127 lines
4.1 KiB
Markdown
127 lines
4.1 KiB
Markdown
# SQLmem
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Transparent in-memory cache layer between SQLAlchemy and your database. Drop it in front of any SQLAlchemy engine — SELECT queries are served from a fast in-memory SQLite cache, writes pass through unchanged.
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## How it works
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```
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Application (SQLAlchemy)
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│
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▼
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[ SQLmem Proxy ]
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┌──────────────────────────────┐
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│ SQL Parser │ → detects SELECT vs. write
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│ Column Registry │ → tracks which columns are cached per table
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│ Cache Manager (SQLite RAM) │ → stores data in memory
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│ Query Executor │ → cache hit / miss logic
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└──────────────────────────────┘
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│
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▼
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Database (via original SQLAlchemy engine)
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```
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On the first SELECT for a table, SQLmem fetches the required rows from the database and stores them in an in-memory SQLite instance. Subsequent queries for the same columns hit the in-memory cache with no database round-trip. When a query requests a column not yet in cache, SQLmem re-fetches the table with the expanded column set.
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## Installation
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```bash
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pip install sqlmem
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# or with Poetry
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poetry add sqlmem
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```
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Requires Python 3.14.
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## Quick start
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```python
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from sqlmem import CachingEngine
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from sqlalchemy import create_engine, text
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base_engine = create_engine("postgresql://user:pass@host/db")
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engine = CachingEngine(base_engine)
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# Use exactly like a regular SQLAlchemy engine:
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results = engine.execute("SELECT id, name FROM users WHERE status = 'active'")
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for row in results:
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print(row["id"], row["name"])
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```
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`execute()` returns a list of dicts. Results are compatible with standard iteration patterns.
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## Cache behaviour
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**Column accumulation** — SQLmem learns which columns your app needs at runtime, no upfront configuration required:
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```
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Query 1: SELECT a, b FROM orders → cache miss → fetch orders(a, b) from DB
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Query 2: SELECT a, d FROM orders → new column d → re-fetch orders(a, b, d)
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Query 3: SELECT b FROM orders → cache hit, no DB query
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Query 4: SELECT * FROM orders → UnsupportedQueryError (wildcard not supported)
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Query 5: SELECT a FROM orders JOIN … → UnsupportedQueryError (JOIN not supported)
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```
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**Writes are blocked** — INSERT, UPDATE, and DELETE raise `ReadOnlyError`. SQLmem is a read-only cache.
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## Persistence
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The in-memory cache is optionally persisted to `cache.db` on disk:
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- **On startup**: if `cache.db` exists, it is loaded into memory.
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- **Hourly**: a background thread writes a snapshot to disk.
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- **On shutdown**: a final flush via `atexit` and SIGTERM handler.
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Schema version is checked on load — if it does not match, the stale file is discarded and the cache is rebuilt from the database.
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## Manual cache invalidation
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```python
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engine.invalidate("orders") # drops the table from cache; next query re-fetches from DB
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engine.close() # flush to disk and shut down background thread
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```
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## Configuration
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Set via environment variables or a `.env` file:
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| Variable | Default | Description |
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| `SQLMEM_DEBUG` | `false` | `true` enables DEBUG-level logging |
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| `SQLMEM_CACHE_DB` | `cache.db` | Path to the on-disk persistence file |
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| `SQLMEM_BACKUP_INTERVAL` | `3600` | Backup interval in seconds |
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## Exceptions
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| Exception | When raised |
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|---|---|
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| `ReadOnlyError` | INSERT, UPDATE, or DELETE statement |
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| `UnsupportedQueryError` | `SELECT *` or any JOIN |
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```python
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from sqlmem import ReadOnlyError, UnsupportedQueryError
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```
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## Logging
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SQLmem uses [loguru](https://github.com/Delgan/loguru). Set `SQLMEM_DEBUG=true` for verbose output (every query, cache hit/miss, backup events). Default level is INFO.
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## Limitations
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- `SELECT *` and JOIN queries are not supported.
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- No distributed cache backend (Redis etc.).
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- No transactional consistency guarantees.
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- Write operations (INSERT/UPDATE/DELETE) are always blocked.
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## Dependencies
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| Layer | Library |
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| SQL parsing | `sqlglot` |
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| Cache storage | `sqlite3` (stdlib) |
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| Integration | SQLAlchemy 2.x |
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| Logging | `loguru`, `python-dotenv` |
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## License
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MIT
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