基于模糊社会网络分析的数据挖掘

P. Nair, S. Sarasamma
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引用次数: 54

摘要

本文将模糊理论应用于社会网络分析(SNA)。社会网络分析将实体之间存在的有意义的关系建模为图形。这些实体可以是人、事件、组织、文本中的符号、语言中的声音、世界上的国家等等。然而,模糊图可能非常大,因此及时得出有意义的结论的能力可能相当困难。考虑到这一点,提出了一种模糊图信息内容的整合方法。由于现有的模糊二元运算都不符合要求,本文还引入了一种新的模糊二元运算——合并运算。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data Mining Through Fuzzy Social Network Analysis
In this paper, fuzzy theory has been applied to social network analysis (SNA). Social network analysis models meaningful relations that exist between entities as graph. These entities may be people, events, organizations, symbols in text, sounds in verbalizations, nations of the world and so on. However, the fuzzy graph can be very huge and thus the ability to arrive at meaningful conclusions in a timely fashion may be quite difficult. With this in mind, a method to consolidate the information content of the fuzzy graph is proposed. Since none of the existing fuzzy binary operations meet the requirements, a new fuzzy binary operation called consolidation operation is also introduced.
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