Files
mesh-controller/examples/modules/README.md
T
jschoubben 4d6ec5b10c One object store, not two
object-store.json and minio.json described the same thing: same image,
same provision at the same scope, same provisioner. Not two
implementations a person could choose between — one module written
twice. Assigning both to a node would have collided on `s3-bucket`.

It exists because it was written first, to pair with photos.json for the
README's worked edge, and minio.json was the fuller version of the same
module written later. Nobody removed the first.

The pair test keeps its point and now reads the surviving one. Checked
across the rest: this was the only duplicate.
2026-09-01 21:06:17 +02:00

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4.1 KiB
Markdown

# Example modules
Manifests, not programs. They are here because the contract is easier to read as something that
works than as a description of something that would.
**Third-party software runs *on* the mesh, not *of* it** (novox/hq ADR 0001). dnsmasq is not the
mesh's, and neither is systemd-resolved — what is the mesh's is the fact only it can know, which
is which machines exist and where they are. So the mesh writes that to a file and these read it.
## Resolving a service named under a machine
`postgres.novox.internal`, `plex.ace.internal`. The first label is the service and the rest is the
node, so **anything under a node's name must resolve to that node** and a proxy there routes by
the name it was asked for. That routing is a separate concern and stays separate.
Two roles, and they are genuinely different things:
| | claims | |
|---|---|---|
| **serving** | `the-dns-port` | answers the wildcards — `dnsmasq.json` |
| **asking** | `the-resolver-configuration` | decides what the machine asks — `resolved-split-dns.json`, `resolv-conf.json` |
**systemd-resolved cannot serve a wildcard**, so it is only ever an *asking* module: it routes the
mesh's suffix to something that can. Treating the two roles as one would produce a module that
cannot work, which is the mistake worth naming.
Assign one of each. Two of either is refused by the mesh rather than fought over on the machine:
> `resolved-split-dns and resolv-conf both claim "the-resolver-configuration", and only one thing
> may hold it per node`
ADR 0009's table names that resource `/etc/resolv.conf`, which is what it *is*, the way it writes
*the seat*. A claim is a name in the catalogue's own form, so it is written as one.
## Why neither needs to know the machine's address
Both would ordinarily need it — a resolver must bind somewhere, and a stub must be pointed
somewhere — and a static manifest cannot know it.
Neither does, because both name things **the mesh itself named**: the private network's interface
is `mesh0` on every machine, and the address a resolver listens on for the machine's own use is
`127.0.0.54` on every machine. A name the mesh chose is a name a manifest can use.
## Asking for a bucket
`minio.json` provides one, `photos.json` asks for one. Together they are the whole of an
edge, and they are here as a **pair** because that is the only way to see the halves line up:
| the provider says | the consumer says |
|---|---|
| `provides: s3-bucket` | `requires: s3-bucket` |
| `receives` — where to be told who asked | `contributes: {bucket: photos}` — what it wants |
| `grants` — where their credentials land | `secrets` — where to be given its key |
| `serves` — port, scheme, region | `binds` — where to be told all that |
**The mesh adds the half neither can know**: which machine the provider is on, and where it is on
the private network. Neither manifest names an address, and that is what lets the same pair work
on any mesh.
**`s3-bucket` names the protocol, not the product** (novox/hq ADR 0027). A
consumer's code is written against the S3 API, and swapping one store for another does not break
it — so the coupling is to S3. A database is the other case: an application is written against
PostgreSQL or against SQL Server, so those provisions name the engine.
**What the pair is checked for.** That the names match, that each side says where it wants to be
told, and that the consumer contributes the key the provisioner actually reads — `bucket`, not
`name`. Contributing `name` (which is what a database consumer contributes) resolves perfectly and
then fails on the machine with *asked for a bucket and did not name it*, which is a long way from
the manifest that caused it.
The provisioner that makes the credential true lives in
[`../objectstore-provisioner`](../objectstore-provisioner), and is proven against a real store in
the lab — including the assertion a database does not need, that **a consumer cannot reach another
consumer's bucket**. One store holds every bucket behind one endpoint, so that isolation is a
policy somebody wrote rather than a boundary the product has.