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Streamlit for Data Science

You're reading from   Streamlit for Data Science Create interactive data apps in Python

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Product type Paperback
Published in Sep 2023
Publisher Packt
ISBN-13 9781803248226
Length 300 pages
Edition 2nd Edition
Languages
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Author (1):
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Tyler Richards Tyler Richards
Author Profile Icon Tyler Richards
Tyler Richards
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Table of Contents (15) Chapters Close

Preface 1. An Introduction to Streamlit 2. Uploading, Downloading, and Manipulating Data FREE CHAPTER 3. Data Visualization 4. Machine Learning and AI with Streamlit 5. Deploying Streamlit with Streamlit Community Cloud 6. Beautifying Streamlit Apps 7. Exploring Streamlit Components 8. Deploying Streamlit Apps with Hugging Face and Heroku 9. Connecting to Databases 10. Improving Job Applications with Streamlit 11. The Data Project – Prototyping Projects in Streamlit 12. Streamlit Power Users 13. Other Books You May Enjoy
14. Index

Integrating external ML libraries – a Hugging Face example

Over the last few years, there has been a massive increase in the number of ML models created by startups and institutions. There is one that, in my opinion, has stood out above the rest for prioritizing the open sourcing and sharing of their models and methods, and that is Hugging Face. Hugging Face makes it incredibly easy to use ML models that some of the best researchers in the field have created for your own use cases, and in this bit, we’ll quickly show off how to integrate Hugging Face into Streamlit.

As part of the original setup for this book, we have already downloaded the two libraries that we need: PyTorch (the most popular deep learning Python framework) and transformers (a Hugging Face’s library that makes it easy to use their pre-trained models). So, for our app, let’s try one of the most basic tasks in natural language processing: Getting the sentiment of a bit of text! Hugging...

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