Relation Extraction Using Large Language Models: A Case Study on Acupuncture Point Locations
Yiming Li, Xueqing Peng, Jianfu Li, Xu Zuo, Suyuan Peng, Donghong Pei,, Cui Tao, Hua Xu, Na Hong

TL;DR
This study evaluates the effectiveness of large language models, especially GPT variants, in extracting acupoint location relations from textual sources, demonstrating superior performance over traditional models and highlighting their potential in acupuncture informatics.
Contribution
It provides a comparative analysis of GPT models versus traditional NLP models for relation extraction in acupuncture, showing GPT's fine-tuned versions achieve the highest accuracy.
Findings
Fine-tuned GPT-3.5 achieves F1 score of 0.92
GPT models outperform LSTM and BioBERT in relation extraction
Results support LLMs' potential in traditional medicine informatics
Abstract
In acupuncture therapy, the accurate location of acupoints is essential for its effectiveness. The advanced language understanding capabilities of large language models (LLMs) like Generative Pre-trained Transformers (GPT) present a significant opportunity for extracting relations related to acupoint locations from textual knowledge sources. This study aims to compare the performance of GPT with traditional deep learning models (Long Short-Term Memory (LSTM) and Bidirectional Encoder Representations from Transformers for Biomedical Text Mining (BioBERT)) in extracting acupoint-related location relations and assess the impact of pretraining and fine-tuning on GPT's performance. We utilized the World Health Organization Standard Acupuncture Point Locations in the Western Pacific Region (WHO Standard) as our corpus, which consists of descriptions of 361 acupoints. Five types of relations…
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Taxonomy
TopicsNatural Language Processing Techniques · Advanced Text Analysis Techniques · Topic Modeling
MethodsRefunds@Expedia|||How do I get a full refund from Expedia? · 15 Ways to Contact How can i speak to someone at Delta Airlines · Attention Is All You Need · Cosine Annealing · Linear Layer · Sigmoid Activation · Layer Normalization · Weight Decay · Tanh Activation · Dense Connections
