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Focus on the Sound around You: Monaural Target Speaker Extraction via Distance and Speaker Information

28 June 2023
Jiuxin Lin
Peng Wang
Heinrich Dinkel
Jun Chen
Zhiyong Wu
Zhiyong Yan
Yongqing Wang
Junbo Zhang
Yujun Wang
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Abstract

Previously, Target Speaker Extraction (TSE) has yielded outstanding performance in certain application scenarios for speech enhancement and source separation. However, obtaining auxiliary speaker-related information is still challenging in noisy environments with significant reverberation. inspired by the recently proposed distance-based sound separation, we propose the near sound (NS) extractor, which leverages distance information for TSE to reliably extract speaker information without requiring previous speaker enrolment, called speaker embedding self-enrollment (SESE). Full- & sub-band modeling is introduced to enhance our NS-Extractor's adaptability towards environments with significant reverberation. Experimental results on several cross-datasets demonstrate the effectiveness of our improvements and the excellent performance of our proposed NS-Extractor in different application scenarios.

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