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Whisper-AT: Noise-Robust Automatic Speech Recognizers are Also Strong General Audio Event Taggers (2307.03183v1)

Published 6 Jul 2023 in cs.SD and eess.AS

Abstract: In this paper, we focus on Whisper, a recent automatic speech recognition model trained with a massive 680k hour labeled speech corpus recorded in diverse conditions. We first show an interesting finding that while Whisper is very robust against real-world background sounds (e.g., music), its audio representation is actually not noise-invariant, but is instead highly correlated to non-speech sounds, indicating that Whisper recognizes speech conditioned on the noise type. With this finding, we build a unified audio tagging and speech recognition model Whisper-AT by freezing the backbone of Whisper, and training a lightweight audio tagging model on top of it. With <1% extra computational cost, Whisper-AT can recognize audio events, in addition to spoken text, in a single forward pass.

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Authors (4)
  1. Yuan Gong (45 papers)
  2. Sameer Khurana (26 papers)
  3. Leonid Karlinsky (79 papers)
  4. James Glass (173 papers)
Citations (54)