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  4. Improved spoken term detection by discriminative training of acoustic models based on user relevance feedback
 
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Improved spoken term detection by discriminative training of acoustic models based on user relevance feedback

Journal
11th Annual Conference of the International Speech Communication Association, INTERSPEECH 2010
Pages
1273-1276
Start Page
1273
End Page
1276
Date Issued
2010
Author(s)
HUNG-YI LEE  
Chen, Chia-Ping
Yeh, Ching-Feng
LIN-SHAN LEE  
DOI
10.21437/interspeech.2010-400
URI
http://www.scopus.com/inward/record.url?eid=2-s2.0-79959847574&partnerID=MN8TOARS
http://scholars.lib.ntu.edu.tw/handle/123456789/355939
Abstract
In a previous paper [1], we proposed a new framework for spoken term detection by exploiting user relevance feedback information to estimate better acoustic model parameters to be used in rescoring the spoken segments. In this way, the acoustic models can be trained with a criterion of better retrieval performance, and the retrieval performance can be less dependent on the existence of a set of acoustic models well matched to the corpora to be retrieved. In this paper, a new set of objective functions for acoustic model training in the above framework was proposed considering the nature of retrieval process and its performance measure, and discriminative training algorithms maximizing the objective functions were developed. Significant performance improvements were obtained in preliminary experiments.
Event(s)
11th Annual Conference of the International Speech Communication Association, INTERSPEECH 2010
Subjects
Spoken term detection
User relevance feedback
Publisher
International Speech Communication Association
Type
conference paper

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