Large language multimodal models for new-onset type 2 diabetes prediction using five-year cohort electronic health records

被引:0
|
作者
Ding, Jun-En [1 ]
Thao, Phan Nguyen Minh [2 ]
Peng, Wen-Chih [2 ]
Wang, Jian-Zhe [2 ]
Chug, Chun-Cheng [2 ]
Hsieh, Min-Chen [2 ]
Tseng, Yun-Chien [2 ]
Chen, Ling [3 ]
Luo, Dongsheng [4 ]
Wu, Chenwei [8 ]
Wang, Chi-Te [11 ]
Hsu, Chih-Ho [5 ]
Chen, Yi-Tui [7 ]
Chen, Pei-Fu [9 ,10 ]
Liu, Feng [1 ]
Hung, Fang-Ming [6 ,7 ]
机构
[1] Stevens Inst Technol, Sch Syst & Enterprises, Hoboken, NJ USA
[2] Natl Yang Ming Chiao Tung Univ, Dept Comp Sci, Hsinchu, Taiwan
[3] Natl Yang Ming Chiao Tung Univ, Inst Hosp & Hlth Care Adm, Taipei, Taiwan
[4] Florida Int Univ, Sch Comp & Informat Sci, Miami, FL USA
[5] Far Eastern Mem Hosp, Dept Surg, New Taipei City, Taiwan
[6] Far Eastern Mem Hosp, Surg Trauma Intens Care Unit, New Taipei City, Taiwan
[7] Natl Taipei Univ Nursing & Hlth Sci, Smart Healthcare Interdisciplinary Coll, Taipei City, Taiwan
[8] Univ Michigan, Elect Engn & Comp Sci, Ann Arbor, MI USA
[9] Far Eastern Mem Hosp, Dept Anesthesiol, New Taipei City, Taiwan
[10] Yuan Ze Univ, Dept Elect Engn, Taoyuan, Taiwan
[11] Far Eastern Mem Hosp, Ctr Artificial Intelligence, New Taipei City, Taiwan
来源
SCIENTIFIC REPORTS | 2024年 / 14卷 / 01期
关键词
D O I
10.1038/s41598-024-71020-2
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Type 2 diabetes mellitus (T2DM) is a prevalent health challenge faced by countries worldwide. In this study, we propose a novel large language multimodal models (LLMMs) framework incorporating multimodal data from clinical notes and laboratory results for diabetes risk prediction. We collected five years of electronic health records (EHRs) dating from 2017 to 2021 from a Taiwan hospital database. This dataset included 1,420,596 clinical notes, 387,392 laboratory results, and more than 1505 laboratory test items. Our method combined a text embedding encoder and multi-head attention layer to learn laboratory values, and utilized a deep neural network (DNN) module to merge blood features with chronic disease semantics into a latent space. In our experiments, we observed that integrating clinical notes with predictions based on textual laboratory values significantly enhanced the predictive capability of the unimodal model in the early detection of T2DM. Moreover, we achieved an area greater than 0.70 under the receiver operating characteristic curve (AUC) for new-onset T2DM prediction, demonstrating the effectiveness of leveraging textual laboratory data for training and inference in LLMs and improving the accuracy of new-onset diabetes prediction.
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页数:12
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