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Cited 4 time in webofscience Cited 5 time in scopus
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Sequential Deep Neural Networks Ensemble for Speech Bandwidth Extensionopen access

Authors
Lee, Bong-KiNoh, KyounjinChang, Joon-HyukChoo, KihyunOh, Eunmi
Issue Date
May-2018
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Keywords
Bandwidth extension; sequential deep neural network; ensemble; log-power spectra; regression; voiced/unvoiced classification
Citation
IEEE ACCESS, v.6, pp.27039 - 27047
Indexed
SCIE
SCOPUS
Journal Title
IEEE ACCESS
Volume
6
Start Page
27039
End Page
27047
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/16970
DOI
10.1109/ACCESS.2018.2833890
Abstract
In this paper, we propose a subband-based ensemble of sequential deep neural networks (DNNs) for bandwidth extension (BWE). First, the narrow-band spectra are folded into the high-band (HB) region to generate the high-band spectra, and then the energy levels of the HB spectra are adjusted using the DNN-based on the log-power spectra feature. For this, we basically build the multiple DNNs, which is responsible for each subband of the HB and the DNN ensemble is sequentially connected from lower to higher subbands. This sequential structure for the DNN ensemble carries out the denoising and HB regression to better estimate the HB energy levels. In addition, we use the voiced/unvoiced (V/UV) classification to differently apply the DNN ensemble depending on either V/UV sounds. To demonstrate the performance of the proposed BWE algorithm, we compare it with a speech production model-based BWE system and a DNN-based BWE system in which the log-power spectra in the HB are estimated directly. The experimental results show that the proposed approach provides better speech quality than conventional approaches.
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COLLEGE OF ENGINEERING (SCHOOL OF ELECTRONIC ENGINEERING)
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