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pad/docs/deployment.md
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xarmian 1933041027 fix(events): surface the SUBSCRIBE error and refuse callers instead of admitting a dead stream (BUG-2764) (#1215)
* fix(events): surface the SUBSCRIBE error and refuse callers instead of admitting a dead stream (BUG-2764)

* fix(watchevents): surface the SUBSCRIBE error at construction and on resubscribe (BUG-2764)

* docs(events): the idle-cycle prose and metric Help now name the third install-nothing reason (BUG-2764)

* fix(events): retry uncovered workspaces, wait on in-flight records, refuse after Close (BUG-2764 codex round 1)

* fix(events): post-loop check waits on an in-flight record before trusting a live entry (BUG-2764 codex round 2)

* test(watchevents): assert what the failed subscribe leaves, not how long it takes (BUG-2764 codex round 3)

* docs(events): prose says what the code guarantees — delivery failure or shutdown, replacement refusals do not count as cycles (BUG-2764 codex round 4)

* test(server): the 503 mapping is asserted on both subscribe branches; docs scope the refusal to the activity stream (BUG-2764 codex round 5, BUG-2800)

* fix(events): uncovered-workspace retry logs are quiet once the bus is closing (BUG-2764 codex round 6)

* fix(events): the uncovered-retry log promises a retry only while subscribers remain (BUG-2764 codex round 7)
2026-08-27 00:13:04 -04:00

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Deployment Guide

Pad is a single Go binary with an embedded web UI. It supports SQLite (default) for single-node deployments and PostgreSQL + Redis for production multi-node setups.

Architecture

                    ┌─────────────────┐
                    │  Reverse Proxy  │
                    │  (Caddy/nginx)  │
                    └────────┬────────┘
                             │ :443
                    ┌────────▼────────┐
                    │      Pad        │
                    │   Go binary     │
                    │  (web UI + API) │
                    └──┬──────────┬───┘
                       │          │
              ┌────────▼──┐  ┌───▼────────┐
              │ PostgreSQL │  │   Redis    │
              │ (storage)  │  │ (pub/sub)  │
              └────────────┘  └────────────┘
  • Pad serves the REST API and embedded SvelteKit web UI on a single port (default: 7777)
  • PostgreSQL stores all data (workspaces, items, users, activity). SQLite works for single-node.
  • Redis carries real-time events, watch/push notifications, and the shared session-presence registry across multiple Pad instances. Optional for single-node.

Quick Start with Docker Compose

# Clone the repo
git clone https://github.com/PerpetualSoftware/pad.git
cd pad

# Start everything (Pad + PostgreSQL + Redis)
docker compose up -d

# Check status
docker compose ps

# View logs
docker compose logs -f pad

Access the web UI at http://localhost:7777. On first visit, you'll be prompted to create an admin account.

Production Docker Compose

# Use the production overlay for resource limits and secure settings
docker compose -f docker-compose.yml -f docker-compose.prod.yml up -d

Edit docker-compose.prod.yml to set your domain, email credentials, and database password.

Environment Variables

All configuration is via environment variables or a config file (~/.pad/config.toml / /data/config.toml).

Core

Variable Default Description
PAD_HOST 127.0.0.1 Listen address (0.0.0.0 for Docker/production)
PAD_PORT 7777 Listen port
PAD_URL Public-facing base URL (e.g., https://pad.example.com). Used for invitation, password-reset, and share-link emails. Required when PAD_HOST=0.0.0.0 — otherwise emailed links point at http://0.0.0.0:port and are unreachable to recipients.
PUBLIC_URL Alternative to PAD_URL using the generic env-var convention. Server-side only — does not affect CLI mode, does not influence the CLI's API endpoint, and is not persisted to config.toml. Precedence: PAD_URL > PUBLIC_URL > constructed http://host:port.
PAD_DATA_DIR ~/.pad Data directory for SQLite DB, logs, and config
PAD_LOG_LEVEL info Log level: debug, info, warn, error
PAD_MODE local Mode: local, remote, cloud

Database

Variable Default Description
PAD_DB_DRIVER sqlite Database driver: sqlite or postgres
PAD_DB_PATH ~/.pad/pad.db SQLite database path (ignored when using PostgreSQL)
PAD_DATABASE_URL PostgreSQL connection string (required when PAD_DB_DRIVER=postgres)

Real-time Events

Variable Default Description
PAD_REDIS_URL Redis URL for cross-instance pub/sub and the session-presence registry. Without Redis, SSE events, watch notifications, and session presence are all in-process only.
PAD_REDIS_NAMESPACE Scopes every Redis key and channel to one installation. Set it when two Pad installations share a Redis endpoint. Unset means the historical names; a whitespace-only value is rejected at startup rather than treated as unset.
PAD_SSE_MAX_CONNECTIONS 1000 Maximum streaming connections per instance, across both /api/v1/events and /api/v1/events/stream
PAD_SSE_MAX_PER_WORKSPACE 100 Per-workspace maximum connections on /api/v1/events, per instance
PAD_SSE_MAX_PER_USER 50 Per-user maximum streaming connections across both endpoints, per instance
PAD_EVENTS_PUBLISH_EPOCH false Phase 2 of the event ID-space migration: publish the <epoch>|<id>|<json> wire form. Only set this once every instance runs a binary that accepts it — see Event ID-space migration below. Ignored without Redis.
PAD_WATCH_HEARTBEAT false Phase 2 of half-open detection on the watch stream (/api/v1/events/stream). Independent of PAD_EVENTS_HEARTBEAT — the two buses hold different connections with different fates — and rolled the same way, phase 1 everywhere first. Ignored without Redis.
PAD_EVENTS_HEARTBEAT false Phase 2 of the half-open-connection detection rollout: publish a bus-internal liveness frame on each subscribed workspace channel every 30s. Only set this once every instance runs a binary that recognises it — see Half-open connection detection below. Setting it early makes every un-upgraded instance resync all its clients every 30 seconds. Ignored without Redis.

Streaming connection limits

Pad has two SSE endpoints and they share one budget. /api/v1/events is workspace-scoped (the web UI's activity stream); /api/v1/events/stream is user-scoped (agent watch notifications, pad watch --stream). A held connection costs a goroutine and a bus subscription whichever one opened it — and, on the watch stream only, a session-presence registration in shared Redis — so PAD_SSE_MAX_CONNECTIONS and PAD_SSE_MAX_PER_USER bound them together. Only PAD_SSE_MAX_PER_WORKSPACE is endpoint-specific, because the watch stream has no workspace to count against.

Upgrading: PAD_SSE_MAX_CONNECTIONS previously bounded /api/v1/events alone. It now covers both, so a tuned value may be reached sooner than before. The server logs the effective limits at startup (Stream connection limits). /api/v1/events/stream had no limit at all before this change; if you run many agent sessions per user, check PAD_SSE_MAX_PER_USER against your fleet size.

A refused connection is 429 with code sse_limit_exceeded and a Retry-After header. The CLI monitor (pad watch --stream) treats it like any other non-200 and backs off (5s, growing linearly, capped at 5 minutes), so refusal does not produce a reconnect storm. pad project watch is interactive and exits with an actionable message instead.

Browsers do not back off. The web UI's activity stream uses EventSource, which retries on its own fixed schedule and cannot see the status code or the Retry-After header — so a refused browser tab reconnects roughly every few seconds until capacity frees up. Size PAD_SSE_MAX_CONNECTIONS with that in mind: reaching it does not shed load from browser clients the way it does from the CLI. Tracked as BUG-2733.

The per-user limit applies to every caller. On /api/v1/events, callers with no resolved user — a legacy workspace-scoped token, or the fresh-install window before the first admin exists — are bounded per workspace instead, at the same number, so two legacy tokens for one workspace share a bucket. /api/v1/events/stream has no equivalent case: it requires a resolved user and answers 401 without one.

All three limits are PER INSTANCE, not deployment-wide. They are enforced in-process; there is no shared counter. A three-replica deployment with PAD_SSE_MAX_CONNECTIONS=1000 admits up to 3000 connections in total, and a single user can hold PAD_SSE_MAX_PER_USER connections on each replica. Size them per pod and multiply by replica count for the deployment ceiling. Watch pad_stream_connections_active (per instance) rather than inferring the total from the configured number.

Redis configuration notes

One namespace per installation, or one endpoint per installation. Every Redis key and channel Pad uses carries PAD_REDIS_NAMESPACE when it is set: pad:<namespace>:events:…, pad:<namespace>:watchevents…, pad:<namespace>:session:…. When it is unset the names are the historical flat ones, so upgrading changes nothing.

Two installations sharing one Redis endpoint without distinct namespaces cross-feed notifications and merge their session-presence registries. Selecting different logical DB numbers only half helps: ordinary keys are DB-scoped, so the presence registries stay separate — but Redis pub/sub is not namespaced by DB at all, so both buses cross-feed regardless. The practical exposure is a cloned database (a staging environment restored from a production dump), because delivery is filtered on user id and user ids are per-installation UUIDs; for that case it is a genuine cross-tenant leak.

Changing the namespace on a running deployment is a cutover, not a tweak. Set it before going multi-installation rather than after, and take a brief maintenance window if you can. Three things to know:

  1. It partitions a rolling upgrade. Replicas with the namespace set and replicas without it do not share pub/sub channels, counters, or the presence registry — they behave as two separate installations for as long as the rollout takes. GET /api/v1/sessions answers differently depending on which replica handles it, and a session-targeted push aimed across the partition is skipped (reported honestly as delivered_sessions: 0, but not delivered). Roll all replicas together, or accept a split for the duration.

  2. Rolling BACK re-creates the split unless the namespace is unset at the same time. The env var and the binary version have to move together in both directions.

  3. Client resync is honest on both streams, with one documented edge. Each answers a resume whose cursor belongs to the old keyspace with sync_required (see What sync_required means to a client), by way of its cold replay-buffer coverage check rather than an epoch comparison — a freshly namespaced bus has no old epoch to compare against. Expect a burst of client reconciliation as they reconnect — for ACTIVITY-stream clients (the web UI) an incremental /changes delta each, not a full page load. WATCH-stream clients cost less: pad watch --stream answers sync_required by clearing its cursor and keeping the connection open, so it refetches nothing. Either way that is the cutover being paid for, and it is bounded by the number of reconnecting clients — each RESUME is counted, so a client that reconnects several times counts several times.

    The edge: a cursor that lands exactly one below the first ID a replica sees in the new keyspace is served rather than refused, because nothing in an integer cursor distinguishes the two keyspaces. It is narrow — that one value, on a client that reconnects before the replica has seen anything else — and closing it needs the ID space's identity to reach the client. The SSE spec would allow that (an event ID is arbitrary UTF-8); what excludes it is Pad's own id: contract, an int64 that every deployed client already parses. Tracked as BUG-2736. A maintenance window narrows it — clients reconnect against an already-cut-over instance rather than racing the cutover — but does not remove it, since their stored Last-Event-ID values still belong to the old keyspace and the wire format still cannot say which one they came from.

    Before BUG-2731 the activity stream (/api/v1/events) was the silent one: a client reconnecting with a Last-Event-ID from the old keyspace against a fresh replay buffer was treated as caught up and silently missed everything that happened during the cutover, until its next full page load. If you are running a build older than that fix, the old behaviour still applies and a namespace change wants a maintenance window rather than a live cutover.

Session-presence entries are transient — 90s TTL — and cost nothing either way.

Pad's Redis integration assumes a single Redis noderedis://…, not a cluster. Key names carry no hash tags and Pad dials a non-cluster client, so a user's presence index and their session entries would hash to different slots and the Lua scripts would fail CROSSSLOT. Pointing Pad at a Redis Cluster is not supported.

What sync_required means to a client

Both SSE endpoints — /api/v1/events (activity, workspace-scoped) and /api/v1/events/stream (watch, user-scoped) — emit a sync_required event when the server cannot honestly claim the client has seen everything. The client's answer is to reconcile: the web client runs an incremental /changes delta (not a full page load), and the pad CLI clears its cursor so its next reconnect starts fresh.

It is emitted in two situations, not one. The distinction matters for reading the metrics below, and for anyone writing a third-party consumer:

  • On a resume. The client reconnected with a Last-Event-ID this instance cannot vouch for — an evicted or cold replay buffer, coverage that starts above the cursor, an ID-space change, or a cursor it cannot parse.

  • Mid-stream, on a connection that is still open. The instance discovered it under-delivered to a client that never disconnected. Two causes: that one connection was too slow to drain its buffer, so an event was dropped for it; or this instance itself missed messages from Redis, which every subscriber on it shares.

    Both streams now detect a pub/sub resubscription and a message they could not decode (BUG-2739), and end the affected coverage when they do. Before this the watch stream detected neither, and for a client HOLDING A STREAM OPEN its only signal was a hole in the received ID sequence — which needs a LATER notification to expose it, so a flap that lost the newest notification on a stream that then went quiet left a connected CLI silently stale indefinitely. Detecting the two conditions directly is what covers the case ID arithmetic never reaches.

    A RECONNECTING client was never in that position and still is not: a resume asks the shared counter what the newest ID is rather than trusting the instance's local view, so a cursor the instance cannot vouch for is refused whether or not the instance ever noticed the flap. The gap this closes is specifically the open-stream one.

    ID-sequence detection itself is watch-stream only, and that asymmetry is by construction rather than an omission. The watch stream has one channel and one counter, so its IDs are consecutive and a hole is visible as a jump. The activity stream's IDs come from a counter shared across workspaces, so per-workspace holes are the NORMAL state and no arithmetic on them means anything. That is why pad_watchevents_sequence_gaps_total has no pad_event_* counterpart.

    What a failover now COSTS, since detecting it is not free. A watch-bus resubscription ends coverage for that instance's whole watch stream — there is one replay buffer, not one per workspace — so every /api/v1/events/stream subscriber on that instance is told mid-stream at once. Activity-stream coverage is per-workspace, so a resubscription there ends only the affected workspace's.

    What that costs depends entirely on the client, and for the one client that uses the watch stream today it is nearly nothing: pad watch --stream reacts to sync_required by clearing its cursor and KEEPING THE CONNECTION OPEN (cmd/pad/cmd_watch.go), so a failover produces no reconnect and no refetch — the next notification simply starts a fresh coverage span. The cost to watch out for is a future consumer that answers sync_required with a refetch instead: for that client the announcement is one request per connection, arriving together, since per-connection coalescing smooths repeats WITHIN a wave and not the wave itself. That is the deliberate trade this family makes — chatty-but-correct beats quiet-but-lossy — and if it ever becomes a capacity problem the answer is fewer connections per instance, not a quieter bus.

    What undecodable_message actually indicates. Genuinely unreadable input on the watch channel: a non-Pad publisher on the key, a wire format from a mixed-version fleet mid-upgrade, or corruption. It does NOT usually mean two current Pad installations sharing a Redis — those publish the same wire format, so their messages DECODE, and the damage is cross-feeding real notifications between installations while this counter stays flat. That is the failure PAD_REDIS_NAMESPACE exists to prevent, and it is both worse and quieter than the one this counter reports.

    Who can force a resync with it, and what a flood costs. Anyone who can PUBLISH onto the watch channel — which sounds worse than it is, since the same access allows publishing FORGED notifications, so a channel writer is outside the threat model already. Under a flood, what IS bounded: the announcement, a non-blocking send onto a capacity-1 flag that is already raised, so it collapses to nothing after the first; and heap GROWTH, since each discarded replay buffer is garbage immediately and the receive loop is serial. What is NOT bounded: per-message CPU and allocation — a fresh replay buffer plus a pass over every subscriber, per malformed message, on the single goroutine that also delivers real notifications, so a sustained flood is receive-loop starvation as much as it is garbage collection. And log volume, one ERROR line per message. Bounding either needs a rate threshold, which is a deployment decision this code declines to make on your behalf. Payload size is deliberately not capped in Pad, because go-redis has read the whole message into memory before Pad sees it; bound it with Redis's proto-max-bulk-len and with who holds PUBLISH.

    One gap in that detection remains, and it remains on both streams. A message lost in transit with the connection intact — no flap, no decode failure, just a message that never arrived (BUG-2735): on the watch stream a LATER notification exposes it as an ID gap, while on the activity stream, whose per-workspace IDs are non-consecutive by construction, nothing local ever does. (Until BUG-2769 there was a SECOND gap, on the watch stream only — the half-open connection immediately below. It is closed on both streams now.)

    A HALF-OPEN connection — a route that stopped carrying traffic without closing, so nothing ever resubscribes and no message ever arrives to be non-consecutive with — is closed on both streams: on the activity stream by BUG-2738 and on the watch stream by BUG-2769, each behind its own phase-2 flag, so it is closed on a given deployment only once that flag is on. Do not assume go-redis's pub/sub health check covers it on either: PubSub.Ping writes the command and never reads a reply, so it reports healthy for as long as the socket accepts writes. What closes it is application-level idle tracking with a heartbeat that makes the threshold answerable — see Half-open connection detection, which covers both buses.

    A further residual affects RESUMES rather than open streams (BUG-2743): if the watch counter restarts without the epoch rotating — evicted under maxmemory, lost to a FLUSHDB, restored from a stale snapshot — the old and new ID spaces overlap, and a Last-Event-ID inside that overlap cannot be attributed to either. The instance refuses the cursors it can identify as stale and serves the rest, so a client holding an old-space cursor in the overlap can be handed new-space notifications as though they followed it. Arithmetic on the IDs cannot close this — telling two sequences apart is what the epoch token is for, and this is precisely the case the epoch does not see. Rotating the epoch (see Event ID-space migration) is what makes a deliberate counter reset safe.

    A RECONNECTING client is largely covered on the watch stream anyway, because a resume consults the shared counter rather than local state alone. Not entirely: that check reads the counter at one instant, so a notification published AFTER the read and missed is invisible to it — an at-most-once pub/sub residual with no per-connection ack, documented on resumeOutrunsLocalView and again in the CLI. What these gaps reliably leave stale is the client holding a stream OPEN.

The second case is newer — before it, a held-open stream that missed events was never told, and a later delivered event advanced its cursor past the missing IDs so no replica would ever replay them. A mid-stream sync_required carries an empty id: field, exactly as the resume case does, so a client stops resending a position the server has just disclaimed.

There is no separate event name for the mid-stream case, deliberately: every client acts on the two identically.

What a client should DO with it, since the two endpoints recover differently and a third-party consumer cannot infer this from the frame:

  • Keep the connection open. The frame is not a close and does not ask for a reconnect. The server keeps streaming; a client that tears down and redials on every sync_required turns one delta into a reconnect storm.
  • Expect events after it, possibly with IDs below the hole. A mid-stream sync_required is not ordered against events the server had already queued for that connection, so a client can receive the frame and then events that predate the gap. Their IDs re-establish a cursor at a position the server has just disclaimed. This is deliberate and bounded: reconciling is what the frame asked for, and a later reconnect from such a cursor is refused by the coverage check and answered with sync_required again. Holding the announcement back until those events drained was tried and removed — every version of it could defer the announcement indefinitely while a busy workspace kept the queue full, and an unbounded silence is worse than a redundant resync.
  • Stop trusting your cursor. The empty id: retires it, so a compliant SSE client stops sending Last-Event-ID on its next reconnect. Do not re-send the old value: the server has just said it cannot vouch for that position.
  • On /api/v1/events, reconcile the workspace. Its events describe item state, so a delta refetch recovers everything missed. The web client uses /changes; any client can re-read the items it cares about.
  • On /api/v1/events/stream, reconcile what you can and accept the rest is gone. Watch-matched notifications describe item state and can be re-derived by re-reading those items. One-shot PUSHES cannot: they are not stored as recoverable state, there is no backfill endpoint for them, and a push missed during a hole is missed permanently. This endpoint is best-effort for pushes by design, and sync_required on it means "your position is untrustworthy", not "re-fetch and you will be whole again". The pad CLI monitor does exactly this: it clears its cursor and keeps listening. There IS a separate metric — see pad_event_midstream_resyncs_total below — so the two populations stay distinguishable to an operator without changing what any existing alert means.

A connection gets at most one MID-STREAM announcement every 5 seconds (the resume-time signal is not rate-limited and never needed to be — it happens once per connection, at the start), and nothing is lost to that bound: a gap arriving inside the window is remembered and announced when the window closes. The bound exists because the subscriber most likely to be signalled is a slow one, and answering "you could not keep up" with "now fetch a delta" can feed back into more drops.

Redis health and metrics

/api/v1/health/ready reports Redis in its payload but does not gate readiness on it — the REST API, the web UI and every item-writing path work with Redis down, so failing readiness over a Redis blip would pull healthy replicas out of the load balancer and turn a degraded feature into an outage. When Redis is unreachable the payload carries redis.reachable: false, the probe error, and a degrades list naming what is lost. Note what that list says about activity events: they stop for all clients, not only across instances — the activity bus does not fall back to a local fan-out when its publish fails. The block is absent entirely when no Redis is configured.

Alert on these instead:

Metric Meaning
pad_redis_up 0 when the last probe (every 15s) failed. Exported only when Redis is configured — absence means "no Redis", not "down"
pad_stream_connections_active Held streaming connections on this instance, across both SSE endpoints — the population the limits bound
pad_watchevents_sequence_gaps_total This instance missed notifications — a delivery fault
pad_watchevents_resume_gaps_total Resumes this instance could not serve — from a hole, a cold start, an epoch change, or a shared-counter disagreement. Each sends a client sync_required. RESUME-TIME ONLY; a subscriber told mid-stream is counted separately, so an alert on this keeps the meaning it had
pad_watchevents_midstream_resyncs_total Watch-stream subscribers told MID-STREAM that they missed notifications, on a connection that stayed open. New in BUG-2730
pad_watchevents_notifications_missed_total How many notifications those gaps spanned
pad_watchevents_notifications_dropped_total Received but not delivered to a local subscriber — that connection's buffer was full. Since BUG-2730 that subscriber is told (sync_required, mid-stream) rather than silently under-served, so a rise here produces a rise in pad_watchevents_midstream_resyncs_total, one client at a time
pad_watchevents_sequence_resets_total Watch replay coverage dropped, by reason. epoch_change — the watch epoch token changed, so the IDs now come from a different sequence; the token is an opaque UUID here, not a numeric generation. counter_backward — an ID arrived at or below the high-water mark with the epoch unchanged. (This label was spelled counter_backwards while BUG-2739 was in development. If you are reading a dashboard that uses the plural, it was built against an unreleased build — see the note below.) subscription_resumed — a pub/sub connection dropped and re-subscribed, so whatever was published during the outage never arrived; expect these during a Redis failover and expect them to stop afterwards. undecodable_message — a message on the watch channel could not be parsed. The instance cannot tell whether that was a notification it should have had or something foreign, and it stops vouching because it cannot tell; expect zero, and suspect a namespace collision. idle_timeout — the subscription received nothing at all (no notification, no heartbeat, no subscription confirmation) for longer than the idle timeout, so this instance stopped vouching for its buffer and attempted to replace the connection — attempted, because the resubscribe can fail, in which case a later pass tries again and this counter has already moved; it means the socket stopped PROVING it works, not that notifications were observed going missing, and it is structurally never emitted on watch-heartbeat phase 1. Unlike the activity stream's twin it needs no companion counter, because dropCoverage here replaces the buffer and reports unconditionally rather than only when one existed. The first two mean the ID space changed under this instance. subscription_resumed means it did not and something demonstrably went missing. undecodable_message means neither is established — only that coverage can no longer be proved. Each also announces to the watch subscribers connected at that moment, so each moves pad_watchevents_midstream_resyncs_total by AT MOST one per such subscriber — at most, because the signal is capacity-1 and coalescing, so a second cause firing before a client has acted on the first adds no announcement. For the same reason the announcement counter is not a ratio against this one in aggregate: it also counts gaps and slow-subscriber drops, and only a reset observed in isolation, against idle clients, lets you read the fan-out off these two counters
pad_watchevents_receive_loop_exits_total Non-zero outside shutdown means an instance publishes but receives nothing
pad_event_resume_gaps_total The ACTIVITY stream's (/api/v1/events) twin of the watch resume counter above. Expect a step around a deploy, with the RATE settling back to baseline (the counter itself only ever increases) — each instance starts with no replay coverage, so an early resume against a workspace it has not seen yet is a warranted resync. It counts RESUMES, not clients: a deploy with no reconnects does not move it at all, and a client that reconnects several times is counted several times. A rate that does not settle is the thing to alert on
pad_event_midstream_resyncs_total Activity-stream subscribers told MID-STREAM that they missed events, on a connection that stayed open. New in BUG-2730, and the counter to watch when judging whether that fix is costing more resyncs than it is worth. It counts ANNOUNCEMENTS, not causes and not distinct clients: a reset that drops buffers moves it once per live subscriber (and that ratio against pad_event_sequence_resets_total is the fan-out); a burst of drops on ONE connection moves it once, because signals coalesce and are rate-limited per connection; and a coverage loss on a workspace with no buffer yet moves it while every cause counter stays flat, because there was no coverage to end but the subscribers still have a hole
pad_watchevents_midstream_resyncs_total (see also, listed above) Same meaning for the watch stream. Its causes are a slow-subscriber drop and a received sequence gap or reset; a gap announces to EVERY subscriber on the instance, so it can exceed all of its cause counters
pad_event_sequence_resets_total Activity replay coverage dropped, by reason. subscription_resumed — a pub/sub connection dropped and resubscribed, dropping that workspace's buffer; expect it during a Redis failover and expect it to stop afterwards. epoch_change — the shared counter's ID space changed generation, dropping every buffer; expect a handful per cutover. counter_backward — an ID arrived at or below a buffer's high-water mark with no generation change; see Event ID-space migration for what to expect per phase. epoch_regressed — a LOWER generation was seen, so this instance stopped vouching for its buffers. One alongside an epoch_change is a message that was in flight when the generation rotated; a RUN of them means the counter itself went backwards — usually Redis lost writes, and since BUG-2740 possibly a repaired generation key (see A repaired generation counter). undecodable_message — a message on these channels could not be parsed, so that workspace's coverage ended; expect zero, and suspect a namespace collision. subscription_unconfirmed — a subscription was admitted before Redis acknowledged the SUBSCRIBE and the acknowledgement then arrived, so the span in between is one that stream cannot account for; it reaches THIS counter only when a buffer existed to drop, so read pad_event_subscription_unconfirmed_total for the dependable count. idle_timeout — a subscription received nothing at all (no event, no heartbeat, no acknowledgement) for longer than the idle timeout, so this instance stopped vouching for its buffer. It means coverage ended, not that the connection was replaced: the replacement is attempted afterwards and installs nothing if the instance is shutting down, the workspace loses its last subscriber, or Redis refuses the SUBSCRIBE (BUG-2764 — logged with the error), so only pad_event_subscription_cycled_total proves a replacement. Unlike subscription_resumed it does NOT establish that events went missing, only that the socket stopped proving it works, and like subscription_unconfirmed it reaches this counter only when a buffer existed to drop
pad_event_events_dropped_total Activity events not delivered to a live subscriber, by reason — today only slow_subscriber (that connection's 64-deep channel was full). Per-SUBSCRIBER: every subscriber that was keeping up received the event. Pairs with pad_event_midstream_resyncs_total, though not one-for-one in either direction — see that row. New in BUG-2730, along with the fix that stops the drop being silent, so a deploy that starts reporting these is not necessarily a regression — it may be the first time they were countable
pad_event_subscription_cycled_total Activity-stream workspace subscriptions torn down and replaced because nothing arrived on them — no event, no heartbeat, no acknowledgement — within the idle timeout. It counts replacements, not teardowns: a cycle that installed nothing because the instance was shutting down, the workspace lost its last subscriber, or Redis refused the SUBSCRIBE does not increment it, so a restart cannot manufacture this signal and a refused replacement does not count as one. Detects a half-open connection: no FIN, no RST, just a route that stopped working, which go-redis cannot see because its pub/sub health check writes a PING and never reads the reply. Expect zero. Read this rather than pad_event_sequence_resets_total{reason="idle_timeout"}, which moves only when a buffer existed to drop and so under-reports exactly the early-wedge case this detector exists for. A non-zero rate means connections to Redis are being silently blackholed — a NAT idle timeout, a stateful firewall, an overlay network dropping long-lived flows; check TCP keepalive on the path before changing the interval. On heartbeat phase 1 this counter is structurally zero — detection is part of phase 2, so a zero there says nothing at all about whether any route has wedged. Read heartbeat_phase off the startup log before drawing any conclusion from it, and take it from the "Event bus using Redis pub/sub" line: since BUG-2769 the watch bus logs a heartbeat_phase of its own, on its own line, under a separate flag, and it has no bearing on this counter
pad_event_subscription_unconfirmed_total Activity-stream subscriptions admitted before Redis acknowledged the SUBSCRIBE, because the wait for it timed out (BUG-2747). Expect zero. Counts ESTABLISHMENTS, not clients — one workspace subscription that timed out increments it once however many subscribers were waiting on it. Nothing is known to have been lost; what it says is that a stream was admitted whose coverage this instance cannot describe, and that every subscriber waiting on it will be told to reconcile when the acknowledgement lands. A non-zero rate means the SUBSCRIBE round trip is slow or stalling — read it alongside SSE connect latency rather than alongside pad_event_sequence_resets_total
pad_event_receive_loop_exits_total A workspace's activity subscription loop stopped. Unlike the watch stream's twin this does not stay at zero — it is expected at shutdown and whenever a workspace's last local subscriber leaves. Read it as a rate against a stable subscriber count
pad_session_presence_failures_total Presence operations failing — read the op label, the risks differ and run in opposite directions: register/renew may under-report (a live session unlisted and untargetable), deregister may over-report (a dead session left listed, and a push aimed at it reaches nobody), list returns a 503, prune is benign. A failure means the operation reported an error — Redis can fail a pipeline after applying it, so the write may have landed anyway

A repaired generation counter

event_epoch_gen is a shared Redis key, and the same things that corrupt any shared key can corrupt it: a namespace collision with another installation, a hand-edit during an incident, a restore that mixed keyspaces. Since BUG-2740 a corrupted one is REPAIRED rather than fatal — before that, every phase-2 publish consumed a sequence ID and then failed, permanently, because the branch that would have rotated the generation was the branch that could not run.

Two operator-visible consequences, neither of which had documentation:

  • A repair reseeds the generation from wall-clock SECONDS. That is above any counted history, so it normally reads as an ordinary epoch_change. It is not guaranteed to be above a counter that a collision or a hand-edit had pushed higher, so it can instead surface as epoch_regressed — which otherwise means a failover to a replica that lost writes. The tell is the value: read the key, and a repaired generation looks like a unix timestamp (ten digits, around 1.7e9) rather than a small count of ID-space resets. There is no repair-specific counter or log line, because the repair happens inside a Lua script.
  • Clients reconcile, and normally once. A repair is an ID-space change like any other, so receivers stop vouching for their buffers. It does not loop, because the repaired key is valid and the next rotation increments it normally. The exception is a repaired generation that lands BELOW the one a receiver already holds: that instance discards the lower epoch as a straggler for its 30-second window rather than adopting it, so the same space can be disclaimed again when it is finally adopted. Bounded by that window, and visible as epoch_regressed rather than epoch_change.

Two repairs CAN collide, and what catches it is not the epoch. The seed is above any COUNTED history; it is not a monotonicity guarantee. Corrupt the key twice inside one second and both repairs seed the same value, so two genuinely different ID spaces carry the identical epoch — and an equal epoch means "same space" by design, so neither epoch_change nor epoch_regressed fires.

The detection chain that does hold, stated so nobody has to rediscover it:

A merge requires IDs to be REUSED at a receiver. Reuse requires the sequence counter to go BACKWARDS. A backwards counter is detected regardless of what the epoch says — it is the counter_backward reason, which drops the affected buffers and refuses cursors below the discarded high-water mark.

So the guarantee is carried by a different detector than the epoch mechanism suggests. That is deliberate and it is tested end to end (TestACollidingRepairIsCaughtBySequenceRatherThanEpoch), because a future change that weakened counter_backward would remove a protection nothing else here advertises.

Two cases that look similar and are not. A sequence counter set FORWARD — say to 50, so the next ID is 51 — is a jump inside ONE space: IDs stay unique and increasing, nothing is reused, and per-workspace IDs are non-consecutive by construction anyway. And a receiver that never held the colliding range has nothing to merge; what it experiences is a gap, which is the pre-existing undetectable-loss case tracked as BUG-2735.

pad_watchevents_sequence_resets_total has no released contract yet, and that is why BUG-2739 could change it freely. The whole metric was introduced after v0.14.0 and no tagged release emits it, so nothing outside a development deployment can be alerting on it. Two things about it changed on that branch: the counter_backward label lost a trailing s, and the metric widened from "the ID space changed" to "replay coverage was dropped", which added the subscription_resumed and undecodable_message reasons. A reason-specific alert on epoch_change is unaffected; one on counter_backward must have its expression updated for the spelling, which is the whole reason this paragraph exists. An alert on the unlabelled total now counts more things, which is the metric doing what its name says rather than a regression. During a rolling deploy an instance on the older build reports neither new reason and keeps the old spelling — so a mixed fleet reports two shapes under one name for the rollout's length, which is acceptable precisely because no released version is in that fleet.

Re-derive that rather than trusting this paragraph, because it is a claim about release state and release state changes without anyone editing this file:

git describe --tags --abbrev=0 origin/main      # the latest tag
git log --reverse --format=%H -S pad_watchevents_sequence_resets_total \
  -- internal/metrics/metrics.go | head -1      # the commit that introduced it
git merge-base --is-ancestor <commit> <tag>     # non-zero exit => still unreleased

Once a release does ship this metric, the next change to it is a real contract break and needs versioned treatment instead of a note here.

Avoid an evicting maxmemory-policy for Pad's Redis. docker-compose.prod.yml sets noeviction for this reason; the plain docker-compose.yml keeps allkeys-lru on its 64 MB dev instance, where the consequence below is a momentary annoyance rather than a lost instruction — change it too if you run that file in anger.

Under an evicting policy Redis may drop live session-presence entries under memory pressure. Nothing can distinguish that from a TTL lapsing, so a connected agent session briefly disappears from the picker and a push targeted at it reports delivered_sessions: 0. It self-repairs on the session's next 30-second renewal, and Pad's keyspace is small — a few hundred bytes per connected session plus two counters — so there is nothing to gain by evicting it.

If push stops finding a session (on-call)

The most likely Redis-related symptom is a transient write failure while registering a session. The agent's event stream stays up — the connection is never refused over a registry problem — but the session is absent from the shared registry, so:

  • it does not appear in GET /api/v1/sessions or the web picker, and
  • a push targeted at it returns 200 pushed:true with delivered_sessions: 0 and skips publication, so the instruction is not delivered.

What you'll see: session presence: failed to register session or failed to renew session entry warnings (rate-limited to one per minute, carrying failures_since_last_log — a large count means the replica, a small one means a single session), and the session missing from the listing.

What to do: restore Redis connectivity, capacity, or ACLs. Registration self-heals — each session's renewal re-writes its full entry, so an affected session reappears within ~30 seconds without reconnecting. Confirm it is listed again before re-sending anything.

What NOT to do: do not blindly re-send. A targeted push reporting delivered_sessions: 0 is safe to resend, because the server skipped the publish. A broadcast is always published, and a 502 push_unconfirmed means the outcome is unknown — re-sending either can deliver a second instruction the agent acts on twice. Only re-send what the server told you it skipped.

Upgrading a multi-instance deployment

PAD_REDIS_URL now also backs the session-presence registry — the list of which agent sessions are connected, which pad push and the web UI's "Push to agent" picker read to decide where a push goes. Previously that registry was per-process even when Redis was configured, so a push aimed at a session held by another replica was silently dropped.

During a rolling upgrade, old and new replicas disagree about presence. An old replica has only its own connections in view, so a push it answers cannot see a session held on a new replica, and GET /api/v1/sessions returns a different list depending on which replica answers. A TARGETED push reports this honestly — delivered_sessions: 0, and the publish is skipped, so nothing was sent — but the instruction is not delivered.

This is the same behaviour every replica had before this build, so the rollout is not a regression; it is a window in which the fix is only partly in effect. Two ways to avoid the window:

  • Blue/green — bring up the new replicas, cut traffic over, retire the old ones. No mixed period.
  • Drain first — scale old replicas out of the load balancer and let agent monitors reconnect (pad watch --stream reconnects on its own) before serving pushes from the new set.

If neither is practical, a rolling upgrade is still safe: nothing is corrupted and no migration is needed. Targeted pushes may report delivered_sessions: 0 and go undelivered until every replica runs the new build; those are safe to re-send once the rollout completes, because a targeted miss skips the publish entirely.

That safety does not extend to broadcasts. A broadcast push is always published, on old and new replicas alike, and the shared notification bus carries it across instances regardless of which registry the answering replica used — so a broadcast reporting 0 during the rollout may well have been delivered. Re-sending one is a second instruction the receiving agent will act on twice. Only re-send a push the server told you it skipped. There is no Redis or database migration; the registry's keys are transient and expire on their own TTL.

Event ID-space migration (PAD_EVENTS_PUBLISH_EPOCH)

Events on the workspace activity stream (GET /api/v1/events) carry a Last-Event-ID so a reconnecting client can be replayed what it missed. With Redis, every instance shares one counter, so those IDs are meaningful across replicas.

The problem this migration fixes. If that shared counter is ever reset — the key evicted under maxmemory, deleted by hand, a fresh Redis after a restore — IDs start again from 1. A replica that was buffering the old sequence cannot tell the new 101 from the old 101, so it can merge two ID spaces into one replay buffer and answer a resume across the boundary as though nothing was missed. Numeric detection alone cannot see it: by the time the new sequence passes the replica's high-water mark, it looks like ordinary progress.

What the fix does and does not close, stated before the procedure. It stops a REPLICA from mixing two ID spaces in one replay buffer, which is what turns a counter reset into a silently wrong replay. It does NOT make a CLIENT'S CURSOR say which space it came from — that would change the wire format every deployed browser speaks. So this is a substantial mitigation and not a closure; the residual case and why it is deferred are at the end of this section.

The fix gives each ID space an epoch — a generation number (monotonic in normal operation; see A repaired generation counter below for the one case that is not), minted by Redis when the space is created and carried as a <epoch>|<id>|<json> prefix on every message published by a phase-2 instance. Phase-1 instances publish the historical bare JSON and carry no epoch at all, which is what the two phases are about. A replica that sees a HIGHER generation drops its replay buffers and answers resumes across the change with sync_required, which is honest rather than silent. A message carrying a LOWER generation is a straggler from a space that has been abandoned, and is discarded rather than delivered.

The generation is a number rather than an opaque token so the two spaces can be ORDERED. Workspaces have independent subscriptions and Redis does not order messages across channels, so a pre-rotation message on one channel can arrive after a post-rotation message on another; with an unordered token that is indistinguishable from a second rotation.

It rolls out in two phases, and the order is not optional.

Phase What you do What instances publish What they accept
1 Roll the new binary everywhere. Leave PAD_EVENTS_PUBLISH_EPOCH unset. The historical bare JSON Both forms
2 Set PAD_EVENTS_PUBLISH_EPOCH=true and roll again. <epoch>|<id>|<json> Both forms

The asymmetry that makes two phases necessary: an instance running a pre-phase-1 binary cannot parse a prefixed payload at all. It fails to unmarshal the message and drops the event for its own clients. So flipping before every instance is upgraded loses events on the ones that are not — not a resync, a silent loss.

Both rolls are zero-loss in the other direction, because accept-both is on from phase 1: during the phase-2 roll, flipped and un-flipped instances are publishing different forms at the same time and every instance reads both.

Rolling back to phase 1 is safe: make the effective value false and roll. Peers accept the bare form throughout, so there is no window where this direction loses events.

Two things about rolling back that are easy to get wrong:

  • Setting the value to false is not the same as unsetting the environment variable. events_publish_epoch can also be set in ~/.pad/config.toml, and the config file's value stands when the environment variable is absent. Clear both, or set the environment variable explicitly to false.
  • Downgrading past phase 1 is a SECOND step, and the order is the reverse of the upgrade. A pre-phase-1 binary cannot parse the prefixed form. So: first roll every instance to phase 1 (new binary, flip off) and let the roll finish, then downgrade the binary. Introducing an old binary while any flipped instance is still publishing drops events on the old one — the same asymmetry that makes the upgrade two phases, in reverse.

There is no Redis or database migration in either direction. The epoch key and its generation counter are created by the first flipped publisher; a phase-1 instance deletes it if it ever sees the sequence counter restart, so a counter that is reset while the deployment sits on phase 1 does not leave a stale epoch for a later phase 2 to adopt.

What you should see when phase 2 lands. A replica learns the epoch from the first prefixed message it RECEIVES — which means only replicas currently subscribed to a workspace see it, and only when that workspace next has traffic. If such a replica had already buffered un-prefixed events, it drops its buffers once, records pad_event_sequence_resets_total{reason="epoch_change"}, and clients resuming across that moment get sync_required and re-fetch. A replica whose buffers are EMPTY adopts the epoch without dropping anything and without a reset count, deliberately: otherwise every replica would report a reset at startup and the counter would grow a per-deploy baseline instead of meaning something.

Do not delete the generation counter (<namespace>event_epoch_gen) by hand, and keep it out of any eviction policy: it is what makes one ID space orderable against the next. Losing it lets a later reset reuse a generation that has already been seen, which makes two different ID spaces look identical — the one shape the epoch exists to prevent. It is a single small integer key; the events keyspace should not be under allkeys-lru (see Redis configuration notes). One drop per replica per roll — if the counter keeps climbing, something is deleting the epoch or sequence key repeatedly; check maxmemory-policy against the events keyspace (see Redis configuration notes).

pad_event_sequence_resets_total{reason="counter_backward"} is the other counter to watch. It fires when an ID arrives at or below what a buffer had already seen.

On phase 1 it can be non-zero at any time, not only during a roll. Phase 1 keeps the historical two-call publish — INCR, then PUBLISH — so two instances can interleave (INCR 5, INCR 6, PUBLISH 6, PUBLISH 5) and a receiver sees 5 arrive after 6. That window is older than this migration; phase 2 is what closes it, by moving ID assignment into a single atomic script so publish order equals ID order globally.

So the expectation depends on where you are:

  • Phase 1, before this replica has ever seen a prefixed message — expect ZERO. The check is deliberately not armed until an epoch has been adopted, because a phase-1 deployment's two-call publish interleaves as ordinary traffic and reacting to that would drop every replay buffer on a busy multi-instance deployment. The cost of that gate is that a counter reset on a never-flipped deployment goes undetected — which is exactly the behaviour before this migration existed, and precisely what phase 2 fixes.
  • During the phase-2 roll, once a replica has adopted the epoch — expect it to rise for the length of the roll: un-flipped publishers are still assigning and publishing in two calls, and this replica is now armed.
  • Phase 2, every publisher flipped — expect it at or near zero. A persistent rate here is an anomaly worth investigating rather than tuning away.

Which phase an instance is publishing in is in its startup log, as id_space_phase=1 or id_space_phase=2 on the "Event bus using Redis pub/sub" line — the counter above cannot be read without it. An unparseable PAD_EVENTS_PUBLISH_EPOCH is ignored (a typo must not flip a migration whose wrong direction loses events) and logs a warning naming the value.

One narrow window during the phase-2 roll. Once a replica has adopted the epoch, a message from an un-flipped instance carries no epoch and is treated as belonging to the current space — which it does, unless the sequence counter reset between that publisher assigning its ID and publishing it. An ID from the dead space can then land in a buffer describing the new one. There is no way to tell the two apart from the message alone, and the alternatives are worse: a replica that refused un-flipped messages would resync its clients on every one of them for the length of the roll. It usually ends loudly and quickly: the next event that workspace receives is lower than the straggler's ID, which trips counter_backward, drops the buffers and is reported. It is not guaranteed to — the sequence counter is shared across workspaces while that check is per workspace, so if other workspaces carry the counter past the straggler's value first, nothing fires and the dead-space ID stays in that workspace's buffer. Closing that needs the same thing the residual below needs.

What this migration does not fix. A client's Last-Event-ID is still a bare integer with no epoch in it, and that is deliberate — every deployed browser speaks that format, and EventSource echoes the header with no application code in the path to translate it. So an old ID and a new ID of the same numeric value remain indistinguishable to a resume, even though the replica's buffers can no longer mix them. The exposure is a client that reconnects with a cursor whose number the new sequence has already reached. Tracked on BUG-2736.

Single-process deployments (no PAD_REDIS_URL) need none of this and ignore the variable: that bus owns its counter, so it identifies its own ID space from its start time. Two runs' IDs can only collide if the earlier process published more than 2^20 events per millisecond of its own lifetime, or if a restart completed inside a single millisecond — both deterministic bounds rather than probabilities, and neither reachable by a process that has to bind a listener and open a database before it can publish anything. A clock stepped backwards across a restart degrades the other way, into extra sync_required responses rather than wrong replays.

Half-open connection detection (PAD_EVENTS_HEARTBEAT, PAD_WATCH_HEARTBEAT)

Two buses, two flags, rolled independently. The activity stream (/api/v1/events) and the watch stream (/api/v1/events/stream) hold different Redis subscriptions with different fates, so each has its own phase-2 flag and you can roll one before the other. Everything below applies to both; the differences are collected at the end.

The problem this fixes. A TCP connection can stop carrying traffic without closing — no FIN, no RST, just a route that stopped working. A NAT table expiring, a stateful firewall dropping an idle flow, an overlay network silently rerouting. The instance behind it blocks on a read that will never return, receives nothing, and its replay buffer goes on looking complete. Every resume for that workspace is then answered "caught up" from a coverage window that ended when the route did — silent loss, with nothing in any metric.

Why go-redis does not cover it. Its pub/sub health check writes a PING and never reads a reply, so its error stays nil for as long as the socket accepts writes — which a half-open socket does until its send buffer fills. The channel path sets no read deadline either. Measured, not assumed: against a TCP proxy that silently stopped forwarding, with the health check running, there was no reconnect in 24 seconds.

What the fix does. Every subscription records when it last received anything — an event or notification, a subscription acknowledgement, or a heartbeat. When that goes stale past the idle timeout, the instance ends that subscription's replay coverage (a workspace's on the activity stream, the instance's on the watch stream — so the next resume answers sync_required rather than "caught up") and replaces the connection. Dropping coverage alone would not recover: the resync it demands is served from the same dead socket, and the detector fires again on the next pass — a loop metering the failure rather than fixing it.

Why a heartbeat, rather than just a threshold on real traffic. "Is this stream quiet, or is the route dead?" cannot be answered from traffic — it depends on your publish rate, and no constant is right for every deployment. Publishing our own frame replaces it with "did our heartbeat arrive?", which is answerable everywhere. The instance publishes one frame every 30 seconds (T) — per subscribed workspace on the activity stream, once per instance on the watch stream, and cycles a subscription that has received nothing for 90 seconds (3T). Three intervals rather than two so a single lost or late frame is not a cycle. Detection latency measured from the last frame that got through is 90120s — the scan runs on its own 30s cadence, which adds up to one interval on top of the threshold. Measured from the moment the route actually died it is wider, roughly 60120s: the publisher runs on an independent schedule, so the last frame through may have been sent anywhere in the interval before the fault.

Detection is part of phase 2, not phase 1. Publishing and detecting are one capability with one switch, because an instance detects off its own frames — it publishes to the workspace channels it subscribes to and receives them back, so it never depends on peers having flipped. A phase-1 instance therefore detects nothing; it only recognises the frame so that a phase-2 peer costs it nothing. Splitting them was tried and is wrong: with no heartbeat and no events, a perfectly healthy quiet workspace crosses the threshold every 90120s and gets cycled, which is a resync storm on the default configuration every deployment lands in first.

It rolls out in two phases, and the order is not optional.

Phase What you do What instances publish What they do with a frame
1 Roll the new binary everywhere. Leave both flags unset. No heartbeats Recognise and ignore it. No idle detection.
2 Set the flag (PAD_EVENTS_HEARTBEAT and/or PAD_WATCH_HEARTBEAT) and roll again. One frame per 30s — per subscribed workspace on the activity bus, once per instance on the watch bus Recognise and ignore it. Idle detection active.

What happens if you run them out of order. The frame has to travel on the same channel the stream's own traffic does — the workspace's event channel on the activity bus, the single watch channel on the watch bus — because that channel's connection is the thing whose liveness is in question; a probe anywhere else proves the wrong thing. An instance running a pre-phase-1 binary cannot classify it: the frame falls through to that bus's decoder, fails to parse, and is treated as a hole in coverage. That instance drops the replay buffer and tells every one of its live subscribers to resync — every 30 seconds, for as long as the deployment is mixed. On the activity bus that is per workspace, so the noise scales with how many an instance is subscribed to; on the watch bus it is one buffer and one announcement round per instance. Either way the blast radius is the instances you have not upgraded, which no amount of care in the new code can reach. This is noisier than the ID-space migration's equivalent mistake and it is the reason both defaults are off.

Both rolls are zero-loss in the other direction: phase-1 instances recognise the frame from the release that introduces it, so during the phase-2 roll a mix of publishing and non-publishing instances is exactly the case ignore-the-frame exists for.

Rolling back to phase 1 is safe and takes effect immediately: make the effective value false and roll. Peers ignore the frame throughout, and idle detection stops with it — you are back to the pre-BUG-2738 behaviour, which is a wedged route going unnoticed, not a worse one. The same two wrinkles as the ID-space migration apply, for the same reasons:

  • Setting the value to false is not the same as unsetting the environment variable. events_heartbeat and watch_heartbeat can each also be set in ~/.pad/config.toml, and the file's value stands when the environment variable is absent — so unsetting PAD_WATCH_HEARTBEAT on a host whose config file says watch_heartbeat = true leaves that instance on phase 2. Clear both, or set the environment variable explicitly to false, which wins over the file.
  • Downgrading past phase 1 is a SECOND step, in the reverse order. A pre-phase-1 binary still cannot classify the frame. Roll every instance to phase 1 (new binary, flip off), let it finish, then downgrade the binary.

The frame is validated, not just prefix-matched. A liveness frame is hb|<version> plus optional short tokens, under a length cap. Anything else that happens to begin with hb| is treated exactly as any other unreadable payload: coverage ends — that workspace's on the activity bus, the instance's on the watch bus — and the bus's own reset counter moves with reason="undecodable_message" (pad_event_sequence_resets_total or pad_watchevents_sequence_resets_total), which is the signal that says suspect a namespace collision. A forged frame cannot fake liveness in any case — liveness means "this socket carried traffic", and a frame that arrives demonstrates that whoever sent it.

There is no Redis or database migration in either direction, and the frames are never persisted: a heartbeat consumes no event ID, carries no epoch, is never buffered or replayed, never reaches a subscriber, and is never counted as an event. That last part is load-bearing rather than tidy — three of this bus's reset reasons (counter_backward, epoch_change, epoch_regressed) are derived from the shared ID counter, so a probe that consumed IDs would manufacture the resets it exists to avoid.

Which phase an instance publishes in is in its startup log, as heartbeat_phase=1 or heartbeat_phase=2. Each bus logs its own: the activity bus on the "Event bus using Redis pub/sub" line, alongside id_space_phase; the watch bus on a separate "Watch bus using Redis pub/sub" line, which has no id_space_phase because that migration does not apply to it. All of these are independent — any combination is valid. An unparseable PAD_EVENTS_HEARTBEAT or PAD_WATCH_HEARTBEAT is ignored and logs a warning naming the value.

What this covers, and what it does not. It is a receive-side detector, not a round-trip health check. It measures whether frames arrive on a workspace's subscription, so:

  • A subscription whose outbound direction is broken but which still receives looks healthy — correctly, since nothing is being lost.
  • The PUBLISH path is not covered and cannot be. PUBLISH travels on the client's ordinary connection pool while a subscription holds a connection from a separate pub/sub pool; those are different sockets with different fates, and a reconnect of one repairs nothing about the other. An instance whose publish path is wedged loses its own events for every other instance, and this feature will not tell you.
  • The replacement is attempted, not guaranteed. If the path is still blackholed when the cycle re-dials, the new connection cannot receive either and the detector fires again on the next pass. Coverage stays ended throughout, so nothing is ever falsely claimed — but delivery resuming is a statement about your network, not about Pad. One case where the replacement can fail on a healthy path used to be invisible (BUG-2764, fixed): go-redis discards the error from a SUBSCRIBE issued through Client.Subscribe, so a failed subscribe yielded a connection that looked live and was subscribed to nothing, and only a later reconnect or the detector's next pass (phase 2) ever replaced it. Pad now issues the SUBSCRIBE where its error is visible: a failed one installs nothing and is logged with the error. On the activity stream (/api/v1/events) its callers are then refused with a 503 (subscription_failed, Retry-After) rather than admitted into a stream that would carry nothing — on both phases, with no detector involved. The watch stream cannot refuse yet: its bus has no failure outcome, so a watch client on an instance whose single subscription could not be established is still admitted and hears nothing (BUG-2800); phase 2 re-establishes on the next maintenance pass, phase 1 does not.

What to watch. On the activity bus, pad_event_subscription_cycled_total — expect zero. Read it rather than that bus's idle_timeout reset label, which only moves when there was a buffer to drop and therefore misses the early-wedge case. The watch bus has no such metric and needs none: its dropCoverage has no early return, so pad_watchevents_sequence_resets_total{reason="idle_timeout"} is already the complete count — that is the series to watch there. A non-zero rate is a network fact about the path between your instances and Redis, not a Pad condition: compare it against TCP keepalive settings on that path before changing the interval, because a shorter interval treats the symptom and a longer one widens the window the detector exists to bound.

A residual an operator should know about, not fixed here. When many workspaces are cycled at once — a NAT table flush, a firewall rule change, an overlay network dropping every long-lived flow — every connected subscriber of every affected workspace is told to resync in the same instant. The SSE connections stay open, so this is not a reconnect storm and the admission limits are not involved; what it produces is a burst of /changes requests against the database, coalesced per browser tab but with no jitter and no global budget. This is not new with the heartbeat: a Redis failover already signals every workspace at once through subscription_resumed. What is new is a second trigger of the same class. Tracked separately; if you run a large fleet, watch database load alongside pad_event_sequence_resets_total after any network event that could wedge many routes simultaneously. Tracked as BUG-2761.

Cost on the activity stream. Each workspace has its own Redis subscription — and therefore its own connection — so liveness is genuinely per-workspace and there is no cheaper shared probe. An instance subscribed to N workspaces publishes N frames every 30s; at N=1000 that is roughly 33 publishes/sec, which is noise for Redis. If fleet workspace counts ever make it matter, the fix is connection consolidation, not a longer interval.

How the watch stream differs. It holds ONE process-wide subscription on one channel rather than one per workspace, which changes the following and nothing else:

  • Cost is flat. One frame per instance per interval regardless of how many workspaces or clients exist, against the activity bus's one per subscribed workspace.
  • A cycle affects every watch subscriber on the instance, not one workspace's — but that is the path dropCoverage already takes for a resubscription or an undecodable message, so it is a third trigger on an existing announcement rather than a wider one. It is bounded: at most one announcement per connected subscriber per cycle (the signal is capacity-1 and coalescing), and at most one cycle per idle timeout per instance.
  • No separate cycle counter. On the activity stream pad_event_subscription_cycled_total exists because its reset reason only fires when a buffer existed to drop. The watch bus drops its buffer unconditionally, so pad_watchevents_sequence_resets_total{reason="idle_timeout"} is already a complete count and a second metric would be noise.
  • A failed re-dial retries without re-deciding. Read pad_watchevents_sequence_resets_total{reason="idle_timeout"} as one per outage, not one per cadence. When the cycle's replacement cannot be established — Redis away, the path still blackholed — the watch bus keeps retrying the dial every interval but does not drop coverage or announce again: coverage is already ended and the buffer is already empty, so a second drop would re-announce a hole every subscriber has been told about and turn one outage into an incident per cadence on the series you alert on. The activity stream reaches the same place by a different road: its teardown removes the workspace's subscription entry outright, so the next scan finds nothing to cycle and its recovery runs off the request path instead.

pad_watchevents_heartbeat_publish_failures_total is the watch twin of the activity stream's probe-failure counter and reads the same way: detection degraded, not a peer broken.

Security

Variable Default Description
PAD_SECURE_COOKIES false Set Secure flag on session cookies (requires TLS)
PAD_CORS_ORIGINS Comma-separated allowed CORS origins

Email (Optional)

Email enables sending workspace invitation links. Without it, users can still join via CLI invite codes.

Variable Default Description
PAD_MAILEROO_API_KEY Maileroo sending API key
PAD_EMAIL_FROM noreply@getpad.dev Sender email address
PAD_EMAIL_FROM_NAME Pad Sender display name

Password recovery (when email is not configured)

Without an email provider, the web "Forgot password" flow can't send a reset link — the page says so and points users at the host-side recovery below. Recover a locked-out account from the server host (the same trust model as pad auth setup — shell access to the box):

# Print a single-use reset link (open it in a browser to choose a new password)
pad auth reset-password admin@example.com

# Or set a random temporary password, printed to the terminal (headless boxes).
# Log in with it, then change it immediately — all existing sessions are signed out.
pad auth reset-password admin@example.com --temp-password

This calls a loopback-only endpoint (POST /api/v1/auth/local-reset): it needs no login (you're locked out, after all), but it only works for a direct request from the server itself — proxied or remote requests are refused, and it's disabled entirely in cloud mode.

Alternatively, if a user submits the web reset form, the server logs the reset path on a non-cloud instance with no email configured:

password reset generated (email not configured) ... reset_path=/reset-password/<token>

Open <base-url>/reset-password/<token> to finish the reset by hand.

Deployment Options

Single Binary (SQLite)

The simplest deployment — one binary, one file for the database.

# Download or build
make build

# Run directly
PAD_HOST=0.0.0.0 ./pad server start

# Or install as a systemd service (see below)

Best for: single-user, small teams, evaluations.

Docker Compose (PostgreSQL + Redis)

See Quick Start above. This is the recommended setup for teams.

Kubernetes

Manifests are in deploy/k8s/. Apply them in order:

# Create namespace
kubectl apply -f deploy/k8s/namespace.yaml

# Configure secrets (edit first!)
kubectl apply -f deploy/k8s/secret.yaml

# Deploy
kubectl apply -f deploy/k8s/configmap.yaml
kubectl apply -f deploy/k8s/deployment.yaml
kubectl apply -f deploy/k8s/service.yaml
kubectl apply -f deploy/k8s/ingress.yaml
kubectl apply -f deploy/k8s/hpa.yaml

Prerequisites:

  • External PostgreSQL (e.g., AWS RDS, Cloud SQL, managed PG)
  • External Redis (e.g., ElastiCache, Memorystore)
  • Ingress controller (nginx-ingress or similar)
  • TLS certificates (cert-manager recommended)

Systemd Service

# /etc/systemd/system/pad.service
[Unit]
Description=Pad
After=network.target postgresql.service redis.service

[Service]
Type=simple
User=pad
Group=pad
ExecStart=/usr/local/bin/pad server start
Environment=PAD_HOST=0.0.0.0
Environment=PAD_DATA_DIR=/var/lib/pad
Environment=PAD_DB_DRIVER=postgres
Environment=PAD_DATABASE_URL=postgres://pad:secret@localhost:5432/pad
Environment=PAD_REDIS_URL=redis://localhost:6379
Restart=always
RestartSec=5

[Install]
WantedBy=multi-user.target
sudo systemctl daemon-reload
sudo systemctl enable --now pad

Reverse Proxy

Pad needs a reverse proxy for TLS termination. SSE connections require specific proxy settings to avoid buffering.

Caddy handles TLS automatically. See deploy/Caddyfile:

pad.example.com {
    reverse_proxy pad:7777 {
        flush_interval -1
    }
}

nginx

See deploy/nginx.conf. Critical settings for SSE:

location /api/v1/events {
    proxy_buffering off;
    proxy_cache off;
    proxy_read_timeout 86400s;
    proxy_http_version 1.1;
    proxy_set_header Connection "";
}

Monitoring

Pad exposes Prometheus metrics at /metrics (unauthenticated). Key metrics:

Metric Type Description
pad_http_requests_total counter Total HTTP requests by method, path, status
pad_http_request_duration_seconds histogram Request latency
pad_http_response_size_bytes histogram Response body sizes
pad_sse_connections_active gauge Connections on the workspace activity stream (/api/v1/events) only
pad_stream_connections_active gauge Held connections across both SSE endpoints — the population the limits bound
pad_eventbus_publish_total counter Events HANDED to the bus — attempts, not confirmed publishes. A failed Redis publish is logged and still counted (BUG-2732)
pad_eventbus_subscribers gauge Active event subscribers
pad_db_open_connections gauge Database connection pool stats

Redis-specific metrics are listed under Redis health and metrics.

Health Check

Three endpoints, and they answer different questions:

# Liveness — is the process up? Kubernetes restarts the pod when this fails.
curl http://localhost:7777/api/v1/health/live
# {"status":"ok"}

# Readiness — can it serve traffic? Gated on the DATABASE only.
# Kubernetes should point its readinessProbe here.
curl -s http://localhost:7777/api/v1/health/ready
# {
#   "status": "ready",
#   "db": {"open_connections": 2, "in_use": 0, "idle": 2, "driver": "sqlite"},
#   "redis": {"reachable": true, "probed": true, "last_check": "2026-08-22T01:00:00Z"}
# }

# Build info.
curl http://localhost:7777/api/v1/health
# {"status":"ok","version":"...","commit":"..."}

With Redis configured but unreachable, readiness stays 200 and the redis block carries the failure. Readiness deliberately does not fail: Pad still serves the API, the web UI and every item write. What it cannot do is cross-instance delivery, and the paths whose job that is say so — POST .../push answers 503 for a session-targeted push it cannot resolve and 502 push_unconfirmed when the publish fails:

{
  "status": "ready",
  "redis": {
    "reachable": false,
    "probed": true,
    "error": "dial tcp ...: connect: connection refused",
    "degrades": [
      "all activity events, including to clients on this instance",
      "watch notifications",
      "session presence and session-targeted push"
    ]
  }
}

The redis block is absent entirely when no Redis is configured — "not applicable" rather than "down".

Upgrading

Pad releases a new binary roughly weekly. Migrations run automatically at startup — only the ones your database is missing are applied, and each one commits atomically, so a failed migration rolls back cleanly and is retried on the next boot.

Only ever move forward. A newer binary can migrate an older database; an older binary cannot understand a newer schema. Pad enforces this with a schema-ahead guard: if the binary finds a database that carries migrations it doesn't ship (the signature of a downgrade — a rolled-back brew formula, an older Docker tag, a redeployed prior binary), it refuses to start instead of silently running old code against a newer schema and corrupting data.

database schema is newer than this pad binary: the database has N migration(s)
this binary doesn't ship (...) ... This almost always means the binary was
DOWNGRADED (e.g. brew/docker rollback) ... Upgrade pad back to a build that
includes those migrations, or ... re-run with `pad start --force`.
  • Recover by reinstalling the newer binary (brew upgrade pad, pull the newer Docker tag, redeploy the newer image).
  • Override — only if you have intentionally downgraded and accept the data-corruption risk — with pad start --force or PAD_ALLOW_SCHEMA_AHEAD=1.

Pre-migration snapshot (SQLite)

When a SQLite-backed instance has pending migrations, Pad copies the database file to pad.db.pre-<version> (next to the DB) before applying them. If an upgrade goes wrong, stop the server and copy that file back over pad.db. It is a convenience net, not a substitute for backups — take a real backup first (see backup.md). The copy is best-effort: if it can't be written (read-only volume, full disk) the server logs a warning and proceeds, so keep your own backups regardless.

PostgreSQL is not snapshotted this way — take a pg_dump or provider snapshot before upgrading (see backup.md).

# 1. Back up (SQLite shown; pg_dump for Postgres — see backup.md)
pad db backup -o pad-backup-$(date +%Y%m%d).db

# 2. Stop, install the new binary, restart. Migrations + the pre-migration
#    snapshot run automatically on start.
brew upgrade pad     # or: docker pull, binary download, systemctl restart pad

# 3. Verify
pad --version
curl -s http://localhost:7777/api/v1/health   # {"status":"ok"}

Production Checklist

  • Database: PostgreSQL configured with PAD_DB_DRIVER=postgres
  • Redis: Connected for multi-instance events, notifications, and session presence (PAD_REDIS_URL), on a non-evicting maxmemory-policy, single node (not a cluster)
  • Redis namespace: PAD_REDIS_NAMESPACE set if this endpoint is shared with another Pad installation
  • Streaming limits: PAD_SSE_MAX_CONNECTIONS / PAD_SSE_MAX_PER_USER sized for your fleet (both cover both SSE endpoints)
  • Redis alerting: pad_redis_up and pad_watchevents_sequence_gaps_total wired to alerts
  • Stream-honesty alerting: pad_event_resume_gaps_total alerting on a rate that does NOT settle after a deploy (a step around one is expected — cold replay buffers), and pad_event_receive_loop_exits_total read as a rate against a stable subscriber count. See the metrics table above for what each label means
  • TLS: Reverse proxy with valid certificates
  • Secure cookies: PAD_SECURE_COOKIES=true (requires TLS)
  • Public URL: PAD_URL set to your public-facing domain
  • CORS: PAD_CORS_ORIGINS set if serving from a different domain
  • Backups: PostgreSQL backup strategy in place (see docs/backup.md)
  • Monitoring: Prometheus scraping /metrics
  • Admin account: Created via pad auth setup or web UI on first visit
  • Email (optional): Maileroo configured for invitation emails
  • Resource limits: Set in Docker Compose or K8s manifests
  • Log level: PAD_LOG_LEVEL=info (use debug only for troubleshooting)