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hq/02-DECISIONS/0060-the-host-is-built-per-operating-system.md
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jschoubben ba0d01788e 0062: a host may be episodic; 0060's Android gap closed
0060 named the gap and did not close it: everywhere else an init runs the
launcher at boot, and Android grants neither an init to register with nor
anything worth supervising, because a supervisor would be killed alongside what
it supervises.

Closed by narrowing what is required rather than building something. A host is
resident or episodic, and both are hosts. Being killed by the platform is
disconnection, which 0036 already made ordinary -- and every mechanism an
episodic host needs already exists because it was built for laptops that close.

A partial host can join a mesh and cannot be the first node, since every
bootstrap step is a shape it refuses. Its bundle says so.

Two consequences that are easy to miss: last-heard-from means much less on an
episodic host, so a healthy phone reads as a dead server unless the reader
knows which kind it is; and a declaration may take a long time to land, which
makes 0058's outstanding-versus-failed distinction load-bearing.

Still open, and in that order: what an Android node is FOR, and only then how
it is started.
2026-08-28 01:24:07 +02:00

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---
status: accepted
date: 2026-08-28
deciders: jochen
reconstructed: false
extends: 0057-the-host-is-a-root-service-installed-as-a-package.md
---
# 60. The host is built per operating system
## Context
Three of the host's six shapes need something from the machine: `service` needs a service
manager, `package` needs a package manager, `container` needs a container runtime. The other
three — `file`, `directory`, `action` — need only a filesystem and the ability to run something.
The host names those capabilities generically and implements them specifically. The detector
reports `container-runtime`, `package-manager`, `service-manager`; the appliers call `docker`,
`pacman` and `systemctl`. **So the design says capability and the code says Arch**, and nothing
records which of those is the intent.
The question that surfaced it: what happens on a machine that has podman, or one that does not
run systemd? And underneath it, a live contradiction —
[research 012](../01-RESEARCH/012-the-minimum-viable-node/00-overview.md) decides that on
conflict during adoption *the machine's configuration is kept*, so a machine with podman keeps
podman, and then the container applier calls `docker` and fails.
## Considered options
1. **Abstract each capability behind an interface.** One host, adapters per service manager and
package manager. Rejected, and the reason is correctness rather than effort: the service
applier reads `LoadState` to tell *not installed* apart from *stopped*, which is what stops it
reporting absence as success. An interface spanning systemd and OpenRC degrades to what both
can express, and **the lowest common denominator is exactly where that fault lives**.
2. **Support one operating system and say so.** Honest, and it makes every other machine
permanently out of scope rather than not-yet.
3. **A host per operating system.** Chosen.
## Decision
**The host is built for an operating system family, and `systemd` and `pacman` are the Arch
host's implementation rather than abstractions the mesh has to grow.**
```
mesh-host-arch-x86_64 pacman · systemctl · docker
mesh-host-debian-x86_64 apt · systemctl · docker (when there is a machine)
mesh-host-alpine-x86_64 apk · rc-service · podman (when there is a machine)
```
**These are not independent choices and treating them as such was the error.** A machine has
pacman *because* it is Arch. The package manager, the service manager and the packaging format
arrive together, as one decision somebody made when they installed the operating system.
### Almost all of it is shared
Not a rewrite per operating system. The declaration vocabulary, the store, the apply loop, the
read-back discipline, the refusal model and the link are all portable. **What differs is two
appliers**, and the rest is compiled around them.
**The bundle is the exception, and an earlier version of this record wrongly listed it as
portable.** Its *mechanism* is — one embedded declaration, applied with no mesh present. Its
*contents* are not: package names, unit names and service names all differ, so an Arch host
embeds an Arch bundle and an Alpine host an Alpine one. That is the same thing this record says
about package names one section down, and missing it here is what made the distinction hard to
see.
### The control plane names the package, because the host does not decide
A container runtime is `docker` on Arch and `docker.io` on Debian. Mapping *this node needs a
container runtime* to a package name is **deciding**, which
[ADR 0037](0037-the-host-applies-it-does-not-decide.md) puts outside the host.
It needs no new mechanism: the profile already reports what the machine is, so the declaration a
node receives is already tailored to that node. The host receives a package name and installs it.
### A host that cannot implement a shape refuses it
The interesting case is not Debian, it is **Android** — no service manager it will lend us, no
package installation, usually no root. Such a host implements `file`, `directory` and `action`,
and nothing else.
That needs no new mechanism either. A host already refuses a type it does not know; *this host
does not implement `package`* is the same refusal with a different reason, and the profile
reports which shapes it implements so the control plane never sends one it cannot do.
**`file`, `directory` and `action` are the portable floor.** They work anywhere there is a
filesystem and a way to run something, which makes a partial host a real thing rather than a
broken one.
**A partial host can join a mesh and cannot be the first node.** Every step of raising a
substrate is a `package`, a `container`, or an `action` against one, so the shapes it refuses
are exactly the ones a bootstrap needs. Its bundle says so rather than being an empty
placeholder.
**How such a host is started was left open here and is closed by
[ADR 0062](0062-a-host-may-be-episodic.md)** — by narrowing what is required rather than
building something. A host may be *episodic* rather than resident, and being killed by the
platform is disconnection, which is already ordinary.
## Consequences
- **Each implementation stays as sharp as its operating system allows.** The `LoadState`
distinction survives because the Arch host knows it is systemd. Nothing is degraded to fit an
interface spanning systems we do not run.
- **Delivery already worked this way**, which is the strongest sign this is the right seam: the
host ships as a package from the mesh's own repository
([ADR 0058](0058-delivery-ends-in-a-declaration.md)), and a `.pkg.tar.zst` is an Arch artifact.
A per-OS binary is consistent with what was already decided rather than an addition to it.
- **The container runtime is a choice within a host, not an OS split** — Arch runs docker or
podman — and it is **detected, not declared**, because adoption keeps what the machine already
has. Two are supported.
This is the opposite answer to the one above, for a reason rather than by preference.
Abstracting service managers is *lossy*: systemd and OpenRC are different models, and
`LoadState` has no equivalent. Container runtimes deliberately converged on one CLI, so almost
nothing is lost — checked against podman 6.1.0, `run`, `rm -f` and docker's own template
syntax for reading state and labels all work unchanged. **Only the probe differs**
(`{{.ServerVersion}}` against `{{.Version.Version}}`), which makes it a two-entry lookup
rather than an interface.
**One difference is not in the CLI and would have shipped silently.** Podman accepts
`--restart unless-stopped` and records it, and has no daemon to act on it: containers do not
come back after a reboot unless `podman-restart.service` is enabled, which it is not by
default. Every command reports success and the effect does not happen. That belongs in the
**declaration** — a node using podman is told to enable that unit — rather than in the host,
which keeps the host dumb and puts the difference where a person can read it.
- **A second operating system is now additive rather than a redesign** — write two appliers, ship
a package. And it will be designed against a real machine rather than a guess, which is the
point of not building the abstraction now.
- **The profile has to report the operating system**, and today it reports capabilities without
saying which system they belong to. Small, and needed before the control plane can tailor a
package name.
- **Nothing states the machine requirements yet.** A machine missing a capability fails at apply
time rather than being refused up front, even though the host already detects it. That is a
gap this record makes visible and does not close.
## References
- [ADR 0037](0037-the-host-applies-it-does-not-decide.md) — why the host is handed a package name.
- [ADR 0041](0041-the-host-depends-on-nothing.md) — one static binary, now per system as well as
per architecture.
- [ADR 0058](0058-delivery-ends-in-a-declaration.md) — delivery, which was already per-OS.
- [Research 012](../01-RESEARCH/012-the-minimum-viable-node/00-overview.md) — adoption keeping
the machine's configuration, which hardcoding a runtime contradicts.