Time Series Analysis, Modeling and Applications

A Computational Intelligence Perspective

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August 23, 2020 | History

Time Series Analysis, Modeling and Applications

A Computational Intelligence Perspective

Temporal and spatiotemporal data form an inherent fabric of the society as we are faced with streams of data coming from numerous sensors, data feeds, recordings associated with numerous areas of application embracing physical and human-generated phenomena (environmental data, financial markets, Internet activities, etc.). A quest for a thorough analysis, interpretation, modeling and prediction of time series comes with an ongoing challenge for developing models that are both accurate and user-friendly (interpretable).

The volume is aimed to exploit the conceptual and algorithmic framework of Computational Intelligence (CI) to form a cohesive and comprehensive environment for building models of time series. The contributions covered in the volume are fully reflective of the wealth of the CI technologies by bringing together ideas, algorithms, and numeric studies, which convincingly demonstrate their relevance, maturity and visible usefulness. It reflects upon the truly remarkable diversity of methodological and algorithmic approaches and case studies.

This volume is aimed at a broad audience of researchers and practitioners engaged in various branches of operations research, management, social sciences, engineering, and economics. Owing to the nature of the material being covered and a way it has been arranged, it establishes a comprehensive and timely picture of the ongoing pursuits in the area and fosters further developments.

Publish Date
Language
English
Pages
404

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Previews available in: English

Edition Availability
Cover of: Time Series Analysis, Modeling and Applications
Time Series Analysis, Modeling and Applications: A Computational Intelligence Perspective
2013, Springer Berlin Heidelberg, Imprint: Springer
electronic resource : in English

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Book Details


Table of Contents

<p>From the Contents: The links between statistical and fuzzy models for time series analysis and forecasting
Incomplete time series: imputation through Genetic Algorithms
Intelligent aggregation and time series smoothing
Financial fuzzy Time series models based on ordered fuzzy numbers
Stochastic-fuzzy knowledge-based approach to temporal data modeling.-A Novel Choquet integral composition forecasting model for time series data based on completed extensional L-measure
An application of enhanced knowledge models to fuzzy time series
A wavelet transform approach to chaotic short-term forecasting
Fuzzy forecasting with fractal analysis for the time series of environmental pollution
Support vector regression with kernel Mahalanobis measure for financial forecast.</p>.

Edition Notes

Published in
Berlin, Heidelberg
Series
Intelligent Systems Reference Library -- 47

Classifications

Dewey Decimal Class
006.3
Library of Congress
Q342

The Physical Object

Format
[electronic resource] :
Pagination
VIII, 404 p. 117 illus.
Number of pages
404

ID Numbers

Open Library
OL27092154M
Internet Archive
timeseriesanalys00azna
ISBN 13
9783642334399

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History

Download catalog record: RDF / JSON / OPDS | Wikipedia citation
August 23, 2020 Edited by ImportBot import existing book
July 7, 2019 Created by MARC Bot Imported from Internet Archive item record