Gaussian and Non-Gaussian Linear Time Series and Random Fields

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Gaussian and Non-Gaussian Linear Time Series ...
Murray Rosenblatt, Murray Rose ...
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January 31, 2024 | History

Gaussian and Non-Gaussian Linear Time Series and Random Fields

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The book is concerned with linear time series and random fields in both the Gaussian and especially the non-Gaussian context. The principal focus is on autoregressive moving average models and analogous random fields. Probabilistic and statistical questions are both discussed. The Gaussian models are contrasted with noncausal or noninvertible (nonminimum phase) non-Gaussian models which can have a much richer structure than Gaussian models. The book deals with problems of prediction (which can have a nonlinear character) and estimation. New results for nonminimum phase non-Gaussian processes are exposited and open questions are noted. The book is intended as a text for graduate students in statistics, mathematics, engineering, the natural sciences and economics. An initial background in probability theory and statistics is suggested. Notes on background, history and open problems are given at the end of the book. Murray Rosenblatt is Professor of Mathematics at the University of California, San Diego. He was a Guggenheim Fellow in 1965 and 1972 and is a member of the National Academy of Sciences, U.S.A. He is the author of Random Processes (1962), Markov Processes: Structure and Asymptotic Behavior (1971), Stationary Sequences and Random Fields (1985), and Stochastic Curve Estimation (1991).

Publish Date
Publisher
Island Press
Language
English

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Previews available in: English

Edition Availability
Cover of: Gaussian and Non-Gaussian Linear Time Series and Random Fields
Gaussian and Non-Gaussian Linear Time Series and Random Fields
2000, Springer New York
electronic resource / in English
Cover of: Gaussian and Non-Gaussian Linear Time Series and Random Fields
Gaussian and Non-Gaussian Linear Time Series and Random Fields
1999, Island Press
in English

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Book Details


The Physical Object

Pagination
264
Weight
0.373

ID Numbers

Open Library
OL50682426M
ISBN 13
9781461212638

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Better World Books record

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January 31, 2024 Created by ImportBot Imported from Better World Books record