591d5b8df0c1678a35547b3ef64029dee55456f4
7 Commits
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74359c72ab |
Give each team its own dead man's switches, and the UI a team to show
The rest of #4. Two halves that belong together because they are the same sentence from opposite ends: a team decides which of its alerts are heartbeats, and the UI has to be able to say which team it is talking about. Switches were three environment variables, which made them one setting for the whole install. That was the last piece of the alerting path a team could not control: it could take its own alerts on its own key and still not say which of them were heartbeats, or how long a silence had to last. They are a row per team now, edited by an owner through PUT /api/teams/{teamID}/deadman, and the sweeper runs each team against its own matchers, timeout and severity. The environment variables become the starting point rather than the setting. Every team without a configuration is seeded from them at startup, so an upgrade keeps watching exactly what it was watching, and SeedDeadmanConfigs never overwrites -- a redeploy must not put the environment's value back over an owner's edit. A team created later watches nothing until somebody says otherwise: inheriting an install-wide heartbeat would page a new team about a source it has never heard of, and a switch nobody chose is the kind that gets muted rather than fixed. A matcher string with no alertname in it is refused at the door instead of stored. Storing it would produce a switch that watches nothing silently, which is the exact failure the feature exists to prevent. NewRouter and Sweep lose their DeadmanConfig parameter -- there is no longer one answer to hand them. The type stays, because parsing a matcher string is still parsing a matcher string. The UI side: rows in the queue carry a team badge, the filter row gains a team chip per team, and "on call now" shows one card per team. All three appear only when the viewer is in more than one team -- otherwise they are the same word repeated down a list, which is noise rather than information, and the single-team install reads exactly as it did before teams existed. Verified against a live two-team server as well as in tests: the combined queue labelled by team, the team_id filter, a heartbeat that is a heartbeat in one team and an ordinary alert in another, and a new team's switches starting empty while the upgraded team keeps the environment's. Claude-Session: https://claude.ai/code/session_01RHPj4ggeFdEjKKfm4SHbD7 |
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a4fbd60441 |
Scope everything to a team, and route alerts by integration key
The core of #4, and what #1 is for: terdut stops being one shared space. A team owns its incidents, alerts, schedule and integrations; a user sees exactly the teams they are in. Everything that existed moves into one Default team and every existing user becomes an owner of it, so the upgrade is a no-op for the people using it. Ingestion is the load-bearing half. An alert arrives on a team's integration key, and the key is both the credential and the routing: it says that the sender may post, and which team the alerts belong to. That also closes the unauthenticated webhook -- the old path stays for one release, deprecated and routed to the oldest team, so an upgrade does not stop delivering while somebody edits the Alertmanager config. Scoping is enforced in as few places as possible, because the failure mode is silent. serveAs loads the caller's memberships once; list queries carry `team_id = ANY(...)`; and every incident route goes through incidentIDParam, which now parses the id AND checks the team in the same call, so a new handler cannot remember the first half and forget the second. Anything in another team is 404, never 403: whether an incident exists is that team's business. Two bugs this found, both of which would have been silent: * upsertAlerts decided "is this a new occurrence" by looking up the fingerprint alone. Across teams that made team B's first alert look like a re-send of team A's, so it opened no incident at all. The lookups are keyed on (team_id, fingerprint) now, as the index is. * Every uniqueness rule was written for one tenant. Two teams watching two clusters legitimately see the same fingerprint, the same groupKey, and want somebody on call on the same day; all three constraints move to include team_id. Roles inside a team are separate from the system administrator flag: an owner configures the team, a member works its incidents, and an admin is NOT implicitly in every team -- administration is about accounts, not about reading other people's incidents. An admin can still repair a team whose owner has left, which is why requireTeamOwner lets them through. A shift can only be given to somebody in the team. Paging a person who cannot open the incident is worse than paging nobody. The UI is updated only as far as keeping it working: it loads the viewer's teams with the session and uses the first one, since nobody has a second yet. "On call now" shows every team the viewer is in, named only when there is more than one, so the common case reads exactly as before. The team switcher, badges and per-team settings pages are the next step. Breaking for API clients: the schedule endpoints moved under the team, and /api/schedule/current returns an array rather than an object or a 404. terdut-tui will need a version for that. Per-team dead-man configuration is deliberately not here. A heartbeat's incident already opens in the team whose key received it, which is the part that matters for isolation; moving the matchers out of env into per-team rows is a change to how deadman.go is configured rather than to who sees what. Claude-Session: https://claude.ai/code/session_01RHPj4ggeFdEjKKfm4SHbD7 |
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dc39e3a5d3 |
Move the database to Postgres, before teams need the schema
First step of #1, and it goes first for one reason: #4 adds a team_id to nearly every table, and doing that twice -- once for SQLite, once for Postgres -- is work nobody gets paid for. The teams migrations now only have to be written against one database. The ten SQLite migrations are replaced by a single Postgres baseline rather than ported one by one. They were incremental in a way that has no value on a fresh install: 004 adds columns 008 drops again, and 008's backfill rewrites data a Postgres database never had. The history stays in git; the schema they add up to is now 001_baseline.sql. Timestamps stay BIGINT unix seconds and are NOT converted to timestamptz. Everything in Go already speaks epochs, so converting would have been a second, larger change riding along inside this one. It is worth doing on its own. The JSON columns did move to jsonb, because #4 will want to filter and index on labels. Most of the port is mechanical -- 170 placeholders from ? to $1 -- but four things needed more than a search and replace: * Dynamically built WHERE clauses cannot keep their numbering straight by hand, so they hand out placeholders through sqlArgs instead. A filter can now be added or reordered without renumbering anything. * SUM(resolved_at IS NULL) was SQLite counting a boolean as 0 or 1. Postgres has no sum(boolean), and this was breaking every dead man's switch -- silently, since the sweeper only logs. Now COUNT(*) FILTER. * unixepoch() became FLOOR(EXTRACT(EPOCH FROM now()))::bigint. The FLOOR is load-bearing: a bare cast rounds half up, so a row written at .6 of a second claimed a timestamp a second in the future and disagreed with the time.Now().Unix() the Go side stamps. * The unique-violation check matched SQLite's error text. It matches SQLSTATE 23505 now, so a renamed constraint cannot turn a 409 back into a 500. Tests need a real Postgres, because there is no in-memory Postgres the way there was an in-memory SQLite. Each test gets its own schema on a shared server -- cheaper than a database each, and still isolated. TERDUT_TEST_DSN says where it is; `make test-db` starts one locally and ci.yaml runs one as a service container. An unset DSN fails the suite rather than skipping it: a run that quietly tests nothing is worse than one that does not run. TestMigration_BackfillCarriesAckAndComments is deleted along with the migrations it replayed. What it protected -- an upgrade not losing acknowledgements and comments -- now belongs to scripts/sqlite-to-postgres.go, which is build-tagged so the SQLite driver stays out of the server binary. Both are meant to be deleted once this install has migrated. The chart loses the PVC, the data volume and the python backup sidecar, and requires database.dsnSecret.name: it provisions no database and cannot guess where the credentials live, so a render without it is meant to fail. Backups move to where Postgres actually runs. The other half of that -- the postgresql CR, the k8up pg_dump annotation and the network policy -- is a change to the wrapper chart in Ryuvia/charts and is not in here. Verified rather than assumed: the gate is green with -race against Postgres 17, govulncheck and gitleaks are clean, and the migration script was run end to end against a SQLite database built at the old schema and seeded in every table. Ids survive, so incidents keep their numbers and every foreign key still points where it did; the identity sequences are moved past the copied ids, and a webhook after the migration opened incident 12 rather than colliding at 1. |
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94dec19976 |
Räkna en tom incidentlista som noll i stället för som ett fel
SUM över noll rader är NULL i SQLite, inte 0. handleStatsIncidents läste de tre statusräknarna rakt in i int64, så i samma stund som filtret inte matchade någon rad föll skanningen på "converting NULL to int64 is unsupported" och hela /api/stats/incidents svarade 500. COUNT(*) ger däremot 0 utan knot, vilket är precis varför felet inte syns förrän tabellen töms — det är det enda uttrycket i satsen som klarar noll rader. Filtret är alltid på: statsFilter lägger på archived_at IS NULL ( |
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289eca8076 |
Move to Gitea: git.ryuvia.com/niklas/terdut-server
CI / test (push) Successful in 2m15s
The module path, the container image, the Helm chart and the CI pipeline all named GitHub. They now name the Gitea instance everything else already runs on. The workflows are rewritten rather than translated. Gitea's runner image is ubuntu:22.04, whose nodejs is Node 12, so no JS action runs there at all -- actions/checkout@v4 dies with a SyntaxError before it does anything. Every step is shell, checkout is a plain clone (this repo is public, so it needs no credential), and the jobs that need docker or helm run in host mode because the dind bridge a `container:` job gets cannot reach github.com or get.helm.sh. Two consequences worth naming: - upload-artifact/download-artifact are also JS actions, and there is no artifact store here, so the job that builds the binaries is the job that publishes them. Nothing is passed between jobs. - setup-qemu-action is gone with the rest, and the runner has no binfmt registration. The Dockerfile's builder stage now runs on $BUILDPLATFORM and cross-compiles from TARGETARCH instead, which is what keeps the arm64 image buildable -- and makes it native rather than emulated. The chart moves from a GitHub Pages index to an OCI artifact in Gitea's registry. Publishing stays tag-only for the reason recorded in release.yaml: a workflow triggered by the branch push cannot know the version it is about to be tagged with. The GitHub repository is left in place and untouched. Nothing pushes to it any more, but its existing release downloads and chart index keep resolving. |
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14c24f8fda |
Notice when the Watchdog alert stops arriving
Release / release (push) Has been skipped
Release / build (amd64, linux) (push) Has been skipped
Release / build (arm64, darwin) (push) Has been skipped
Release / test (push) Failing after 5s
Release / build (arm64, linux) (push) Has been skipped
Release / docker (push) Has been skipped
Release / chart (push) Has been skipped
Release / build (amd64, darwin) (push) Has been skipped
Everything this server does assumes alerts arrive. If Prometheus stops evaluating, or Alertmanager cannot reach us, nothing arrives — and silence is indistinguishable from everything being fine. The cluster has shipped the alert for exactly this case all along: Watchdog is expr: vector(1), so it fires permanently and is re-sent forever, and it is worth nothing unless something downstream notices it stop. Nothing did. It arrived, opened no incident because a repeat_interval re-send is not a new occurrence, and when the monitoring stack died the sweeper quietly expired it and paged nobody. So the handling is inverted for a configurable set of alerts: receiving one opens no incident, and the absence of one does. TERDUT_DEADMAN_MATCHERS selects them as label matchers, defaulting to alertname=Watchdog. The unit of monitoring is the fingerprint rather than the alert name. Two clusters sending the same Watchdog are two independent switches, so a healthy one can never mask a dead one. Every matcher must name an alertname, which keeps the sweeper's candidate query on alerts_name_idx instead of JSON-extracting labels from every row, and leaves matching with a single implementation. A switch is dormant until its first heartbeat: a matcher nothing has ever sent opens nothing, so a fresh deploy or a restored database does not page. Resolving the incident by hand sticks, exactly as it does for an alert-backed one, so a decommissioned source is a one-time page rather than a nag; the switch re-arms only when the heartbeat comes back, and dying again is a new incident. The incident has no member alerts on purpose. Linking the heartbeat would have the settled-incident cascade close it on the very sweep that opened it, and there is no alert describing the problem anyway — the problem is that no alert arrived. What happened is on the timeline instead, and recovery is the only automatic way out. One narrow exemption in the ingest guard makes recovery possible at all. A heartbeat we declared dead is marked resolved, and the one that proves us wrong carries the unchanged startsAt of an alert that never stopped firing — so "resolution is terminal within an instance" would discard it forever and a switch could die exactly once. The exemption is scoped to resolution_source = 'deadman', which is the only resolution this server infers from silence on a timeout of its own, so nothing another writer set can be undone by a stale retry. Matched alerts are also held back from the generic staleness expiry, which would otherwise resolve a heartbeat as 'expiry' long before its own tighter deadline. The timeout points the opposite way to TERDUT_STALE_AFTER: staleness is a generous grace period around a repeat_interval you do not control, while this is a deadline you set deliberately and configure the heartbeat's route to beat. Inheriting a 4h or 12h repeat_interval gives a dead man's switch with a twelve hour fuse, so the README spells out the route the heartbeat needs. |
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279ef6cf8b |
Turn incoming alerts into incidents
Release / build (amd64, linux) (push) Failing after 11s
Release / build (amd64, darwin) (push) Failing after 12s
Release / build (arm64, darwin) (push) Failing after 11s
Release / build (arm64, linux) (push) Failing after 11s
Release / release (push) Has been skipped
Release / chart (push) Failing after 13s
Release / docker (push) Failing after 19s
The alerts row was both Alertmanager's record and the human work queue, and
the two have different owners. The webhook upsert rewrites that row on every
notification; acknowledgement, comments and archiving were columns on it that
the upsert happened not to touch. So an alert that resolved and re-fired days
later still read as acknowledged by whoever acked the first occurrence — the
ack outlived the thing it referred to. Nothing recorded transitions either:
rows are mutated in place, so there was no timeline and no way to compute how
long anything took.
Alerts are now read-only signal records with two states, and incidents are
the work item: triggered, acknowledged or resolved, with an assignee, a
snooze, notes and an append-only timeline. Many alerts map to one incident,
and a new occurrence opens a new incident, which is what makes a stale ack
impossible rather than merely unlikely.
Correlation uses Alertmanager's own groupKey. It already grouped the alerts
according to the group_by routing tree the operator configured and sends the
result on every webhook, where it was being discarded; adopting it means
changing group_by in alertmanager.yml changes correlation here, with no
second grouping scheme to configure and keep in sync.
An incident opens only when an alert transitions into firing — an unseen
fingerprint, a newer startsAt, or a resolved alert starting again. The
unchanged notifications Alertmanager re-sends every repeat_interval are none
of those. That rule is what lets manual resolution be terminal: without it,
closing an incident by hand would be undone by the next re-send of an alert
that never stopped firing, and the button would be a lie. Snooze covers the
"not now" case instead. Incidents otherwise resolve by cascade, once every
alert under them has stopped firing, whether by webhook or by expiry.
New incidents are assigned to whoever holds today's schedule entry. The
schedule table has existed since the first release with nothing reading it.
Also here, following from the split:
- Incident severity is a high-water mark over its alerts, never lowered.
An incident that hit critical was a critical incident, and downgrading a
live one would demote it in the queue while the work is still open.
- /api/stats/incidents reports MTTA and MTTR, null rather than zero until
there is something to average. Neither was computable before.
- Alert archiving becomes sweeper-only housekeeping; the archive people
interact with is the incident's.
Breaking: the alert acknowledge, archive and comment endpoints are gone, and
the alert object drops the acknowledgement fields and gains incident_id. The
README maps each removed endpoint to its replacement. Migration 008 backfills
an incident per existing alert, archived ones included so no comment is
orphaned, carrying acknowledgements across and turning comments into timeline
notes.
Both documented alert contracts are untouched: received_at still advances on
every accepted payload, re-sends included, and resolution_source still says
how much to trust ends_at. The upsert is byte-for-byte what it was, now
running inside the ingest transaction.
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