Subtractive Clustering Fuzzy Expert System for Engineering Applications
Performance of a fuzzy expert system is related with how good the membership functions are normalized, tuned for a problem statement and correlation of antecedents and consequents. This paper helps in tuning and designing the membership functions that are best suited for the problem statement by int...
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| Vydáno v: | Procedia computer science Ročník 48; s. 77 - 83 |
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| Hlavní autoři: | , , |
| Médium: | Journal Article |
| Jazyk: | angličtina |
| Vydáno: |
Elsevier B.V
2015
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| ISSN: | 1877-0509, 1877-0509 |
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| Abstract | Performance of a fuzzy expert system is related with how good the membership functions are normalized, tuned for a problem statement and correlation of antecedents and consequents. This paper helps in tuning and designing the membership functions that are best suited for the problem statement by integrating subtractive clustering method for fuzzy expert system design. Subtractive clustering algorithm is used to generate the tuned membership functions automatically in accordance to the domain knowledge. The proposed integrated design of clustering based fuzzy expert system acts in improving the accuracy and leads to a précised decision making environment. A practical example for ageing assessment of transformer insulation oil has been included to illustrate the method much effectively; the discussed example has been validated practically in the laboratory and is found that the proposed method is efficient in decision making. |
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| AbstractList | Performance of a fuzzy expert system is related with how good the membership functions are normalized, tuned for a problem statement and correlation of antecedents and consequents. This paper helps in tuning and designing the membership functions that are best suited for the problem statement by integrating subtractive clustering method for fuzzy expert system design. Subtractive clustering algorithm is used to generate the tuned membership functions automatically in accordance to the domain knowledge. The proposed integrated design of clustering based fuzzy expert system acts in improving the accuracy and leads to a précised decision making environment. A practical example for ageing assessment of transformer insulation oil has been included to illustrate the method much effectively; the discussed example has been validated practically in the laboratory and is found that the proposed method is efficient in decision making. |
| Author | Jarial, R.K. Sood, Y.R. Rao, U. Mohan |
| Author_xml | – sequence: 1 givenname: U. Mohan surname: Rao fullname: Rao, U. Mohan email: mohan13.nith@gmail.com organization: Research Scholar Electrical Engineering Department, National Institute of Technology Hamirpur, 177005 India – sequence: 2 givenname: Y.R. surname: Sood fullname: Sood, Y.R. organization: Department of Electrical Engineering, National Institute of Technology Hamirpur, 177005, India – sequence: 3 givenname: R.K. surname: Jarial fullname: Jarial, R.K. organization: Department of Electrical Engineering, National Institute of Technology Hamirpur, 177005, India |
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| Cites_doi | 10.1109/TPWRD.2008.2002652 10.1016/j.proeng.2012.01.944 |
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| Keywords | Fuzzy Decession Making Clustering Expert system |
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| References | Michael (bib0015) 2005 Naresh, Veena, Manisha (bib0030) Oct 2008; 23 R. Venkata Rao “Decision Making in Manufacturing Environment Using Graph Theory and Fuzzy Multiple Attribute Decision Making Methods” Volume 2, Springer Series in Advanced Manufacturing 2013, Springer-Verlag, ISBN 978-1-4471-4375-8. Mohan Rao, Jarial (bib0035) Dec 2013 Hasmat, Surinder, Mantosh, Jarial (bib0005) 2012; 30 Manual T90/T90+ “UV/VIS Spectrophotometer” TIFAC-CORE “NIT-HAMIRPUR”. Khaled Hammouda, Fakhreddine Karray “A comparative stydy of data clustering techniques” University of waterloo, Ontario-Canada. 10.1016/j.procs.2015.04.153_bib0025 Mohan Rao (10.1016/j.procs.2015.04.153_bib0035) 2013 Hasmat (10.1016/j.procs.2015.04.153_bib0005) 2012; 30 Naresh (10.1016/j.procs.2015.04.153_bib0030) 2008; 23 10.1016/j.procs.2015.04.153_bib0020 10.1016/j.procs.2015.04.153_bib0010 Michael (10.1016/j.procs.2015.04.153_bib0015) 2005 |
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| SubjectTerms | Clustering Decession Making Expert system Fuzzy |
| Title | Subtractive Clustering Fuzzy Expert System for Engineering Applications |
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