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Leveraging pre-trained large language models for aphasia detection in English and Chinese speakers

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Abstract

We explore the utility of pre-trained Large Language Models (LLMs) in detecting the presence, subtypes, and severity of aphasia across English and Mandarin Chinese speakers.Our investigation suggests that even without finetuning or domain-specific training, pre-trained LLMs can offer some insights on language disorders, regardless of speakers' first language.Our analysis also reveals noticeable differences between English and Chinese LLMs.While the English LLMs exhibit near-chance level accuracy in subtyping aphasia, the Chinese counterparts demonstrate less than satisfactory performance in distinguishing between individuals with and without aphasia.This research advocates for the importance of linguistically tailored and specified approaches in leveraging LLMs for clinical applications, especially in the context of multilingual populations.

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Publication details

DOI
10.18653/v1/2024.clinicalnlp-1.20
OpenAlex
W4401042261
Document type
conference-paper
Language
EN
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