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ESPnet-SLU: Advancing Spoken Language Understanding through ESPnet (2111.14706v2)

Published 29 Nov 2021 in cs.CL, cs.SD, and eess.AS

Abstract: As Automatic Speech Processing (ASR) systems are getting better, there is an increasing interest of using the ASR output to do downstream NLP tasks. However, there are few open source toolkits that can be used to generate reproducible results on different Spoken Language Understanding (SLU) benchmarks. Hence, there is a need to build an open source standard that can be used to have a faster start into SLU research. We present ESPnet-SLU, which is designed for quick development of spoken language understanding in a single framework. ESPnet-SLU is a project inside end-to-end speech processing toolkit, ESPnet, which is a widely used open-source standard for various speech processing tasks like ASR, Text to Speech (TTS) and Speech Translation (ST). We enhance the toolkit to provide implementations for various SLU benchmarks that enable researchers to seamlessly mix-and-match different ASR and NLU models. We also provide pretrained models with intensively tuned hyper-parameters that can match or even outperform the current state-of-the-art performances. The toolkit is publicly available at https://github.com/espnet/espnet.

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Authors (13)
  1. Siddhant Arora (50 papers)
  2. Siddharth Dalmia (36 papers)
  3. Pavel Denisov (19 papers)
  4. Xuankai Chang (61 papers)
  5. Yushi Ueda (7 papers)
  6. Yifan Peng (147 papers)
  7. Yuekai Zhang (10 papers)
  8. Sujay Kumar (2 papers)
  9. Karthik Ganesan (9 papers)
  10. Brian Yan (40 papers)
  11. Ngoc Thang Vu (93 papers)
  12. Alan W Black (83 papers)
  13. Shinji Watanabe (416 papers)
Citations (70)

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