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The Interpreter Understands Your Meaning: End-to-end Spoken Language Understanding Aided by Speech Translation (2305.09652v2)

Published 16 May 2023 in cs.CL, cs.SD, and eess.AS

Abstract: End-to-end spoken language understanding (SLU) remains elusive even with current large pretrained LLMs on text and speech, especially in multilingual cases. Machine translation has been established as a powerful pretraining objective on text as it enables the model to capture high-level semantics of the input utterance and associations between different languages, which is desired for speech models that work on lower-level acoustic frames. Motivated particularly by the task of cross-lingual SLU, we demonstrate that the task of speech translation (ST) is a good means of pretraining speech models for end-to-end SLU on both intra- and cross-lingual scenarios. By introducing ST, our models reach higher performance over baselines on monolingual and multilingual intent classification as well as spoken question answering using SLURP, MINDS-14, and NMSQA benchmarks. To verify the effectiveness of our methods, we also create new benchmark datasets from both synthetic and real sources, for speech summarization and low-resource/zero-shot transfer from English to French or Spanish. We further show the value of preserving knowledge for the ST pretraining task for better downstream performance, possibly using Bayesian transfer regularizers.

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Authors (2)
  1. Mutian He (11 papers)
  2. Philip N. Garner (18 papers)
Citations (3)