User-friendly automatic transcription of low-resource languages: Plugging ESPnet into Elpis - LLACAN - Langage, Langues et Cultures d’Afrique Noire (UMR 8135) Accéder directement au contenu
Communication Dans Un Congrès Année : 2021

User-friendly automatic transcription of low-resource languages: Plugging ESPnet into Elpis

Oliver Adams
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Laurent Besacier
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Christopher Cox
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Résumé

This paper reports on progress integrating the speech recognition toolkit ESPnet into Elpis, a web front-end originally designed to provide access to the Kaldi automatic speech recognition toolkit. The goal of this work is to make end-to-end speech recognition models available to language workers via a user-friendly graphical interface. Encouraging results are reported on (i) development of an ESPnet recipe for use in Elpis, with preliminary results on data sets previously used for training acoustic models with the Persephone toolkit along with a new data set that had not previously been used in speech recognition, and (ii) incorporating ESPnet into Elpis along with UI enhancements and a CUDA-supported Dockerfile.
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Dates et versions

halshs-03030529 , version 1 (14-12-2020)
halshs-03030529 , version 2 (23-02-2021)

Licence

Paternité - Pas d'utilisation commerciale - Partage selon les Conditions Initiales

Identifiants

Citer

Oliver Adams, Benjamin Galliot, Guillaume Wisniewski, Nicholas Lambourne, Ben Foley, et al.. User-friendly automatic transcription of low-resource languages: Plugging ESPnet into Elpis. ComputEL-4: Fourth Workshop on the Use of Computational Methods in the Study of Endangered Languages, Mar 2021, Hawai‘i, United States. ⟨halshs-03030529v2⟩
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