carterkit
Build and drive CAR-TER layouts from Python.
The control docs are the library. Every control's schema, fields, and examples are parsed at runtime from the ControlDocs markdown bundled inside the package — the exact same docs the CAR-TER app renders — so the catalog never drifts from the definitions.
pip install carterkit
Explore the controls (zero config)
import carterkit
carterkit.controls() # {type: schema} for every placeable control
carterkit.doc("gauge") # full parsed doc: fields, themeFields, examples
print(carterkit.doc_markdown("gauge")) # the rendered documentation prose
carterkit.examples("button") # documented example snippets
Build a layout
Controls are methods on the layout, ids are positional, tabs and groups are context managers, and bindings fold into kwargs. Each control method returns a handle you can use as a binding target or patch later. Unknown control types and bad enum values raise instead of silently shipping a broken layout:
from carterkit import Layout
with Layout("Dashboard", cols=4, rows=4) as ui:
ui.connect("ws://192.168.1.50:8765", channel="home")
with ui.tab("Main", icon="gauge"):
cpu = ui.gauge("cpu", label="CPU", min=0, max=100, span=(2, 2),
listen="cpu", when={"msg_type": "metrics"})
ui.status_light("warn", visible=cpu > 90) # handle → visibility condition
ui.button("refresh", label="Refresh", send="refresh")
print(ui.findings()) # schema + grid + binding lint against the bundled catalog
ui.save("dashboard.json") # the composed layout, ready to push/load
Binding sugar: listen=/when=/event= build a sync, and send=/payload= build
an action — send="refresh" compiles to the one shape the relay actually forwards
(broadcast_request tagged msg_type: "refresh"; Hub.on demuxes it back for you).
Pass sync=[...]/action={...} (via carterkit.bind) for anything fancier. A handle
comparison (cpu > 90) becomes a real visibility condition; ==/!= stay normal
Python, so use .eq()/.neq(). help(carterkit.build.gauge) prints any control's
documentation, straight from the bundled docs.
Naming: multi-word controls are
snake_caseasLayoutmethods (ui.status_light(...),ui.log_console(...),ui.progress_ring(...)) butcamelCaseas the JSONtypeand ascarterkit.build.*functions ("statusLight",build.logConsole). Single-word controls (gauge,button) look the same either way. Grid size (cols/rows) set onLayout(...)is the default for every tab; override it per tab withui.tab("Name", rows=…).
Beyond MeshSocket — sources, sensors, and app-side features
A layout can drive itself off protocols you already run, or the phone's own hardware, with no server code — the app speaks them directly:
ui.source_mqtt("broker", "mqtt://192.168.1.10:1883") # declare a broker
ui.source_http("api", "http://192.168.1.5:8080", interval=5)
with ui.tab("Home", icon="house"):
ui.gauge("temp", label="Temp", min=0, max=40, sync=[bind.mqtt("home/temp")])
ui.toggle("fan", label="Fan", sync=[bind.mqtt("home/fan/state")],
action=bind.mqtt_publish("home/fan/set"))
ui.gauge("cpu", label="CPU", sync=[bind.http("/status", interval=5, valuePath="cpu")])
ui.compass("hdg", label="Heading", sensor="heading") # device sensor, no backend
bind.mqtt / bind.mqtt_publish / bind.http / bind.http_request / bind.sensor build
the sync/action dicts; the validator checks a source: names a declared source and that
mqtt/http bindings carry a topic/path. These are marked app-direct in the contract, so a
generated bridge.py never tries to serve them.
Author the rest of the app's surface from Python too:
ui.publisher("heading", interval=0.25) # stream a sensor to a hub/server
ui.alert(event="broadcast", value_path="temp", operator="gt", value=30,
title="Too hot", body="Greenhouse over 30°C") # relay-watcher push rule
ui.glance(hero="temp", slots=["fan"], live_activity=True) # widgets / Live Activity
ui.poll_group("tick", event="broadcast_request", interval=10, payload={"msg_type": "poll"})
ui.appearance(color_scheme="dark", show_header=True)
ui.dynamic_tab("inject_tab") # runtime-injected tab
ui.state(sync=True, authority="hub", acks=True) # device-held shared state + acks
Prefer a declarative style? A class veneer compiles to the same layout — ids come from attribute names, tabs/groups are nested classes (great for fixed dashboards; the flat builder reads better for generated ones):
from carterkit.declare import Screen, Tab, Connect, Gauge, Button, StatusLight
class Dashboard(Screen, cols=4, rows=4):
relay = Connect("ws://192.168.1.50:8765", channel="home")
class Main(Tab, icon="gauge"):
cpu = Gauge(label="CPU", min=0, max=100, span=(2, 2), listen="cpu")
warn = StatusLight(visible=cpu > 90)
refresh = Button(label="Refresh", send="refresh")
Dashboard.save("dashboard.json")
Dynamic groups
Generate controls in for/if loops (auto-placed in the group's own grid), or mark a
group dynamic="event" and replace its children live at runtime. Build that replacement
payload with Fragment, then lint it against the broadcasts your server actually emits —
catching events that never arrive, missing children arrays, and off-grid/invalid
injected controls before they ship:
import carterkit
from carterkit import Fragment
ui.group("Now Playing", span=(3, 4), cols=4, rows=3, dynamic="player_state")
frag = Fragment(cols=4, rows=3)
frag.label("title", text="Song", span=(1, 4))
frag.button("play", label="Play", send="play")
# your server broadcasts frag.payload("player_state") == {"msg_type": ..., "children": [...]}
print(carterkit.format_findings(
carterkit.lint_dynamic_traffic(ui.layout, [frag.payload("player_state")])))
Prefer surgical edits? LayoutBuffer gives add_control / update_control / move_control
over a held draft; lay.buffer exposes it.
infer.build_layout(payload) generates a wired layout from a sample telemetry dict;
codegen.generate_service_stub(layout) emits a runnable Hub-based server skeleton;
theming.theme_for(...) and tune.tune_gauge(...) round out the authoring tools.
CLI
carterkit catalog # list every control type
carterkit doc gauge # print a control's documentation
carterkit examples button # list a control's examples (--name to print one)
carterkit validate layout.json # lint a layout (exit 1 on errors)
carterkit gen layout.json # generate a runnable Hub server stub
carterkit relay --port 8765 # run the bundled MeshSocket relay
Drive the layout you just built
The layout already declares every control's wire contract, so the same object that
authored the UI also drives it — ctrl.push(value) derives the broadcast from the
control's sync binding, and @ctrl.on derives the demux from its action:
import asyncio
from carterkit import Layout
with Layout("Thermostat") as ui:
with ui.tab("Main"):
temp = ui.gauge("temp", label="Temp", min=0, max=40,
listen="temp", when={"msg_type": "climate"})
target = ui.slider("target", min=10, max=30, send="set_target")
async def main():
async with ui.serve() as hub: # zero config: embedded LocalRelay
print("pair the app with:", hub.qr_json())
await hub.wait_for_device()
await hub.push_layout() # routed apply-layout; echoes what rendered
@target.on
async def _(data):
heater.set(data["value"])
while True:
await temp.push(read_temp())
await asyncio.sleep(2)
asyncio.run(main())
The same surface works cross-process off the saved JSON — the layout file is the
contract: Hub("dashboard.json").push("temp", 21.5). Dynamic groups fill with
hub.fill(group, fragment); the hub answers late joiners with the last pushed values
(control-state authority) by default.
One connection story
Connection.parse(...) accepts every connection artifact in the ecosystem, and
ui.connect(...) / ui.serve(...) / Hub(...) all take it:
| You have | Pass | Works |
|---|---|---|
| nothing (LAN dev) | ui.serve() |
embedded LocalRelay, QR pairing |
| a self-hosted relay | "ws://192.168.1.50:8765" (+ token=) |
symmetric: same config for app & hub |
| Connect+ | the Add Device JSON from the app (Members → Add Device) | token self-refresh + room E2EE automatic |
The asymmetry to know: self-hosted is symmetric (one URL + shared key both sides); on Connect+ the app joins with its own account while the hub holds the per-device credential — which is the hub's identity, so it is never embedded into a layout.
CarterClient remains the lower-level client (on/broadcast/request).
End-to-end encryption (ChaCha20-Poly1305 + per-session salt) is transparent when an
e2ee_key is present. Send a push to every device on a Connect+ account with
CarterClient.notify(...) or the stdlib-only carterkit.notify_http(...).
Built on
meshsocket — the WebSocket mesh transport.
The ControlDocs are vendored from the CAR-TER app repo; refresh them with
scripts/sync-controldocs.sh.
Release files for carterkit 0.10.0
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| File | Interpreter | ABI | Platform | Reset |
|---|---|---|---|---|
| carterkit-0.10.0-py3-none-any.whl | Python 3 | none | any | Details |
Total release size: 484.3 kB
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