Time Series Analysis for the State-Space Model with R/Stan

Download or Read eBook Time Series Analysis for the State-Space Model with R/Stan PDF written by Junichiro Hagiwara and published by Springer Nature. This book was released on 2021-08-30 with total page 350 pages. Available in PDF, EPUB and Kindle.
Time Series Analysis for the State-Space Model with R/Stan
Author :
Publisher : Springer Nature
Total Pages : 350
Release :
ISBN-10 : 9789811607110
ISBN-13 : 9811607117
Rating : 4/5 (10 Downloads)

Book Synopsis Time Series Analysis for the State-Space Model with R/Stan by : Junichiro Hagiwara

Book excerpt: This book provides a comprehensive and concrete illustration of time series analysis focusing on the state-space model, which has recently attracted increasing attention in a broad range of fields. The major feature of the book lies in its consistent Bayesian treatment regarding whole combinations of batch and sequential solutions for linear Gaussian and general state-space models: MCMC and Kalman/particle filter. The reader is given insight on flexible modeling in modern time series analysis. The main topics of the book deal with the state-space model, covering extensively, from introductory and exploratory methods to the latest advanced topics such as real-time structural change detection. Additionally, a practical exercise using R/Stan based on real data promotes understanding and enhances the reader’s analytical capability.


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