Uncertainty in Data Envelopment Analysis

Uncertainty in Data Envelopment Analysis

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Detailed information

Classical data envelopment analysis (DEA) models use crisp data to measure the inputs and outputs of a given system. In cases such as manufacturing systems, production processes, service systems, etc., the inputs and outputs may be complex and difficult to measure with classical DEA models. Crisp input and output data are fundamentally indispensable in the conventional DEA models. If these models contain complex uncertain data, then they will become more important and practical for decision makers. Uncertainty in Data Envelopment Analysis introduces methods to investigate uncertain data in DEA models, providing a deeper look into two types of uncertain DEA methods, fuzzy DEA and belief degree-based uncertainty DEA, which are based on uncertain measures. These models aim to solve problems encountered by classical data analysis in cases where the inputs and outputs of systems and processes are volatile and complex, making measurement difficult.
EAN 9780323994446
ISBN 032399444X
Binding Paperback / softback
Publisher Elsevier Science & Technology
Publication date May 24, 2023
Pages 346
Language English
Dimensions 229 x 152
Country United Kingdom
Readership Professional & Scholarly
Authors Hosseinzadeh, Ali Asghar (Assistant Professor of Mathematics, Lahijan Branch, Islamic Azad University, Lahijan, Iran); Lotfi, Farhad Hosseinzadeh, PhD (Science and Research Branch, Islamic Azad University, Tehran, Iran); Mahmoodirad, Ali (Associate Professor of Applied Mathematics, Masjed-Soleiman Branch Islamic Azad University, Masjed-Soleiman, Iran); Niroomand, Sadegh (Associate Professor of Industrial Engineering, Firouzabad Institute of Higher Education, Firouzabad, Fars, Iran); Sanei, Masoud (Associate Professor of Mathematics, Central Tehran Branch, Islamic Azad University, Tehran, Iran)
Series Uncertainty, Computational Techniques, and Decision Intelligence
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