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Integrated image-based deep learning and language models for primary diabetes care.

Publication ,  Journal Article
Li, J; Guan, Z; Wang, J; Cheung, CY; Zheng, Y; Lim, L-L; Lim, CC; Ruamviboonsuk, P; Raman, R; Corsino, L; Echouffo-Tcheugui, JB; Luk, AOY ...
Published in: Nat Med
October 2024

Primary diabetes care and diabetic retinopathy (DR) screening persist as major public health challenges due to a shortage of trained primary care physicians (PCPs), particularly in low-resource settings. Here, to bridge the gaps, we developed an integrated image-language system (DeepDR-LLM), combining a large language model (LLM module) and image-based deep learning (DeepDR-Transformer), to provide individualized diabetes management recommendations to PCPs. In a retrospective evaluation, the LLM module demonstrated comparable performance to PCPs and endocrinology residents when tested in English and outperformed PCPs and had comparable performance to endocrinology residents in Chinese. For identifying referable DR, the average PCP's accuracy was 81.0% unassisted and 92.3% assisted by DeepDR-Transformer. Furthermore, we performed a single-center real-world prospective study, deploying DeepDR-LLM. We compared diabetes management adherence of patients under the unassisted PCP arm (n = 397) with those under the PCP+DeepDR-LLM arm (n = 372). Patients with newly diagnosed diabetes in the PCP+DeepDR-LLM arm showed better self-management behaviors throughout follow-up (P < 0.05). For patients with referral DR, those in the PCP+DeepDR-LLM arm were more likely to adhere to DR referrals (P < 0.01). Additionally, DeepDR-LLM deployment improved the quality and empathy level of management recommendations. Given its multifaceted performance, DeepDR-LLM holds promise as a digital solution for enhancing primary diabetes care and DR screening.

Duke Scholars

Published In

Nat Med

DOI

EISSN

1546-170X

Publication Date

October 2024

Volume

30

Issue

10

Start / End Page

2886 / 2896

Location

United States

Related Subject Headings

  • Retrospective Studies
  • Prospective Studies
  • Primary Health Care
  • Physicians, Primary Care
  • Middle Aged
  • Male
  • Language
  • Immunology
  • Humans
  • Female
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Li, J., Guan, Z., Wang, J., Cheung, C. Y., Zheng, Y., Lim, L.-L., … Wong, T. Y. (2024). Integrated image-based deep learning and language models for primary diabetes care. Nat Med, 30(10), 2886–2896. https://doi.org/10.1038/s41591-024-03139-8
Li, Jiajia, Zhouyu Guan, Jing Wang, Carol Y. Cheung, Yingfeng Zheng, Lee-Ling Lim, Cynthia Ciwei Lim, et al. “Integrated image-based deep learning and language models for primary diabetes care.Nat Med 30, no. 10 (October 2024): 2886–96. https://doi.org/10.1038/s41591-024-03139-8.
Li J, Guan Z, Wang J, Cheung CY, Zheng Y, Lim L-L, et al. Integrated image-based deep learning and language models for primary diabetes care. Nat Med. 2024 Oct;30(10):2886–96.
Li, Jiajia, et al. “Integrated image-based deep learning and language models for primary diabetes care.Nat Med, vol. 30, no. 10, Oct. 2024, pp. 2886–96. Pubmed, doi:10.1038/s41591-024-03139-8.
Li J, Guan Z, Wang J, Cheung CY, Zheng Y, Lim L-L, Lim CC, Ruamviboonsuk P, Raman R, Corsino L, Echouffo-Tcheugui JB, Luk AOY, Chen LJ, Sun X, Hamzah H, Wu Q, Wang X, Liu R, Wang YX, Chen T, Zhang X, Yang X, Yin J, Wan J, Du W, Quek TC, Goh JHL, Yang D, Hu X, Nguyen TX, Szeto SKH, Chotcomwongse P, Malek R, Normatova N, Ibragimova N, Srinivasan R, Zhong P, Huang W, Deng C, Ruan L, Zhang C, Zhou Y, Wu C, Dai R, Koh SWC, Abdullah A, Hee NKY, Tan HC, Liew ZH, Tien CS-Y, Kao SL, Lim AYL, Mok SF, Sun L, Gu J, Wu L, Li T, Cheng D, Wang Z, Qin Y, Dai L, Meng Z, Shu J, Lu Y, Jiang N, Hu T, Huang S, Huang G, Yu S, Liu D, Ma W, Guo M, Guan X, Bascaran C, Cleland CR, Bao Y, Ekinci EI, Jenkins A, Chan JCN, Bee YM, Sivaprasad S, Shaw JE, Simó R, Keane PA, Cheng C-Y, Tan GSW, Jia W, Tham Y-C, Li H, Sheng B, Wong TY. Integrated image-based deep learning and language models for primary diabetes care. Nat Med. 2024 Oct;30(10):2886–2896.

Published In

Nat Med

DOI

EISSN

1546-170X

Publication Date

October 2024

Volume

30

Issue

10

Start / End Page

2886 / 2896

Location

United States

Related Subject Headings

  • Retrospective Studies
  • Prospective Studies
  • Primary Health Care
  • Physicians, Primary Care
  • Middle Aged
  • Male
  • Language
  • Immunology
  • Humans
  • Female