doi: 10.4304//jsw.7.11.2533-2537
Clustering Algorithm Analysis of Web Users with Dissimilarity and SOM Neural Networks
22, Lanzhou Jiaotong University Graduate School, Lanzhou; China
3School of Economics and management, Lanzhou Jiaotong University, Lanzhou; China
Abstract—To effectively organize and analyze massive web information, design a web user’s clustering mining algorithm. SOM neural network algorithm has lots of disadvantages, to solve the data clustering, propose a new method that uses D-SOM (Dissimilarity-Self Organizing feature Mapping) algorithm, for clustering web user’s. This algorithm can estimate the center and number of clustering data set by dissimilarity computing, optimize SOM neural network learning and improve clustering effect. Through design the experiment, these web data are collected and processed by D-SOM algorithm Experimental results verify which D-SOM clustering algorithm has better clustering accuracy and imore efficient than SOM neural network algorithm.
Index Terms—Clustering; Dissimilarity; Self Organizing feature Mapping; E-commerce
Cite: Xiao Qiang, Qian Xiao-dong, Liao Hui, "Clustering Algorithm Analysis of Web Users with Dissimilarity and SOM Neural Networks," Journal of Software vol. 7, no. 11, pp. 2533-2537, 2012.
General Information
ISSN: 1796-217X (Online)
Abbreviated Title: J. Softw.
Frequency: Quarterly
APC: 500USD
DOI: 10.17706/JSW
Editor-in-Chief: Prof. Antanas Verikas
Executive Editor: Ms. Cecilia Xie
Abstracting/ Indexing: DBLP, EBSCO,
CNKI, Google Scholar, ProQuest,
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Directory, WorldCat, etcE-mail: jsweditorialoffice@gmail.com
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