DocumentCode :
1579835
Title :
Self-organizing Map vs. Spectral Clustering on Visual Feature Extraction for Human Interface
Author :
Tsuruta, Naoyuki ; Aly, Saleh K H ; Maeda, Sakashi ; Takahashi, Shin-ya ; Morimoto, Tsuyoshi
Author_Institution :
Dept. of Electron. Eng., Fukuoka Univ.
fYear :
2006
Firstpage :
55
Lastpage :
58
Abstract :
Tasks of image recognition become important components for multi-modal interface. For developing feasible components, problems of huge dimensionality and non-linearity must be resolved. Image recognition consists of three stages: calibration stage, feature extraction (or representation) stage and recognition stage. For recognition stage, state of the art methods including nonlinear methods were proposed. On the other hand, linear methods, such as principle component analysis and linear discriminant method, are commonly used yet for feature extraction stage. Self-organizing feature map and spectral clustering are candidates of the non-linear feature extraction. Both methods have many empirical successes because of their simplicity and non-linearity. In this paper, we analyze characteristic of those methods. A summary of their characteristics shows the possibility to combine the both methods into a new approach. To clarify the importance of this topic, we also describe an overview of our multi-modal interface including lip-reading.
Keywords :
feature extraction; image recognition; image representation; nonlinear equations; pattern clustering; principal component analysis; self-organising feature maps; calibration stage; feature extraction; human interface; image recognition; linear discriminant method; lip-reading; multimodal interface; nonlinear methods; principle component analysis; recognition stage; self-organizing map; spectral clustering; visual feature extraction; Calibration; Computer science; Emotion recognition; Face recognition; Feature extraction; Humans; Image recognition; Level measurement; Principal component analysis; Training data; Self-organizing feature maps; Spectral clustering; feature extraction; image recognition; multi-modal interface;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Strategic Technology, The 1st International Forum on
Conference_Location :
Ulsan
Print_ISBN :
1-4244-0426-6
Electronic_ISBN :
1-4244-0427-4
Type :
conf
DOI :
10.1109/IFOST.2006.312245
Filename :
4107310
Link To Document :
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