Computing Statistics under Interval and Fuzzy Uncertainty

Computing Statistics under Interval and Fuzzy Uncertainty

AngličtinaEbook
Nguyen, Hung T.
Springer Berlin Heidelberg
EAN: 9783642249051
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Podrobné informace

In many practical situations, we are interested in statistics characterizing a population of objects: e.g. in the mean height of people from a certain area. Most algorithms for estimating such statistics assume that the sample values are exact. In practice, sample values come from measurements, and measurements are never absolutely accurate. Sometimes, we know the exact probability distribution of the measurement inaccuracy, but often, we only know the upper bound on this inaccuracy. In this case, we have interval uncertainty: e.g. if the measured value is 1.0, and inaccuracy is bounded by 0.1, then the actual (unknown) value of the quantity can be anywhere between 1.0 - 0.1 = 0.9 and 1.0 + 0.1 = 1.1. In other cases, the values are expert estimates, and we only have fuzzy information about the estimation inaccuracy. This book shows how to compute statistics under such interval and fuzzy uncertainty. The resulting methods are applied to computer science (optimal scheduling of different processors), to information technology (maintaining privacy), to computer engineering (design of computer chips), and to data processing in geosciences, radar imaging, and structural mechanics.
EAN 9783642249051
ISBN 3642249051
Typ produktu Ebook
Vydavatel Springer Berlin Heidelberg
Datum vydání 17. listopadu 2011
Jazyk English
Země Germany
Autoři Kreinovich, Vladik; Nguyen, Hung T.; Wu, Berlin; Xiang, Gang
Série Studies in Computational Intelligence
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