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Entropy, complexity, predictability, and data analysis of time series and letter sequences

  • The structure of time series and letter sequences is investigated using the concepts of entropy and complexity. First conditional entropy and transinformation are introduced and several generalizations are discussed. Further several measures of complexity are introduced and discussed. The capability of these concepts to describe the structure of time series and letter sequences generated by nonlinear maps, data series from meteorology, astrophysics, cardiology, cognitive psychology and finance is investigated. The relation between the complexity and the predictability of informational strings is discussed. The relation between local order and the predictability of time series is investigated.

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Author details:Werner Ebeling, Lutz Molgedey, Jürgen KurthsORCiDGND, Udo Schwarz
URL:http://www.pik-potsdam.de/~kropp/myown/book.html
ISBN:3-540-41324-3
Publication type:Article
Language:English
Year of first publication:2002
Publication year:2002
Release date:2017/03/24
Source:The science of disaster : climate disruptions, heart attacs, and market crashes / Hrsg.: Armin Bunde ; Jürgen Kropp ; Hans-Joachim Schellnhuber. - Berlin : Springer, 2002. - ISBN 3-540-41324-3. - S. 2 - 25
Organizational units:Zentrale und wissenschaftliche Einrichtungen / Interdisziplinäres Zentrum für Dynamik komplexer Systeme
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