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Mastering PyTorch: Create and deploy deep learning models from CNNs to multimodal models, LLMs, and beyond
Unlock faster training with multiple GPUs and optimize model deployment using efficient inference frameworks.
Mastering PyTorch: Create and deploy deep learning models from CNNs to multimodal models, LLMs, and beyond
物品 #: 88164676

Mastering PyTorch: Create and deploy deep learning models from CNNs to multimodal models, LLMs, and beyond

物品 #: 88164676

HKD 378

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What Stands Out

Comprehensive Coverage
This edition covers a wide array of deep learning models, including CNNs and LLMs, providing detailed insights essential for mastering advanced techniques and applications in various domains.
Hands-On Approach
Equipped with practical examples and real-world applications, this book empowers readers to create, train, and deploy deep learning models effectively, bridging the gap between theory and practice.
Updated Content
The second edition includes the latest advancements and best practices in PyTorch, ensuring readers have access to current methodologies, tools, and resources for building cutting-edge models.

產品詳情

Shop Mastering PyTorch: Create and deploy deep learning models from CNNs to multimodal models, LLMs, and beyond online at a best price in 香港. 1801074305
Publisher Packt Publishing
Publication date May 31, 2024
Edition 2nd ed.
Language English
Print length 558 pages
ISBN-10 1801074305
ISBN-13 978-1801074308
Item Weight 3.53 ounces (100.08 grams)
Dimensions 7.5 x 1.25 x 9.25 inches (19.1 x 3.2 x 23.5 cm)

Who Should Buy?

Suitable For
  • Aspiring Data Scientists

    This book offers comprehensive insights into deep learning concepts required for budding data scientists to excel.

  • Experienced Developers

    Seasoned programmers can enhance their skills in PyTorch, deploying complex models across various applications effectively.

  • Machine Learning Enthusiasts

    Ideal for hobbyists looking to understand and implement advanced machine learning techniques using the PyTorch framework.

Not Suitable For
  • Complete Beginners

    Individuals with no programming background may find advanced concepts overwhelming and challenging to grasp.

產品敘述

Mastering PyTorch: Create and deploy deep learning models from CNNs to multimodal models, LLMs, and beyond

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Expert Systems Editorial Review

**** "Mastering PyTorch: Create and Deploy Deep Learning Models from CNNs to Multimodal Models, LLMs, and Beyond" (2nd ed.) has garnered a positive reception from readers, particularly those keen on deep learning and eager to strengthen their skills in using the PyTorch framework. Many have highlighted the book’s practical, hands-on approach, which ensures that theoretical concepts are reinforced through coding exercises. Readers appreciate the comprehensively structured content, noting that the initial chapters provide a clear and approachable introduction to deep learning fundamentals, while later sections dive deeper into real-world application and advanced techniques like generative models and graph neural networks. The book’s extensive coverage of diverse topics stands out, offering insights into various aspects of machine learning, including transitioning from TensorFlow, utilizing large language models (LLMs), and modern practices involving tools like Hugging Face. Despite some minor critiques regarding the depth of coverage for LLMs and suggestions for future editions to include more on recommendation systems, the overall Consensus is that this book is an invaluable resource for anyone looking to gear up their machine learning toolkit. Readers have emphasized the value of coding solutions provided, particularly the ease of accessing accompanying code resources via GitHub, which enhances the learning experience. The clear explanations and structured learning path have been significant draws, making it an exceptional choice for learners ranging from beginners to more advanced practitioners who wish to take their abilities to the next level. Despite its complexity, which some readers noted, "Mastering PyTorch" has firmly established itself as a must-read for both newcomers and seasoned developers in the realm of machine learning. **

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優點

  • Practical approach with hands-on coding exercises
  • Clear and comprehensible theoretical explanations
  • Comprehensive coverage of a wide range of topics, including deep learning engineering
  • Access to GitHub code enhances the learning experience
  • Suitable for both beginners and advanced practitioners

缺點

  • Some readers felt the coverage of LLMs could be more extensive

Product Price History

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