cast/docs/semantics.md
claude-hdb 8dde6dbc05 feat: --all — every project in an environment, and a report that says so (#26)
Every cast verb was single-project, so "do this to the whole instance" was a
shell loop the operator wrote from memory — and the project they forgot is the
one that drifted. `cast diff --env prod --all` and `cast apply --env prod --all`
iterate the registry (#25) instead.

The bulk of this is a refactor: the apply/diff block in cli.ts was one long
inline body, and it is now `runProject` — checkout → secrets → desired →
bindings → live → diff → optionally apply. Both the single-repo path and the
`--all` loop call it, so there is exactly ONE implementation of what a project
run is. A second, parallel fleet path is how the two would drift, and drift is
the subject of this tool. `openCoolify` and the team assert are hoisted out of
it: one --env means one instance and one team, so asserting once still lands
strictly before the FIRST project's first read — the read is already the lie.

Fails closed on the aggregate. A registered project cast cannot reach is an
ERROR, never a skip: the clone failing, no manifest block for this environment,
an absent or undecryptable store, an absent Coolify project/environment, any
HTTP error. A silently skipped project reads exactly like a clean one — #12/#18/
#22 at fleet scale — so the report leads with COVERAGE (registered / read /
clean / drifted / unreachable), and:

  diff --all   0  every registered project was READ, and every one is clean
               1  every one was read, and at least one has drift
               2  a project could not be read — outranking drift, because an
                  unreadable project is not a diff result but the absence of one
  apply --all  0  every registered project applied; non-zero otherwise

`diff --all` runs every project to completion (stopping hides the drift in the
projects it never reached); `apply --all` STOPS at the first failure and names
what it applied and what it did not touch (continuing to mutate a fleet after an
unexplained failure is not a thing cast gets to do).

Two refusals. An empty or absent registry refuses rather than printing
"0 projects, clean" — an empty fleet reading as a clean fleet is the whole
failure this is against; the message distinguishes an unmigrated state file from
a registry pointed elsewhere and prints the YAML to write. And `--all` is
mutually exclusive with the repo positional and with every single-project
coordinate (--path, --project, --environment, --resource, --hostname-overlay):
each names ONE project's checkout, ONE project's Coolify name, ONE box's
resource names, and `--project X` across a fleet would point every project at
the same Coolify project — a false report on diff, and on apply every manifest
in the fleet written into one project.

Also: `projectsIn`'s doc-comment guessed that `[]` made a fleet verb over an
unmigrated state file "a clean no-op rather than a crash". It is precisely
backwards, and now says so. And the --path/--env-prod refusal is hoisted to the
CLI's up-front flag validation (one rule, one string, two call sites in
resolve.ts) — it used to be caught only by accident of resolveCheckout running
before the bindings load.

Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-13 20:23:23 +00:00

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# Behavior
The guarantees `cast apply` makes, the shapes it accepts, and the places
Coolify 4.1.2 does not cooperate. Extracted from the substrate repo this tool
was born in; the Coolify-source citations were verified against
`coollabsio/coolify` v4.1.2 and the vendored OpenAPI in `reference/`.
The command surface itself is in the README; this file is the behavior behind it.
## Team scoping
**A Coolify API token is scoped to exactly one team, and nothing below the team
scopes it.** `User::createToken` overrides Sanctum's and stamps the session's
team onto the token (`'team_id' => session('currentTeam')->id`); the API then
resolves every request through it — `getResourceByUuid($uuid,
getTeamIdFromToken())`, which walks `resource → environment → project →
team_id`.
The consequence that matters: **a wrong-team token does not error.**
`getResourceByUuid` returns `null` on a team mismatch, and `null` is
indistinguishable from *"this resource does not exist yet"* — which, to `apply`,
is an invitation to **create** it. An apply run with a token minted under the
wrong team would not fail loudly; it would provision a duplicate set of
resources into the wrong team, against whatever server that team owns. That is
why the team assert is a correctness guarantee and not a hardening nicety, and
why it is **fail-closed**:
- Every environment in `environments.yaml` **must** declare `team:` (`id`,
`name`, or both). A missing team is a schema error — an environment whose
token cannot be verified is exactly the failure the binding exists to prevent.
- Every command that reaches a live Coolify (`apply`, `diff`, `server add`,
`smoke`) resolves `GET /teams/current` — the only endpoint that answers *"what
team does this token act as?"*, resolved from the token itself
(`TeamController@current_team` → `getTeamIdFromToken()`) — and compares it to
the binding **before its first read**, aborting on mismatch. Before the first
*read*, not merely the first write: a wrong-team `diff` reports "everything is
absent", which is the very lie an `apply` would then act on.
- An unreadable or unauthorized answer aborts too. It is not "no team"; it is an
unknown answer to the one question cast must not guess at.
**An Environment is not an auth boundary.** It has no `team_id` of its own (it
belongs to a project) and no API path scopes by it — Coolify environments are an
organizational construct. The team is the only boundary there is.
**A server belongs to exactly one team.** There is no pivot table and — unlike
`GithubApp` — no `is_system_wide` escape hatch; upstream confirms teams cannot
share a server and defers it to v5 (coollabsio/coolify#1820, #3235). Registering
a server under the wrong team is not fixable with a PATCH, which is why
`server add` takes `--env` and inherits the same assert.
**GitHub Apps, unlike servers, *can* be shared across teams**
`is_system_wide` is the supported mechanism, on both the read and write side:
```php
// GithubController@list_github_apps (backs GET /github-apps)
$githubApps = GithubApp::where(function ($query) use ($teamId) {
$query->where('team_id', $teamId)
->orWhere('is_system_wide', true);
// …
```
`POST /github-apps` validates and accepts `is_system_wide` (boolean), stamping
`team_id` from the token. So **one App flagged system-wide is visible and usable
from every team, and per-team App duplication is unnecessary.** Note the
corollary for cast: because `GET /github-apps` deliberately includes other
teams' system-wide Apps, **resolving a GitHub App by name is not a proxy for
being in the right team** — which is the second reason the team assert has to be
explicit.
**`dockercompose` build pack** (compose apps, box-B parity): a manifest
application whose `build.pack` is `dockercompose` declares
`build.compose_file` (path to the compose file in the checkout) and
`service_domains` (map of compose service name → `string[]` of URLs) instead
of the plain-app `port`/`healthcheck`/`domains` trio — those three live in the
compose file itself and are rejected by the manifest schema on a compose app;
conversely `service_domains`/`compose_file` are rejected on a non-compose app.
`domains` is schema-optional at the top level for this reason, but still
required (via a `superRefine`) for every non-compose app — no existing
manifest needs to change.
```yaml
core:
source: { repo: acme/widget, branch: main }
build: { pack: dockercompose, base_directory: /, compose_file: docker-compose.yaml }
service_domains:
api: ["https://api.widget.example.com"]
env_template: core.prod.env.template
```
Internally cast keeps the map vocabulary (`docker_compose_domains:
{service: string[]}`) all the way through `resolve.ts`/`apply.ts`/diffing;
only `cli.ts`'s wire-translation layer (`applicationApiFields`) flattens it to
the Coolify request shape — an array of `{name, domain}` where `domain` is
that service's URLs comma-joined (verified against the
`/applications/private-github-app` and `PATCH /applications/{uuid}` request
schemas in `reference/coolify-openapi-4.1.2.json`). A compose app's create
payload also sets `connect_to_docker_network: true` — without it the stack
cannot reach the environment's managed Postgres/Redis resources at all, which
fails at runtime rather than at apply time.
Live-state projection (`projectLiveFields`) reads both fields back for a
compose app: `docker_compose_location` (a plain string on the GET model) and
`docker_compose_domains`, which the GET model documents as a nullable
**string**, not the structured array the write side accepts — parsed
defensively as JSON back into the internal map, degrading to "field omitted"
(not a crash) on anything that doesn't parse as a well-formed array of
`{name, domain}`. Projecting both is what keeps a matching re-apply a true
no-op instead of a spurious PATCH + stack redeploy every run. **This parsing
path is unverified against a real Coolify instance** — the read-back is only
confirmed by an overlay apply followed by an overlay-edit re-apply against a
live instance, which has not yet happened. If a live instance turns out not to expose
`docker_compose_domains` on read, apply's idempotency guarantee for the
domains half breaks and needs the same warn-and-drop treatment as service
domains below — that also removes the cutover mechanism (domains no longer
flip via re-apply), so it would need a runbook amendment, not a silent fix.
**Hostname overlay, compose apps:** `--hostname-overlay <file>` accepts a
per-service map value for a compose app's entry instead of the plain-app
`string[]`:
```yaml
core:
api: ["http://api.<PROD-IP>.sslip.io"]
landing: ["http://landing.<PROD-IP>.sslip.io"]
```
Only the named services' domain lists are replaced; other services in the
same app keep their manifest values. A map value naming an unknown service
errors, listing the app's known services; a map value against a non-compose
app errors (`hostname overlay gave a service map for non-compose app <name>`)
— the plain `string[]` shape keeps working unchanged for non-compose apps.
**Structural vs. full diff** are tied to what the configured token can do,
not a flag alone: **structural** diff needs only a standing read-only token
and never compares env values (output says so explicitly); **full** diff
(and `apply`, which always requires full) needs a session token with
`read:sensitive` and compares secret values too — but the output only ever
says `secret FOO differs`, never the value on either side.
**Apply semantics** (verbatim from the spec's Global Constraints — never
softened by an implementation detail):
- Apply never deletes. Resource removal or rename is a manual runbook act;
`diff` reports the orphan as such until that act happens.
- Apply never recreates a database resource under any circumstances.
- On drift in a field the API cannot update in place (`build_pack`, a
database's `type`/`version`, a service's `type`), apply **fails loudly
naming the field** rather than recreating.
- Apply ends every mutated resource with a restart/redeploy
(`instant_deploy` on create, `/deploy` or `/restart` on update) — API
mutations land in Coolify's DB, not in running containers, so a create or
update that skipped this would silently not take effect.
- Direction is one-way, manifest → Coolify, always.
- **Environment guards:** `apply` refuses if a var matching that environment's
`forbidden_var_patterns` is present in the resolved env **at all, regardless
of value** — "off" means absent, not `false` (see the README). `apply` also
refuses `--path` combined with `--env prod`: prod always reads the default
branch, so a feature-branch checkout can never reach it.
## The registry (`projects:`)
The top-level `projects:` block is the list of **which projects exist**, and in
which environments. It is the only place that says so: `environments:` says where
things deploy to, `environments.<env>.projects.<repo>` says how an already-named
project is placed, `github_apps` says how to clone one you have already named.
```yaml
projects:
heavy-duty/incubator:
environments: [prod, staging]
```
- **Keyed by the full `<org>/<repo>` slug, with no bare-`<repo>` fallback.** The
key is the repo; there is no `repo:` field. `github_apps` and
`environments.<env>.projects` accept a bare key because state files in the wild
are written that way; this block is new and has none, so it requires the slug —
a bare `<repo>` is unique only *within* an org.
- **`environments:` names OUR environments** — the keys of the `environments:`
block, the values `--env` takes — never Coolify's. Non-empty.
- **Optional.** A state file with no `projects:` block loads unchanged, and
`projectsIn` reports `[]` for every environment.
**Validated at parse time, so every verb refuses a registry that lies.** Two
refusals, both defending the same failure — *a silently skipped project reads
exactly like a clean one*, which makes silence, the most common report there is,
ambiguous:
1. **An environment that does not exist** (a typo in `projects.<slug>.environments`)
is an error naming the unknown environment and listing the known ones. Left
alone, the project would be registered into an environment no command can
visit: a fleet run skips it, reports nothing, exits clean.
2. **A binding the registry does not register.** Every
`environments.<env>.projects.<slug>` key must be a project the registry
registers *for that environment*. Otherwise the two blocks describe two
different fleets: a `destination_uuid` or `smoke_target` real enough for a
direct `cast apply <repo> --env <env>` to act on, and invisible to every
fleet run over that environment. Enforced **only when `projects:` is
present**, so pre-registry state files keep loading.
The registry is what makes two things possible, neither of which can be attempted
without a list to iterate: **fleet operations** (`--all`, below), and
**rebuild-from-state** — restoring a Coolify from the state repo, which is
otherwise an assumption, since you cannot restore what you cannot enumerate.
## Fleet runs (`--all`)
`cast diff --env <env> --all` and `cast apply --env <env> --all` act on **every
project the registry lists for that environment**, in place of the `<org>/<repo>`
positional. The projects are visited in the registry's sorted order
(`projectsIn`) — a fleet report a human reads top to bottom, and CI diffs, must
not reshuffle because someone appended a project.
**One implementation.** `--all` loops the *same* per-project path the single-repo
form runs (checkout → secrets → desired → bindings → team-asserted client → live
read → diff → optionally apply). There is deliberately no second, parallel fleet
code path: two implementations of "what a project run is" would drift, and drift
is the thing this tool exists to catch.
**The instance and the team are asserted once, before the first project's first
read.** One `--env` means one instance and one team for the whole run, so the
gate lands where it always did — strictly before the first live read, which is
already the lie a wrong-team token tells (see *Team scoping*).
### Fails closed on the aggregate
**A registered project cast cannot reach is an ERROR, never a skip.** "Cannot
reach" is every way a project can fail to answer: the clone failing, the manifest
carrying no block for this environment, the secret store being absent or
undecryptable, the Coolify project or environment being absent
(`LiveLookup.found === false`), and any HTTP error. They collapse into one
outcome because only one thing about them matters downstream — **this project was
not read** — and a silently skipped project reads exactly like a clean one. That
is the failure of #12/#18/#22 at fleet scale, and it would make *silence*, the
most common report there is, the least trustworthy one.
So the aggregate reports **coverage** (registered / read / clean / drifted /
unreachable), and the exit code ranks an unread project above a drifted one:
| verb | exit | meaning |
|---|---|---|
| `diff --all` | `0` | every registered project was **read**, and every one is clean |
| `diff --all` | `1` | every one was read, and at least one has drift |
| `diff --all` | `2` | a project could not be read. **Outranks drift**: an unreadable project is not a diff result, it is the absence of one |
| `apply --all` | `0` | every registered project applied |
| `apply --all` | `≠0` | anything else |
`fleetExitCode` defaults to `2` on any coverage shape it does not recognize — an
exit code is the only part of the report CI reads, so an unrecognized shape must
fail rather than pass.
### Opposite dispositions on failure, both deliberate
- **`diff --all` runs every project to completion.** A read that stops early hides
the drift in the projects it never reached; a read that continues costs nothing.
- **`apply --all` stops at the first failure**, and reports which projects were
applied and which were **not touched**. A write that continues costs everything:
the next project's apply would be a guess about whether the last one broke
something it depends on. `apply` is idempotent, so re-running after the fix is a
no-op over the projects that already applied.
`apply` keeps its usual position on an absent Coolify project — it *creates* it,
exactly as a single-project `apply` does (see *the read side*, and `LiveLookup`).
Only `diff` treats absence as unreachable, because `diff` may only ever describe a
target that already exists.
### Two refusals
- **An empty or absent registry refuses** (exit 2). `projectsIn` answers `[]` both
for a state file with no `projects:` block and for one whose registry names
nothing in this environment; to a fleet run they are the same thing — *nothing
to iterate* — and "0 projects, clean" is precisely the sentence this feature
exists to make impossible. The refusal names what was looked for, distinguishes
an unmigrated state file from a registry pointed elsewhere, and prints the YAML
to write.
- **`--all` is mutually exclusive** with the repo positional and with every
single-project coordinate: `--path`, `--project`, `--environment`, `--resource`,
`--hostname-overlay`. Each names ONE project's checkout, ONE project's Coolify
name, ONE box's resource names — none is true of the project beside it.
Fleet-wide they are meaningless at best and dangerous at worst: `--project X`
across a registry points every project at the same Coolify project, which on
`diff` is a false report and on `apply` is every manifest in the fleet written
into one project. The refusal names the offending flag and says what applying it
fleet-wide would have done.
## Placement (destinations)
A **destination** is the Docker network a resource is created on. It is declared
per project — `environments.<env>.projects.<repo>.destination_uuid` — because a
destination is scoped project × environment, and the environment block above it
says `server:`, which is exactly what two projects share.
**Enforced once, at create.** `apply` sends `destination_uuid` on every create
(applications, databases, services — Coolify runs identical destination logic in
all three controllers). It is never sent on update, and `apply` never moves a
live resource between networks.
**Not comparable, and therefore reported rather than compared.** Coolify 4.1.2
accepts a `destination_uuid` on write and returns a `destination_id` (an integer
primary key) on read, exposes no endpoint mapping one to the other, and in fact
has no destinations API at all (zero routes at `v4.1.2`). So the declared UUID
**cannot be verified against the live resource it was sent for** — by cast or by
anything else. Two consequences, both deliberate:
- `diff` never diffs the destination as a field. Doing so would compare a UUID
against an int and report drift that could never be resolved — a phantom
"update" on every run.
- `diff` instead groups live resources by the `destination_id` Coolify *does*
report. That int is opaque, but it is comparable **to itself**, which catches
the thing worth catching: a project whose resources do not all sit on one
network is a project whose isolation is broken. That is `split placement`, and
it is drift — non-clean, reported, and **not repaired** (same disposition as an
orphan).
- Whenever a destination is declared, `diff` says explicitly that it was *not*
compared. Silence would make an unverified setting read as a verified one —
the failure shape this document exists to avoid.
**Coolify's create-time behavior** (`ApplicationsController` ~L1003,
`DatabasesController` ~L1700, `ServicesController` ~L378 @ v4.1.2): a server with
**one** destination uses it and *ignores* any `destination_uuid` sent, never
validating it — so a typo is invisible there. A server with **more than one**
rejects a create that omits it (`400`), and rejects a UUID that belongs to
another server (`422`). The second case is why cast could not apply to a shared
box at all before this field existed. Citations: `reference/README.md`.
## Instance selection
**The Coolify a command talks to is an explicit, named value** — not a property
of whatever `<state>/.coolify.env` happens to contain at the moment. Resolution
order, highest first:
1. `--instance <name>``<state>/.coolify/<name>.env`
2. the environment's `instance:` binding in `environments.yaml`
3. `<state>/.coolify.env` (the default; unchanged when neither of the above is
used)
Two refusals, both fail-closed:
- **An unknown `--instance` aborts**, naming the instances that do exist. It
does *not* fall back to the default — that fallback is how a `--full` diff
meant for a legacy box gets run against production.
- **`COOLIFY_READ_ONLY=true` in an instance file makes it read-only**, and
`apply` / `smoke` / `server add` refuse it *before their first call*. The
guard is the **declaration**, not the token's scope: an instance configured
for inspection must not be writable even when the token it holds would permit
the writes. `diff`, `team` and `capture` still work against it — they read.
Every command that reaches a live Coolify prints which one, next to the team
assert.
## Adoption (`capture`)
`capture` is the only verb that writes *into* the state directory rather than
into Coolify, and the only one that reads a hand-built instance as a **source**
rather than as a target. It exists because cast is otherwise scoped to the
steady state and has no bootstrap path for a box that predates its manifest.
**The required set comes from the manifest, not from the box.** The names are
the `${…}` refs in that environment's env templates, read by the same parser
`apply` uses to demand them (`parseTemplate`, shared by `resolveTemplate` and
`templateRefs` — deliberately one grammar, because a drift between the two
would mean `capture` collects a different set than `apply` will later require,
which is the "a name silently missed" failure it exists to remove). So the store
it writes contains **exactly** the names the manifest requires: a live var
nobody asked for is not the store's business, and a template literal
(`NODE_ENV=production`) is not a secret.
**The mapping is not mechanical, and must not be.** Some entries encode
migration decisions rather than facts about the source box:
- A `DATABASE_URL` / `REDIS_URL` read off the source points at the **source
box's** Postgres/Redis. Copying it is confidently wrong in a way that looks
entirely plausible, and the target's real URL does not exist until Coolify
creates the resource. These are declared `generated_secrets:` in the manifest
environment and written as the literal `pending-coolify-generated`.
- staging's `ADMIN_EMAIL` must be the operator, not the source's value: staging
and prod share a Mailgun domain, so a staging box carrying the real address
can mail real users. That is `--override`.
A "capture everything" verb would therefore be silently wrong in a handful of
entries out of seventeen — worse than being wrong in all of them. So every
required name is **forced into a disposition**, and two of the four stop the
run:
| disposition | source | outcome |
| --- | --- | --- |
| captured | found live | value taken |
| generated | manifest `generated_secrets` (or `--generated`) | `pending-coolify-generated` |
| overridden | `$CAST_CAPTURE_<NAME>` | operator's value |
| **missing** | required by a template, absent live | **refuses** |
| **conflict** | one name, different live values on two resources | **refuses** |
`generated_secrets` is a **manifest** property, not a flag: the manifest is what
knows `DATABASE_URL` comes from a database it declares. An entry naming
something no template refs is a hard error — dead config here is not untidy but
dangerous, because it reads like a guard standing over a name while standing
over nothing, and the likeliest cause is a typo whose real name is then
*captured* from the source box instead of placeheld.
**Secret hygiene**, all enforced by tests against real values:
- The plan prints **names and provenance, never values**. (The one value-shaped
thing it prints is the `pending-coolify-generated` literal, which carries no
information about the source.)
- An `--override`'s value is read from `$CAST_CAPTURE_<NAME>`, **never from
argv** — a command-line value is visible in `ps` to every process on the box.
- Plaintext is piped to `age` on **stdin**: never a temp file, never stdout,
never shell history. The hand-run recipe this replaces wrote
`/dev/shm/prod.env` and relied on remembering to `shred -u` it.
- An existing store is **not overwritten** without `--force`: it may hold the
only copy of values the source box no longer has. Same disposition as apply's
never-delete.
**`capture` takes `diff`'s position on an absent target** (see `LiveLookup`),
and refuses one: against a project or environment that isn't there it would read
back zero live values and report every required secret as *missing* — an
alarming, meaningless report about the wrong box. It also inherits the team
assert (a wrong-team token reads back `null` for everything, producing the same
lie) and the `--path`-with-`--env prod` refusal (a feature-branch manifest must
not decide which names land in the prod store).
The final gate is a **typed confirmation** — the environment's own name, after
the plan. There is no `--yes`: a store written without someone reading the
provenance column is the outcome the verb exists to prevent. A closed stdin
aborts rather than hanging.
## Cloning a private manifest
`resolveCheckout` resolves git credentials **inside cast**, in a fixed order —
`gh` borrowed as a per-invocation credential helper, then
`GITHUB_TOKEN`/`GH_TOKEN`, then the ambient helper — rather than leaving it to
whatever the workstation's git config happens to do.
It matters because `gh auth login` **does not** wire git's credential helper
(that is `gh auth setup-git`, a separate act most people never run), so a
perfectly logged-in operator still fell through to git's interactive
username/password prompt — which GitHub no longer accepts — and got an error
about *the repository* rather than about the missing credentials. There is no
routing around it for prod: `--path` is refused there, so the clone is the only
path and its auth is mandatory.
`GIT_TERMINAL_PROMPT=0` is set on every path, so cast can never hang on or fall
into that prompt. The token is never placed in the clone URL or in
`http.extraheader` — both leak it into `ps`, and the latter persists it into the
clone's `.git/config`; the helper reads it from the environment at run time, so
what lands in argv is the literal text `$CAST_GIT_TOKEN`. Note that the empty
`credential.helper=` reset clears **URL-scoped** helpers
(`credential.https://github.com.helper`, which is what `gh auth setup-git`
writes) as well as generic ones, so cast's chosen credential is genuinely the
one used — verified against a live private clone.
**Known limitations, not defects:**
- **Backup schedules are create-time only.** A manifest database's `backup`
block (`frequency`, `retention`) is applied only when the database is
first created; it is deliberately kept out of the diffed `fields` (live
Coolify state doesn't expose it back, so diffing it would flag spurious
drift every run — breaking idempotency). Changing a schedule on an
existing database is a runbook act, done by hand in the Coolify UI.
- **A service's `domains` cannot be applied via the API in Coolify 4.1.2,
and is deliberately kept out of the diffed `fields` for the same
idempotency reason as backup schedules above.** The `/services`
create/update payload takes a structured per-container `urls` list, not
the manifest's flat `domains: string[]`, and the manifest has no
per-container name to build that list correctly from — so cast
drops it rather than send a malformed payload. Live Coolify service state
doesn't expose a flat `domains` back either, so if it stayed in `fields`
every domain-bearing service would diff as a perpetual update and every
`apply` would needlessly restart it — `desiredFromManifest` drops
`domains` from the service's `fields` and **warns**
(`service <name> declares domains (...), but apply cannot set them on
Coolify 4.1.2 services — configure hostnames manually in the Coolify UI`)
once per run for every service that declared any. Set service hostnames
in the Coolify UI by hand.
- **The redis default image is an unverified extrapolation.** Coolify's
"New Resource" wizard drives PostgreSQL version selection through a
verified `postgres:<version>-alpine` image string; Redis has no version
picker in that same wizard, so cast's `redis:<version>-alpine`
guess for a manifest-declared `version` is the same Docker Hub tag
convention applied by analogy, **not confirmed against a live Coolify
instance**. Recommendation: leave a manifest database's `version` unset
for `redis` until this has been verified once against bootstrap, letting
Coolify pick its own default image instead of risking a bad tag.