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2011-10-30
《Gaussian Process Regression Analysis for Functional Data》by Jian Qing Shi and Taeryon Choi.
Product Details

  • Hardcover: 216 pages
  • Publisher: Chapman and Hall/CRC; 1 edition (July 1 2011)
  • Language: English
  • ISBN-10: 1439837732
  • ISBN-13: 978-1439837733
  • Gaussian Process Regression Analysis for Functional Data presents nonparametric statistical methods for functional regression analysis, specifically the methods based on a Gaussian process prior in a functional space. The authors focus on problems involving functional response variables and mixed covariates of functional and scalar variables.


Covering the basics of Gaussian process regression, the first several chapters discuss functional data analysis, theoretical aspects based on the asymptotic properties of Gaussian process regression models, and new methodological developments for high dimensional data and variable selection. The remainder of the text explores advanced topics of functional regression analysis, including novel nonparametric statistical methods for curve prediction, curve clustering, functional ANOVA, and functional regression analysis of batch data, repeated curves, and non-Gaussian data.

Many flexible models based on Gaussian processes provide efficient ways of model learning, interpreting model structure, and carrying out inference, particularly when dealing with large dimensional functional data. This book shows how to use these Gaussian process regression models in the analysis of functional data. Some MATLAB® and C codes are available on the first author’s website.


About the AuthorJian Qing Shi, Ph.D., is a senior lecturer in statistics and the leader of the Applied Statistics and Probability Group at Newcastle University. He is a fellow of the Royal Statistical Society and associate editor of the Journal of the Royal Statistical Society (Series C). His research interests encompass functional data analysis using covariance kernel, incomplete data and model uncertainty, and covariance structural analysis and latent variable models.
Taeryon Choi, Ph.D., is an associate professor of statistics at Korea University. His research mainly focuses on the use of Bayesian methods and theory for various scientific problems.




网上没有找到电子版的,自己做了一份,效果不是很好,如果大家能找到效果更好的,请传上来共享。


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2011-10-31 11:17:25
多谢楼主辛苦提供共享。很新、实用的泛函数据分析著作。
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2011-11-10 18:48:49
多谢分享,已经下载
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2013-4-1 20:06:51
衷心感谢楼主的无私贡献!
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2013-4-1 20:07:12
衷心感谢楼主的无私贡献!
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2020-7-7 11:03:15
已经很好了,感谢
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