Transferring speech-generic and depression-specific knowledge for Alzheimer's disease detection
October 06, 2023 ยท Declared Dead ยท ๐ Automatic Speech Recognition & Understanding
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Authors
Ziyun Cui, Wen Wu, Wei-Qiang Zhang, Ji Wu, Chao Zhang
arXiv ID
2310.04358
Category
cs.CL: Computation & Language
Cross-listed
cs.SD,
eess.AS
Citations
5
Venue
Automatic Speech Recognition & Understanding
Last Checked
5 months ago
Abstract
The detection of Alzheimer's disease (AD) from spontaneous speech has attracted increasing attention while the sparsity of training data remains an important issue. This paper handles the issue by knowledge transfer, specifically from both speech-generic and depression-specific knowledge. The paper first studies sequential knowledge transfer from generic foundation models pretrained on large amounts of speech and text data. A block-wise analysis is performed for AD diagnosis based on the representations extracted from different intermediate blocks of different foundation models. Apart from the knowledge from speech-generic representations, this paper also proposes to simultaneously transfer the knowledge from a speech depression detection task based on the high comorbidity rates of depression and AD. A parallel knowledge transfer framework is studied that jointly learns the information shared between these two tasks. Experimental results show that the proposed method improves AD and depression detection, and produces a state-of-the-art F1 score of 0.928 for AD diagnosis on the commonly used ADReSSo dataset.
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