Multichannel Speech Enhancement in Vehicle Environment Based on Interchannel Attention Mechanism

Author:

Shen Xueli12ORCID,Liang Zhenxing2ORCID,Li Shiyin1ORCID,Jiang Yanji23ORCID

Affiliation:

1. School of Information and Control Engineering, China University of Mining and Technology, Xuzhou 221116, China

2. School of Software, Liaoning Technical University, Huludao 125105, China

3. Suzhou Automotive Research Institute, Tsinghua University, Suzhou 215100, China

Abstract

Speech enhancement in a vehicle environment remains a challenging task for the complex noise. The paper presents a feature extraction method that we use interchannel attention mechanism frame by frame for learning spatial features directly from the multichannel speech waveforms. The spatial features of the individual signals learned through the proposed method are provided as an input so that the two-stage BiLSTM network is trained to perform adaptive spatial filtering as time-domain filters spanning signal channels. The two-stage BiLSTM network is capable of local and global features extracting and reaches competitive results. Using scenarios and data based on car cockpit simulations, in contrast to other methods that extract the feature from multichannel data, the results show the proposed method has a significant performance in terms of all SDR, SI-SNR, PESQ, and STOI.

Funder

Department of Education of Liaoning Province

Publisher

Hindawi Limited

Subject

Strategy and Management,Computer Science Applications,Mechanical Engineering,Economics and Econometrics,Automotive Engineering

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