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Promptformer: Prompted Conformer Transducer for ASR

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arxiv 2401.07360 v1 pith:QYWI6643 submitted 2024-01-14 cs.CL cs.SDeess.AS

Promptformer: Prompted Conformer Transducer for ASR

classification cs.CL cs.SDeess.AS
keywords contextmodelinteractionsmechanismmethodmulti-turnabsenceachieves
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Context cues carry information which can improve multi-turn interactions in automatic speech recognition (ASR) systems. In this paper, we introduce a novel mechanism inspired by hyper-prompting to fuse textual context with acoustic representations in the attention mechanism. Results on a test set with multi-turn interactions show that our method achieves 5.9% relative word error rate reduction (rWERR) over a strong baseline. We show that our method does not degrade in the absence of context and leads to improvements even if the model is trained without context. We further show that leveraging a pre-trained sentence-piece model for context embedding generation can outperform an external BERT model.

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