Unsupervised Learning Algorithms for Multimodal Pattern Classifiers

被引:0
|
作者
Matsunaga, Hiroyuki
Urahama, Kiichi
机构
[1] Fujitsu Kyushu System Engineering, Fukuoka, 814-0022, Japan
[2] Kyushu Institute of Design, Fukuoka, 815-0022, Japan
来源
Systems and Computers in Japan | 1999年 / 30卷 / 08期
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摘要
Nearest neighbor pattern recognition is represented in terms of robust estimation, and a classification method using multimodal data fusion based on the Bayes rule is proposed. The proposed method is proved to be a kind of fuzzy voting. Unsupervised learning of classes' representative points using the EM algorithm is introduced. The basic properties of the proposed multimodal classifier are examined using simple data, and a qualitative explanation of the McGurk effect is offered. Experimental results on segmentation of multiple images are presented as an example of application. © 1999 Scripta Technica.
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页码:51 / 60
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