kNN For Whisper And Its Effect On Bias And Speaker Adaptation
October 24, 2024 ยท Declared Dead ยท ๐ Findings of NAACL 2025
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Authors
Maya K. Nachesa, Vlad Niculae
arXiv ID
2410.18850
Category
cs.CL: Computation & Language
Cross-listed
cs.SD,
eess.AS
Citations
1
Venue
Findings of NAACL 2025
Last Checked
4 months ago
Abstract
Speech recognition performance varies by language, domain, and speaker characteristics such as accent, but fine-tuning a model on any of these categories may lead to catastrophic forgetting. Token-level $k$ nearest neighbor search ($k$NN), first proposed for neural sequence decoders for natural language generation (NLG) and machine translation (MT), is a non-parametric method that instead adapts using inference-time search in an external datastore, without training the underlying model. We show that Whisper, a transformer end-to-end speech model, benefits from $k$NN. We investigate the differences between the speech and text setups. We discuss implications for speaker adaptation, and analyze improvements by gender, accent, and age.
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