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Deep Reinforcement Learning with Python - Second Edition Paperback – September 30, 2020
Become skilled in effectively employingnRL and deep RL in your real-world projects.
Deep Reinforcement Learning with Python - Second Edition Paperback – September 30, 2020
Item #: 36450088

Deep Reinforcement Learning with Python - Second Edition Paperback – September 30, 2020

Item #: 36450088

XCD 185

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What Stands Out

Comprehensive Guide
This second edition offers in-depth coverage of deep reinforcement learning concepts, equipping readers with practical skills to implement algorithms effectively, making it ideal for both beginners and experienced practitioners.
Hands-on Projects
Includes real-world projects to solidify learning, enabling readers to apply theoretical knowledge in practical scenarios, enhancing retention and fostering a deeper understanding of reinforcement learning techniques.
Updated Content
Revised with the latest advancements in deep reinforcement learning, ensuring readers are well-versed with current trends and tools in the field, maintaining relevance in a rapidly evolving technology landscape.

Product Details

Shop Deep Reinforcement Learning with Python - Second Edition Paperback – September 30, 2020 online at a best price in Montserrat. 1839210680
  • Covers a wide range of basic-to-advanced RL algorithms with mathematical explanations
  • Learn to implement algorithms with code following examples and line-by-line explanations
  • Explores RL basics, foundational concepts, and state-of-the-art algorithms
  • Delves deep into value-based, policy-based, and actor-critic RL methods
  • New chapters dedicated to techniques such as distributional RL, imitation learning, inverse RL, and meta RL
  • Teaches the use of Stable Baselines for training and implementations
Publisher Packt Publishing
Publication date September 30, 2020
Edition 2nd ed.
Language English
Print length 760 pages
ISBN-10 1839210680
ISBN-13 978-1839210686
Item Weight 2.86 pounds (1.3 kg)
Dimensions 9.25 x 7.52 x 1.56 inches (23.5 x 19.1 x 4 cm)

Who Should Buy?

Suitable For
  • Beginner Data Scientists

    Ideal for individuals starting their journey in data science and seeking to understand deep reinforcement learning concepts.

  • AI Enthusiasts

    Great for hobbyists interested in artificial intelligence looking to explore and implement deep reinforcement learning techniques.

  • Students in AI

    Perfect for university students studying artificial intelligence or machine learning, providing practical insights and real-world applications.

Not Suitable For
  • Advanced Researchers

    Not suitable for seasoned researchers who require more complex theories and cutting-edge research in reinforcement learning.

Product Description

Deep Reinforcement Learning with Python - Second Edition Paperback – September 30, 2020

Have any Query? Chat with us

Customer Questions & Answers

  • Question: What topics are covered in 'Deep Reinforcement Learning with Python - Second Edition'?

    Answer: The book covers essential topics such as the foundational concepts of reinforcement learning, the implementation of algorithms using Python, and advanced techniques like policy gradients and deep Q-learning. It also provides practical insights through real-world projects. This makes it a suitable resource for both beginners wanting to learn the basics and experienced practitioners looking to apply advanced methods in their projects.
  • Question: Who is the target audience for this book?

    Answer: This book is targeted toward practitioners, researchers, and students in the field of artificial intelligence. Whether you are a beginner wanting to get started with deep reinforcement learning or an experienced developer seeking to deepen your knowledge, this book serves as a valuable reference. The practical examples and projects are designed to bridge the gap between theory and application, making it accessible and engaging for all levels.
  • Question: What programming skills do I need before reading this book?

    Answer: Prior knowledge of Python programming is essential to effectively use this book. Familiarity with machine learning concepts and libraries such as TensorFlow or PyTorch will also be beneficial. The book assumes a basic understanding of both Python and the principles of machine learning, allowing readers to focus on developing reinforcement learning skills without getting bogged down in basic programming instructions.
  • Question: Can I use this book for self-study?

    Answer: Absolutely! 'Deep Reinforcement Learning with Python - Second Edition' is designed for self-learners, featuring clear explanations, illustrative examples, and hands-on projects. Each chapter builds on previous knowledge, making it easier to follow along. Readers can engage with the exercises and projects at their own pace, which helps reinforce learning and application of concepts in deep reinforcement learning.
  • Question: What kinds of projects can I expect to find in this book?

    Answer: The book includes a variety of projects ranging from basic implementations of reinforcement learning algorithms to complex systems designed to solve real-world problems. Projects may include applications in game development, robotics, and automated trading. These practical applications illustrate how deep reinforcement learning techniques can be applied across different domains, enhancing both understanding and practical skills.
  • Question: Is prior knowledge of deep learning required?

    Answer: While prior knowledge of deep learning concepts is advantageous, it is not strictly required. The book introduces deep learning fundamentals in the context of reinforcement learning, allowing readers to pick up necessary knowledge as needed. This makes the book accessible even if you are new to deep learning while still providing depth for those who want to explore more intricate topics.
  • Question: How does this edition differ from the first edition?

    Answer: This second edition features updated content that incorporates the latest advancements in deep reinforcement learning. It includes new algorithms, enhanced explanations, and additional projects reflective of current trends in the field. The changes are designed to make the material more relevant to today's learners and practitioners, ensuring that readers stay on the cutting edge of technology.
  • Question: Are there any supplementary resources available with this book?

    Answer: Yes, the book often comes with supplementary resources such as online code repositories, additional reading materials, and video tutorials. These resources provide deeper insights and practical demonstrations, enhancing the learning experience and allowing readers to see theoretical concepts in action. They are great for reinforcing the chapters and improving practical skills.
  • Question: What are common applications of deep reinforcement learning?

    Answer: Deep reinforcement learning is commonly applied in various fields such as game development, autonomous vehicles, robotics, finance, and healthcare. In gaming, for example, it is used to create AI that can learn to play complex games like Chess or Go. In autonomous systems, it enables robots to make decisions based on their environment, demonstrating its versatility across multiple industries.
  • Question: Where can I buy 'Deep Reinforcement Learning with Python - Second Edition'?

    Answer: You can purchase 'Deep Reinforcement Learning with Python - Second Edition' on Ubuy in Montserrat. Ubuy provides a user-friendly platform for securing this informative resource, making it accessible to individuals and professionals looking to expand their knowledge in deep reinforcement learning.

Intelligence & Semantics Editorial Review

"Deep Reinforcement Learning with Python" is a comprehensive guide to mastering deep reinforcement learning, including classic RL, distributional RL, inverse RL and more using OpenAI Gym and TensorFlow. This book aims to help readers understand the concepts and implement them through practical exercises. However, some readers have experienced difficulties in implementing the code. Some installation instructions were insufficient to set up the correct environment. Others have found the book's code examples to be out of date, as it requires TensorFlow 1.X when most works being done today use TensorFlow 2.0. Still, there were positive reviews of the book, giving praise to the clear and straightforward explanations. It covers many algorithms and problem areas of RL. Overall, for someone new to RL, this book may be a bit challenging due to the problems with the code environment. Nevertheless, it provides a good foundation and understanding of RL, and it has a promising table of contents for advanced practitioners.

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Pros

  • Comprehensive guide to deep reinforcement learning
  • Clear and straightforward explanations

Cons

  • Some code examples are out of date, requiring TensorFlow 1.X

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