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Singular Spectrum Analysis For Time Series

Springer Briefs In Statistics

1ª Edição - 2013120 páginasSpringer *en
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Sinopse

Singular spectrum analysis (SSA) is a technique of time series analysis and forecasting combining elements of classical time series analysis, multivariate statistics, multivariate geometry, dynamical systems and signal processing. SSA seeks to decompose the original series into a sum of a small number of interpretable components such as trend, oscillatory components and noise. It is based on the singular value decomposition of a specific matrix constructed upon the time series. Neither a parametric model nor stationarity are assumed for the time series. This makes SSA a model-free method and hence enables SSA to have a very wide range of applicability. The present book is devoted to the methodology of SSA and shows how to use SSA both safely and with maximum effect. Potential readers of the book include: professional statisticians and econometricians, specialists in any discipline in which problems of time series analysis and forecasting occur, specialists in signal processing and those needed to extract signals from noisy data, and students taking courses on applied time series analysis.

Detalhes do livro

Título
Singular Spectrum Analysis For Time Series
Autor
Anatoly | Golyandina Nina Zhigljavsky
Editora
Springer *
Ano
2026
Páginas
120 páginas
Idioma
EN
ISBN-13
9783642349126
Edição
1ª Edição - 2013
Formato
Paperback

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