# tidalDB Cluster Runbook Operating the multi-region `tidal-server cluster` surface: launch (single-process dev fabric **and** the multi-process region nodes), the operational API, replication transport facts, failover and partition drills, and the honest write-durability contract. > ## STATUS: EXPERIMENTAL — TWO MODES, NEITHER IS QUORUM-ACKED HA YET > > Cluster mode has **two shapes**, both behind the same experimental opt-in: > > **1. Multi-process (`--region`) — real process isolation.** Each > `tidal-server cluster --region ` process owns **exactly one region**: one > `TidalDb`, one [`GrpcTransport`](#4-grpc-replication-transport-tidal-net) whose > server binds *this* region's `grpc_addr` and whose peers are every **sibling > region's real `grpc_addr`**. Processes peer over real gRPC and forward over real > HTTP, so a crash of one region's process takes down **only that region** — the > survivors keep serving. This is genuine process (and, across hosts, host) > isolation. It is verified end-to-end by the tier-3 suites > (`cluster_multiproc`, `cluster_chaos`, `cluster_lifecycle`, `cluster_runbook`) > over real OS processes with real network-partition injection. > > **2. Single-process (no `--region`) — the dev/demo default.** Every region runs > inside **one** process. Replication still traverses the **real `tidal-net` gRPC > transport** on loopback (faithful multi-region semantics over a real wire), but > there is **no process isolation**: a crash, OOM, or host failure takes the whole > "cluster" down at once. This is a development / staging / demo fabric and a > correctness harness for the replication paths — **not** production HA. It remains > the default because it needs no per-region topology addresses and no process > orchestration. > > **Honest remaining limits (both modes):** > * **Writes are leader-durable, NOT quorum-acked.** A `204` means the leader > durably applied the write (storage + WAL fsync). The follower ship is > best-effort; no follower acknowledgement is asserted. A quorum-ack write > contract is **post-M8 follow-up** (see [§8](#8-write-durability-contract-read-this-before-trusting-a-204)). > * **Leadership is operator-driven, not automatic.** There is **no automatic > failure detector and no automatic leader election.** `/cluster/promote` moves > leadership and fans the new view out to peers; a node that misses the fan-out > self-corrects on its next forwarded write / status poll. "Survive a machine > dying" is an operator runbook step (detect → promote), not an automatic > failover. > > **For a production deployment today**, run a **single `tidal-server standalone`** > node backed by host-level redundancy and disk durability (see > [kubernetes.md](kubernetes.md) and [server-deployment.md](../guides/server-deployment.md)), > and reach for multi-process cluster mode for read-scale / multi-region > experiments — not as a quorum-HA story. > > **Both modes refuse to start** unless you explicitly opt in with either the > `--experimental-cluster` flag or the `TIDAL_ALLOW_EXPERIMENTAL_CLUSTER=1` > environment variable. On start each emits a loud, **mode-specific** `WARN` > restating exactly what it does and does not provide. Do not wire either into a > production load balancer. ## Scope: what cluster mode does and does not own tidalDB owns **retrieval and ranking only**. Cluster mode adds multi-region replication of that, nothing more. It does **not** generate embeddings, store video/blobs, run a CDN or transcoder, do auth/moderation/payments, or provide a distributed consensus log. Bring your vectors; tidalDB retrieves and ranks over them. See [VISION.md](../../VISION.md) for the scope boundary. ## Prerequisites - Rust toolchain ≥ 1.91 if running directly (the Docker build pins `rust:1.91-bookworm`). - `protobuf-compiler` (`protoc`) and a C++ toolchain (`g++`) on the build host — `tidal-net`'s build script compiles the WAL-shipping `.proto`, and USearch's HNSW core is C++. The Docker image installs both. - Docker 25+ if running via container. - For **single-process** mode: one HTTP port (default `9500`); each follower region also binds an **OS-assigned loopback port** for its gRPC replication server unless you pin one in the topology (see [§3](#3-topology-yaml)). - For **multi-process** mode: per-region `grpc_addr` **and** `http_addr` declared in the topology, and the ports they name available on each host (see [§3](#3-topology-yaml)). ## 1. Launch the cluster locally Cluster mode is gated. Pass `--experimental-cluster` (or set `TIDAL_ALLOW_EXPERIMENTAL_CLUSTER=1`) or the server exits with a mode-specific error explaining why. ### 1a. Single-process (dev/demo default) ```bash TIDAL_ALLOW_EXPERIMENTAL_CLUSTER=1 \ cargo run -p tidal-server -- \ cluster \ --listen 127.0.0.1:9500 \ --schema tidal-server/config/default-schema.yaml \ --topology tidal-server/config/default-cluster.yaml \ --experimental-cluster ``` The default topology spins up three regions (`us-east`, `eu-west`, `ap-south`) with `us-east` as leader, all inside one process. On a clean start you will see a `WARN` line stating this is experimental and single-process, an `info` line per follower (`follower gRPC transport ready`), and finally `listening on http://127.0.0.1:9500`. ### 1b. Multi-process (one process per region) Pass `--region ` (or set `TIDAL_REGION`) to run **only that region** in this process. The topology must declare a per-region `grpc_addr` **and** `http_addr` for every region (see [§3](#3-topology-yaml)); siblings reach each other over those. Launch one process per region — typically one per host, each with its own `--data-dir`. **`--data-dir` is REQUIRED in multi-process mode** (m11p2): the durable WAL is the replicated log itself — it is what ships to peers and what serves their catch-up streams — so a node without one is rejected at startup: ```bash # Region us-east (the initial leader) on host A TIDAL_ALLOW_EXPERIMENTAL_CLUSTER=1 \ tidal-server cluster --experimental-cluster \ --region us-east \ --listen 0.0.0.0:9501 \ --schema /etc/tidal/schema.yaml \ --topology /etc/tidal/topology.yaml \ --data-dir /var/lib/tidal/us-east # Region eu-west on host B TIDAL_ALLOW_EXPERIMENTAL_CLUSTER=1 \ tidal-server cluster --experimental-cluster \ --region eu-west --listen 0.0.0.0:9502 \ --schema /etc/tidal/schema.yaml --topology /etc/tidal/topology.yaml \ --data-dir /var/lib/tidal/eu-west # Region ap-south on host C TIDAL_ALLOW_EXPERIMENTAL_CLUSTER=1 \ tidal-server cluster --experimental-cluster \ --region ap-south --listen 0.0.0.0:9503 \ --schema /etc/tidal/schema.yaml --topology /etc/tidal/topology.yaml \ --data-dir /var/lib/tidal/ap-south ``` Every process parses the **same** topology file; `RegionId`s are assigned by declaration order, so all processes agree on the region→id mapping. Each process binds its own region's `grpc_addr`/`http_addr` and dials its siblings' addresses. The `--listen` HTTP address is the public gateway for that region. **Auth:** set `TIDAL_API_KEY=` to require `Authorization: Bearer ` on the data and `/cluster/*` mutation routes. If it is **unset the server runs UNAUTHENTICATED and logs a WARN** — never expose an unauthenticated cluster beyond loopback / a trusted VPC. Health probes and `/openapi.json` are always unauthenticated. In multi-process mode set the **same** key on every process: a forwarded/broadcast request passes the caller's `Authorization` through verbatim, and the internal-propagation marker (`x-tidal-internal: 1`) is an inter-sibling trust signal, **not** an auth bypass (the bearer middleware still runs first). Useful environment variables: | Var | Mode | Effect | |-----|------|--------| | `TIDAL_ALLOW_EXPERIMENTAL_CLUSTER=1` | both | Opt in to cluster mode (alternative to `--experimental-cluster`). | | `TIDAL_REGION` | multi-process | Selects the single region this process owns (alternative to `--region`). | | `TIDAL_API_KEY` | both | Bearer token for protected routes. Unset ⇒ unauthenticated + WARN. Set the SAME key on every region in multi-process mode. | | `TIDAL_HLC_SKEW_MS` | multi-process | Signed ms offset applied to THIS process's HLC. Affects reconcile-time LWW stamping ONLY (not signal-decay timestamps). A test/ops escape hatch for verifying causal convergence under clock skew — do not set it in normal operation. | | `TIDAL_CONFIG` | both | Config dir holding `default-schema.yaml` / `default-cluster.yaml` (used when `--schema` / `--topology` omitted). | | `PORT` | both | Listen address. A bare port (`9500`) normalises to `0.0.0.0:9500`. | | `TIDAL_SERVER_LOG` | both | `tracing` filter (default `info`). | ## 2. Launch via Docker ```bash # Build the image once (build context is the repo root). docker build -f docker/cluster/Dockerfile -t tidaldb:cluster . # Run (press Ctrl+C to stop). The image already sets # TIDAL_ALLOW_EXPERIMENTAL_CLUSTER=1 so cluster mode starts; it still logs the # loud experimental WARN. The default CMD is SINGLE-process cluster mode. docker run --rm -p 9500:9500 tidaldb:cluster ``` The image bakes the default schema/topology under `/etc/tidal-server` and uses `ENTRYPOINT ["tidal-server"]` + a `cluster …` `CMD`, so you can override the subcommand (e.g. `docker run tidaldb:cluster standalone …`), pass `--region` for a multi-process container, or supply your own config files: ```bash docker run --rm -p 9500:9500 \ -e TIDAL_API_KEY=changeme \ -v "$PWD/configs/my-schema.yaml:/srv/schema.yaml:ro" \ -v "$PWD/configs/my-topology.yaml:/srv/topology.yaml:ro" \ tidaldb:cluster \ cluster \ --listen 0.0.0.0:9500 \ --schema /srv/schema.yaml \ --topology /srv/topology.yaml ``` The container ships a `HEALTHCHECK` that curls `/health`. For Kubernetes/Compose deployment patterns see [Cross-references](#cross-references). ## 3. Topology YAML The topology file declares regions and the leader. **Single-process minimal default** (`tidal-server/config/default-cluster.yaml`): ```yaml regions: - name: us-east - name: eu-west - name: ap-south leader: us-east # Optional: OS worker threads serving cluster write/heal requests (gRPC ship). # Defaults to available parallelism when omitted. # write_workers: 4 ``` **Multi-process** requires a per-region `grpc_addr` **and** `http_addr` (validated at startup — a missing or syntactically invalid `host:port` is a hard error naming the region; reachability is deliberately not probed, since siblings boot in any order): ```yaml regions: - name: us-east grpc_addr: "10.0.1.10:9601" # this region's gRPC replication bind / dial addr http_addr: "10.0.1.10:9501" # this region's public HTTP gateway (forwarding + status) metrics_addr: "10.0.1.10:9091" # optional Prometheus /metrics listener (set it in production) - name: eu-west grpc_addr: "10.0.2.10:9602" http_addr: "10.0.2.10:9502" metrics_addr: "10.0.2.10:9091" - name: ap-south grpc_addr: "10.0.3.10:9603" http_addr: "10.0.3.10:9503" metrics_addr: "10.0.3.10:9091" leader: us-east # Optional m11p1 tuning blocks (engine defaults shown): # replication: # batch_max_events: 256 # events coalesced per shipped batch (1-256) # window: 4 # in-flight batches per peer (1-64) # retry_ms: 100 # backoff before a transiently-failed batch retries # wal: # batch_size: 100 # events per group-commit fsync (1-256) # batch_timeout_ms: 10 # max wait before a partial batch flushes ``` Fields: | Field | Single-process | Multi-process | Meaning | |-------|----------------|---------------|---------| | `regions[].name` | required | required | Region name used everywhere in the HTTP API (`?region=`, `/cluster/promote`, etc.). Must be unique. | | `regions[].grpc_addr` | optional | **required** | This region's gRPC replication address. In single-process mode **omit it** — the server allocates a free loopback port and self-heals a bind race by retrying on a fresh port. In multi-process mode it is required (siblings dial it) and is tried exactly once. | | `regions[].http_addr` | unused | **required** | This region's public HTTP gateway address, used by siblings for write/read forwarding and status aggregation. Unused in single-process mode. | | `regions[].grpc_tls` | unused | optional | TLS material for this region's gRPC transport: `ca_cert`, `server_cert`, `server_key` (PEM paths), plus optional `client_cert`/`client_key` for mTLS. Omitted ⇒ plaintext, the right posture for loopback/VPC topologies. | | `regions[].metrics_addr` | unused | optional | Bind address for this region's Prometheus `/metrics` listener (m11p1; cluster mode previously had none). Omitted ⇒ no metrics endpoint. Set it in every production topology, and bind it internally — the endpoint is unauthenticated. | | `leader` | required | required | Must name one of the declared regions. The initial write leader. | | `write_workers` | optional | optional | Size of the runtime-free OS-thread pool that admission-controls cluster writes (`/signals` staging) and runs `/cluster/heal`'s blocking redelivery. Bounded queue ⇒ 429 backpressure. Must be ≥ 1 when given. | | `timeouts.broadcast_peer_secs` | unused | optional | Per-peer budget (seconds) for the `/cluster/promote` fan-out (the only remaining peer fan-out — the m11p2 log replaced the item/embedding broadcast). Default 2s — right for loopback/VPC; raise it for WAN topologies where a distant region cannot answer in 2s. Must be ≥ 1 when given. | | `replication.batch_max_events` | unused | optional | Max relay events coalesced into one shipped batch (1–256, the WAL wire-format ceiling). Default 256. | | `replication.window` | unused | optional | In-flight batches per peer (1–64). 1 = strictly in-order shipping; higher pipelines across the peer RTT (out-of-order arrivals park gap-aware on the receiver). Default 4. | | `replication.retry_ms` | unused | optional | Backoff (ms) before a transiently-failed batch ship retries. Default 100. | | `wal.batch_size` | optional | optional | Events per WAL group-commit fsync (1–256). Default 100. | | `wal.batch_timeout_ms` | optional | optional | Max ms a partial group-commit batch waits before flushing. Default 10. Tune against the measured `tidaldb_cluster_wal_fsync_us` on the deployment's volume. | The schema YAML (signals / text_fields / embedding_slots / profiles) is the same format the standalone server loads — see [API.md](../../API.md) and [QUICKSTART.md](../../QUICKSTART.md) for the full schema/profile grammar and the built-in ranking profiles. Topology only adds the region layout above. > **Personalization correctness note.** Preference-vector personalization (the > taste vector that powers `for_you`) only updates for signals declared > `positive_engagement: true` in the schema. The cluster `/signals` route writes > **global** signals (no `user_id` / `creator_id` context), so it never folds > item embeddings into a user's taste vector regardless of the > `positive_engagement` flag. Personalized writes go through the embedded engine > (`signal_with_context`), not this HTTP route. The exception is `/hardnegs`, > which records a **user-scoped** hide that converges across regions via > [`/cluster/reconcile`](#6-cluster-management-api). ## 4. gRPC replication transport (tidal-net) Replication between regions is the real `tidal-net` `WalShipping` gRPC service, not in-process channels. The facts you need to operate and firewall it: | Property | Value | Notes | |----------|-------|-------| | Service | `WalShipping` (proto `tidal.replication.v1`) | RPCs: **`ShipSegment`** (unary; the production replication path) and **`Heartbeat`** (ControlPlane health). `StreamSegments` is declared but **not implemented** — segment delivery is the unary `ShipSegment`. | | Bind address | per-region `grpc_addr` (multi-process); an **auto-allocated** loopback port (single-process) | Default dev band `59520–59529` if you pin one. | | Transport security | mTLS via `TlsConfig` (`ca_cert`, `server_cert`, `server_key`, optional `client_cert` / `client_key`) | `insecure = true` (plaintext) is the loopback/VPC default in this phase. A peer with no TLS config **must** set `insecure`. | | Max payload | **64 MiB** | Both encoder and decoder codec limits are raised to this; pinned by a compile-time assert to the engine's `InProcessTransport` limit so both ends agree. WAL segments default to 16 MiB. | | Circuit breaker | per-peer, **threshold 5**, **reset 30s** | After 5 consecutive ship failures the breaker opens; it stays open for 30s, then the next attempt probes (HalfOpen → Closed on success, Open again on failure). Backpressure (channel full) does **not** trip it. **Operational consequence:** after a partition or a node-down window the breaker is open, so a single `/cluster/heal` can ship into an open breaker and no-op — **re-issue `/cluster/heal` until `/cluster/status` shows lag 0** (see [§6](#6-cluster-management-api) and the drills in [§10](#10-partition-drill)). | | Timeouts (defaults) | connect 5s, request 10s, keep-alive PING every 10s / 5s ACK | A blackholed peer fails fast instead of stalling the single-threaded shipper. | `ShipSegment` carries the WAL segment id, BLAKE3-validated payload bytes, event count, and the leader's authoritative `leader_last_seq` (so a follower can advance its replication-lag high-water-mark even for an all-local segment that filters to empty). The follower's segment-receiver thread drains and applies it on arrival. The engine's applied high-water-mark is a **contiguous frontier with a bounded ahead-buffer**, so out-of-order eager ships can never swallow a sequence gap (a silent-data-loss class fixed in m8p10). > **Operational guard:** the gRPC replication ports and the Prometheus `/metrics` > endpoint are **UNAUTHENTICATED**. Bind them to loopback or a cluster-internal > network only — never the public interface. ## 5. Core HTTP API All routes are JSON unless noted. Examples assume `BASE=http://localhost:9501` (any region's gateway in multi-process mode; the single `--listen` address in single-process mode) and, when `TIDAL_API_KEY` is set, `AUTH='-H "Authorization: Bearer $TIDAL_API_KEY"'`. Drop the `-H` header when running unauthenticated. Middleware mirrors standalone: 30s request timeout (408), 100 max in-flight (429), 2 MB body limit (413), and an `x-request-id` on every response. Health probes sit **outside** the load-shedding stack so liveness/readiness are never queued or timed out under saturation. > **Multi-process routing (one coherent surface).** Any region's gateway accepts > any operation and routes it to the node that owns it: > * **Writes** (`/signals`, `/items`, `/embeddings`, `/hardnegs`) on a non-leader > **forward to the leader** (the caller's `Authorization` passes through); the > client sees the leader's status/body. A leader that is unreachable degrades to > a `503` naming the leader, never a hang. > * **Reads** (`/feed`, `/search`) default to the **LOCAL** region. This is the > key difference from single-process mode, whose default read is the leader. A > `?region=` read **forwards** to that region's process. > * `/cluster/promote`, `/cluster/partition`, `/cluster/heal` route to / fan out > from the leader as documented in [§6](#6-cluster-management-api). ### Health ```bash curl "$BASE/health" # 200 ok / 503 while draining; reports mode, region, leader curl "$BASE/health/startup" # always 200 curl "$BASE/health/live" # always 200 curl "$BASE/openapi.json" # served OpenAPI 3.1, UNAUTHENTICATED — canonical HTTP reference ``` `/health` returns `{ "ok": true, "service": "tidaldb", "mode": "cluster", "region": "us-east", "leader": "us-east", ... }`. The `/openapi.json` document is the machine-readable source of truth for the **data**, **`/cluster/*`**, **`/sharded/*`**, and **`/hardnegs`** request/response shapes (the health probes are intentionally outside the documented API surface). ### Register items & embeddings (one replicated log — m11p2) Items and embeddings ride the **same replicated WAL stream as signals**: the leader journals each write as a kind-1 (item metadata) or kind-2 (embedding) WAL record BEFORE touching storage, and followers apply it from the log — live pushes for the hot tail, the `StreamSegments` catch-up stream for history. There is **no HTTP broadcast** anymore (the m8p10 side channel and its bug classes were deleted in m11p2), so the responses are plain statuses: ```bash curl -X POST "$BASE/items" \ -H 'Content-Type: application/json' \ -d '{ "entity_id": 1, "metadata": { "title": "Jazz Piano", "category": "music" } }' # → 201 Created (item durably journaled into the replicated log + applied) curl -X POST "$BASE/embeddings" \ -H 'Content-Type: application/json' \ -d '{ "entity_id": 1, "values": [0.1, 0.2, 0.3, 0.4] }' # → 204 No Content ``` The `201`/`204` asserts **leader durability**: the record is fsynced into the stream every follower receives (live push, or pull-based catch-up after downtime — see [§6 heal](#6-cluster-management-api)). A write to a non-leader forwards to the leader transparently. A down/partitioned peer needs no backfill bookkeeping: it converges from the log when it returns. Embeddings: tidalDB does **not** generate vectors — the caller brings them. The write L2-normalizes and inserts into the HNSW index. Dimensions are **strict**: they must equal the slot's declared dimensions (min 2, max 4096) or the insert is **rejected with a 500** (the engine surfaces a dimension mismatch as an internal error, not a 400 — a known wart, tracked post-M8); **zero-norm vectors are also rejected (500)**. `RETRIEVE` / `SEARCH` route through the **first declared embedding slot only**; multi-modal apps must fuse offline or use separate entity kinds. ### Record signals (cluster `/signals` = global only) ```bash curl -X POST "$BASE/signals" \ -H 'Content-Type: application/json' \ -d '{ "entity_id": 1, "signal": "view", "weight": 1.0 }' # → 204 No Content (see the durability contract in §8) ``` The signal name must be declared in the schema (an undeclared name returns **400** naming it). This route records a **global** signal on the leader and ships it to followers over the replicated WAL stream; it does not personalize (see the personalization note in [§3](#3-topology-yaml)). On a non-leader gateway it forwards to the leader transparently and still returns `204`. ### Hard negatives (user-scoped hides) ```bash curl -X POST "$BASE/hardnegs" \ -H 'Content-Type: application/json' \ -d '{ "user_id": 42, "item_id": 7 }' # → 204 No Content ``` Records a user-scoped hide on the leader (a non-leader gateway forwards). The item is filtered from that user's `/feed?user_id=42`. Hard negatives converge across regions via the LWW-resolved [`/cluster/reconcile`](#6-cluster-management-api) CRDT path — NOT the signal WAL relay and NOT a broadcast. ### Retrieve and search (region-pinned reads) ```bash # Default read region is the LOCAL region (multi-process mode). curl "$BASE/feed?user_id=42&profile=for_you&limit=20" curl "$BASE/search?query=jazz%20piano&user_id=42&limit=5" # Pin a read to a specific region. The gateway forwards to that region's process. # Followers may lag the leader (and lag jumps during a partition) — use this for # canary reads and lag verification. curl "$BASE/feed?profile=trending®ion=eu-west" ``` `?region=` accepts any declared region name; an unknown name returns **400**. Omit it and the read serves from the **LOCAL** region (multi-process) / the current leader (single-process). `limit` is clamped to 1000 at the trust boundary (a larger value cannot amplify memory unboundedly). The `for_you` profile applies the built-in diversity defaults (`max_per_creator=2`, `format_mix_max_fraction=0.4`, `exploration=0.1`). ## 6. Cluster management API ### Check cluster status Two views. `/cluster/status/local` reports THIS node's own replication/leadership state (no peer calls); `/cluster/status` aggregates EVERY region (the gateway calls each peer's `/cluster/status/local` concurrently with a tight per-peer budget). ```bash curl "$BASE/cluster/status/local" | jq ``` ```json { "region": "ap-south", "is_leader": false, "leader": "us-east", "last_seq": 0, "applied_events": 124, "lag_events": 1, "partitioned": [], "reachable": true } ``` ```bash curl "$BASE/cluster/status" | jq ``` ```json { "leader": "us-east", "relay_log_len": 125, "regions": [ { "name": "us-east", "applied_events": 125, "lag_events": 0, "partitioned": false, "reachable": true }, { "name": "eu-west", "applied_events": 125, "lag_events": 0, "partitioned": false, "reachable": true }, { "name": "ap-south", "applied_events": 124, "lag_events": 1, "partitioned": false, "reachable": true } ] } ``` `relay_log_len` is the leader's high-water-mark (`last_seq`); each region's `lag_events` is `relay_log_len − applied_events` (saturating). A region the gateway **cannot reach** within the per-peer budget is reported honestly as `reachable: false`, `partitioned: true`, `applied_events: 0`, and worst-case lag (`lag_events == relay_log_len`). A non-zero, *growing* lag on a reachable region is the signal that it is partitioned (ship-skip) or its segment-receiver is wedged. ### Promote a new leader ```bash curl -X POST "$BASE/cluster/promote" \ -H 'Content-Type: application/json' \ -d '{ "region": "eu-west" }' # → { "ok": true, "leader": "eu-west", "acked": ["eu-west","ap-south"], "failed": [] } ``` The gateway first resolves the TARGET's **stream baseline** — the new leader's WAL flushed frontier at promotion, persisted in its `data_dir/stream_baseline` — then fans the promote out to every peer carrying it (internal marker, so each applies locally and does not re-fan). Peers jump their applied frontier for the new leader's shard to the baseline: everything at or below it is pre-stream history (replicated applies of the OLD stream), not data. The response carries `baseline` plus the `acked`/`failed` fan-out report; a peer in `failed` (e.g. a dead old leader) self-corrects — its first parked batch from the new stream triggers a catch-up pull whose chunks announce the baseline. After promotion `/cluster/status` reports the new leader; new writes route there; the new leader's ship queue activates and the demoted node's deactivates. An unknown region returns **400**. There is no automatic election — this is the operator's failover lever (m11p4 adds elections). ### Simulate a partition & heal There are **two** ways to partition a region; the runbook drills demonstrate both ([§10](#10-partition-drill)): 1. **Simulated ship-skip flag** — `/cluster/partition` tells the leader to stop shipping to the named region (no sockets touched). Good for a controlled, reversible lag demo. 2. **Real network partition** — sever the actual TCP path between processes (firewall / proxy). The chaos suite uses a root-free in-harness TCP relay; operators can use `iptables`/`pfctl` (see [§10](#10-partition-drill)). ```bash # Simulated: isolate ap-south — leader ships skip this follower, so its lag climbs. curl -X POST "$BASE/cluster/partition" \ -H 'Content-Type: application/json' \ -d '{ "region": "ap-south" }' # → { "ok": true, "partitioned": "ap-south" } # Heal: resume shipping past everything the follower reports applied, and # nudge it to PULL any history that rotated out of the leader's ship tail # (the single recovery verb — log catch-up IS the full heal since m11p2). curl -X POST "$BASE/cluster/heal" \ -H 'Content-Type: application/json' \ -d '{ "region": "ap-south" }' # → { "ok": true, "healed": "ap-south" } ``` `/cluster/heal` is the **single recovery verb**, and since m11p2 it is pure log catch-up: it clears the partition flag, **resumes** the ship queue past the follower's reported applied seqno (retries of data the follower already holds prune automatically — every ship ack piggybacks the follower's applied seqno), and **nudges** the follower to pull anything older than the leader's in-memory ship tail via its `StreamSegments` catch-up stream over the leader's durable WAL segments (`POST /cluster/catchup`, internal; the nudge forwards the healing operator's own bearer credential). Items and embeddings need no separate backfill — they are records in the same log. > **Convergence is self-driving.** The per-peer ship senders retry parked > batches every `replication.retry_ms` (default 100ms); a follower that > detects a gap pulls the catch-up stream itself (also on boot, so a > restarted node converges with no operator action at all — the tier-3 > `mp_items_ride_the_log_and_catchup_stream` proves it). `/cluster/heal` > remains the explicit verb for peers paused by `/cluster/partition` or a > PERMANENT transport failure (TLS/auth/codec — those never self-resume by > design). The per-peer gRPC circuit breaker (threshold 5, reset 30s — see > [§4](#4-grpc-replication-transport-tidal-net)) can still swallow the first > post-heal ships, so if `GET /cluster/status` does not show `lag_events: 0` > within the breaker window, re-issue `POST /cluster/heal` — the chaos > suite's `heal_until_converged` does exactly this. ### Reconcile (cross-region CRDT convergence) ```bash curl -X POST "$BASE/cluster/reconcile" \ -H 'Content-Type: application/json' \ -d '{ "region": "ap-south" }' # → { "ok": true, "region": "ap-south", # "local_elapsed_ms": 0, "remote_elapsed_ms": 1, "ops_applied": 3 } ``` `/cluster/reconcile` exchanges a CRDT state snapshot with the target region: this node ships its snapshot into the target's merge AND applies the target's pre-merge snapshot back, so **both sides converge to identical state** by deterministic LWW. This is how **hard negatives** (recorded via `/hardnegs`) converge across regions — they do not ride the WAL relay. `local_elapsed_ms` / `remote_elapsed_ms` are the merge+apply times each side measured (not the HTTP round-trip); both are typically 0–1ms. Reconcile is **idempotent**: a repeat reconcile of already-converged regions is an exact no-op on scores (no drift). `/cluster/reconcile/snapshot` is the INTERNAL snapshot-exchange leg this verb drives (marker required); operators never call it directly. ## 7. Sharded scatter-gather API The `/sharded/*` routes hash-partition entities across regions (`hash(entity_id) % num_shards`, using the engine's own `ShardRouter` so writes and reads never disagree). Writes route to the single owning region; reads fan out to **all** regions and K-way merge by score. Write routes (each routes to the owning region; a non-owner gateway forwards): ```bash curl -X POST "$BASE/sharded/items" -d '{ "entity_id": 7, "metadata": { "title": "..." } }' # 201 curl -X POST "$BASE/sharded/embeddings" -d '{ "entity_id": 7, "values": [0.1,0.2,0.3,0.4] }' # 204 curl -X POST "$BASE/sharded/signals" -d '{ "entity_id": 7, "signal": "view", "weight": 1.0 }' # 204 ``` Read routes (scatter-gather across all regions): ```bash curl "$BASE/sharded/feed?profile=for_you&limit=20&deadline_ms=50" curl "$BASE/sharded/search?query=jazz&limit=10&deadline_ms=100" ``` Each sharded read accepts an optional `deadline_ms` — the **total** scatter budget (default 50ms, server-clamped to 10s). The per-shard deadline is `deadline_ms − 5ms` network overhead. The response includes a `scatter_gather` block: ```json { "items": [ /* merged, deduped, diversity-enforced, re-ranked */ ], "total_candidates": 4210, "scatter_gather": { "degraded": false, "shards_queried": 3, "elapsed_ms": 12, "shard_deadline_ms": 45 } } ``` Degraded semantics: a shard that is partitioned, errors, or misses the deadline is reported in `unavailable_shards` (a name list) and flips `degraded: true` — it is **never silently dropped**, and the read **still returns 200** with the live shards' results. The merge dedups replicated copies of an entity (keeping the best-scoring copy), reconciles `total_candidates` so replicated shards are not counted multiple times, and re-enforces `max_per_creator` across the merged set. ## 8. Write-durability contract (read this before trusting a 204) A `204 No Content` from `/signals` (and the data writes' success codes) means **the write is durably applied on the leader** — storage updated plus **WAL fsync** — and nothing more. Since m11p2 there is **one replicated log**: the leader's WAL. Every replicated mutation — signals (kind-0 batches) AND items/embeddings (kind-1/2 blob records, journaled BEFORE storage) — rides it, and what ships to peers is the WAL's own fsynced batches, byte-identical on disk and on the wire. - The success code returns at **leader group-commit fsync**. Follower shipping happens entirely off the request path on per-peer sender threads that push the WAL flush feed's tail (`replication.batch_max_events` per run, `replication.window` runs in flight per peer). Concurrent writers share group-commit fsyncs instead of serializing one solo fsync each — this is what lifted the replicated ceiling from ~90/s to thousands/s (m11p1). - Peers only ever receive **fsynced batches** by construction: nothing enters the ship feed before its fsync completes, so an event a follower holds but the leader could lose is impossible. - If a write's fsync **fails**, that write errors (the WAL writer notifies every waiting caller and keeps serving; the failed seqno range is reused on retry) — nothing unfsynced can ship. Repeated fsync failures are a dying volume: restart the node or promote a survivor. - The follower ship is **best-effort**. A ship that fails is parked and retried by its sender every `replication.retry_ms` (first failure and every 50th log at WARN with the running count; recovery logs at INFO). Data that rotates out of the in-memory ship tail during a long outage is **follower-pulled** via the `StreamSegments` catch-up stream over the durable segments. The success code does **NOT** assert quorum and does **NOT** assert any follower acknowledged the write (quorum acks are m11p3). - In **multi-process** mode, if the leader's process crashes after the 204 but before followers caught up, the leader's WAL still has the write (it survives restart from disk); the followers reconcile on the next ship/heal. The other regions' processes keep serving — this is real process isolation, but it is **not** an automatic failover (an operator promotes a survivor — see [§9](#9-failover-drill)). - In **single-process** mode there is only one process, so a crash is total downtime, not a failover. A **quorum-ack write contract** (a 204 that asserts N followers acknowledged) is explicitly **post-M8 follow-up** work, tracked in [docs/planning/ROADMAP.md](../planning/ROADMAP.md) M8 Known Gaps. It is **not** part of m8p10. In short: **204 = leader durability, not cluster durability.** Design your client retries accordingly (the writes are idempotent on `entity_id` + signal). ## 9. Failover drill (multi-process) Move the write leader to another region. Scripted exactly as the runbook-verification suite (`cluster_runbook.rs::runbook_s9_failover_drill`) executes it: 1. **Baseline.** `GET /cluster/status`; confirm the expected leader and `lag_events: 0` on every region. 2. **Pre-seed reads.** Issue a region-pinned read against the target region (`?region=eu-west`) to confirm it is serving and roughly caught up. 3. **Promote.** `POST /cluster/promote { "region": "eu-west" }`. Confirm the `{ ok, leader, acked, failed }` response. If the OLD leader is dead, expect it in `failed` — that is fine. 4. **Verify.** `GET /cluster/status` now reports `eu-west` as leader. Send a write (`POST /signals`) to the new leader and confirm `relay_log_len` advances and the other regions' `applied_events` follow within a heartbeat. 5. **Cut over traffic.** Point your client's writes at **any** region gateway — a write to a non-leader forwards to the new leader transparently (204), no client change needed. **Crash failover** is the same drill triggered by a real outage: a region's process dies (its gateway stops answering), you detect it (monitoring on `/health` / `/cluster/status` `reachable`), and you `POST /cluster/promote` a survivor via **another** survivor's gateway. The tier-3 `mp_uat_step2_leader_crash_failover_under_10s` test SIGKILLs the leader and proves promote→first-successful-write < 10s with zero data loss. There is **no automatic detector/election** — promotion is the operator step. > This is a *leadership move*, not a quorum hand-off. Use it for "move the write > region during maintenance" and for "a region died — promote a survivor." ## 10. Partition drill (multi-process) The rewritten drill demonstrates **both** partition mechanisms, exactly as `cluster_runbook.rs::runbook_s10_partition_drill` scripts them. 1. **Baseline.** `GET /cluster/status`; all `lag_events: 0`, `partitioned: false`, `reachable: true`. 2. **Inject.** Use **one** of: - **Real network partition** — sever the TCP path peers use to reach the region. The chaos suite (`cluster_chaos.rs`) uses a root-free in-harness TCP relay proxy (the ROADMAP-sanctioned toxiproxy-style alternative). On a real host you can instead use `iptables` (Linux) or `pfctl` (macOS), e.g. `iptables -A INPUT -p tcp --dport 9603 -j DROP` to blackhole ap-south's gRPC port from a peer. A real cut shows `reachable: false` in the aggregate status. - **Simulated ship-skip flag** — `POST /cluster/partition { "region": "ap-south" }` (`→ { ok, partitioned: "ap-south" }`). The leader stops shipping to ap-south without touching sockets; the aggregate status shows `partitioned: true`. 3. **Write through it.** Send several `POST /signals`. Each must still `204` (the leader-durable contract holds). Watch ap-south's `lag_events` climb while its `applied_events` stalls — the leader's ships to it are dropped. 4. **Read the stale follower.** `GET /feed?region=ap-south` (or read ap-south's gateway directly) returns the pre-partition view — eventual, not strong, read consistency. The operator console survives a real partition because clients talk to each region's gateway directly. 5. **Scatter-gather degradation.** While partitioned, `GET /sharded/feed` returns **200** with `degraded: true` and `ap-south` in `unavailable_shards` — never an error, and the live shards' items are still returned. 6. **Heal.** Clear the cut (heal the proxy / drop the firewall rule, or just call heal for the simulated flag), then `POST /cluster/heal { "region": "ap-south" }`. **Re-issue heal until `/cluster/status` shows ap-south at `lag_events: 0`** — the gRPC circuit breaker opened during the partition (threshold 5, reset 30s), so the first heal may ship into an open breaker and no-op. This is genuine production behavior, not a flag. 7. **Verify convergence.** `GET /cluster/status` shows ap-south `lag_events: 0`, `partitioned: false`, `reachable: true`; `/sharded/feed` is no longer degraded; feed scores on ap-south match the leader to within float tolerance (no loss, no duplication). ## 11. Shutdown Send `SIGTERM` (or `SIGINT` / Ctrl+C, or stop the container). The server flips readiness to **503** (so a load balancer stops routing to it), **drains** in-flight requests, then drops the region's `TidalDb` shutdown path: checkpoint in-memory signal state → flush storage → write the WAL checkpoint marker + **fsync** → join the WAL, sweeper, checkpoint, text-syncer, and replication-receiver threads. The drop is idempotent; the process exits 0. You will see `region cluster node shutdown: database closed (checkpoint + WAL fsync)` (multi-process) / `cluster shutdown: closing all nodes (checkpoint + WAL fsync)` (single-process). On **restart with the same `--data-dir`**, the region recovers its pre-shutdown state from the WAL (verified by `cluster_runbook.rs::runbook_s11_shutdown_and_wal_recovery`: SIGTERM → exit 0 → restart → the same items are served). In multi-process mode, the restarted node rejoins the cluster and pulls anything it missed while down via its boot-time `StreamSegments` catch-up request — no operator verb needed (m11p2; `/cluster/heal` remains the explicit lever for paused peers). This is the per-node step of a **rolling upgrade** (promote leadership off the node, SIGTERM, restart on the same data dir with the new binary, heal) — see `cluster_lifecycle.rs::mp_rolling_upgrade_no_loss_no_stall`, which proves zero acknowledged-write loss across a full rolling upgrade under load. ## Performance (measured over real localhost processes) | Operation | SLA | Measured (p99 / typical) | |-----------|-----|--------------------------| | Replicated `/signals` throughput (m11p1, 3 nodes, release build) | ≥ 2,000/s | **4,534 signal-writes/s** within SLO on the ramp (knee ~5.5k/s); **2,739/s sustained 10 min** (1.65M writes, 0.35% errors); was ~90/s pre-m11p1 | | Replication lag under that load (m11p1) | < 2s | ≤ 103 events (~40ms) across the 10-min sustain; ≤ 377 events on the 5k/s ramp (follower group-commit coalescing) | | Cross-region replication (write → follower applied) | < 2s | ~110–133ms p99 (m8p10) | | Failover (`/cluster/promote` → first successful write) | < 10s | ~31–34ms | | CRDT reconcile (merge+apply, each side) | < 100ms | 0–1ms | Write-latency note: signal p50 ≈ 17–25ms with a p99 tail of 160–220ms on macOS, where `F_FULLFSYNC` averages ~7.4ms with a 10–50ms tail (`tidaldb_cluster_wal_fsync_us` — 0% complete under 1ms). On Linux `fdatasync` volumes the same pipeline's fsync floor is far lower; validate the p99 gate on the reference environment, and tune `wal.batch_timeout_ms` against the measured fsync histogram. ## Cross-references - **Kubernetes deployment** — [docs/runbooks/kubernetes.md](kubernetes.md) (standalone single-replica is the recommended production deployment until quorum-ack / auto-failover land; an experimental StatefulSet-per-region sketch for multi-process cluster mode is noted there). - **Server deployment guide** — [docs/guides/server-deployment.md](../guides/server-deployment.md) (standalone and cluster launch, config, env, health probes). - **Monitoring & alerts** — [docs/ops/monitoring.md](../ops/monitoring.md) (Prometheus scrape config, replication-lag and WAL metrics, recommended alerts; per-region replication lag is observable via `/cluster/status` `lag_events`; remember the `/metrics` endpoint is unauthenticated — bind it internally). - **Roadmap / M8 status & known gaps** — [docs/planning/ROADMAP.md](../planning/ROADMAP.md) for the distributed-fabric status (M8 COMPLETE), the m8p1–m8p10 phase history, and the post-M8 follow-ups (quorum-ack writes, automatic failure detection / leader election). - **API & schema reference** — [API.md](../../API.md), [QUICKSTART.md](../../QUICKSTART.md), and the live `/openapi.json` document. - **Scope & vision** — [VISION.md](../../VISION.md).