Server-side Rescoring of Spoken Entity-centric Knowledge Queries for Virtual Assistants
November 02, 2023 ยท Declared Dead ยท ๐ International Journal of Speech Technology
"No code URL or promise found in abstract"
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Authors
Youyuan Zhang, Sashank Gondala, Thiago Fraga-Silva, Christophe Van Gysel
arXiv ID
2311.01398
Category
cs.CL: Computation & Language
Cross-listed
cs.SD,
eess.AS
Citations
3
Venue
International Journal of Speech Technology
Last Checked
5 months ago
Abstract
On-device Virtual Assistants (VAs) powered by Automatic Speech Recognition (ASR) require effective knowledge integration for the challenging entity-rich query recognition. In this paper, we conduct an empirical study of modeling strategies for server-side rescoring of spoken information domain queries using various categories of Language Models (LMs) (N-gram word LMs, sub-word neural LMs). We investigate the combination of on-device and server-side signals, and demonstrate significant WER improvements of 23%-35% on various entity-centric query subpopulations by integrating various server-side LMs compared to performing ASR on-device only. We also perform a comparison between LMs trained on domain data and a GPT-3 variant offered by OpenAI as a baseline. Furthermore, we also show that model fusion of multiple server-side LMs trained from scratch most effectively combines complementary strengths of each model and integrates knowledge learned from domain-specific data to a VA ASR system.
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