WENETSPEECH: A 10000+ Hours Multi-Domain Mandarin Corpus for Speech Recognition


연구 분야: Artificial Intelligence



학회: ICASSP 2022 - 2022 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP)


초록

In this paper, we present WenetSpeech, a multi-domain Mandarin corpus consisting of 10000+ hours high-quality labeled speech, 2400+ hours weakly labeled speech, and about 10000 hours unlabeled speech, with 22400+ hours in total. We collect the data from YouTube and Podcast, which covers a variety of speaking styles, scenarios, domains, topics and noisy conditions. An optical character recognition (OCR) method is introduced to generate the audio/text segmentation candidates for the YouTube data on the corresponding video subtitles, while a high-quality ASR transcription system is used to generate audio/text pair candidates for the Podcast data. Then we propose a novel end-to-end label error detection approach to further validate and filter the candidates. We also provide three manually labelled high-quality test sets along with WenetSpeech for evaluation – Dev for cross-validation purpose in training, Test_Net, collected from Internet for matched test, and Test_Meeting, recorded from real meetings for more challenging mismatched test. Baseline systems trained with WenetSpeech are provided for three popular speech recognition toolkits, namely Kaldi, ESPnet, and WeNet, and recognition results on the three test sets are also provided as benchmarks. To the best of our knowledge, WenetSpeech is the current largest open-source Mandarin speech corpus with transcriptions, which benefits research on production-level speech recognition.


Author Profile
Binbin Zhang

Audio Speech and Language Processing Group (ASLP@NPU) School of Computer Science Northwestern Polytechnical University

Andorra
Author Profile
Hang Lv

Audio Speech and Language Processing Group (ASLP@NPU) School of Computer Science Northwestern Polytechnical University

Andorra
Author Profile
Pengcheng Guo

Audio Speech and Language Processing Group (ASLP@NPU) School of Computer Science Northwestern Polytechnical University

Andorra

📄 논문 정보

발행 연도 2022년
인용수 99
출판 국가 Colombia, Andorra
사이트 IEEE
좋아요 수 0

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