Exploring Multilingual Large Language Models for Enhanced TNM classification of Radiology Report in lung cancer staging
Hidetoshi Matsuo, Mizuho Nishio, Takaaki Matsunaga, Koji Fujimoto,, Takamichi Murakami

TL;DR
This study evaluates the effectiveness of multilingual GPT-3.5 in automatically classifying lung cancer TNM stages from radiology reports in English and Japanese, highlighting the impact of providing detailed definitions.
Contribution
It demonstrates the potential of multilingual large language models for accurate TNM classification without additional training, emphasizing the importance of detailed definitions.
Findings
Highest accuracy with full TNM definitions in English (94%)
Providing TNM definitions improves classification accuracy
Japanese reports show decreased accuracy in N and M classifications
Abstract
Background: Structured radiology reports remains underdeveloped due to labor-intensive structuring and narrative-style reporting. Deep learning, particularly large language models (LLMs) like GPT-3.5, offers promise in automating the structuring of radiology reports in natural languages. However, although it has been reported that LLMs are less effective in languages other than English, their radiological performance has not been extensively studied. Purpose: This study aimed to investigate the accuracy of TNM classification based on radiology reports using GPT3.5-turbo (GPT3.5) and the utility of multilingual LLMs in both Japanese and English. Material and Methods: Utilizing GPT3.5, we developed a system to automatically generate TNM classifications from chest CT reports for lung cancer and evaluate its performance. We statistically analyzed the impact of providing full or partial TNM…
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Taxonomy
TopicsTopic Modeling · Radiomics and Machine Learning in Medical Imaging · Computational and Text Analysis Methods
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