Returns True if a string contains a variation of 'OwO'

Navigation

Verified details

These details have been verified by PyPI
Maintainers
Avatar for Bunniico from gravatar.com Bunniico

Unverified details

These details have not been verified by PyPI
Project links
Meta
  • License: MIT License
  • Author: EllieR
  • Requires: Python >3.0
Classifiers

Project description

is-furry-py

Returns True if a string contains a variation of "OwO"

Setup

  • Install the module

    pip install is-furry-py

  • Use it in your code
from is_furry import evaluate

Options

Options are not currently supported in is-furry-py.

License

The project is licensed under MIT

Contributing

If you would like to contribute to this package, please read the contributing guide.

Thanks to jakobkg for improving the typings!

Support

Original Creator: Wait What#497(five) Python Translation: Bunniico#371(6)

Project details

Verified details

These details have been verified by PyPI
Maintainers
Avatar for Bunniico from gravatar.com Bunniico

Unverified details

These details have not been verified by PyPI
Project links
Meta
  • License: MIT License
  • Author: EllieR
  • Requires: Python >3.0
Classifiers

Release history Release notifications | RSS feed

This version

1.1.0

1.0.5

1.0.4

1.0.3

1.0.2

1.0.1

1.0.0

Download files

Download the file for your platform. If you're not sure which to choose, learn more about installing packages.

Source Distribution

is_furry_py-1.1.0.tar.gz (4.8 kB view hashes)

Uploaded Source

Built Distribution

is_furry_py-1.1.0-py3-none-any.whl (3.1 kB view hashes)

Uploaded Python 3

Supported by

AWS AWS Cloud computing and Security Sponsor Datadog Datadog Monitoring Fastly Fastly CDN Google Google Download Analytics Microsoft Microsoft PSF Sponsor Pingdom Pingdom Monitoring Sentry Sentry Error logging StatusPage StatusPage Status page