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Paper Abstract and Keywords
Presentation 2018-03-05 17:25
Bayesian Independent Component Analysis under Hierarchical Model on Latent Variables
Kai Asaba, Shota Saito, Shunsuke Horii, Toshiyasu Matsushima (Waseda Univ.) IBISML2017-97
Abstract (in Japanese) (See Japanese page) 
(in English) Independent component analysis (ICA) deals with the problem of estimating unknown latent variables which generate the observed data. ICA has applications such as speech signal processing, time series analysis, and image feature extraction. A previous study of ICA assumes Laplace distribution on latent variables. However, this assumption makes it difficult to calculate the posterior distribution of latent variables. In the problem of sparse liner regression, on the other hand, several studies have approximately calculated the posterior distribution by assuming a hierarchical prior model representing Laplace distribution. This paper treats the problem of ICA and assumes a hierarchical prior model representing Laplace distribution on latent variables.
Based on this hierarchical model, we propose a method of calculating the approximate posterior distribution on latent variables by using variational Bayes method. To compare our method and conventional ICA method, some experiments on synthetic data are performed. Through these experiments, we show the effectiveness of our proposed method.
Keyword (in Japanese) (See Japanese page) 
(in English) Independent Component Analysis / Hierarchical Model / Variational Bayes Method / / / / /  
Reference Info. IEICE Tech. Rep., vol. 117, no. 475, IBISML2017-97, pp. 49-53, March 2018.
Paper # IBISML2017-97 
Date of Issue 2018-02-26 (IBISML) 
ISSN Print edition: ISSN 0913-5685    Online edition: ISSN 2432-6380
Copyright
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reproduction
All rights are reserved and no part of this publication may be reproduced or transmitted in any form or by any means, electronic or mechanical, including photocopy, recording, or any information storage and retrieval system, without permission in writing from the publisher. Notwithstanding, instructors are permitted to photocopy isolated articles for noncommercial classroom use without fee. (License No.: 10GA0019/12GB0052/13GB0056/17GB0034/18GB0034)
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Conference Information
Committee IBISML  
Conference Date 2018-03-05 - 2018-03-06 
Place (in Japanese) (See Japanese page) 
Place (in English) Nishijin Plaza, Kyushu University 
Topics (in Japanese) (See Japanese page) 
Topics (in English) Statisitical Mathematics, Machine Learning, Data Mining, etc. 
Paper Information
Registration To IBISML 
Conference Code 2018-03-IBISML 
Language Japanese 
Title (in Japanese) (See Japanese page) 
Sub Title (in Japanese) (See Japanese page) 
Title (in English) Bayesian Independent Component Analysis under Hierarchical Model on Latent Variables 
Sub Title (in English)  
Keyword(1) Independent Component Analysis  
Keyword(2) Hierarchical Model  
Keyword(3) Variational Bayes Method  
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1st Author's Name Kai Asaba  
1st Author's Affiliation Waseda University (Waseda Univ.)
2nd Author's Name Shota Saito  
2nd Author's Affiliation Waseda University (Waseda Univ.)
3rd Author's Name Shunsuke Horii  
3rd Author's Affiliation Waseda University (Waseda Univ.)
4th Author's Name Toshiyasu Matsushima  
4th Author's Affiliation Waseda University (Waseda Univ.)
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Speaker Author-1 
Date Time 2018-03-05 17:25:00 
Presentation Time 25 minutes 
Registration for IBISML 
Paper # IBISML2017-97 
Volume (vol) vol.117 
Number (no) no.475 
Page pp.49-53 
#Pages
Date of Issue 2018-02-26 (IBISML) 


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