-full / slow-fsync / asymmetric partition) as REAL faults behind a production-compiled-out `fault-injection` feature, first-class invariant checkers (no-acked-loss ledger, decay parity, single-leader-per-term, monotonic counters), a `tidal-stress` soak with PASS/FAIL regression gates + JSON summary, a Woodpecker cron nightly chaos+soak pipeline beside the push release gate, and a guarantee→test traceability matrix — closes **G-C** apparatus; the 30-day-green calendar accrues nightly) · **m11p6 ✅ (2026-06-13 — sharding × replication + rebalancing: ONE hash-routed + replicated write surface across S shard groups, each a replication group at RF with its own elected leader; per-group `/cluster/shards/{id}/transfer`+`/replicas` rebalancing verbs and a `?shard=` admin selector propagated through intra-group forwards; tier-3 3-node × 3-shard × RF=3 kill-node exit gate green — only the dead node's leaderships move (<10s), reads never stop, zero acknowledged loss per group; ≥5,000/s + ≥2.5× single-shard scaling remain Ref-A/k3s-pending, local 3×3 sustains 3,000 quorum writes/s at 0% error with the engine at ~30% CPU)** · v1.0 now waits only on the 30-day-green nightly calendar + the standing Ref-A/k3s throughput re-runs · **Date:** 2026-06-10 · **Baseline evidence:** [stress-test-thepeach.md](ops/stress-test-thepeach.md), [cluster runbook](runbooks/cluster.md), [ROADMAP M8 Known Gaps](planning/ROADMAP.md) (G4/G5/G6), live k3s deployment (3 regions × 2-vCPU pods). This is the gap analysis and phase plan from today's **experimental** multi-process cluster (m8p10 — real process isolation, leader-durable writes, operator-driven failover) to a cluster a paying customer could run as a system of record for signals: **quorum-durable, self-healing, horizontally scalable, secured, observable, and continuously chaos-tested.** Everything in §1 is measured or code-verified, not aspirational; every phase in §4 ends in a testable exit gate. --- ## 1. Where we are today (evidence) ### 1.1 Measured baselines (2026-06-10, live 3-region k3s cluster, cpu-limit `"2"`/pod) | Path | Measured | Notes | |---|---|---| | Embedded engine signal write | **~82 ns** (~12M/s/core) | criterion `scale.rs`; the engine itself is not the problem | | Embedded RETRIEVE p99 | **152 µs** @ 1M items | scale baselines | | Cluster `/feed` (ranked read) | **p99 8–15 ms** at 100→4,000 rps | never degraded in any run | | Cluster `/search` | p99 3–11 ms | includes `reload_text_index` per request | | **Replicated `/signals` (leader path)** | **~90 signals/s ceiling** | ok/s pinned at ~75 regardless of offered rate (100→4,000 rps); ~178–210 ms per write | | **`/sharded/signals` (unreplicated)** | **3,669 signals/s, 0 errors, ~27% cluster CPU** | knee NOT reached; single generator became the limit | | Cross-region replication lag | 0–3 events under all load | SLA <2 s; measured ~110–133 ms p99 (runbook) | | Manual failover (promote→write) | ~31–34 ms | SLA <10 s | | Overload behavior | **Graceful**: HTTP 429 shed, zero 5xx, **zero pod restarts**, no acknowledged-write loss observed | the strongest enterprise trait we have today | | Aggregate HTTP ceiling | ~5k rps connection-establishment wall (conntrack/accept), cluster CPU idle | networking, not engine | Ballpark peers on small nodes (context, not benchmarks we ran): etcd ≈10k fsynced consensus writes/s; CockroachDB low-thousands/node; Cassandra QUORUM 10k+/node. **The replicated write path is 1–2 orders of magnitude below the enterprise floor; everything else is competitive or better.** ### 1.2 What already exists and is worth keeping - Real per-process region isolation; kill the leader → survivors keep serving (proven live). - A real WAL relay over gRPC (`tidal-net` `WalShipping/ShipSegment`) with BLAKE3-verified segments, contiguous-frontier apply (no gap-swallowing), per-peer circuit breakers. - Honest, documented durability contract (runbook §8) — rare and valuable; we extend it, not retrofit honesty. - Operator verbs that work and are runbook-verified op-for-op (`promote`, `partition`, `heal`, `reconcile`), CRDT/LWW convergence for user-scoped hard-negatives, HLC with skew injection for tests. - Sharded scatter-gather reads with degraded-not-failed semantics and shard-dedup merge. - Tier-3 chaos/lifecycle/runbook suites over **real OS processes with real TCP-relay partition injection** — the scaffolding §4/p9 industrializes. - Graceful backpressure end to end (write-pool 429 + engine WAL-channel 429 + breaker isolation). ### 1.3 Gap inventory → phase map | Dimension | Today | Enterprise bar | Phase | |---|---|---|---| | Replication throughput | ~90/s: synchronous, sequential, per-request ship; 2-worker pool | Batched/pipelined, async; ≥2k/s on today's hardware | **p1** | | Replication unity | Signals ride the WAL; items/embeddings ride a best-effort HTTP side channel (source of both live bugs we fixed: marker-gated broadcast, 401'd heal backfill); heal is O(items) | **One replicated log** for all replicated data; heal = log catch-up | **p2** | | Durability | 2xx = leader fsync only; follower ship best-effort | `ack=quorum` mode: 2xx = majority-durable; zero acknowledged loss on any single-node kill | **p3** | | Availability | Operator-driven promote; **restarted node re-reads topology and believes the static leader again** (observed live: us-east rejoined claiming leadership while eu-west led — split-brain seed) | Failure detector + automatic election + **term fencing** + durable leadership | **p4** | | Membership | **✅ p5:** DNS/seed discovery (`grpc_addr` advertised + DNS-resolved, `grpc_bind` for the local bind), kind-4 membership records on the one log, online `/cluster/join`+remove with learner→voter auto-promotion, `FetchSnapshot` snapshot+stream catch-up, self-healing reseed, `k8s/cluster/` one-StatefulSet reference | Dynamic membership, DNS/seed discovery, online add/remove/replace with snapshot+stream catch-up | **p5 ✅** | | Write scaling | EITHER replicated (1 leader for everything) OR sharded (no replication); shards conflated with regions | **Sharding × replication**: shard groups with RF and distributed leaders; rebalancing | **p6** | | Security | Plaintext gRPC replication (mTLS config exists, unexercised); one static bearer shared by all; internal marker as trust signal; no audit log | mTLS default + rotation, authenticated inter-node calls, admin audit, at-rest story | **p7** | | Observability | **Cluster mode has no `/metrics` listener at all**; no request-id propagation on cluster routers; lag accounting wrong after promote (ShardId(0)-keyed); leader's own status row reads 0 | Per-node Prometheus metrics, tracing across forward/ship hops, truthful status, dashboards + alerts | **p8** (starts in p1) | | Ops lifecycle | Manual heal loops (first heal can no-op into an open breaker); per-node backup only; rolling-upgrade suite exists but not a CI gate | Coordinated cluster backup/restore + PITR; upgrade-under-load as a release gate; self-driving heal | **p8** | | Correctness assurance | Tier-3 suites are opt-in (`cluster-e2e` feature), run manually | Nightly chaos + soak in CI with invariant checkers; 30-day green before GA | **p9** | ### 1.4 Live incidents from this deployment that became requirements 1. **Restart amnesia / split-brain seed (→ p4).** After SIGKILL-failover, the restarted ex-leader booted from its static topology believing `leader=us-east` while the cluster had promoted eu-west; an operator re-promote reconciled it. With writes flowing through both gateways this is a dual-leader window. Requirement: durable terms, fencing on ship/forward, rejoin-as-follower. 2. **The HTTP side channel is where the bugs live (→ p2).** Both correctness bugs found live were in item/embedding broadcast, not the WAL relay: (a) forwarded writes never broadcast (terminated on the internal marker instead of leadership), (b) heal's backfill carried no bearer and 401'd forever. The WAL path was flawless throughout. Conclusion: replicate everything through the log. 3. **Breaker eats the first heal (→ p8).** After a partition window the per-peer breaker (threshold 5 / reset 30 s) is open; the first `/cluster/heal` no-ops. Runbook says "re-issue until lag 0" — an operator footgun; the server should drive heal-until-converged itself. 4. **The 178 ms ship (→ p1).** A LAN gRPC hop plus group-commit fsync does not cost 178 ms. Something structural (per-call setup, flow control, synchronous follower apply, sequential per-peer sends) is being paid per request. Profile before redesigning; the fix is likely cheaper than it looks. --- ## 2. Definition of done — the enterprise guarantees Each guarantee is a **testable claim** with a named owner-test by GA (p9 wires any that don't exist earlier). These are the bar; the phases are the path. - **G-D (Durability).** With `ack=quorum`, a 2xx response means the write is durably applied on a majority of the shard's replicas. SIGKILL any single node at any moment under load: **zero acknowledged-write loss**, proven by a ledger checker that replays client acks against post-recovery state. - **G-A (Availability).** Loss of any single node: reads continue uninterrupted; writes resume automatically in **<10 s p99** with no operator action and no dual-leader window (fencing proven under partition + restart chaos). - **G-S (Scalability).** Write throughput scales with shard count at RF=3 (≥2.5× from 1→3 shards on the same hardware). Reads scale with replicas. - **G-E (Elasticity).** Nodes can be added/removed/replaced online; a new replica catches up via snapshot + WAL stream; p99 impact bounded (<2× for <60 s). - **G-Sec (Security).** All inter-node links mTLS; replication endpoints authenticated (no implicit trust of the network); keys/certs rotate without downtime; admin verbs audit-logged. - **G-O (Observability).** Every node exports Prometheus metrics; a dashboard answers "what is happening / what is wrong" without reading code; alerts on the golden signals + replication lag + commit-index stall + election churn. - **G-Op (Operability).** Rolling upgrade with N/N+1 version skew under load is a CI-verified release gate; coordinated backup/restore (and WAL-archival PITR) drilled and timed; runbooks executable by a non-author. - **G-C (Continuous correctness).** Nightly chaos (partitions, crashes, skew, disk faults) + soak (tidal-stress) green for 30 consecutive days before GA. --- ## 3. Reference environments and performance targets Two named environments so numbers stay comparable end to end: - **Ref-A (continuity, CI-able):** the current k3s deployment — 3 × (2 vCPU / 2 GiB, local-path PV). All measured baselines in §1.1 are Ref-A. Phase exit gates are stated against Ref-A so they're re-runnable with `tidal-stress`. - **Ref-B (enterprise reference):** 3–9 × (8 vCPU / 16 GiB, NVMe). GA marketing numbers come from Ref-B; claiming "enterprise" on shared 2-core pods is noise. | Target | Ref-A (gate) | Ref-B (GA target) | |---|---|---| | Replicated signal writes, `ack=leader` | ≥2,000/s (p1) | ≥25,000/s | | Replicated signal writes, `ack=quorum` | ≥1,000/s (p3) | ≥15,000/s | | 3-shard × RF=3 quorum writes | ≥5,000/s (p6) | ≥50,000/s | | Ranked read p99 (under write load) | ≤50 ms | ≤20 ms @ 10k reads/s | | Auto-failover (detect→writes resume) | <10 s p99 (p4) | <5 s p99 | | Replication lag p99 (sustained load) | ≤2 s | ≤500 ms | | New-replica catch-up (100k items) | ≤5 min (p5) | ≤1 min | --- ## 4. The phases (proposed M11, `m11p1`–`m11p9`) Ordering rule: **make the one log fast and unified before making it quorum; make it quorum before electing leaders over it; fix membership before sharding it; secure and industrialize continuously.** ### m11p1 — Replication performance floor (size: M) — ✅ COMPLETE (2026-06-11) > **As built.** The ~178ms/write was structural, exactly as suspected — three > stacked serializations: (1) the relay's seqno lock held across the WAL > group-commit wait, so every writer paid a SOLO `batch_timeout` + fsync > (~11ms × 2-8 pool workers ≈ the measured ~90/s ceiling and, with the > 16-deep queue, the ~178ms latency); (2) the per-request sequential per-peer > eager ship on the request path; (3) — unanticipated by this plan — the > follower applying every received segment through its own solo group-commit, > capping follower apply at ~`events-per-segment / fsync-cost` (~1.8k/s > measured), which made followers lag unboundedly once the leader got fast. > Fixes: staged two-phase writes (`stage_write` atomic under the lock in µs, > fsync waited outside it — concurrent writers share group commits); > per-peer windowed batch senders shipping only the leader's durable > frontier, with relay poisoning on fsync failure; follower backlog draining > (`try_recv_segment`) applied through one shared group commit in > range-disjoint groups. **Measured (3-process localhost, release build, > thepeach mix): 4,534 replicated signal-writes/s within SLO on the ramp > (~50×; knee ~5.5k signals/s), and 2,739 signals/s sustained for 10 > minutes (1.65M writes, 0.35% errors, zero shed) with replication lag > never exceeding 103 events (~40ms).** Group commit measured at 58 events/fsync mean; > leader fsync (macOS F_FULLFSYNC) 7.4ms mean with a 10-50ms tail — > `tidaldb_cluster_wal_fsync_us` now answers the "profile first" question > per deployment. The ≤50ms write-p99 sub-gate tracks the platform fsync > floor and validates on Ref-A's Linux fdatasync (re-run pending infra > access). Knobs shipped: `replication.{batch_max_events,window,retry_ms}`, > `wal.{batch_size,batch_timeout_ms}`, per-region `metrics_addr`. **Goal:** the existing leader-durable path stops being the embarrassment line: ≥20× today's ceiling with no semantic change. - **Profile first.** Instrument the ship path (this phase ships the first `tidaldb_cluster_*` metrics: fsync latency, ship RTT, queue depths, breaker state) and explain the measured ~178 ms/write. Suspects: per-call channel setup, tonic flow-control, synchronous follower-side apply in the RPC, the sequential per-peer loop in `relay.write_and_ship`, group-commit interaction. - **Decouple ack from ship.** The client ack already only promises leader durability — so return at group-commit fsync; move shipping fully off the request path into per-peer outbound queues drained by dedicated senders (the relay/redeliver machinery already exists; make it the only path). - **Batch + pipeline.** Ship WAL batches (not per-request payloads) with a windowed in-flight budget per peer (N batches outstanding, acks advance the window) instead of one blocking unary call at a time. - **Rework the write pool.** `/signals` no longer needs a blocking gRPC worker per request; the pool sizes from CPU for fsync/apply work only. Keep 429 semantics (bounded queue) — the graceful shed is a feature. - **Tune group commit** (batch 100 / 10 ms today) against measured fsync cost on Ref-A's local-path PV; make both knobs config. - Non-goals: no ack-mode change, no membership change. - **Exit gate (Ref-A, `tidal-stress` leader path):** ≥2,000 signals/s OK at p99 ≤50 ms, error rate <1%, lag p99 ≤2 s sustained 10 min; replication metrics visible in Prometheus. ### m11p2 — One replicated log (size: L) **Goal:** every replicated mutation rides the WAL relay; the HTTP broadcast side channel (items/embeddings) is deleted. - Add item-metadata and embedding records to the WAL event model (they're config-like, low-rate — the log absorbs them trivially; 64 MiB segment ceiling is ample for 1536-dim vectors). - Followers apply items/embeddings from the log; leader broadcast code and the O(items) heal re-broadcast are removed (heal becomes pure log catch-up). - Implement **`StreamSegments`** (declared, unimplemented) as the catch-up path: a follower that reports applied=N gets a stream from N+1; the in-memory `batch_log` dependency for recovery goes away (read back from the durable WAL). - Hard-negatives stay CRDT (user-scoped, commutative) — document the split: "log = totally-ordered global data; CRDT = per-user convergent data". - **Exit gate:** chaos tests for both 2026-06-10 bug classes pass by construction (no marker-gated fan-out to regress, no authed side POSTs); item written anywhere is readable everywhere ≤2 s p99; heal of a 10-minute-down follower with 100k items completes via stream without O(items) HTTP traffic. > **✅ COMPLETE (2026-06-11), as built:** the WAL itself became the one log — > the group-commit writer feeds every fsynced batch (signals = kind-0, > items/embeddings = kind-1/2 blob records, journaled BEFORE storage) to a > bounded ship feed whose bytes ship verbatim; stream seqnos are WAL seqnos > and survive restarts. Catch-up is FOLLOWER-PULLED `StreamSegments` over the > durable segments (gap-triggered, boot-time self-heal, heal-nudged), with > ship acks piggybacking the follower's applied seqno; promote carries a > persisted stream baseline so a new leader's pre-stream history never > replays. The HTTP broadcast, O(items) heal backfill, and the m11p1 relay > bookkeeping are deleted; multi-process mode now requires `--data-dir`. > Exit-gate mechanics proven by tier-3 > `mp_items_ride_the_log_and_catchup_stream` (items via leader AND follower > gateways converge everywhere; a follower stopped through item + embedding + > signal writes restarts and converges via the stream with no operator verb > and no HTTP item traffic). The 100k-item scale figure remains a Ref-A run > (same k3s access blocker as p1's p99 sub-gate). Details: > [planning/milestone-11/phase-2.md](planning/milestone-11/phase-2.md). ### m11p3 — Quorum-acked writes (size: L) — closes ROADMAP gap **G4** **Goal:** an opt-in durability contract a system of record can sit on. - `ack=leader|quorum` (deployment default + per-request override header). - Follower ship responses carry **durably-applied seqno** (fsync'd, not just received); leader maintains per-peer durable high-water marks and a **commit index** = quorum floor; `ack=quorum` responses gate on the commit index passing the write's seq. Pipelined (batch-level acks), never one-at-a-time. - Timeout semantics: quorum not reached in budget → retryable 503 naming the laggard; the write may still commit (document at-least-once + dedup guidance; evaluate optional client idempotency keys for signal accounting — open question, decide in-phase). - Rewrite runbook §8 from "honest about what we don't promise" to "here's the knob and its cost". - **Exit gate:** SIGKILL the leader under `ack=quorum` load → ledger checker proves zero acknowledged loss across 100 random kill-points; quorum throughput ≥50% of p1's leader-ack number (≥1,000/s Ref-A). > **✅ COMPLETE (2026-06-11), as built:** durable freshness is follower-PUSHED > (`ReportApplied` once per apply round — decoupled from ship acks after the > ack-holding design measurably death-spiraled under load) into a > leadership-scoped commit index (k-th largest durable mark); `ack=quorum` > waits are fully async (watch-channel bridge — thread-per-wait exhausted > the blocking pool); timeouts are retryable 503s naming laggards; every > cluster write returns `x-tidal-seq`. The gate also surfaced and fixed an > m11p2 flaw: follower blob applies paid one fsync per item — now batched > through shared group commits (22× item-seed speedup). Idempotency > question DECIDED: no new machinery; at-least-once + dedup guidance in > runbook §8. Evidence: 100/100 kill-points zero acked loss; 3,600 quorum > writes/s within SLO locally = 79% of p1's leader-ack figure (Ref-A run > still blocked on k3s access). Details: > [planning/milestone-11/phase-3.md](planning/milestone-11/phase-3.md). ### m11p4 — Failure detection, election, fencing (size: XL) — ✅ COMPLETE (2026-06-12) — closes ROADMAP gap **G5** > **✅ COMPLETE, as built:** purpose-built election-only Raft (pre-vote + > check-quorum + fenced transfer) over the existing transport — no raft > crate; the WAL is the log, and an elected leader's FIRST entry is a > replicated kind-3 **term marker**, so Raft's `(lastLogTerm, lastLogIndex)` > derives from one fsync stream (frontiers compared in the last joined > term's STREAM numbering — a reseeded node's local numbering diverges). > Hard state `(term, voted_for)` in `data_dir/election_state` (corrupt = > refuse boot; lost-with-WAL = forced follower), fsynced before any vote or > claim leaves. Term fencing on every RPC; the commit index folds only > activation-term reports; a restarted ex-leader boots follower from durable > state (§1.4-1 closed by construction). Divergent suffixes QUARANTINE > (reseed is recovery; p5 snapshots automate). Promote = fenced transfer > that refuses lagging targets — the runbook's "max-applied survivor" rule > is now protocol. `auto_election: false` preserves the operator posture. > **Exit gates (local tier-3, 3 processes): elections in 0.59–0.98 s under > ack=quorum kill loads with zero acked loss across random kill points; a > restarted partitioned ex-leader accepted 0 writes; 7 link flaps converged > to one leader at term ≤ 15.** Details: > [planning/milestone-11/phase-4.md](planning/milestone-11/phase-4.md). > **✅ Shipped increment (2026-06-11, d0a52e4) — catch-up self-healing + WAL segment versioning.** > Failed `StreamSegments` pulls now arm a 30 s timer retry; re-arm-on-skip is the load-bearing > liveness fix — without it a pull that fails in an idle cluster never re-fires and the follower stays > permanently lagged (root cause: 2026-06-11 p3 rollout left both followers stuck at lag=136,507 with > zero writes to trigger a retry). WAL segments carry a `TSEG` 8-byte header (magic + version byte + > reserved); pre-p4 headerless segments are implicit v0, no migration; unknown format → > `WalError::SegmentFormatUnknown` with no repair or truncation of foreign files. > `FAILED_PRECONDITION` is the typed refusal for unservable catch-up. Regression gate > (ops/stress-test-p4-regression.md): timer-only catch-up confirmed (lag=0 in 10 s with zero writes); > p3 gate (≥1,000 quorum/s, p99 ≤50 ms, <1% error) holds through p4. The `Heartbeat` RPC and > `ControlPlane::record_shard_heartbeat` already exist and health-track node liveness — they become > the failure-detector input for the election work below. **Goal (main p4 work, pending):** "a machine died" is a non-event, not a runbook page. - **Replicated metadata state** (term/epoch, leader id, membership): Raft-style election over the existing transport — the quorum machinery from p3 is the prerequisite. The data plane stays the WAL relay; only the small control state is consensus-managed. - Failure detector on the existing `Heartbeat` RPC (timeout + jitter; tunable). - **Fencing everywhere:** terms stamped on ship/forward/promote; stale-term ships rejected by followers; a restarted node **rejoins as follower** and learns leadership from the metadata state — never from the static topology file (kills incident §1.4-1). - Leadership is durable locally (survives restart) and lease-bounded; manual `/cluster/promote` becomes a fenced transfer (drain for maintenance), not the availability mechanism. - **Exit gate (chaos, Ref-A):** kill the leader under load → writes resume <10 s p99 with zero operator action and zero acked loss; partition the old leader away mid-election and let it restart → it cannot accept a single write (fencing proven); election churn under flapping links bounded (no livelock). ### m11p5 — Membership, discovery, elasticity (size: L) **Goal:** nodes are cattle; topology is data, not files. - Resolve `grpc_addr` via DNS (drop the `SocketAddr::parse`-only constraint) and support **seed-based join**: a new node contacts any seed, gets the membership + topology from the metadata state. The per-pod static-ClusterIP topology ConfigMap hack dies. - Conf-changes (add/remove/replace) through the p4 metadata consensus; joiners catch up via **snapshot + StreamSegments** (snapshot = the engine's existing checkpoint artifacts, shipped as a stream). - Kubernetes reference becomes one StatefulSet + headless Service peer discovery, PDB, topology-spread; rolling node replace is `kubectl delete pod`. - **Exit gate:** scale 3→5→3 online under load: joiner catches up ≤5 min (100k items), serves quorum after; p99 impact <2× for <60 s; zero loss. > **✅ COMPLETE (2026-06-12), as built:** `grpc_addr` became an **advertised** > address (hostname or IP) split from an optional `grpc_bind`; `tidal-net`'s > peer map retyped `SocketAddr → String` so hyper re-resolves DNS on every > reconnect (the pod-rescheduled-onto-a-new-IP case the `SocketAddr::parse` > constraint made impossible). A new server-streaming `FetchSnapshot` RPC ships > `create_backup` as a manifest + BLAKE3-verified file chunks (term-stamped, > term-fenced, identify-or-refuse) into a **boot-time** staging-dir install > (every crash window an idempotent redo); reseed is self-healing — a typed > `x-tidal-catchup: snapshot-required` refusal (or the p4 quarantine) latches a > durable `reseed_required` marker that runs on the next boot and clears the > divergence gauge, no `wipe_data_dir`. Membership is data on the one log: a new > **kind-4** `MembershipRecord` (beside kind-0/1/2/3) folds into a > `ClusterMembership` cell; `POST /cluster/join` appends a quorum-committed > Learner that auto-promotes to Voter; conf-changes are Raft single-server with > an activation-record re-append closing the vacuous-gate + baseline-jump > blockers. The **three-way term-join rule** (`own < prev_log` → latch reseed) > closes p4's pre-baseline-history carried hazard; the even-n `majority()` fix > (`(n+1).div_ceil(2)+1`) closes a latent dual-leader bug. Seed-join boot > (`--seed`/`--advertise-*`/`--metrics`, knob file still required) + > `k8s/cluster/` (one StatefulSet, headless Service, PDB, topology-spread) make > `kubectl delete pod` the node-replace drill. Exit-gate mechanics proven by > tier-3 `cluster_membership.rs` (`mp_seed_join_snapshot_catchup`, > `mp_scale_3_5_3_under_load_zero_loss` — lost=0, p99 <2× across the joins, > `mp_dns_hostname_topology_replicates`) and `cluster_reseed.rs`. The 100k-item > catch-up and the k8s pod-reschedule drill remain Ref-A line items (k3s access > pending — the standing M11 caveat; the 5000-item localhost catch-up at 26.4s > has large headroom under the ≤5-min budget). Details: > [planning/milestone-11/phase-5.md](planning/milestone-11/phase-5.md). ### m11p6 — Sharding × replication + rebalancing (size: XL) **Goal:** writes scale horizontally **without** giving up replication — the current "replicated XOR sharded" split ends. - Shard groups: keyspace hash-split (reuse `ShardRouter`) into S shards, each a replication group at RF (default 3) with its own WAL/relay/commit-index and its own elected leader; leaders balanced across nodes. - Regions stop being shards: topology = nodes × shard-replicas, with optional zone/region labels for placement and read affinity. - Routing: any gateway routes by entity hash to the shard leader (write) or a local/nearest replica (read); scatter-gather already merges cross-shard reads with degraded semantics — now over shard groups. - Rebalancing: shard move = snapshot + stream + fenced cutover; operator- triggered first, automatic (rate-limited) later. - **Exit gate (Ref-A, 3 shards × RF=3):** ≥5,000 quorum signals/s (≥2.5× single-shard p3); kill any node → only its shard-leaderships move (<10 s), reads never stop; `tidal-stress` sharded-vs-replicated comparison collapses into one path. ### m11p7 — Security hardening (size: M) **Goal:** the cluster stops trusting the network. - **mTLS default** on gRPC replication (the `grpc_tls` config exists — exercise it, flip plaintext to an explicit `insecure: true` with a loud startup WARN); cert + bearer **rotation without restart** (file/secret watch). - Authenticated inter-node HTTP: per-node identity (client certs or signed internal tokens); the `x-tidal-internal` marker remains a routing hint only (it already isn't an auth bypass — keep it that way by test). - Audit log for admin verbs (promote/heal/partition/conf-change) with principal, term, and outcome; at-rest encryption documented (delegate to volume encryption, or in-engine as stretch); per-principal rate limits (the engine's rate limiter exists — wire it to the HTTP layer). - **Exit gate:** reference deployment has zero plaintext inter-node links; rotation under load drops zero requests; a foreign pod on the cluster network can neither ship segments nor call internal routes (negative tests). > **As-built (m11p7, 2026-06-13 — COMPLETE):** gRPC is served over a custom > `tokio-rustls` acceptor (tonic 0.12 caches a fixed `ServerConfig` with no > resolver hook, so it cannot hot-swap — the custom acceptor is the only zero-drop > path) fed a `DynamicCertResolver` (`ArcSwap`); mTLS preserved > exactly (`WebPkiClientVerifier`, ALPN h2), plaintext → explicit `insecure:true` > + loud WARN. Rotation = content-hash polling (catches k8s `..data` symlink > swaps inotify misses) → atomic resolver swap (in-flight sessions untouched) + > peer-channel rebuild → **zero dropped requests under load** (verified). Inter- > node HTTP reuses the SAME resolver for server TLS + dials `https` with the > cluster CA; per-node identity is a signed `x-tidal-node-token` (keyed-BLAKE3 MAC > under a shared cluster key — no new crypto dep, since requiring HTTP client > certs would break external bearer clients), and the `x-tidal-internal` marker is > honored only from a verified sibling (marker-without-token → 403). Admin verbs > audit to a `tidal_audit` target + optional `TIDAL_AUDIT_LOG` JSONL (operator-leg > only). Per-principal rate limit reuses the engine `RateLimiter` (nodes exempt). > All opt-in (`grpc_tls`/cluster key/env) ⇒ pre-m11p7 behavior byte-for-byte. See > [milestone-11/phase-7.md](planning/milestone-11/phase-7.md). ### m11p8 — Observability + operations (size: M; **starts inside p1**) **Goal:** operable by someone who didn't build it. - Complete the `tidaldb_cluster_*` metric set (lag, commit index, ship latency/queue, breaker, elections, forwards, write-pool, fsync) on a cluster `/metrics` listener (**today: none**); Grafana dashboard + alert rules shipped beside the existing standalone ones. - Request-id propagation + tracing spans across forward/broadcast/ship hops (the cluster routers currently skip the request-id layer). - Truthful status: fix post-promote lag accounting (ShardId(0) keying) and the leader's own applied row; `/cluster/status` becomes the single pane. - **Self-driving heal:** server-side heal-until-converged (retry through breaker resets) so "re-issue heal until lag 0" leaves the runbook (incident §1.4-3). - Coordinated backup/restore: cluster-consistent snapshot manifest across shard groups + WAL archival hook for PITR; timed restore drill in the runbook. - Rolling upgrade: version handshake on ship/forward, N/N+1 skew documented; `mp_rolling_upgrade_no_loss_no_stall` promoted to a release-gate CI job. - **Exit gate:** dashboard answers the golden-signal questions without code; backup→restore of a 100k-item cluster <30 min; upgrade-under-load gate green. > **✅ COMPLETE (2026-06-13), as built:** most of the metric *set* + the per-node > `/metrics` listener already existed (m11p1/m11p6); m11p8 completed the set with > the two named-but-missing members — **breaker** (per-peer state gauge + > opens-total, surfaced read-only from the `tidal-net` circuit breaker via a new > `Transport::peer_breaker_state`) and **forwards** — plus the self-heal series, > and made co-located shard groups share ONE listener (siblings register under a > `shard="N"` label; S=1 byte-identical). A 12-panel Grafana cluster row + an > 8-rule `tidaldb-cluster` alert group ship beside the standalone ones. Both > cluster routers gained the request-id + `TraceLayer` stack (id rides the forward > hop; ships correlate by seqno — they are off-request-path and batched, so a > request-id field would be ambiguous by construction). Truthful status fixed two > real bugs: the leader's own `applied_events` read 0 (a leader writes its WAL > directly and never advances its own applied frontier — now reports its flushed > frontier) and the single-process post-promote `ShardId(0)` lag-keying > undercount. **Self-driving heal** (closes §1.4-3): a standing leader duty > re-arms a stuck (breaker-open, behind) peer's backlog re-ship every ~3s so it > converges through breaker resets with NO operator heal loop (`healing_peers` > gauge + a not-converging alert). **PITR**: a `wal.archive_dir` archives sealed > segments before compaction deletes them, gap-free (refuses to delete if > archival fails); `tidalctl backup`/`restore` give a BLAKE3-verified offline > round-trip, and the coordinated cluster backup = one committed replica per > shard group + the per-shard `checkpoint_seq` cursor (runbook §13). **Rolling > upgrade**: a wire `build_version` handshake (heartbeat-stamped; N/N+1 interop by > proto3 compat, `>= 2`-major WARNs but never rejects) + `version` on > `/cluster/status`, and `mp_rolling_upgrade_no_loss_no_stall` promoted to the > first step of `.woodpecker.yaml` (the release gate — a failure blocks the image > build; CI is Woodpecker, never GitHub Actions). Exit gates green: the dashboard > answers the golden signals, the rolling-upgrade gate passes, and the > backup/restore + WAL-archival round-trips are verified; the 100k-item <30min > figure is a Ref-A line item (the standing k3s-access caveat). Details: > [planning/milestone-11/phase-8.md](planning/milestone-11/phase-8.md). ### m11p9 — Continuous correctness (size: M, then permanent) **Goal:** trust is a pipeline, not a milestone. - Nightly CI: the tier-3 chaos suites (partition relay, crash, clock-skew via `TIDAL_HLC_SKEW_MS`, rolling upgrade) + new fault classes (disk-full, slow-fsync injection, asymmetric partitions) against a Ref-A cluster. - Invariant checkers as first-class: no-acked-loss ledger replay, per-entity monotonic counters, cross-replica decay parity (1e-6), membership safety (single leader per term per shard). Jepsen-style external harness as stretch. - Nightly `tidal-stress` soak (1× 100k-DAU model, 1 h) with regression gates on p99/throughput; results archived for trend lines. - **Exit gate (GA):** every guarantee in §2 maps to a named automated test; nightly suite green 30 consecutive days. > **✅ COMPLETE (2026-06-13), as built:** the new fault classes are REAL faults > at the storage boundary, not engine flags — a `fault-injection` cargo feature > (NOT default, never passed by the production image build, so compiled OUT of the > shipped binary) adds WAL hooks for **slow-fsync** (`TIDAL_FAULT_FSYNC_DELAY_MS`, > sleep before the durable fsync) and **disk-full** (`TIDAL_FAULT_DISK_FULL_AFTER_BYTES`, > a real `ENOSPC` once cumulative segment bytes cross the threshold); > **asymmetric partition** reuses the harness's directed-edge proxies (sever > inbound-only). The invariant checks the m11p3/m11p4 gates carried inline became > a first-class `support/invariants.rs` (no-acked-loss `AckLedger`, decay/feed > parity, `assert_single_leader_per_term`, monotonic frontiers) — the m11p3 ledger > gate now consumes it (re-verified). A new tier-3 `cluster_faults.rs` proves all > three fault classes degrade gracefully with zero acked loss (**4/4 green**: > disk-full follower froze then recovered to parity; slow follower lagged then > converged; both-slow → honest retryable 503 naming laggards while `ack=leader` > kept 204'ing; asymmetric partition → leader held, single-leader-per-term, no > split brain). `tidal-stress` gained a `--json-summary` + `--max-p99-ms` / > `--max-error-pct` / `--fail-on-knee` regression gate (non-zero exit on breach — > verified vs a real server). The nightly is a Woodpecker CRON pipeline (chaos > suites with elevated kill-points + the gated soak) beside the push release gate > — Woodpecker, never GitHub Actions. Every §2 guarantee maps to a named test in > [guarantee-traceability.md](planning/milestone-11/guarantee-traceability.md); > G-S's owner-test is the (in-progress) m11p6 throughput gate. The remaining GA > half — nightly green for **30 consecutive days** — is a calendar criterion the > pipeline now produces (out-of-session, like the Ref-A k3s runs). Details: > [planning/milestone-11/phase-9.md](planning/milestone-11/phase-9.md). --- ## 5. Sequencing, sizing, releases | Phase | Depends on | Size | Closes | |---|---|---|---| | p1 perf floor | — | M | §1.4-4, throughput floor | | p2 one log | p1 | L | §1.4-2, StreamSegments, O(items) heal | | p3 quorum acks | p1, p2 | L | ROADMAP **G4** | | p4 election + fencing | p3 | XL | ROADMAP **G5**, §1.4-1 | | p5 membership | p4 | L | static-IP topology, elasticity | | p6 shards × RF | p3, p5 | XL | write scaling | | p7 security | p2 (stable surface) | M | network trust | | p8 observability/ops | seeds in p1; completes after p6 | M | §1.4-3, cluster metrics | | p9 chaos CI | grows from p3; gate at end | M | GA trust bar | **Release waves:** - **v0.9 "Credible HA"** = p1–p4: one shard done *right* — fast, unified log, quorum-durable, self-healing. This alone moves the §1.1 comparison from "1–2 orders below peers" to "in-band". - **v1.0 "Scalable"** = p5–p6: elastic membership, sharding × replication. - **v1.1 "Enterprise"** = p7–p9 complete (p7/p8 work interleaves earlier; the release is the gate, not the start). Also explicitly **not blocked on this roadmap:** the embedded engine (thepeach's integration path) and the standalone server remain the recommended production deployments today — they already clear their bars (82 ns writes; p99 <15 ms reads; the stress test's 100k-DAU verdict). ## 6. Non-goals (scope honesty, per VISION.md) - WAN active-active strong consistency. Cross-region stays async (log shipping) with the CRDT tier for user-scoped convergent data; regions are placement labels, not consistency domains. - SQL, general transactions, multi-key serializability. The data model is signals (commutative accumulation), items/embeddings (idempotent upserts), hard-negatives (LWW CRDT) — the log + quorum gives these everything they need. - Building a service mesh. mTLS + authenticated RPC yes; Istio no. - Replacing the embedded mode. The cluster is for teams that *can't* embed; the engine stays the product's core. ## 7. Open questions (decide in-phase, tracked here so they don't vanish) 1. Client idempotency for signal retries under `ack=quorum` timeouts (p3): dedup window keyed by client request id vs. documented at-least-once. 2. Election engine: minimal purpose-built Raft over `tidal-net` vs. embedding a vetted raft crate — decide in p4 design after p3's quorum machinery exists. 3. Shard count / split policy (static S at create vs. range-split later) — p6. 4. At-rest encryption: in-engine vs. delegated to volume encryption — p7. 5. Whether `tidal-stress` grows a distributed multi-generator mode to push past the ~5k rps connection wall before p6's exit gate needs it. --- *Companion docs: [stress-test-thepeach.md](ops/stress-test-thepeach.md) (baselines), [runbooks/cluster.md](runbooks/cluster.md) (today's operational truth), [ops/capacity-planning.md](ops/capacity-planning.md) (per-node sizing math), [planning/ROADMAP.md](planning/ROADMAP.md) (M8 history + G4/G5/G6 gap registry).*