The growing hierarchical self-organizing map: Exploratory analysis of high-dimensional data

被引:313
|
作者
Rauber, A [1 ]
Merkl, D [1 ]
Dittenbach, M [1 ]
机构
[1] Vienna Univ Technol, Dept Software Technol & Interact Syst, A-1040 Vienna, Austria
来源
IEEE TRANSACTIONS ON NEURAL NETWORKS | 2002年 / 13卷 / 06期
关键词
data mining; exploratory data analysis; hierarchical clustering; pattern recognition; self-organizing map (SOM);
D O I
10.1109/TNN.2002.804221
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
The self-organizing map (SOM) is a very popular unsupervised neural-network model for the analysis of high-dimensional input data as in data mining applications. However, at least two limitations have to be noted, which are related to the static architecture of this model as well as to the limited capabilities for the representation of hierarchical relations of the data. With our novel growing hierarchical SOM (GHSOM) presented in this paper, we address both limitations. The GHSOM is an artificial neural-network model with hierarchical architecture composed of independent growing SOMs. The motivation was to provide a model that adapts its architecture during its unsupervised training process according to the particular requirements of the input data. Furthermore, by providing a global orientation of the independently growing maps in the individual layers of the hierarchy, navigation across branches is facilitated. The benefits of this novel neural network are a problem-dependent architecture and the intuitive representation of hierarchical relations in the data. This is especially appealing in explorative data mining applications, allowing the inherent structure of the data to unfold in a highly intuitive fashion.
引用
收藏
页码:1331 / 1341
页数:11
相关论文
共 50 条
  • [31] Growing Hierarchical Probabilistic Self-Organizing Graphs
    Lopez-Rubio, Ezequiel
    Jose Palomo, Esteban
    IEEE TRANSACTIONS ON NEURAL NETWORKS, 2011, 22 (07): : 997 - 1008
  • [32] Fuzzy Growing Hierarchical Self-Organizing Networks
    Barreto-Sanz, Miguel
    Perez-Uribe, Andres
    Pena-Reyes, Carlos-Andres
    Tomassini, Marco
    ARTIFICIAL NEURAL NETWORKS - ICANN 2008, PT II, 2008, 5164 : 713 - +
  • [33] Reliable hierarchical clustering with the self-organizing map
    Samsonova, EV
    Bäck, T
    Kok, JN
    IJzerman, AP
    ADVANCES IN INTELLIGENT DATA ANALYSIS VI, PROCEEDINGS, 2005, 3646 : 385 - 396
  • [34] Self-organizing map clustering analysis for molecular data
    Wang, Lin
    Jiang, Minghu
    Lu, Yinghua
    Noe, Frank
    Smith, Jeremy C.
    ADVANCES IN NEURAL NETWORKS - ISNN 2006, PT 1, 2006, 3971 : 1250 - 1255
  • [35] Robust Growing Hierarchical Self Organizing Map
    Moreno, S
    Allende, H
    Rogel, C
    Salas, R
    COMPUTATIONAL INTELLIGENCE AND BIOINSPIRED SYSTEMS, PROCEEDINGS, 2005, 3512 : 341 - 348
  • [36] Analyzing phase transitions in high-dimensional self-organizing maps
    Riesenhuber, M
    Bauer, HU
    Geisel, T
    BIOLOGICAL CYBERNETICS, 1996, 75 (05) : 397 - 407
  • [37] Variability analysis of Kuroshio intrusion through Luzon Strait using growing hierarchical self-organizing map
    I-Fong Tsui
    Chau-Ron Wu
    Ocean Dynamics, 2012, 62 : 1187 - 1194
  • [38] Variability analysis of Kuroshio intrusion through Luzon Strait using growing hierarchical self-organizing map
    Tsui, I-Fong
    Wu, Chau-Ron
    OCEAN DYNAMICS, 2012, 62 (08) : 1187 - 1194
  • [39] Visualization of High-Dimensional Clinically Acquired Geographic Data Using the Self-Organizing Maps
    Oyana, T. J.
    JOURNAL OF ENVIRONMENTAL INFORMATICS, 2009, 13 (01) : 33 - 44
  • [40] MIGSOM: Multilevel Interior Growing Self-Organizing Maps for High Dimensional Data Clustering
    Ayadi, Thouraya
    Hamdani, Tarek M.
    Alimi, Adel M.
    NEURAL PROCESSING LETTERS, 2012, 36 (03) : 235 - 256