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Joint optimization of neural acoustic beamforming and dereverberation with x-vectors for robust speaker verification

Title
Joint optimization of neural acoustic beamforming and dereverberation with x-vectors for robust speaker verification
Author
장준혁
Keywords
Acoustic beamforming; Dereverberation; Deep neural network; Speaker verification; Joint training
Issue Date
2019-09
Publisher
International Speech Communication Association, INTERSPEECH
Citation
INTERSPEECH 2019, Page. 4075-4079
Abstract
In this paper, we investigate the deep neural network (DNN) supported acoustic beamforming and dereverberation as the front-end of the x-vector speaker verification (SV) framework in a noisy and reverberant environment. Firstly, a DNN for supporting either the classical beamforming (e. g. MVDR) or the dereverberation (e. g. WPE) algorithm is trained on multichannel speech signals. Next, an x-vector speaker embedding network is trained on top of the enhanced speech features to classify the training speakers. Finally, after the separate training stages are over, either one or both of the DNN supported beamforming and dereverberation modules are serially connected to the x-vector network, and jointly trained to optimize the common objective of speaker classification. Experiments on the artificially generated speech dataset using simulated and real room impulse responses (RIRs) with various types of domestic noise samples show that jointly training the supportive neural network models along with the x-vector network within the classical speech enhancement framework brings significant performance gain for robust text-independent (TI) SV. © 2019 ISCA
URI
https://www.isca-speech.org/archive/Interspeech_2019/abstracts/1356.htmlhttps://repository.hanyang.ac.kr/handle/20.500.11754/153877
ISSN
1990-9772; 2308-457X
DOI
10.21437/Interspeech.2019-1356
Appears in Collections:
COLLEGE OF ENGINEERING[S](공과대학) > ELECTRONIC ENGINEERING(융합전자공학부) > Articles
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