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Christian Servin & Vladik Kreinovich 
Propagation of Interval and Probabilistic Uncertainty in Cyberinfrastructure-related Data Processing and Data Fusion 

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On various examples ranging from geosciences to environmental sciences, this


book explains how to generate an adequate description of uncertainty, how to justify


semiheuristic algorithms for processing uncertainty, and how to make these algorithms


more computationally efficient. It explains in what sense the existing approach to


uncertainty as a combination of random and systematic components is only an


approximation, presents a more adequate three-component model with an additional


periodic error component, and explains how uncertainty propagation techniques can


be extended to this model. The book provides a justification for a practically efficient


heuristic technique (based on fuzzy decision-making). It explains how the computational


complexity of uncertainty processing can be reduced. The book also shows how to


take into account that in real life, the information about uncertainty is often only


partially known, and, on several practical examples, explains how to extract the missing


information about uncertainty from the available data.


€96.29
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Table of Content

Introduction.- Towards a More Adequate Description of Uncertainty.- Towards Justification of Heuristic Techniques for Processing Uncertainty.- Towards More Computationally Efficient Techniques for Processing Uncertainty.- Towards Better Ways of Extracting Information About Uncertainty from Data.
Language English ● Format PDF ● Pages 112 ● ISBN 9783319126289 ● File size 2.6 MB ● Publisher Springer International Publishing ● City Cham ● Country CH ● Published 2014 ● Downloadable 24 months ● Currency EUR ● ID 3555198 ● Copy protection Social DRM

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