4.8 Article

Information Granularity in Fuzzy Binary GrC Model

期刊

IEEE TRANSACTIONS ON FUZZY SYSTEMS
卷 19, 期 2, 页码 253-264

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TFUZZ.2010.2095461

关键词

Fuzzy-information entropy; fuzzy-information granularity; granular computing (GrC); partial-order relation

资金

  1. National Natural Science Fund of China [60903110, 60773133, 70971080, 60970014, 61075120]
  2. National Key Basic Research and Development Program of China (973) [2007CB311002]
  3. Natural Science Fund of Shanxi Province, China [2009021017-1, 2008011038]

向作者/读者索取更多资源

Zadeh's seminal work in theory of fuzzy-information granulation in human reasoning is inspired by the ways in which humans granulate information and reason with it. This has led to an interesting research topic: granular computing (GrC). Although many excellent research contributions have been made, there remains an important issue to be addressed: What is the essence of measuring a fuzzy-information granularity of a fuzzy-granular structure? What is needed to answer this question is an axiomatic constraint with a partial-order relation that is defined in terms of the size of each fuzzy-information granule from a fuzzy-binary granular structure. This viewpoint is demonstrated for fuzzy-binary granular structure, which is called the binary GrC model by Lin. We study this viewpoint from from five aspects in this study, which are fuzzy BINARY-granular-structure operators, partial-order relations, measures for fuzzy-information granularity, an axiomatic approach to fuzzy-information granularity, and fuzzy-information entropies.

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