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Deep Learning with PyTorch Lightning

You're reading from   Deep Learning with PyTorch Lightning Swiftly build high-performance Artificial Intelligence (AI) models using Python

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Product type Paperback
Published in Apr 2022
Publisher Packt
ISBN-13 9781800561618
Length 366 pages
Edition 1st Edition
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Authors (2):
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Dheeraj Arremsetty Dheeraj Arremsetty
Author Profile Icon Dheeraj Arremsetty
Dheeraj Arremsetty
Kunal Sawarkar Kunal Sawarkar
Author Profile Icon Kunal Sawarkar
Kunal Sawarkar
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Table of Contents (15) Chapters Close

Preface 1. Section 1: Kickstarting with PyTorch Lightning
2. Chapter 1: PyTorch Lightning Adventure FREE CHAPTER 3. Chapter 2: Getting off the Ground with the First Deep Learning Model 4. Chapter 3: Transfer Learning Using Pre-Trained Models 5. Chapter 4: Ready-to-Cook Models from Lightning Flash 6. Section 2: Solving using PyTorch Lightning
7. Chapter 5: Time Series Models 8. Chapter 6: Deep Generative Models 9. Chapter 7: Semi-Supervised Learning 10. Chapter 8: Self-Supervised Learning 11. Section 3: Advanced Topics
12. Chapter 9: Deploying and Scoring Models 13. Chapter 10: Scaling and Managing Training 14. Other Books You May Enjoy

Further learning

  • Other languages: The ASR dataset from which we used the Scottish language dataset also contains many other languages, such as Sinhala, and many Indian languages, such as Hindi, Marathi, and Bengali. The next logical step would be to try this ASR model for another language and compare the results. It is also a great way to learn how to manage training requirements as some of the audio files in these datasets are bigger; hence, they will need more compute power.

Many non-English languages don't have apps widely available on mobiles (for example, the Marathi language spoken in India) and a lack of technical tools in native languages limits the adoption of many tools in remote parts of the world. Creating an ASR in your local language can add great value to the technical ecosystem as well.

  • Audio and video together: Another interesting task is to combine the audio speech recognition and video classification tasks that we have seen today and use...
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