DocumentCode :
944544
Title :
Fuzzy Interpolation and Extrapolation: A Practical Approach
Author :
Huang, Zhiheng ; Shen, Qiang
Author_Institution :
Univ. of California at Berkeley, Berkeley
Volume :
16
Issue :
1
fYear :
2008
Firstpage :
13
Lastpage :
28
Abstract :
Fuzzy interpolation does not only help to reduce the complexity of fuzzy models, but also makes inference in sparse rule-based systems possible. It has been successfully applied to systems control, but limited work exists for its applications to tasks like prediction and classification. Almost all fuzzy interpolation techniques in the literature make strong assumptions that there are two closest adjacent rules available to the observation, and that such rules must flank the observation for each attribute. Also, some interpolation approaches cannot handle fuzzy sets whose membership functions involve vertical slopes. To avoid such limitations and develop a more practical approach, this paper extends the work of Huang and Shen. The result enables both interpolation and extrapolation which involve multiple fuzzy rules, with each rule consisting of multiple antecedents. Two realistic applications, namely truck backer-upper control and computer activity prediction, are provided in this paper to demonstrate the utility of the extended approach. Experiment-based comparisons to the most commonly used Mamdani fuzzy reasoning mechanism, and to other existing fuzzy interpolation techniques are given to show the significance and potential of this research.
Keywords :
extrapolation; fuzzy reasoning; fuzzy set theory; interpolation; knowledge based systems; sparse matrices; Mamdani fuzzy reasoning mechanism; computer activity prediction; fuzzy extrapolation; fuzzy interpolation; fuzzy rules; fuzzy sets; membership functions; sparse rule-based systems; truck backer-upper control; Fuzzy model simplification; fuzzy rule extrapolation; fuzzy rule interpolation; scale and move transformations; sparse rule base; transformation-based interpolation;
fLanguage :
English
Journal_Title :
Fuzzy Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6706
Type :
jour
DOI :
10.1109/TFUZZ.2007.902038
Filename :
4358815
Link To Document :
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