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Learning Theory from First PrinciplesLearning Theory from First Principles

Learning Theory from First Principles in Brampton, ON

Current price: $105.00
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Learning Theory from First Principles

Coles

Learning Theory from First Principles in Brampton, ON

Current price: $105.00
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Size: Hardcover

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A comprehensive and cutting-edge introduction to the foundations and modern applications of learning theory. Research has exploded in the field of machine learning resulting in complex mathematical arguments that are hard to grasp for new comers. . In this accessible textbook, Francis Bach presents the foundations and latest advances of learning theory for graduate students as well as researchers who want to acquire a basic mathematical understanding of the most widely used machine learning architectures. Taking the position that learning theory does not exist outside of algorithms that can be run in practice, this book focuses on the theoretical analysis of learning algorithms as it relates to their practical performance. Bach provides the simplest formulations that can be derived from first principles, constructing mathematically rigorous results and proofs without overwhelming students.  Provides a balanced and unified treatment of most prevalent machine learning methods  Emphasizes practical application and features only commonly used algorithmic frameworks  Covers modern topics not found in existing texts, such as overparameterized models and structured prediction  Integrates coverage of statistical theory, optimization theory, and approximation theory Focuses on adaptivity, allowing distinctions between various learning techniques Hands-on experiments, illustrative examples, and accompanying code link theoretical guarantees to practical behaviors
A comprehensive and cutting-edge introduction to the foundations and modern applications of learning theory. Research has exploded in the field of machine learning resulting in complex mathematical arguments that are hard to grasp for new comers. . In this accessible textbook, Francis Bach presents the foundations and latest advances of learning theory for graduate students as well as researchers who want to acquire a basic mathematical understanding of the most widely used machine learning architectures. Taking the position that learning theory does not exist outside of algorithms that can be run in practice, this book focuses on the theoretical analysis of learning algorithms as it relates to their practical performance. Bach provides the simplest formulations that can be derived from first principles, constructing mathematically rigorous results and proofs without overwhelming students.  Provides a balanced and unified treatment of most prevalent machine learning methods  Emphasizes practical application and features only commonly used algorithmic frameworks  Covers modern topics not found in existing texts, such as overparameterized models and structured prediction  Integrates coverage of statistical theory, optimization theory, and approximation theory Focuses on adaptivity, allowing distinctions between various learning techniques Hands-on experiments, illustrative examples, and accompanying code link theoretical guarantees to practical behaviors

Find at Bramalea City Centre in Brampton, ON

Visit at Bramalea City Centre in Brampton, ON
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