Spectral Analysis for Univariate Time Series

Spectral Analysis for Univariate Time Series

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2020 · Inglese · Copertina rigida · 2 editions
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Descrizione

This work delves into the intricate domain of spectral analysis, focusing specifically on univariate time series. The authors present a comprehensive exploration of methodologies employed to derive meaningful insights from time-dependent data sets. They articulate fundamental concepts with clarity, making the material accessible to both seasoned statisticians and novices in the field.

The book systematically covers various theoretical frameworks and practical applications, bridging the gap between abstract statistical principles and real-world scenarios. Readers can expect to encounter detailed discussions on the interpretation of spectral density, as well as common models used in time series analysis. Theoretical insights are paired with practical examples, enabling readers to apply the concepts in diverse contexts.

Rich in illustrations and numerical examples, this work provides a thorough grounding in the techniques essential for effective spectral analysis. By integrating theory with application, it stands as a valuable resource for researchers and practitioners aiming to deepen their understanding of time series analysis. The authors strive to foster a greater appreciation for the power of spectral methods in revealing the underlying patterns present in complex data.

Dettagli del libro

Formato Copertina rigida
Pagine 780 pagine
Lingua Inglese
Pubblicato Apr 23, 2020
Editore Cambridge University Press
Edizione 2nd ed.
Edizioni 2 editions
ISBN-10 1107028140
ISBN-13 9781107028142
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