OXFORD UNIVERSITY PRESS

Time Series Analysis by State Space Methods (2nd edition)

ISBN : 9780199641178

参考価格(税込): 
¥15,554
著者: 
James Durbin; Siem Jan Koopman
ページ
368 ページ
フォーマット
Hardcover
サイズ
161 x 235 mm
刊行日
2012年05月
シリーズ
Oxford Statistical Science Series
メール送信
印刷

This new edition updates Durbin & Koopman's important text on the state space approach to time series analysis. The distinguishing feature of state space time series models is that observations are regarded as made up of distinct components such as trend, seasonal, regression elements and disturbance terms, each of which is modelled separately. The techniques that emerge from this approach are very flexible and are capable of handling a much wider range of problems than the main analytical system currently in use for time series analysis, the Box-Jenkins ARIMA system. Additions to this second edition include the filtering of nonlinear and non-Gaussian series. Part I of the book obtains the mean and variance of the state, of a variable intended to measure the effect of an interaction and of regression coefficients, in terms of the observations. Part II extends the treatment to nonlinear and non-normal models. For these, analytical solutions are not available so methods are based on simulation.

目次: 

PART I: THE LINEAR STATE SPACE MODEL
PART II: NON-GAUSSIAN AND NONLINEAR STATE SPACE MODELS

著者について: 

The late James Durbin was Professor of Statistics at the London School of Economics, President of the Royal Statistical Society and President of the International Statistical Institute. He was awarded the society's bronze, silver and gold medals for his contribution to statistics. He was a fellow of the British Academy.; Siem Jan Koopman has been Professor of Econometrics at the Free University in Amsterdam and research fellow at the Tinbergen Institute since 1999. He fullfills editorial duties at the Journal of Applied Econometrics, the Journal of Forecasting, the Journal of Multivariate Analysis and Statistica Sinica.

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