Files
wild-pc/AGENTS.md
Paul Payne 2adc073863 Add castle doctor + getting-started docs
The README/docs explained how the system works but not how to get it up
and running, and there was no way to tell a healthy node from a
half-configured one. Two additions close that gap.

castle doctor — a read-only preflight/postflight check. It inspects
setup *and* runtime (CLI on PATH, uv, lingering; repo:, control plane
registered, dashboard built; gateway/api running + listening, specs
generated; and — under tls=acme — DNS-plugin Caddy, provider token,
:443 bind; tunnel config for public services) and, for anything not
green, prints the exact next command. Exit 0 when nothing failed
(warnings allowed), 1 otherwise, so it doubles as a scriptable smoke
test after install/deploy. Agents can lean on it the same way they use
`castle tool list`.

Docs — the quick start now leads with prerequisites and one command
(install.sh installs the CLI + registers the control plane, so the old
manual `uv tool install` step is gone), adds a `castle doctor` verify
step, and gains an "exposure ladder" table framing the three rungs
(localhost → LAN HTTPS → public) that link the deep DNS/TLS/tunnel docs.
install.sh's closing summary and the AGENTS.md CLI reference mention
doctor too.
2026-07-02 10:07:58 -07:00

298 lines
13 KiB
Markdown

# AGENTS.md — Castle
You are working in **Castle**, a personal software platform. Castle is a
monorepo of independent programs managed by the `castle` CLI. From this directory
you can **manage all the software on this box from source** — create programs,
deploy them as services, jobs, tools, or static frontends, route them through the
gateway, expose them over TLS or a public tunnel, and coordinate across nodes.
This file is the canonical, agent-agnostic guide. For exhaustive detail every
section links to a doc under `docs/`. Read those before non-trivial changes.
---
## 1. Mental model — two layers
Castle splits every piece of software into **what it is** and **how it runs here**:
- **`programs/<name>.yaml`** — the software *catalog*: source, stack, build,
system dependencies. "What software exists."
- **`deployments/<name>.yaml`** — how a program is *realized on this node*.
Discriminated on **`manager`**: `systemd` | `caddy` | `path` | `none`.
The human-facing **kind** is **derived** from the manager (+ `schedule`), never
stored:
| manager | + schedule? | derived **kind** | what it is |
|---------|-------------|------------------|------------|
| `systemd` | no | **service** | a long-running daemon |
| `systemd` | yes | **job** | a scheduled task (`.timer`) |
| `path` | — | **tool** | a CLI installed on your `PATH` |
| `caddy` | — | **static** | a built frontend served by the gateway |
| `none` | — | **reference** | an external service on another node |
A program may have **no** deployment (just source you develop), or one/more
deployments. Global settings live in **`castle.yaml`** (`gateway`, `repo`,
`agents`). Config root defaults to `~/.castle/`.
**Prime directive:** regular programs must **never depend on castle**. They take
standard config (data dir, port, URLs) via **env vars**; only castle's own
programs (CLI, gateway, api) know castle internals. When you scaffold or adopt a
program, wire it with env vars — not castle imports.
→ Full reference: **`docs/registry.md`** (castle.yaml structure, every field,
manifest models, lifecycle). Architecture rationale: **`docs/design.md`**.
---
## 2. The `castle` CLI
Resource-first: operations live under the resource they act on. Names can collide
across resource types, so the resource is explicit.
```bash
# Programs — the software catalog
castle program list [--kind service] [--stack python-cli] [--json]
castle program info <name> [--json]
castle program create <name> [--stack ...] [--description ...] # scaffold NEW code
castle program add <path|git-url> [--name ...] # adopt EXISTING repo
castle program clone [name] # provision repo: source
castle program delete <name> [--source] [-y]
castle program run <name> [args...] # declared run command
castle program install|uninstall [name] # activate tools/statics
castle program build|test|lint|format|type-check|check [name] # dev verbs
# Services — daemons (manager: systemd, no schedule)
castle service list|info <name> [--json]
castle service create <name> [--program P] [--port N] [--health ...] [--launcher ...]
castle service deploy <name> # generate unit + gateway route
castle service enable|disable <name> # systemd enable/disable (+ boot)
castle service start|stop|restart <name>
castle service logs <name> [-f] [-n 50]
# Jobs — scheduled tasks (manager: systemd + schedule). Same verbs; create takes --schedule
castle job create <name> [--program P] --schedule "0 2 * * *" [--launcher ...]
castle job <list|info|delete|deploy|enable|disable|start|stop|restart|logs> ...
# Tools — CLIs on PATH (manager: path)
castle tool list [--json] # each tool's executable + description + install state
castle tool info <name> [--json]
castle tool install|uninstall <name>
# Platform-wide
castle list [--kind ...] [--stack ...] [--json] # all deployments
castle status # unified health/status
castle doctor # diagnose setup + runtime, with fix hints
castle deploy [name] # apply config → units + Caddyfile
castle start | stop | restart # all services (+ gateway)
castle gateway start|stop|reload|status # the Caddy gateway
```
`castle service`/`job`/`tool` are **views** over the one deployment set, filtered
by derived kind. Bringing everything online is the two honest steps
**`castle deploy && castle start`** (apply config, then start).
**Dev verbs resolve per-program:** a declared `commands:` entry (or `build:`)
overrides the program's stack default, else the stack handler, else the verb is
unavailable — so a wired-in repo with **no stack** works if it declares its
commands. All projects use **uv** (Python) / **pnpm** (frontends).
---
## 3. Recipes
### Create a new service (HTTP daemon)
```bash
castle program create my-service --stack python-fastapi --description "Does X"
cd /data/repos/my-service && uv sync # implement it
castle program test my-service
castle service create my-service --program my-service --port 9001
castle service deploy my-service && castle service enable my-service
castle gateway reload
```
The service reads its port/data dir from env vars that `deployments/my-service.yaml`
maps via placeholders (see §6). Stack guide: **`docs/stacks/python-fastapi.md`**.
### Create a CLI tool
```bash
castle program create my-tool --stack python-cli --description "Does Y"
cd /data/repos/my-tool && uv sync
castle tool install my-tool # uv tool install → on PATH
```
`castle tool list --json` is the machine-readable tool catalog (each tool's real
**executable**, which may differ from the program name). Stack:
**`docs/stacks/python-cli.md`**.
### Create a scheduled job
A job is a `manager: systemd` deployment with a `schedule` (cron). Generates a
`.service` (Type=oneshot) + a `.timer`.
```bash
castle job create nightly --program my-tool --schedule "0 2 * * *" --launcher command
castle job deploy nightly && castle job enable nightly
```
### Create a static frontend
```bash
# scaffold a Vite/React app under /data/repos/my-frontend (see docs/stacks/react-vite.md)
castle program build my-frontend # produces dist/
# deployments/my-frontend.yaml → manager: caddy, root: dist
castle deploy && castle gateway reload # served at my-frontend.<domain>
```
The gateway serves the build **in place** from `<source>/<root>` — no copy, no
Node process. Stack: **`docs/stacks/react-vite.md`**. Database-backed apps on the
shared Supabase substrate: **`docs/stacks/supabase.md`**.
### Adopt an existing repo (no stack needed)
```bash
castle program add ~/projects/some-rust-tool # local path
castle program add https://github.com/me/widget.git --name widget
```
Castle detects dev-verb commands (pyproject→uv/ruff/pytest, Cargo.toml→cargo, …)
or you declare them under `commands:` in `programs/<name>.yaml`.
---
## 4. The gateway — routing & exposure
The **Caddy gateway** (port 9000) is the single ingress. It's both a reverse
proxy (to local services) and a static file server (for built frontends). It maps
a public **address** (always a subdomain, `<name>.<domain>`) to a **target**:
| target kind | is | declared by |
|-------------|----|-------------|
| **proxy** | a local service on a port | a service's `proxy: true` |
| **static** | a built frontend's `dist/` | a `manager: caddy` deployment's `root:` |
| **remote** | a service on another node | mesh discovery |
Exposure is a **checkbox** on a service:
```yaml
proxy: true # expose at <service-name>.<gateway.domain>
public: true # ALSO expose to the internet via Cloudflare tunnel (requires proxy)
```
- `proxy: false`/omitted → reachable only at its own `host:port`.
- The subdomain is always the **service name** (rename the service to change it).
- There are **no path-prefix routes** — a whole subdomain maps to the backend
root, so root-relative assets and `window.location` WebSocket URLs just work.
Inspect routes: `castle gateway status` (or `GET /gateway`). Regenerate + reload:
`castle gateway reload`. → Field-level detail: **`docs/registry.md`**.
---
## 5. DNS & TLS — making names resolve and be trusted
Two orthogonal questions for `https://foo.<domain>/` to work from a LAN browser:
**resolve** (DNS) and **trust** (TLS). Castle doesn't run DNS — you add one
**wildcard** record on the LAN's DNS server (usually the router):
`address=/<domain>/<node-ip>` (dnsmasq) pinned with a DHCP reservation.
`gateway.tls` in `castle.yaml` picks the trust mode:
| `gateway.tls` | serves | client setup | when |
|---------------|--------|--------------|------|
| `off` *(default)* | plain HTTP on `:9000` | none | no HTTPS needed / no domain |
| `acme` | **real Let's Encrypt wildcard** `*.<domain>` via DNS-01 | **nothing** | you own a domain; any device |
`acme` gets a publicly-trusted cert with **no CA to install**, while services stay
**internal-only** (DNS-01 writes a TXT to the public zone; only LAN DNS resolves
the names — the public zone has no A records). HTTPS also unlocks **secure
context** (`crypto.subtle`, service workers), which plain-HTTP LAN hosts lack.
`acme` operational prerequisites (castle can't do these for you):
- **DNS-plugin Caddy** at `/usr/local/bin/caddy``./install.sh --with-dns-plugin=cloudflare`.
- **Provider token** stored as a secret and mapped into the gateway service env
(`CLOUDFLARE_API_TOKEN`); `castle deploy` warns if missing.
- **Bind :443/:80** — lower the floor once: `net.ipv4.ip_unprivileged_port_start=80`
in `/etc/sysctl.d/` (beats `setcap`, which `NoNewPrivileges` would void).
- **Stage first**: `CASTLE_ACME_STAGING=1` at deploy, verify issuance, then unset
and redeploy for a production cert.
→ Full conceptual + step-by-step guide: **`docs/dns-and-tls.md`**. Read the actual
values for *this* node in `~/.castle/castle.yaml` (`gateway.domain`, `tls`, etc.).
---
## 6. Environment, secrets, data, placeholders
`defaults.env` in a deployment is the **single explicit source** of the env a
service/job runs with — castle injects nothing implicitly. Map the vars your
program reads to castle's computed values with placeholders:
```yaml
expose: { http: { internal: { port: 9001 }, health_path: /health } }
defaults:
env:
MY_SERVICE_PORT: ${port} # = expose.http.internal.port
MY_SERVICE_DATA_DIR: ${data_dir} # = $CASTLE_DATA_DIR/<name>
PUBLIC_URL: ${public_url} # gateway origin (CORS/allowlists)
API_KEY: ${secret:MY_API_KEY} # reads ~/.castle/secrets/MY_API_KEY
```
| placeholder | expands to |
|-------------|-----------|
| `${port}` | the service's `expose.http.internal.port` |
| `${data_dir}` | `$CASTLE_DATA_DIR/<name>` (default `/data/castle/<name>`) |
| `${name}` | the deployment name |
| `${public_url}` | `https://<name>.<domain>` under acme, else `http://localhost:<port>` |
| `${secret:NAME}` | contents of `~/.castle/secrets/NAME` (mode 700) |
**Never** put secrets in `castle.yaml` or project dirs — use `${secret:…}`.
Roots: **`CASTLE_HOME`** (config/code/artifacts/secrets, default `~/.castle`) and
**`CASTLE_DATA_DIR`** (program data, default `/data/castle`) — both env-overridable.
---
## 7. Public exposure — Cloudflare tunnel
`public: true` (requires `proxy: true`) projects a service to the internet at
`<name>.<gateway.public_domain>` (a **separate** zone, so internal subdomain names
stay out of public DNS). `castle deploy` generates the cloudflared ingress from the
set of public services. Needs `gateway.public_domain` + `gateway.tunnel_id` set and
the `castle-tunnel` service running. → One-time setup: **`docs/tunnel-setup.md`**.
Routing only moves bytes — it does **not** supply a backend's own auth. Do not make
a service public unless it authenticates or is meant to be open.
---
## 8. Mesh — multi-node coordination (opt-in)
Disabled by default. Enable via env on `castle-api`:
`CASTLE_API_MQTT_ENABLED=true` (+ `_MQTT_HOST`/`_PORT`), `CASTLE_API_MDNS_ENABLED=true`.
Nodes then advertise/discover over MQTT (Mosquitto, `castle-mqtt`) + mDNS; remote
deployments surface as `manager: none` **reference** kinds. Inspect:
`GET /mesh/status`, `GET /nodes`. Modules: `castle_api.mesh`, `.mqtt_client`, `.mdns`.
---
## 9. Where to read more
| Topic | Doc |
|-------|-----|
| Registry model, `castle.yaml`, every field, lifecycle | **`docs/registry.md`** |
| Why castle is shaped this way | **`docs/design.md`** |
| DNS resolution + the two TLS modes, acme recipe | **`docs/dns-and-tls.md`** |
| Public exposure (cloudflared) one-time setup | **`docs/tunnel-setup.md`** |
| Writing FastAPI services | **`docs/stacks/python-fastapi.md`** |
| Writing CLI tools | **`docs/stacks/python-cli.md`** |
| Writing React/Vite frontends | **`docs/stacks/react-vite.md`** |
| Database-backed apps (shared Supabase) | **`docs/stacks/supabase.md`** |
| **Developing Castle itself** (CLI/core/api/app, key files, endpoints) | **`docs/developing-castle.md`** |
Castle's own programs live in this repo (`source: repo:<name>` → cli, core,
castle-api, app). Your programs live under `/data/repos/<name>/` with an absolute
`source:`. When in doubt about *this* node's actual config, read
`~/.castle/castle.yaml` and `castle status`.