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Conformer-based Target-Speaker Automatic Speech Recognition for Single-Channel Audio (2308.05218v1)

Published 9 Aug 2023 in cs.SD, cs.LG, and eess.AS

Abstract: We propose CONF-TSASR, a non-autoregressive end-to-end time-frequency domain architecture for single-channel target-speaker automatic speech recognition (TS-ASR). The model consists of a TitaNet based speaker embedding module, a Conformer based masking as well as ASR modules. These modules are jointly optimized to transcribe a target-speaker, while ignoring speech from other speakers. For training we use Connectionist Temporal Classification (CTC) loss and introduce a scale-invariant spectrogram reconstruction loss to encourage the model better separate the target-speaker's spectrogram from mixture. We obtain state-of-the-art target-speaker word error rate (TS-WER) on WSJ0-2mix-extr (4.2%). Further, we report for the first time TS-WER on WSJ0-3mix-extr (12.4%), LibriSpeech2Mix (4.2%) and LibriSpeech3Mix (7.6%) datasets, establishing new benchmarks for TS-ASR. The proposed model will be open-sourced through NVIDIA NeMo toolkit.

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Authors (4)
  1. Yang Zhang (1129 papers)
  2. Krishna C. Puvvada (28 papers)
  3. Vitaly Lavrukhin (32 papers)
  4. Boris Ginsburg (111 papers)
Citations (14)

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