kkqq9320 a5484f746a review: unfold AI Purify into one entity per field
Review feedback on #268. The largest change is that the sensing-mode select
no longer folds two device fields into one control.

periodicSensingActivationState and autoExeState are independent knobs, and the
appliance presents them that way -- its own UI has an on/off for AI Purify
separately from the three mode choices. Folding them lost two things: a
configured action was invisible while the feature was off, and no select
option could toggle the feature without also overwriting the action. The
switch was not the duplicate it looked like.

So the switch now owns periodicSensingActivationState alone, and the select
owns autoExeState alone. That resolves the hardcoded-options finding at the
source rather than working around it: the select reads supportedAutoExeState
via options_field -- the same shape SOUND_MODE already uses for
supportedModes -- instead of carrying a typed-in tuple, so a board advertising
a fourth action is accepted on both the options list and the write path.
_sensing_mode, _sensing_mode_write and _SENSING_MODE_BODIES are all gone with
the fold.

Option slugs are now the advertised values lowercased (off / airpurify /
alarm) rather than invented names. The catalog carries the labels, so the two
'off's stay distinguishable in the UI: the switch's means the unit isn't
sampling, the select's means it samples and doesn't act on the reading -- what
the app calls "sensing only".

Also from the review:

  * _interval_minutes checks `is None` so a reported 0 stays 0, and native_min
    drops to 0 since sub-30s values round there. oven.cook_time and
    operational's delay hours are the precedent -- both convert a device time
    value and floor at zero. The Number-rather-than-Select choice is now
    stated in the write helper: the app offers three fixed intervals, but this
    resource advertises no supported-values or range field (supportedAutoExeState
    sits right beside it, so the board does advertise constraints where it has
    them) and it accepted 60 s, six times finer than the app's smallest choice.
  * _skip_time_write no longer splices a malformed half back onto the wire.
    The read side already refuses one it can't parse; the write side now
    zeroes it to match.
  * air_sensing_state and last_air_sensing_level lose enabled_default=False,
    matching range_hood.AIR_LEVEL_CHECK. Hiding two of three read-only keys
    while claiming key parity with that capability -- and leaving the third
    visible -- had no justification behind it.
  * The catalog-parity test drops periodic_air_sensing from its key set: that
    key is a SwitchDesc here and a BinarySensorDesc on the hood, so the two
    live in different platform catalogs and are worded differently. The claim
    now covers only the three read-only sensor keys, where it holds.
  * Tests route through the descriptors (_desc(key).write_fn / .value_fn)
    rather than module-private helpers, matching test_air_monitor_capabilities.

startSensingOnce stays unbound, now explicitly rather than by omission -- the
module comment records it as deferred. It looks like a one-shot "sense now"
button, but this board acknowledges writes it discards, and nothing has
confirmed the side effect yet.

Goldens are untouched: the key set is unchanged, only sensing_mode's value
moves from the folded slug to the raw autoExeState.
2026-08-04 14:20:58 +09:00
2026-08-03 00:16:34 +00:00
2026-07-09 14:02:46 -05:00

LocalThings Logo LocalThings Logo

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GitHub Release hacs validation hassfest tests

LocalThings

A native Home Assistant custom integration for local control of newer-generation Samsung connected appliances. No cloud round-trip. Add a device through HA's normal Settings > Devices & Services flow and it talks CoAP-over-DTLS straight to the appliance on your LAN.

This integration uses the smartthings-local library to handle the low-level DTLS/CoAP communication with devices.

What you get

Adding a device just needs a host IP and your CA credentials in the UI. The integration reads the appliance's identity and picks the matching capability registry on its own, so there's no per-model descriptor to write for a new unit of a type that's already supported.

Credential setup is one-time. The first device you add asks for a CA certificate and key (see Part 2); every device after that reuses the same stored CA and only asks for the host IP, minting its own per-device leaf cert automatically.

Your state stays on your LAN: HA talks to the appliance over a direct DTLS session, and Samsung's cloud sees nothing from this integration. (The appliance itself still maintains its own connection to Samsung; that's firmware behavior on the device side, not something this integration controls.)

Supported appliance types

Type Registry
Air conditioner by_type/airconditioner.py
Air purifier by_type/air_purifier.py
Dehumidifier by_type/dehumidifier.py
Dryer by_type/dryer.py
Oven by_type/oven.py
Microwave by_type/microwave.py
Gas cooktop (read-only burner status) by_type/cooktop.py
Range hood by_type/range_hood.py
Range by_type/range.py
Dishwasher by_type/dishwasher.py
Refrigerator by_type/refrigerator.py
Washer by_type/washer.py
Water purifier by_type/water_purifier.py
Vacuum clean/auto-empty station by_type/vacuum_station.py
Air dresser by_type/air_dresser.py

Each registry composes shared and family-specific Capability objects from registry/capabilities/; those modules document the individual resources/entities in more depth than a README table can stay current with.

Other Tizen RT / DAWIT-family appliances almost certainly speak the same protocol underneath, since the auth path and CoAP primitives are shared across the fleet. Adding a new type means writing a new by_type/<name>.py registry file; it doesn't require reverse-engineering the protocol again. See Adding a new appliance type below.


Part 1: Is your appliance compatible?

# UDP scan for DTLS-CoAP ports
nmap -Pn -sU -p 49152-49160 "$APPLIANCE_IP"
  • Any UDP port in 49152-49160 open|filtered with a DTLS handshake responding: newer firmware (Tizen RT 3.x, DAWIT 3.0+). This is what the integration talks to. Most devices answer on 49154/49155, but some builds bind lower (e.g. 49153). The config flow probes the whole range and auto-detects the live port, so you don't need to know which one your device uses.
  • Only 8888/tcp open (token-based HTTPS): older firmware (roughly 2018-2022). Not supported here.

Part 2: One-time setup, get the AC14K_M CA credentials

The config flow (Part 3) needs a CA certificate and CA private key to mint each device's leaf cert itself. Specifically, it needs the AC14K_M intermediate CA — a cert chain that's been public for years and still ships in current Samsung firmware trust stores. Every Samsung Tizen/RT-OCF appliance trusts identities chained to that CA with full access by default, so a cert signed by it is what lets HA talk to your appliance without Samsung's cloud in the loop. HA doesn't need the device's original cert or key, only something AC14K_M has signed, and it mints that itself once you give it the CA.

This repo doesn't include the needed CA bundle. For an example of how to obtain it, including fetching the AC14K_M cert and key and verifying they pair, see the smartthings-local protocol project's setup_cert.py. However you obtain the CA cert and key, paste their PEM contents into the HA config flow's "CA Certificate (PEM)" and "CA Private Key (PEM)" fields in Part 3. You only need to do this once, since every appliance you add afterward reuses the same stored CA.


Part 3: Add the integration in Home Assistant

  1. Copy custom_components/localthings/ into your HA config's custom_components/ directory. (Or add this repo as a custom repository in HACS — Integration category — and install it from there.)
  2. Restart HA.
  3. Settings > Devices & Services > Add Integration > LocalThings.
  4. First device: paste the appliance's IP, plus the contents of the CA private and public key from Part 2.
  5. The flow sends a DTLS ClientHello to every port in the 49152-49160 range at once and keeps the one that answers -- a real DTLS server identifies itself in about one round trip, and the probe stops there, so nothing is left behind on the appliance. Only that port is then given a real certificate handshake: it fetches the current UUID from Samsung's cloud gateway, mints a leaf cert signed by your CA, and reads the device's identity and /device/0. On success it creates the config entry, already knowing the appliance's serial, model, and type.
  6. Every subsequent device only asks for the host IP. The stored CA credentials are reused, and so is the leaf cert itself -- every appliance accepts the same one -- so adding a second appliance doesn't depend on Samsung's cloud being reachable at all. If a device rejects the reused cert (the UUID behind it does rotate), the flow mints a fresh one and retries by itself.

Entities appear under one HA device per appliance, named for the appliance's type and model. Rename freely: the device is keyed on its serial, not its name.


Part 4: Per-device settings

Each device has its own Configure option in Settings > Devices & Services, under Device settings:

  • Allow writes even when remote control is reported off — by default, LocalThings blocks every write with a clear error whenever a device reports remote control off, rather than letting the device silently reject it. Some devices accept certain writes anyway (e.g. default detergent/softener dosing on a washer) even while reporting remote control off. Only enable this if you've confirmed writes actually work on your device with remote control off — otherwise you trade a clear error for a silent failure.
  • Estimated finish -- minimum change (minutes) — a washer/dryer/dishwasher's finish_time sensor is recomputed from the device's own remaining-time estimate on every poll, which commonly drifts or gets revised by a minute or two between updates. This setting holds finish_time at its last reported value until a new estimate differs by at least this many minutes, cutting down on Home Assistant history/logbook noise from a value that hasn't meaningfully changed. Defaults to 3; set it to 0 to report every computed change.

Development

Docker Compose dev environment

docker compose up -d --build
docker compose logs -f

The Dockerfile builds on the official home-assistant/home-assistant:stable image and pre-installs smartthings-local, so the dependency is present at container start instead of depending on HA's own runtime pip-install step. Re-run with --build whenever the pinned smartthings-local version changes.

docker-compose.yml sets network_mode: host, which is required since DTLS is UDP and won't traverse Docker's bridge NAT to reach LAN appliances, and bind-mounts custom_components/localthings/ read-only into ha_config/custom_components/. Bump custom_components.localthings to debug in ha_config/configuration.yaml for verbose protocol logging.

Tests

python3.13 -m venv .venv          # 3.13 or newer; see below
.venv/bin/pip install -r requirements-dev.txt
.venv/bin/pytest tests/ -q

requirements-dev.txt already pulls in Home Assistant and pytest at matching versions, so there's nothing to install alongside it. Use Python 3.13 or newer: pip resolves the newest pytest-homeassistant-custom-component your interpreter supports, and on 3.12 or older nothing resolves and the install fails outright. CI runs 3.14.

A large suite covering registry composition, discovery, entity descriptors, and golden-file regression against captured device dumps. requirements-dev.txt pins smartthings-local the same way manifest.json does, so tests exercise the real published protocol layer rather than a vendored copy.


Repo layout

custom_components/localthings/
  manifest.json         Requirements (incl. the smartthings-local PyPI dep), version, domain
  __init__.py            async_setup_entry / async_unload_entry
  config_flow.py          ClientHello port probe, UUID fetch, leaf cert minting, identity resolution
  coordinator.py          Polling + push update coordination, stale-state fallback, write dispatch
  observe.py              CoAP OBSERVE (push-mode) support layered on the coordinator
  diagnostics.py           Redacted diagnostics download (device state + coverage metadata)
  const.py                 Domain, config keys, probe ports
  entity.py                Base entity wiring capability registry -> HA entity
  sensor.py / binary_sensor.py / switch.py / number.py / select.py / button.py / time.py / fan.py / climate.py / water_heater.py
                            One module per HA platform
  catalog.py               Reads the shipped translation catalog (which keys/states exist)
  translations/            Config-flow copy + entity name/state translations, one file per
                            language; en.json is the source of truth (no strings.json —
                            Home Assistant never reads one from a custom integration)
  registry/
    registry.py             Builds the global capability registry, validates href collisions
    capability.py           Capability dataclass (href, entities, transforms)
    entities.py             Per-platform entity descriptor dataclasses
    discovery.py            Binds a device's live resources to registered capabilities
    adapter.py               Flattens bound entities into HA-ready state
    identity.py              Reads /oic/p + /oic/d (manufacturer, model, OCF device type)
    redact.py                 Strips account/identity data before diagnostics leave HA
    capabilities/             Shared + per-family Capability definitions (common, airconditioner,
                               cooktop, range_hood, dryer, oven, dishwasher, fridge, washer,
                               laundry, operational, ignored)
    by_type/                  One DeviceRegistry per appliance type, composed from capabilities/
tests/                    Registry composition, discovery, entity descriptors, coordinator/observe
                            behavior, and golden-file regression against captured device dumps
requirements-dev.txt        Test deps, including the smartthings-local package
docker-compose.yml / ha_config/   Local HA dev environment

Reporting a capability gap

If your appliance's type isn't recognized, or it exposes resources this integration doesn't model yet, a Repairs issue appears under Settings > System > Repairs pointing you at Settings > Devices & Services > this device > the menu > Download diagnostics. That download is already redacted of account/network identifiers (Bixby login email, access tokens, device IDs, MAC addresses, serial numbers) before it's generated, so it's safe to attach directly to a new issue using the linked device-support template. This is the fastest way to help add or expand support for hardware the maintainers don't have.


Adding a new appliance type

  1. Get a capture of the appliance's /device/0 response. The easiest way: add the device to HA (type detection failing is fine) and pull its Diagnostics download from Settings > Devices & Services > the device > the menu > Download diagnostics — it already contains a redacted dump of the device's resources.

  2. Reuse existing Capability objects from registry/capabilities/ wherever the resource matches one already declared. Most common.py capabilities (power, kids lock, remote control, alarms, energy/water meters) are shared verbatim across families; add new ones only for resources unique to the new type.

  3. Create registry/by_type/<name>.py with a DeviceRegistry(name=..., capabilities=_build([...])). Use pattern_capabilities instead of capabilities for any resource whose href isn't fixed (for example per-compartment fridge resources); see refrigerator.py for the pattern.

  4. Register it in _REGISTRY_BY_KEY in registry/by_type/__init__.py, then route devices to it by adding the board-family token from their modelNum to _BOARD_TOKEN_TO_KEY — a single row, e.g. 'VSKR': 'vacuum_station'. Tokens are matched whole (the model string is upper-cased and split on any run of non-alphanumerics), so one entry covers every delimiter spelling Samsung uses: TP1X_DA-AC-RAC-01001 and TP2X_RAC_20K both resolve on RAC. Name the specific type, never the board family that contains it — DA-AC- prefixes RAC/WAC/DHM/AIR alike, so a bare AC row would swallow the dehumidifier and the air purifier. If the board is shared across types (washers and dryers both report DA_WM_), add the consumer-model prefix from description to _CONSUMER_PREFIX_TO_KEY instead. If the device omits /information/vs/0 entirely (as the verified NA9300K cooktop does), add a distinctive, conservative resource-signature rule to for_device_by_resources().

    oneUiVersion is deliberately not consulted — see resolve() in that file for why.

  5. Add golden-file coverage in tests/ against a captured /device/0 dump for the new type.

No config-flow changes are needed. Device-type detection and entity wiring are fully driven by the registry.


Known device behavior

Samsung's firmware occasionally drops the DTLS session briefly — this is normal appliance-side behavior, not a bug. The integration reconnects automatically, and from HA's perspective a brief reconnect looks like an entity holding its last value for one poll cycle rather than going unavailable. When an appliance supports it, the integration prefers push-based updates (instant, via observe.py) over polling, falling back to polling otherwise.

If reconnects become persistent (more than a handful per minute), something's actually wrong. Check the appliance's Wi-Fi link first, then look for a competing DTLS client on the LAN — only one active session per appliance is allowed at a time.

Multi-subdevice ("2-in-1") air conditioner systems

Some Samsung installs run more than one indoor subdevice off a single outdoor unit, all reachable over the one IP/DTLS session your config entry connects to (a floor-standing + wall-mounted 2-in-1 is a common shape). The integration discovers any sibling subdevices automatically, once, right after the first successful poll — there's nothing to configure. Each discovered subdevice gets its own HA device (linked to the main one via "via device") and its own climate card, so it lands in its own room in the dashboard instead of being invisible or mixed into the master's state.

Two on-the-wire shapes are supported, both keyed off what the appliance itself reports:

  • Indexed siblings — the device answers a /device/1, /device/2, ... collection alongside its own /device/0, mirroring every resource at that index.
  • UUID-prefixed tree — the device reports a sibling's id in x.com.samsung.da.subdeviceIdList, and that id doubles as a literal href prefix for the sibling's own resource tree.

A candidate that answers but never produces any real, user-facing state (an unused slot some installs report alongside a genuine second subdevice) is silently skipped rather than turned into a phantom entity — check diagnostics' subdevices/subdevices_skipped blocks if a subdevice you expect to see isn't showing up, and file an issue with that diagnostics download attached.


Contributing

Patches are welcome, especially:

  • New by_type/ registries for appliance families not yet covered (AC, microwave, etc.) on the same Tizen RT 3.x firmware family.
  • Confirmation or refutation of compatibility on additional models within an already-supported type.
  • Protocol-level fixes, which belong upstream in smartthings-local rather than here. HA-side fixes (entities, config flow, coordinator, registry) belong in this repo.

If you submit a PR, please don't include real device UUIDs, MACs, serials, IPs, or CA private key material. Use the placeholders from the config-flow form instead.

S
Description
Local-control Home Assistant component that authenticates to newer-firmware Samsung devices and talks over CoAP-DTLS.
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