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knx-telegram-store

A standalone, host-agnostic Python library for KNX telegram persistence.

Features

  • Canonical Data Model: A unified model for KNX telegrams shared between Home Assistant and SpectrumKNX.
  • Pluggable Backends:
    • In-Memory: Fast, deque-based storage with full filtering support.
    • SQLite: Lightweight persistent storage with SQL-based filtering.
    • PostgreSQL: Full-scale storage. TimescaleDB is used automatically when the extension is available (hypertable partitioning + native compression); otherwise the store runs on plain PostgreSQL with identical semantics.
  • Unified Query Model: Powerful declarative filtering including time-delta context windows and pagination.
  • Stats & Maintenance: get_stats() reports count, covered time range and on-disk size; evict_older_than() supports dry runs; optimize() reclaims disk space (VACUUM).
  • Read-Only Mode: Open a SQLite store owned and written by another process (e.g. Home Assistant's KNX telegram store) without running migrations or allowing writes.
  • Concurrent Access: Writing SQLite stores use WAL journaling and a busy timeout, so a single writer and multiple (cross-process) readers coexist safely.
  • Capability Flags: store.capabilities declares what a backend supports (supports_optimize, supports_size_stats, read_only, …) so hosts can gate UI instead of hardcoding backends.
  • Log Container Format: formats.ets_xml streams the KNX CommunicationLog XML container (ETS6 group-monitor exports, Gira IP-Router data-logger dumps) to/from raw cEMI frames — constant memory, no protocol decoding, stdlib-only.
  • Zero Runtime Dependencies: Core library (model, interface, in-memory) has no dependencies.
  • Automated Schema Management: SQL backends handle their own creation and upgrades.

Installation

pip install knx-telegram-store

For SQL support:

pip install knx-telegram-store[sqlite]
pip install knx-telegram-store[postgres]

Usage

from datetime import datetime
from knx_telegram_store import StoredTelegram, TelegramQuery
from knx_telegram_store.backends.memory import MemoryStore


async def main():
    store = MemoryStore(max_size=1000)
    await store.initialize()

    telegram = StoredTelegram(
        timestamp=datetime.now(),
        source="1.1.1",
        destination="1/1/1",
        telegramtype="GroupValueWrite",
        direction="Incoming",
        value=22.5,
        unit="°C",
    )

    await store.store(telegram)

    query = TelegramQuery(destinations=["1/1/1"])
    result = await store.query(query)

    for t in result.telegrams:
        print(f"{t.timestamp}: {t.source} -> {t.destination} | {t.value} {t.unit}")

    await store.close()

Stats, purging and space reclamation

from datetime import UTC, datetime, timedelta
from knx_telegram_store.backends.sqlite import SqliteStore

store = SqliteStore("/data/telegrams.db", retention_days=90)
await store.initialize()

stats = await store.get_stats()
print(
    f"{stats.telegram_count} telegrams, {stats.size_bytes} bytes, {stats.oldest_timestamp} .. {stats.newest_timestamp}"
)

cutoff = datetime.now(UTC) - timedelta(days=30)
would_delete = await store.evict_older_than(cutoff, dry_run=True)  # preview only
deleted = await store.evict_older_than(cutoff)

# Deleting rows does not shrink the database on disk by itself:
if store.capabilities.supports_optimize:
    await store.optimize()  # VACUUM — blocks writers, can take a while on large DBs

Read-only access to a shared store

Another process (e.g. Home Assistant's KNX integration) owns and writes the database; you only want to read it:

store = SqliteStore("/homeassistant/.storage/knx/telegrams.db", read_only=True)
await store.initialize()  # never runs DDL/migrations against a foreign schema

if await store.needs_migration():
    ...  # schema is older/newer than this library version — surface a warning

result = await store.query(TelegramQuery(limit=100))
await store.store(telegram)  # raises KnxTelegramStoreException — writes rejected

The file is opened with SQLite's mode=ro, so writes are impossible at the driver level. capabilities.read_only is True and supports_optimize is False in this mode. Writing stores enable WAL journaling, which makes this single-writer/multi-reader setup safe across processes.

Validating a config / connection

Before triggering an expensive operation such as a migration, you can validate that a store is reachable. Both checks return a structured ConnectionCheckResult (ok, kind, message, detail) instead of raising.

from knx_telegram_store import ConnectionErrorKind
from knx_telegram_store.backends.sqlite import SqliteStore
from knx_telegram_store.backends.postgres import PostgresStore

# Static, side-effect-free config validation (before constructing a store):
#  - SQLite: sync — checks the file is writeable or can be created
result = SqliteStore.check_config("/data/telegrams.db")
#    (with read_only=True: checks the file exists and is readable instead)
result = SqliteStore.check_config("/data/telegrams.db", read_only=True)
#  - Postgres: async — actually connects to verify user/password/host/port/database
result = await PostgresStore.check_config("postgresql://user:pw@host:5432/knx")

if not result.ok:
    print(f"[{result.kind}] {result.message}")  # e.g. [auth] Authentication failed ...

# Live probe of an already-constructed store (no migrations, no schema changes):
store = SqliteStore("/data/telegrams.db")
result = await store.check_connection()
if result.kind is ConnectionErrorKind.OK:
    await store.initialize()

PostgreSQL and TimescaleDB

PostgresStore works against any PostgreSQL server. At initialize() it probes pg_available_extensions: when TimescaleDB is available, the telegrams table becomes a hypertable (existing rows are migrated in place via migrate_data => TRUE) and native compression is configured — chunks are compressed by a background policy once they age past compress_after_days (default 7, None disables compression). Without the extension everything runs on plain PostgreSQL tables; queries, retention and stats behave identically.

store = PostgresStore("postgresql://user:pw@host:5432/knx", retention_days=90, compress_after_days=7)
await store.initialize()
print(store.timescale_enabled)  # True / False (None before initialize())

check_config() / check_connection() succeed on both server types; the result message states which mode will be used.

Integration tests

The Postgres backend has an integration test suite that runs against real servers — a TimescaleDB container and a stock PostgreSQL container — so both the hypertable/compression path and the plain fallback are exercised. With Docker installed:

./scripts/run_integration_tests.sh            # full suite
./scripts/run_integration_tests.sh -k compression  # subset

The script starts both containers (docker-compose.test.yml), waits for them to become healthy, runs pytest -m integration tests/integration, and tears the containers down afterwards. To run tests manually, e.g. against your own servers:

docker compose -f docker-compose.test.yml up -d --wait
export KNX_TEST_TIMESCALE_DSN=postgresql://knx:knxtest@localhost:5433/knx
export KNX_TEST_PG_DSN=postgresql://knx:knxtest@localhost:5434/knx
pytest -m integration tests/integration -v
docker compose -f docker-compose.test.yml down -v

Tests for an unset DSN variable are skipped, so you can also point a single variable at an existing server. The same suite runs in CI against both containers on every push.

Reading / writing telegram log files

formats.ets_xml handles the KNX CommunicationLog XML container (namespace http://knx.org/xml/telegrams/01) produced by ETS6 exports and Gira data loggers. It operates on raw cEMI frames — no protocol decoding, no xknx dependency — so any consumer can stream large logs with constant memory.

from knx_telegram_store.formats import iter_communication_log, write_communication_log

# Incremental read (file path or binary stream, e.g. a zip entry):
for record in iter_communication_log("2026_03_05_TP1.xml"):
    print(record.timestamp, record.service, record.raw_data.hex())
    #      aware UTC        "L_Data.ind"   cEMI frame as logged

# Streaming write (records may be a generator; ETS6-compatible output):
with open("export.xml", "w", encoding="utf-8") as fh:
    count = write_communication_log(records, fh, connection_name="My Export")

A Gira-style <!-- timezone offset +01:00 hour --> comment is honored, and ETS's 7-digit fractional seconds are normalized to microseconds.

MCP tools

knx_telegram_store.mcp provides host-agnostic tool functions for exposing the store to AI agents over the Model Context Protocol. They are plain async functions over a TelegramStore, with frozen, JSON-serialisable dataclass inputs/outputs (timestamps are ISO-8601 UTC strings) and no dependency on any MCP SDK or web framework — each consumer wraps them into its own transport.

from dataclasses import asdict
from knx_telegram_store.mcp import query_telegrams, QueryTelegramsInput

result = await query_telegrams(store, QueryTelegramsInput(destinations=["1/1/1"], limit=100))
payload = asdict(result)  # ready to return as an MCP tool result

Available: query_telegrams, get_last_values, get_store_stats, get_store_capabilities, count_telegrams.

License

MIT

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