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Privacy Preserving Data Mining (PPDM) is an active research area which deals with generation of knowledge without revealing user identity or sensitive information. Real world data is made up of vague and uncertain data and spans to many universe and granules, which were not considered in PPDM. The focus of this book is towards entrench PPDM techniques in intelligent techniques like fuzzy set theory, rough set theory and association rule mining, over vague and imprecise data. Studies were conducted based on varying real life scenarios and designing methods to suit to those needs were proposed…mehr

Produktbeschreibung
Privacy Preserving Data Mining (PPDM) is an active research area which deals with generation of knowledge without revealing user identity or sensitive information. Real world data is made up of vague and uncertain data and spans to many universe and granules, which were not considered in PPDM. The focus of this book is towards entrench PPDM techniques in intelligent techniques like fuzzy set theory, rough set theory and association rule mining, over vague and imprecise data. Studies were conducted based on varying real life scenarios and designing methods to suit to those needs were proposed and proved through theoretically and experimentally. This book is produced from many theories, proofs, experiments and studies, which were presented in a simple and understandable style. This book would serve as a major source of knowledge for researchers in the area of PPDM, data mining and rough set theory.
Autorenporträt
Dr. Geetha Mary A received her Ph.D. from VIT University, Vellore, India. She has completed M.Tech. and B.E. in Computer Science and Engineering. She is working for VIT University as Associate Professor. Her research interests include security for data mining & databases. She is associated with many professional bodies like IACSIT, CSTA and IAENG.