A car can now be imported straight from the account its owner already has
with the manufacturer, and every reading that service exposes shows up on
the car's own tab. MyToyota is the first provider.
API Server — internal/api/vehicleproviders.go adds a generic layer over a
plugin that can enumerate vehicles and read data about them. Adding the
next manufacturer is one vehicleSource adapter plus a line in
vehicleSources(): no new endpoints, no Web App changes.
GET /api/vehicle-providers providers + connect state
GET /api/vehicle-providers/{p}/vehicles the caller's vehicles
POST /api/vehicle-providers/{p}/import create a car from one
GET /api/cars/{id}/provider live snapshot for the tab
POST /api/cars/{id}/provider link / unlink a car
POST /api/cars/{id}/provider/sync re-apply provider data
Two properties shape it. Credentials are always the caller's own, resolved
through the same global -> org -> user cascade as the integration settings,
so a shared car shows provider data only when that vehicle is on the
viewer's account — the owner's credentials are never borrowed. And upstream
shapes are not modelled: these are unofficial APIs, so the layer searches
payloads by key name for the readings worth promoting (odometer, fuel,
battery, range) and flattens the rest to dotted key/value pairs alongside
the raw JSON. A renamed field costs one blank value, not a broken page.
The Toyota gate and its wording now live in toyotaSource, so the older
/api/integrations/toyota/vehicles endpoint and the new ones cannot drift.
Manager.InvokeBatchWith shares one transient plugin instance across a batch
of actions. The tab pulls seven capabilities, and InvokeWith builds a fresh
instance per call — which for a connector that authenticates lazily means a
fresh OAuth login per call. Batching logs in once.
cars gains provider + provider_vehicle_id (schema.go and
setup-pocketbase.mjs both). carPayload deliberately omits them, so an
ordinary car edit can neither reassign the car nor break its link;
carProviderPayload writes the link on its own.
Web App — Dashboard grows an "import from service" button beside "add car",
shown only once an account is connected, opening CarImportModal: pick the
vehicle, choose what to pull (identity / fuel type / dates / odometer, all
on by default), import. ProviderPanel becomes the car's first tab, ahead of
Information, labelled with the service: headline readings, the vehicle
record, one card per capability with its raw response, and an offer to take
the provider's odometer when it is ahead of the stored one. On an unlinked
car the tab instead offers to link it, VIN-matched. Info stays the default
selection — landing on the provider tab would fire a login on every car
page view. Full en/pl/da translations.
Tests cover the payload walking, Toyota normalization, import-selection
defaults, and — through the real handler chain against a stand-in
PocketBase — that every route is registered and that a closed gate is soft
on a listing (200 + a reason the UI can show) but hard on a write (4xx, so
a caller cannot read the reply as a created car).
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
12 KiB
Building DriverVault Plugins
A plugin integrates an external third-party service (vehicle data, parts catalogs, notifications, file storage, …) behind one uniform contract. There are two kinds:
| Kind | Written as | Added by | Rebuild? | Use when |
|---|---|---|---|---|
| built-in | Go code in this repo | a rebuild | yes | first-party, high-trust, type-safe connectors |
| external | any HTTP service | registering a URL at runtime | no | third-party / less-trusted / independently deployed |
Both implement the same behaviour; the server treats them identically. Enable
state and per-plugin config persist to plugins.json and load on boot. Every
plugin is managed by a superadmin from the panel (/) or the
/api/admin/plugins* API.
The contract
All plugins satisfy the Go interface in plugin.go:
type Plugin interface {
Descriptor() Descriptor
Init(ctx context.Context, config map[string]string) error
HealthCheck(ctx context.Context) Health
Invoke(ctx context.Context, action string, params json.RawMessage) (json.RawMessage, error)
Shutdown(ctx context.Context) error
}
Descriptor— static metadata (name, provider, version, capabilities, auth type, config fields). Drives the panel UI.Init— called with the resolved config (secrets included) whenever the plugin is enabled or its config changes. Prepare clients/tokens here.HealthCheck— probe the upstream and classify:Health{Status, LatencyMs, Detail}whereStatusisStatusOK/StatusDegraded/StatusDown.Invoke— run a named capability. There is no generic invoke endpoint yet, but this is live: the integration routes and the vehicle-provider layer call it throughManager.InvokeWith/InvokeBatchWith, so implement it properly. It must be safe for concurrent use — the live instance is shared across requests, andInvokeBatchWithruns a batch of actions in parallel on one instance.Shutdown— release resources.
Descriptor & config fields
Descriptor{
Name: "acme", // unique id, [a-z0-9-]
Provider: "ACME Corp", // human label
Version: "1.0.0",
Kind: plugins.KindBuiltin, // or KindExternal
Capabilities: []plugins.Capability{
{ID: "widgets.list", Method: "GET", Endpoint: "/widgets", Description: "List widgets."},
},
AuthType: plugins.AuthAPIKey, // None | APIKey | Basic | OAuth2 | Webhook (metadata only)
ConfigFields: []plugins.ConfigField{
{Key: "apiKey", Label: "API key", Type: "password", Required: true, Secret: true,
Help: "Found under ACME → Settings → API."},
{Key: "region", Label: "Region", Type: "text", Help: "e.g. eu-west-1"},
},
}
ConfigField.Type is "text", "password", or "number" (form input hint).
Set Secret: true for credentials — the server never echoes them back in
clear; the panel shows a mask (••••••••), and on save a field left at the mask
keeps its stored value (so operators don't retype secrets). Required: true
fields must be non-empty before the plugin can be enabled.
Building a built-in plugin
- Create a package under
internal/plugins/builtin/<name>/. - Implement
Pluginand register it ininit(). - Blank-import your package from
builtin/builtin.go. - Rebuild the server.
Minimal example — internal/plugins/builtin/acme/acme.go
package acme
import (
"context"
"encoding/json"
"net/http"
"strings"
"time"
"drivervault/apiserver/internal/plugins"
)
func init() {
plugins.Register("acme", func() plugins.Plugin { return &Plugin{} })
}
type Plugin struct {
apiKey string
region string
client *http.Client
}
func (p *Plugin) Descriptor() plugins.Descriptor {
return plugins.Descriptor{
Name: "acme", Provider: "ACME Corp", Version: "1.0.0",
Kind: plugins.KindBuiltin, AuthType: plugins.AuthAPIKey,
Capabilities: []plugins.Capability{
{ID: "widgets.list", Method: "GET", Endpoint: "/widgets", Description: "List widgets."},
},
ConfigFields: []plugins.ConfigField{
{Key: "apiKey", Label: "API key", Type: "password", Required: true, Secret: true},
{Key: "region", Label: "Region", Type: "text"},
},
}
}
func (p *Plugin) Init(_ context.Context, config map[string]string) error {
p.apiKey = strings.TrimSpace(config["apiKey"])
p.region = strings.TrimSpace(config["region"])
p.client = &http.Client{Timeout: 10 * time.Second}
return nil
}
func (p *Plugin) HealthCheck(ctx context.Context) plugins.Health {
start := time.Now()
req, _ := http.NewRequestWithContext(ctx, http.MethodGet, "https://api.acme.example/ping", nil)
req.Header.Set("Authorization", "Bearer "+p.apiKey)
resp, err := p.client.Do(req)
lat := time.Since(start).Milliseconds()
if err != nil {
return plugins.Health{Status: plugins.StatusDown, LatencyMs: lat, Detail: err.Error()}
}
defer resp.Body.Close()
if resp.StatusCode >= 200 && resp.StatusCode < 300 {
return plugins.Health{Status: plugins.StatusOK, LatencyMs: lat, Detail: "reachable"}
}
return plugins.Health{Status: plugins.StatusDown, LatencyMs: lat, Detail: "HTTP " + resp.Status}
}
func (p *Plugin) Invoke(ctx context.Context, action string, params json.RawMessage) (json.RawMessage, error) {
// Implement your capabilities; return normalized JSON. Must be safe for
// concurrent use — one instance serves many requests.
return json.RawMessage(`{"ok":true}`), nil
}
func (p *Plugin) Shutdown(context.Context) error { return nil }
Register it for compilation — internal/plugins/builtin/builtin.go
import (
_ "drivervault/apiserver/internal/plugins/builtin/acme"
)
Rebuild
cd "API Server"
go build -o bin/api-server.exe ./cmd/server
Restart the server. The plugin appears in the panel's Plugins card, disabled by default.
DriverVault ships two built-in connectors today —
toyota(Toyota Connected / MyToyota, read-only vehicle data) andanker-solix(Anker Solix V1 EV charger) — both blank-imported frombuiltin/builtin.go. The external kind below needs no rebuild and is the easier place to start a new one.
Building an external plugin (no rebuild)
An external plugin is any HTTP service you host (Go recommended, but any language works). You register its base URL at runtime; the server drives it over a tiny JSON contract.
The HTTP contract
| Method & path | Purpose | Response |
|---|---|---|
GET {base}/manifest |
describe the plugin (optional) | {provider, version, capabilities, authType, configFields} |
GET {base}/health |
health probe (required) | 2xx = healthy; optional body {status, detail} |
POST {base}/invoke |
run a capability (optional; unused in v1) | {action, params} in → arbitrary JSON out |
Health rules the server applies: transport error or 5xx → down; 2xx → ok;
anything else → degraded. An explicit {"status":"ok|degraded|down","detail":"…"}
body overrides the status-code heuristic. Bodies are size-limited (health 64 KiB,
manifest 1 MiB).
Minimal example — a Go plugin service
package main
import (
"encoding/json"
"net/http"
)
func main() {
http.HandleFunc("/manifest", func(w http.ResponseWriter, r *http.Request) {
json.NewEncoder(w).Encode(map[string]any{
"provider": "ACME Cloud",
"version": "2.1.0",
"authType": "apikey",
"capabilities": []map[string]any{
{"id": "widgets.list", "method": "GET", "endpoint": "/widgets", "description": "List widgets."},
}, // a plain []string{"widgets.list"} is also accepted
"configFields": []map[string]any{
{"key": "apiKey", "label": "API key", "type": "password", "required": true, "secret": true},
},
})
})
http.HandleFunc("/health", func(w http.ResponseWriter, r *http.Request) {
json.NewEncoder(w).Encode(map[string]any{"status": "ok", "detail": "acme cloud reachable"})
})
http.HandleFunc("/invoke", func(w http.ResponseWriter, r *http.Request) {
var in struct {
Action string `json:"action"`
Params json.RawMessage `json:"params"`
}
json.NewDecoder(r.Body).Decode(&in)
json.NewEncoder(w).Encode(map[string]any{"ok": true, "action": in.Action})
})
http.ListenAndServe(":9100", nil)
}
Register it
From the panel's Plugins card → Register external plugin (name + base URL), or via the API:
curl -X POST http://localhost:8080/api/admin/plugins \
-H "Authorization: $SUPERADMIN_TOKEN" -H "Content-Type: application/json" \
-d '{"name":"acme-cloud","baseURL":"http://127.0.0.1:9100","provider":"ACME Cloud"}'
It starts disabled; enable it and run a health check from the panel. Because it runs as its own process/container, an external plugin is also the sandboxing path for less-trusted integrations.
Lifecycle, config & secrets
- Enable/disable and config persist to
plugins.json(gitignored; override the path withPLUGINS_FILE). Enabling callsInit; disabling callsShutdown. - Secrets (
Secret: truefields) are returned masked. On save, a field still equal to the mask keeps its stored value; send a new value to change it, or an empty string to clear it. - Required fields are validated when enabling — enabling fails with a clear error if one is blank.
- If
Initfails (e.g. bad credentials), the state is still saved and the API returns the plugin plus awarning; fix the config and re-save.
Managing plugins (superadmin API)
All endpoints require a superadmin bearer token (Authorization: <token> from
POST /api/auth/login). See the panel's Management API reference too.
| Method | Path | Body | Purpose |
|---|---|---|---|
GET |
/api/admin/plugins |
— | list all plugins + state + last health |
GET |
/api/admin/plugins/{name} |
— | one plugin |
PUT |
/api/admin/plugins/{name} |
{enabled?, config?} |
enable/disable + configure |
POST |
/api/admin/plugins |
{name, baseURL, provider?} |
register an external plugin |
DELETE |
/api/admin/plugins/{name} |
— | remove an external plugin (built-ins only disable) |
POST |
/api/admin/plugins/{name}/health |
— | run a health check now |
Testing your plugin
- Build + restart (built-in) or start your service (external) and register it.
GET /api/admin/plugins→ confirm your descriptor, config fields, capabilities.PUT /api/admin/plugins/{name} {"enabled":true, "config":{…}}→ enable with config.POST /api/admin/plugins/{name}/health→ confirm the live probe classifies correctly.- Restart the server → confirm state reloads from
plugins.json.
A Go unit test can exercise a built-in directly:
p := &acme.Plugin{}
_ = p.Init(context.Background(), map[string]string{"apiKey": "test"})
if h := p.HealthCheck(context.Background()); h.Status == "" {
t.Fatal("expected a health status")
}
Not yet implemented (roadmap)
The contract is shaped for these; see doc.go:
- Generic invocation API — an endpoint to call any plugin's
Invokefrom a client, with a normalized request/response envelope. The purpose-built callers exist (Manager.InvokeWith/InvokeBatchWith, driven by the integration routes andinternal/api/vehicleproviders.go); what is missing is the generic route. - Resilience — retry/backoff, circuit breaker, per-plugin latency/error metrics.
- Per-tenant credentials for arbitrary plugins — the two built-in connectors
already have them, through the hand-written
/api/integrations/toyotaand/api/integrations/anker-solixroutes and their superadmin → org admin → user config cascade. What is missing is the generic version: per-org/per-user config keyed offConfigFields, so a newly registered plugin gets the same treatment without new endpoints. - Audit logging of plugin access. (Charger control commands are already
audited to the
control_auditcollection; this is the wider plugin case.)
Until the generic invocation API lands, Invoke is reachable only through the
purpose-built routes: the two integrations' own endpoints, and the vehicle-provider
layer that builds a car from a manufacturer account and feeds the car's provider
tab (see internal/api/vehicleproviders.go).