An Introduction to State Space Time Series Analysis

An Introduction to State Space Time Series Analysis by Jacques J.F. Commandeur is published by OUP Oxford on July 19, 2007. This 174-page book provides a practical introduction to state space methods as applied to unobserved components time series models, also known as structural time series models. It is designed for readers who may not be familiar with time series analysis or state space methods, requiring only a basic knowledge of classical linear regression models, which is briefly reviewed within the text.
Readers will find a step-by-step approach to analyzing key features of time series, including trend, seasonal, and irregular components. The book addresses practical issues such as forecasting and handling missing values in detail. It is suitable for practitioners and researchers in fields like social sciences, quantitative history, biology, and medicine, and can also serve as a textbook for advanced undergraduate or graduate courses in econometrics and statistics.
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Providing a practical introduction to state space methods as applied to unobserved components time series models, also known as structural time series models, this book introduces time series analysis using state space methodology to readers who are neither familiar with time series analysis, nor with state space methods. The only background required in order to understand the material presented in the book is a basic knowledge of classical linear regression models, of which a brief review is provided to refresh the reader’s knowledge. Also, a few sections assume familiarity with matrix algebra, however, these sections may be skipped without losing the flow of the exposition. The book offers a step by step approach to the analysis of the salient features in time series such as the trend, seasonal, and irregular components. Practical problems such as forecasting and missing values are treated in some detail. This useful book will appeal to practitioners and researchers who use time series on a daily basis in areas such as the social sciences, quantitative history, biology and medicine. It also serves as an accompanying textbook for a basic time series course in econometrics and statistics, typically at an advanced undergraduate level or graduate level.
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