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Reinforcement Learning and Optimal Control
DOP 7497
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Reinforcement Learning, Approximate Dynamic Programming, and Neuro-Dynamic Programming are solution methods for large and complex decision problems.
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What Stands Out
Detalles de producto
- Addresses large and complex multistage decision problems
- Offers solution methods based on approximations for suboptimal policies
- Explores the intersection between artificial intelligence and optimal control
- Organizes successful methods with solid theoretical foundations
- Provides intuitive explanations and numerous examples
- Suitable for self-study or as a textbook with supporting materials
| Publisher | Athena Scientific |
| Publication date | July 15, 2019 |
| Edition | First Edition |
| Language | English |
| Print length | 388 pages |
| ISBN-10 | 1886529396 |
| ISBN-13 | 978-1886529397 |
| Item Weight | 1.48 pounds (670 grams) |
| Dimensions | 10 x 8 x 1.5 inches (25.4 x 20.3 x 3.8 cm) |
Who Should Buy?
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Academic Researchers
Ideal for researchers focusing on reinforcement learning and control theories to advance their studies and projects.
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Graduate Students
Beneficial for graduate students in computer science or engineering seeking to deepen their understanding of optimal control.
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Industry Professionals
Useful for professionals in AI or robotics looking to implement reinforcement learning for practical applications.
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Casual Learners
Not suitable for those seeking basic introductions or quick tutorials on reinforcement learning fundamentals.
DESCRIPCIÓN DEL PRODUCTO
Reinforcement Learning and Optimal Control
Preguntas y respuestas de los clientes
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Pregunta:
What is the primary focus of Reinforcement Learning and Optimal Control?
Respuesta: The primary focus of Reinforcement Learning and Optimal Control is to develop algorithms that enable agents to make decisions in dynamic environments. This book discusses how these methodologies can be applied to real-world problems. It covers concepts such as Markov Decision Processes, value functions, and policy optimization. Understanding these principles will empower readers to design intelligent systems capable of learning from their experiences and improving their performance over time, making it essential for robotics, finance, and resource management. -
Pregunta:
Who would benefit from reading Reinforcement Learning and Optimal Control?
Respuesta: Individuals pursuing careers in artificial intelligence, machine learning, operations research, or systems engineering will greatly benefit from this text. It serves as a comprehensive resource for students, researchers, and professionals, offering insights into both foundational theories and practical applications of reinforcement learning principles. Whether you’re developing algorithms for autonomous vehicles or optimizing trading strategies, the knowledge gained from this book can be crucial in advancing your projects and enhancing your skillset. -
Pregunta:
What algorithms are discussed in this book?
Respuesta: The book provides in-depth coverage of various algorithms integral to reinforcement learning, including Q-Learning, Deep Q-Networks, and Policy Gradient methods. These algorithms are essential for creating systems that learn effective strategies based on environmental feedback. By exploring these techniques, readers will understand how to implement and customize algorithms to address specific challenges, enabling them to create smarter AI solutions that adapt to complex tasks in various domains. -
Pregunta:
Are there practical examples included in Reinforcement Learning and Optimal Control?
Respuesta: Yes, the book includes numerous practical examples that illustrate the application of reinforcement learning and optimal control methods in real-world scenarios. Case studies range from robotics to game playing, making theoretical concepts more relatable. These examples help readers understand how to apply complex ideas, reinforcing learning through practical experience and giving insights into how similar techniques can be implemented in their projects. -
Pregunta:
How does this edition differ from previous versions?
Respuesta: The first edition of Reinforcement Learning and Optimal Control includes updated algorithms and contemporary examples reflecting the latest advancements in the field. Compared to earlier versions, this edition emphasizes the integration of deep learning with reinforcement learning techniques. This approach allows readers to grasp how modern innovations are evolving and how they can apply these advancements in their applications, making it a must-read for those wanting to stay informed about current trends. -
Pregunta:
What prerequisites should I have before reading this book?
Respuesta: A solid understanding of linear algebra, calculus, and probability is beneficial before delving into Reinforcement Learning and Optimal Control. Familiarity with programming, particularly in Python or similar languages, can enhance your learning experience as many practical examples and algorithms require implementation. This foundational knowledge will help you comprehend the mathematical frameworks and computational methods discussed, enabling you to engage more fully with the content and apply it effectively. -
Pregunta:
Can this book assist with academic research?
Respuesta: Absolutely. Reinforcement Learning and Optimal Control is an invaluable resource for academic researchers exploring the intersections of AI and control theory. It offers not only theoretical frameworks but also practical insights that can inspire new research questions. Researchers can leverage the methodologies and case studies within the book to formulate hypotheses, design experiments, and analyze results, aiding them in publishing relevant papers in the field. -
Pregunta:
What industries can benefit from the methodologies presented in this book?
Respuesta: Industries such as robotics, finance, healthcare, and supply chain management can benefit significantly from the methodologies discussed in Reinforcement Learning and Optimal Control. For instance, in healthcare, these methods can optimize treatment protocols. In finance, they can be used for algorithmic trading strategies. By applying the algorithms and theories outlined in this book, professionals can create innovative solutions tailored to the unique challenges within their sectors. -
Pregunta:
What is the significance of Markov Decision Processes in this context?
Respuesta: Markov Decision Processes (MDPs) are fundamental in reinforcement learning and control, providing a mathematical framework for modeling decision-making problems where outcomes are partly random and partly under the control of a decision maker. Understanding MDPs is crucial for designing effective reinforcement learning algorithms. By comprehensively covering MDPs, the book equips readers with the tools to formulate and solve complex sequences of decision-making problems, essential for developing intelligent systems. -
Pregunta:
Where can I buy Reinforcement Learning and Optimal Control First Edition?
Respuesta: You can purchase Reinforcement Learning and Optimal Control First Edition on Ubuy. Ubuy is a trusted online marketplace, offering a wide range of products, including academic texts and professional resources. They provide delivery options and the convenience of shopping from home, making it easy to obtain this important book for your studies or professional development.
Intelligence & Semantics Editorial Review
The Reinforcement Learning and Optimal Control First Edition by Bertsekas is praised for its technical expertise and mastery of exposition. The book offers clear explanations of the key ideas behind RL and optimal control and the differences between machine learning and traditional adaptive control approaches. The algorithms are thoroughly explained and made transparent. It is recommended for readers with a basic background in dynamic programming or control theory. The book is regarded as a must-read for anyone who wants to understand RL. The author uses a broad range of examples to guide readers starting from exact DP for finite-horizon problems. The book provides an understanding of RL for finite-horizon problems and DP and RL theory for infinite-horizon problems. The author also presents the aggregation method and its special characteristics. The book is good at explaining the theory of finite-state and finite-action problems in a self-contained and rigorous manner. The author reminds readers throughout the book that the potential challenges lie in the implementation of theoretical techniques.
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ventajas
- Technical expertise and mastery of exposition.
- Clear explanations of key ideas behind RL and optimal control.
- Thoroughly explained algorithms.
- Wide range of examples to guide readers.
- Provides an understanding of RL for finite-horizon problems and DP and RL theory for infinite-horizon problems.
- Explains the aggregation method and its special characteristics.
- Self-contained and rigorous.
Platform Trust & Buyer Confidence
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DOP 7497
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características y beneficios
- Consideration of large multistage decision problems
- Focus on solution methods for suboptimal policies
- Explore the border between artificial intelligence and optimal control
- Organized coherent summary of successful methods
- Combination of rigor and intuitive explanations
- Mathematical theory illustrated with algorithms and applications
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