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Uncertainty Theory: Springer Uncertainty Research

Autor Baoding Liu
en Limba Engleză Paperback – 10 sep 2016
When no samples are available to estimate a probability distribution, we have to invite some domain experts to evaluate the belief degree that each event will happen. Perhaps some people think that the belief degree should be modeled by subjective probability or fuzzy set theory. However, it is usually inappropriate because both of them may lead to counterintuitive results in this case.
In order to rationally deal with belief degrees, uncertainty theory was founded in 2007 and subsequently studied by many researchers. Nowadays, uncertainty theory has become a branch of axiomatic mathematics for modeling belief degrees.
This is an introductory textbook on uncertainty theory, uncertain programming, uncertain statistics, uncertain risk analysis, uncertain reliability analysis, uncertain set, uncertain logic, uncertain inference, uncertain process, uncertain calculus, and uncertain differential equation. This textbook also shows applications of uncertainty theory to scheduling, logistics, networks, data mining, control, and finance.
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Specificații

ISBN-13: 9783662499887
ISBN-10: 3662499886
Pagini: 504
Ilustrații: XVII, 487 p. 105 illus.
Dimensiuni: 155 x 235 x 26 mm
Greutate: 0.7 kg
Ediția:Softcover reprint of the original 4th ed. 2015
Editura: Springer Berlin, Heidelberg
Colecția Springer
Seria Springer Uncertainty Research

Locul publicării:Berlin, Heidelberg, Germany

Cuprins

Uncertain measure.- Uncertain variable.- Uncertain Programming.- Uncertain Statistics.- Uncertain Risk Analysis.- Uncertain Reliability Analysis.- Uncertain Logic.- Uncertain Entailment.- Uncertain Set.- Uncertain Inference.- Uncertain Process.- Uncertain Renewal Process.- Uncertain Calculus.- Uncertain Differential Equation.- Uncertain Finance.

Textul de pe ultima copertă

When no samples are available to estimate a probability distribution, we have to invite some domain experts to evaluate the belief degree that each event will happen. Perhaps some people think that the belief degree should be modeled by subjective probability or fuzzy set theory. However, it is usually inappropriate because both of them may lead to counterintuitive results in this case.
In order to rationally deal with belief degrees, uncertainty theory was founded in 2007 and subsequently studied by many researchers. Nowadays, uncertainty theory has become a branch of axiomatic mathematics for modeling belief degrees.
This is an introductory textbook on uncertainty theory, uncertain programming, uncertain statistics, uncertain risk analysis, uncertain reliability analysis, uncertain set, uncertain logic, uncertain inference, uncertain process, uncertain calculus, and uncertain differential equation. This textbook also shows applications of uncertainty theory to scheduling, logistics, networks, data mining, control, and finance.

Caracteristici

The first book available on the research of human uncertainty Covering three different main areas of uncertainty theory: uncertain variable, uncertain set and uncertain process Presents applications of uncertainty theory in industrial engineering, automation and finance Includes supplementary material: sn.pub/extras