Monte Carlo methods

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Tác giả: Adrian G Barbu, Song Chun Zhu

Ngôn ngữ: eng

ISBN-13: 978-9811329708

ISBN-13: 978-9811329715

ISBN-13: 978-9811329722

ISBN-10: 9811329702

ISBN-10: 9811329710

ISBN-10: 9811329729

Ký hiệu phân loại: 519.282 Random walks

Thông tin xuất bản: Singapore : Springer, 2020

Mô tả vật lý: 1 online resource (xvi, 422 pages) : , 250 illustrations, 185 illustrations in color.

Bộ sưu tập: Khoa học tự nhiên

ID: 158111

 This book seeks to bridge the gap between statistics and computer science. It provides an overview of Monte Carlo methods, including Sequential Monte Carlo, Markov Chain Monte Carlo, Metropolis-Hastings, Gibbs Sampler, Cluster Sampling, Data Driven MCMC, Stochastic Gradient descent, Langevin Monte Carlo, Hamiltonian Monte Carlo, and energy landscape mapping. Due to its comprehensive nature, the book is suitable for developing and teaching graduate courses on Monte Carlo methods. To facilitate learning, each chapter includes several representative application examples from various fields. The book pursues two main goals: (1) It introduces researchers to applying Monte Carlo methods to broader problems in areas such as Computer Vision, Computer Graphics, Machine Learning, Robotics, Artificial Intelligence, etc.
  and (2) it makes it easier for scientists and engineers working in these areas to employ Monte Carlo methods to enhance their research.-- Provided by publisher.
Includes bibliographical references and index.
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