Abstract
Incremental construction of fuzzy rule-based classifiers is studied in this paper. It is assumed that not all training patterns are given a priori for training classifiers, but are gradually made available over time. It is also assumed the previously available training patterns can not be used in the following time steps. Thus fuzzy rule-based classifiers should be constructed by updating already constructed classifiers using the available training patterns at each time step. Incremental methods are proposed for this type of pattern classification problems. A series of computational experiments are conducted in order to examine the performance of the proposed incremental construction methods of fuzzy rule-based classifiers using a simple artificial pattern classification problem.
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Ishibuchi, H., Nakashima, T., Nii, M.: Classification and Modeling with Linguistic Information Granules: Advanced Approaches to Linguistic Data Mining, 1st edn. Springer New York, Inc., Secaucus (2004)
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© 2012 Springer-Verlag Berlin Heidelberg
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Nakashima, T., Sumitani, T., Bargiela, A. (2012). Incremental Update of Fuzzy Rule-Based Classifiers for Dynamic Problems. In: Lee, R. (eds) Computer and Information Science 2012. Studies in Computational Intelligence, vol 429. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-30454-5_15
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DOI: https://doi.org/10.1007/978-3-642-30454-5_15
Publisher Name: Springer, Berlin, Heidelberg
Print ISBN: 978-3-642-30453-8
Online ISBN: 978-3-642-30454-5
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