Data Analytics Fundamentals: Toolkit
Privacy-safe diagnostics, paths, and logging helpers for analytics projects.
What This Provides
get_logger()for consistent console and file logginglog_header()for a standardized run headerlog_path()for privacy-safe path logging- environment helpers:
detect_shell(),detect_os(),detect_python()
This toolkit is designed for reuse. It works the same locally and in GitHub Actions.
Install (Choose One)
uv add datafun-toolkit
pip install datafun-toolkit
Example
import logging
from pathlib import Path
from datafun_toolkit.logger import get_logger, log_header, log_path
LOG: logging.Logger = get_logger("P01", level="DEBUG")
ROOT_PATH: Path = Path.cwd()
DATA_PATH: Path = ROOT_PATH / "data"
def main() -> None:
"""Start the main logic."""
log_header(LOG, "P01 Pipeline")
LOG.info("START main()")
log_path(LOG, "ROOT_PATH", ROOT_PATH)
log_path(LOG, "DATA_PATH", DATA_PATH)
LOG.info("Working....")
LOG.info("END main()")
if __name__ == "__main__":
main()
Developer Setup
Install tools:
- git
- uv
- VS Code
One-time setup:
uv self update
uv python pin 3.14
uv sync --extra dev --extra docs --upgrade
uvx pre-commit install
git add -A
uvx pre-commit run --all-files
Before starting work:
git pull
After working, run checks:
uv run ruff format .
uv run ruff check . --fix
uv run pytest --cov=src --cov-report=term-missing
uv run deptry .
uv run bandit -c pyproject.toml -r src
uv run validate-pyproject pyproject.toml
Build and serve docs:
uv run zensical build
uv run zensical serve
Hit CTRL+c in the VS Code terminal to quit serving.
Save progress frequently (some tools may make changes; you may need to re-run git add and commit to ensure everything gets committed before pushing):
git add -A
git commit -m "update"
git push -u origin main
Annotations
Citation
License
SE Manifest
Metadata
Release files for datafun-toolkit 1.0.0
For a detailed explanation of source distributions (sdists) and built distributions (wheels), please see the package formats documentation.
Source distribution (sdist)
| File | Size | Uploaded | |
|---|---|---|---|
| datafun_toolkit-1.0.0.tar.gz | 57.2 kB | Details |
Built distribution (wheel)
| File | Interpreter | ABI | Platform | Reset |
|---|---|---|---|---|
| datafun_toolkit-1.0.0-py3-none-any.whl | Python 3 | none | any | Details |
Total release size: 67.1 kB
Release files / datafun_toolkit-1.0.0.tar.gz
| Download URL | datafun_toolkit-1.0.0.tar.gz |
|---|---|
| Size | 57.2 kB |
| Tags | Source |
|
SHA-256 checksum How to use checksums |
34eec90e183628e5c39e4b53de859be21f470f77607aff1557690d23e6755ad2
|
|
BLAKE2b-256 checksum How to use checksums |
349b8129c47656e183d1a24687d83d69b25dd5248a2f847fa594350c7ae8b520
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| Upload date | |
|
Uploaded using Trusted Publishing? What is trusted publishing? |
Yes |
| Uploaded via |
twine/6.1.0 CPython/3.13.7
|
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Signed by GitHub Actions, verified by PyPI on Mar 6, 2026.
Transparency logRelease files / datafun_toolkit-1.0.0-py3-none-any.whl
| Download URL | datafun_toolkit-1.0.0-py3-none-any.whl |
|---|---|
| Size | 9.9 kB |
| Tags | Python 3 |
|
SHA-256 checksum How to use checksums |
a14c0d63f8457e020dfd93192b418a56ae333e0bf9d73e9780b3d45c78cdef2e
|
|
BLAKE2b-256 checksum How to use checksums |
3ec035b0b55c4bb1a4a8445550715d376b1e9dc9011dfa263a307ecf9ab77dab
|
| Upload date | |
|
Uploaded using Trusted Publishing? What is trusted publishing? |
Yes |
| Uploaded via |
twine/6.1.0 CPython/3.13.7
|
Provenance
Provenance describes where a file came from. On PyPI, provenance is shared via attestations, which provide a verifiable record of the build or publishing details. View details, limitations and caveats.
PyPI Publish Attestation
PyPI verified that this artifact, at this checksum, originated from the publisher listed below.
Signed by GitHub Actions, verified by PyPI on Mar 6, 2026.
Transparency log