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Machine Learning: A Bayesian and Optimization Perspective
89% of respondents would recommend this to a friend
BIF 391614
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Machine Learning: A Bayesian and Optimization Perspective gives a unified perspective on machine learning by covering both pillars of supervised learning, namely regression and classification.
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- Provides a unifying perspective on machine learning covering probabilistic and deterministic approaches based on optimization techniques and Bayesian inference
- Suitable for various courses including pattern recognition, signal processing, Bayesian learning, sparse modeling, deep learning, and probabilistic graphical models
- Covers major machine learning methods developed in disciplines such as statistics, signal processing, and computer science
- Explains methods and techniques in depth, supported by examples and problems, making it valuable for students and researchers
- Includes more simple examples on basic theory, rewrites of the Neural Networks and Deep Learning chapter, and expanded treatment of Bayesian learning
| Publisher | Academic Press |
| Publication date | July 31, 2020 |
| Edition | 2nd |
| Language | English |
| Print length | 1160 pages |
| ISBN-10 | 0128188030 |
| ISBN-13 | 978-0128188033 |
| Item Weight | 5.4 pounds (2.45 kg) |
| Dimensions | 7.5 x 2.25 x 9.25 inches (19.1 x 5.7 x 23.5 cm) |
Who Should Buy?
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Beginners in ML
Ideal for users new to machine learning, providing foundational concepts and practical approaches to start their journey.
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Data Scientists
Useful for data scientists looking to enhance their understanding of advanced algorithms and practical applications in the field.
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Academics & Researchers
Beneficial for academics seeking a comprehensive resource for teaching and conducting research in machine learning topics.
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Advanced Practitioners
Not suitable for experienced professionals who already possess deep knowledge of machine learning concepts and techniques.
Product Description
Machine Learning: A Bayesian and Optimization Perspective
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Signal Processing Editorial Review
Machine Learning: A Bayesian and Optimization Perspective (2nd Edition) is a book written for Machine Learning practitioners who want to gain a better understanding of the fundamentals. The diagrams in the book are clear and concise, making it easier for readers to understand complex concepts. The book covers a wide range of topics and can even be used for graduate courses on Machine Learning. It is suited for those interested in Machine Learning from a Bayesian point of view. The lack of colorful diagrams in the book is a disadvantage, as colorful diagrams help readers to develop intuition while dealing with mathematical equations.
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Pros
- The book covers a wide range of topics in Machine Learning.
- The diagrams are clear and concise, making it easier for readers to understand complex concepts.
- The book can be used for graduate courses on Machine Learning.
Cons
- Lack of colorful diagrams might make it harder for readers to develop intuition while dealing with mathematical equations.
Product Price History
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BIF 391614
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Features & Benefits
- Covers both regression and classification in machine learning.
- Explains the physical reasoning behind mathematics, without sacrificing rigor.
- Includes case studies and computer exercises.
- Suitable for different courses: pattern recognition, statistical/adaptive signal processing, and statistical/Bayesian learning.
- New edition includes updated chapter on Neural Networks and Deep Learning.
- Expanded treatment of Bayesian learning to include nonparametric Bayesian methods.
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