Situating Automatic Speech Recognition Development within Communities of Under-heard Language Speakers
Thomas Reitmaier, Electra Wallington, Ondrej Klejch, Nina Markl, Léa-Marie Lam-Yee-Mui, Jennifer Pearson, Matt Jones, Peter Bell, Simon Robinson
摘要
In this paper we develop approaches to automatic speech recognition (ASR) development that suit the needs and functions of under-heard language speakers. Our novel contribution to HCI is to show how community-engagement can surface key technical and social issues and opportunities for more effective speech-based systems. We introduce a bespoke toolkit of technologies and showcase how we utilised the toolkit to engage communities of under-heard language speakers; and, through that engagement process, situate key aspects of ASR development in community contexts. The toolkit consists of (1) an information appliance to facilitate spoken-data collection on topics of community interest, (2) a mobile app to create crowdsourced transcripts of collected data, and (3) demonstrator systems to showcase ASR capabilities and to feed back research results to community members. Drawing on the sensibilities we cultivated through this research, we present a series of challenges to the orthodoxy of state-of-the-art approaches to ASR development.
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- wav2vec 2.0: A Framework for Self-Supervised Learning of Speech RepresentationsAlexei Baevski, Yuhao Zhou, Abdelrahman Mohamed, Michael AuliNeurIPS 2020 · 被引用 9,451 次
- "Everyone wants to do the model work, not the data work": Data Cascades in High-Stakes AINithya Sambasivan, Shivani Kapania, Hannah Highfill, Diana Akrong 等CHI 2021 · 被引用 725 次
- Opportunities and Challenges of Automatic Speech Recognition Systems for Low-Resource Language SpeakersThomas Reitmaier, Electra Wallington, Dani Kalarikalayil Raju, Ondrej Klejch 等CHI 2022 · 被引用 44 次
- Local Languages, Third Spaces, and other High-Resource ScenariosSteven BirdACL 2022
- Changing the World by Changing the DataAnna RogersACL 2021
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