Nonlinear Integrals and Their Applications in Data Mining

Zhenyuan Wang, Rong Yang, K. Leung
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引用次数: 88

Abstract

Regarding the set of all feature attributes in a given database as the universal set, this monograph discusses various nonadditive set functions that describe the interaction among the contributions from feature attributes towards a considered target attribute. Then, the relevant nonlinear integrals are investigated. These integrals can be applied as aggregation tools in information fusion and data mining, such as synthetic evaluation, nonlinear multiregressions, and nonlinear classifications. Some methods of fuzzification are also introduced for nonlinear integrals such that fuzzy data can be treated and fuzzy information is retrievable. The book is suitable as a text for graduate courses in mathematics, computer science, and information science. It is also useful to researchers in the relevant area.
非线性积分及其在数据挖掘中的应用
将给定数据库中所有特征属性的集合视为通用集,本专著讨论了描述特征属性对考虑的目标属性的贡献之间的相互作用的各种非加性集合函数。然后,研究了相关的非线性积分。这些积分可以作为信息融合和数据挖掘的聚合工具,如综合评价、非线性多元回归和非线性分类。本文还介绍了非线性积分的模糊化方法,使模糊数据得到处理,模糊信息得到恢复。本书适合作为数学、计算机科学和信息科学研究生课程的教材。对相关领域的研究人员也有一定的参考价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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