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来源类型Article
规范类型其他
DOI10.1109/21.299699
Identification of fuzzy prediction models through hyperellipsoidal clustering.
Nakamori Y; Ryoke M
发表日期1994
出处IEEE Transactions on Systems, Man and Cybernetics 24 (8): 1153-1173
出版年1994
语种英语
摘要To build a fuzzy model, as proposed by Takagi and Sugeno (1985), the authors emphasize an interactive approach in which knowledge or intuition can play an important role. It is impossible in principle, due to the nature of the data, to specify a criterion and procedure to obtain an ideal fuzzy model. The main subject of fuzzy modeling is how to analyze data in order to summarize it to a certain extent so that one can judge the quality of a model by intuition. The main proposal in this paper is a clustering technique which takes into account both continuity and linearity of the data distribution. The authors call this technique the hyperellipsoidal clustering method, which assists modelers in finding fuzzy subsets suitable for building a fuzzy model. The authors deal with other problems in fuzzy modeling as well, such as the effect of data standardization, the selection of conditional and explanatory variables, the shape of a membership function and its tuning problem, the manner of evaluating weights of rules, and the simulation technique for verifying a fuzzy model.
主题Methodology of Decision Analysis (MDA)
URLhttp://pure.iiasa.ac.at/id/eprint/3880/
来源智库International Institute for Applied Systems Analysis (Austria)
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资源类型智库出版物
条目标识符http://119.78.100.153/handle/2XGU8XDN/127270
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GB/T 7714
Nakamori Y,Ryoke M. Identification of fuzzy prediction models through hyperellipsoidal clustering.. 1994.
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