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Ultimate Transformer Models Using Pytorch 2. 0 : Master Transformer Model Development, Fine-Tune Pretrained Models, and Deploy AI Solutions with Pytorch 2. 0 (English Edition).

Ebook Central College Complete Available online

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Format:
Book
Author/Creator:
Ravikumar, Abhiram.
Language:
English
Physical Description:
1 online resource (295 pages)
Edition:
1st ed.
Place of Publication:
Delhi : Orange Education PVT Ltd, 2025.
Summary:
Transformer models have revolutionized AI across natural language processing, computer vision, and speech recognition. "Ultimate Transformer Models Using PyTorch 2.0" bridges theory and practice, guiding you from fundamentals to advanced implementations with hands-on projects that build a professional AI portfolio. This comprehensive journey spans 11 chapters, beginning with transformer foundations and PyTorch 2.0 setup. With this book, you will master self-attention mechanisms, tackle NLP tasks such as text classification and translation, and then expand into computer vision and speech processing. Advanced topics include BERT and GPT models, the Hugging Face ecosystem, training strategies, and deployment techniques. Each chapter features practical exercises that reinforce learning through real-world applications. By the end of this book, you will be able to confidently design, implement, and optimize transformer models for diverse challenges. So, whether revolutionizing language understanding, advancing computer vision, or innovating speech recognition, you will possess both theoretical knowledge and practical expertise to deploy solutions effectively across industries like healthcare, finance, and social media, positioning yourself at the AI revolution's forefront.
Contents:
Cover Page
Title Page
Copyright Page
Dedication Page
About the Author
About the Technical Reviewer
Acknowledgements
Preface
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Errata
Table of Contents
1. Understanding the Evolution of Neural Networks
2. Fundamentals of Transformer Architecture
3. Getting Started with PyTorch 2.0
4. Natural Language Processing with Transformers
5. Computer Vision with Transformers
6. Speech Processing with Transformers
7. Advanced Transformer Models
8. Using HuggingFace with PyTorch
9. Training and Fine-Tuning Transformers
10. Deploying Transformer Models
11. Transformers in Real-World Applications
Index.
Notes:
Description based on publisher supplied metadata and other sources.
ISBN:
93-498-8850-5
OCLC:
1535978964

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