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    NCU Institutional Repository > 理學院 > 數學系 > 期刊論文 >  Item 987654321/109279


    請使用永久網址來引用或連結此文件: https://ir.lib.ncu.edu.tw/handle/987654321/109279


    題名: Self-organizing map for symbolic data
    作者: 洪文良;Yang, Miin-Shen;Hung, Wen-Liang;Chen, De-Hua
    貢獻者: 理學院數學系
    關鍵詞: Dissimilarity measure;Fuzzy clustering;Self-organizing map;Suppression concept;Symbolic data
    日期: 2012-09-16
    上傳時間: 2026-04-23 16:22:07 (UTC+8)
    出版者: Elsevier;Elsevier B.V
    摘要: 摘要: Kohonen's self-organizing map (SOM) is a competitive learning neural network that uses a neighborhood lateral interaction function to discover the topological structure hidden in the data set. It is an unsupervised learning which has both visualization and clustering properties. In general, the SOM neural network is constructed as a learning algorithm for numeric (vector) data. Although there are different SOM clustering methods for numeric data with real applications in the literature, there is less consideration in a SOM clustering for symbolic data. In this paper, we modify the SOM so that it can treat symbolic data and a so-called symbolic SOM (S-SOM) is then proposed. We first use novel structures to represent symbolic neurons. We then use a suppression concept to create a learning rule for neurons. Therefore, the S-SOM is created for treating symbolic data by embedding the novel structure and the suppression learning rule. Some real data sets are applied with the S-SOM. The experimental results show the feasibility and effectiveness of the proposed S-SOM in these real applications.
    出版者: Elsevier B.V
    出版日期: 2012-09-16
    出處: Fuzzy sets and systems, 2012-09, Vol.203, p.49-73
    資源來源: Elsevier ScienceDirect Journals Complete **
    版權: 2012 Elsevier B.V.
    識別號: ISSN: 0165-0114
    識別號: EISSN: 1872-6801
    識別號: DOI: 10.1016/j.fss.2012.04.006
    顯示於類別:[數學系] 期刊論文

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