Accurate Medical Named Entity Recognition Through Specialized NLP Models

December 11, 2024 ยท Declared Dead ยท ๐Ÿ› 2024 6th International Conference on Frontier Technologies of Information and Computer (ICFTIC)

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Authors Jiacheng Hu, Runyuan Bao, Yang Lin, Hanchao Zhang, Yanlin Xiang arXiv ID 2412.08255 Category cs.CL: Computation & Language Citations 10 Venue 2024 6th International Conference on Frontier Technologies of Information and Computer (ICFTIC) Last Checked 5 months ago
Abstract
This study evaluated the effect of BioBERT in medical text processing for the task of medical named entity recognition. Through comparative experiments with models such as BERT, ClinicalBERT, SciBERT, and BlueBERT, the results showed that BioBERT achieved the best performance in both precision and F1 score, verifying its applicability and superiority in the medical field. BioBERT enhances its ability to understand professional terms and complex medical texts through pre-training on biomedical data, providing a powerful tool for medical information extraction and clinical decision support. The study also explored the privacy and compliance challenges of BioBERT when processing medical data, and proposed future research directions for combining other medical-specific models to improve generalization and robustness. With the development of deep learning technology, the potential of BioBERT in application fields such as intelligent medicine, personalized treatment, and disease prediction will be further expanded. Future research can focus on the real-time and interpretability of the model to promote its widespread application in the medical field.
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