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Universal artificial intelligence platform for collaborative management of cataracts
PURPOSE: To establish and validate a universal artificial intelligence (AI) platform for collaborative management of cataracts involving multilevel clinical scenarios and explored an AI-based medical referral pattern to improve collaborative efficiency and resource coverage. METHODS: The training an...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
BMJ Publishing Group
2019
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6855787/ https://www.ncbi.nlm.nih.gov/pubmed/31481392 http://dx.doi.org/10.1136/bjophthalmol-2019-314729 |
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author | Wu, Xiaohang Huang, Yelin Liu, Zhenzhen Lai, Weiyi Long, Erping Zhang, Kai Jiang, Jiewei Lin, Duoru Chen, Kexin Yu, Tongyong Wu, Dongxuan Li, Cong Chen, Yanyi Zou, Minjie Chen, Chuan Zhu, Yi Guo, Chong Zhang, Xiayin Wang, Ruixin Yang, Yahan Xiang, Yifan Chen, Lijian Liu, Congxin Xiong, Jianhao Ge, Zongyuan Wang, Dingding Xu, Guihua Du, Shaolin Xiao, Chi Wu, Jianghao Zhu, Ke Nie, Danyao Xu, Fan Lv, Jian Chen, Weirong Liu, Yizhi Lin, Haotian |
author_facet | Wu, Xiaohang Huang, Yelin Liu, Zhenzhen Lai, Weiyi Long, Erping Zhang, Kai Jiang, Jiewei Lin, Duoru Chen, Kexin Yu, Tongyong Wu, Dongxuan Li, Cong Chen, Yanyi Zou, Minjie Chen, Chuan Zhu, Yi Guo, Chong Zhang, Xiayin Wang, Ruixin Yang, Yahan Xiang, Yifan Chen, Lijian Liu, Congxin Xiong, Jianhao Ge, Zongyuan Wang, Dingding Xu, Guihua Du, Shaolin Xiao, Chi Wu, Jianghao Zhu, Ke Nie, Danyao Xu, Fan Lv, Jian Chen, Weirong Liu, Yizhi Lin, Haotian |
author_sort | Wu, Xiaohang |
collection | PubMed |
description | PURPOSE: To establish and validate a universal artificial intelligence (AI) platform for collaborative management of cataracts involving multilevel clinical scenarios and explored an AI-based medical referral pattern to improve collaborative efficiency and resource coverage. METHODS: The training and validation datasets were derived from the Chinese Medical Alliance for Artificial Intelligence, covering multilevel healthcare facilities and capture modes. The datasets were labelled using a three-step strategy: (1) capture mode recognition; (2) cataract diagnosis as a normal lens, cataract or a postoperative eye and (3) detection of referable cataracts with respect to aetiology and severity. Moreover, we integrated the cataract AI agent with a real-world multilevel referral pattern involving self-monitoring at home, primary healthcare and specialised hospital services. RESULTS: The universal AI platform and multilevel collaborative pattern showed robust diagnostic performance in three-step tasks: (1) capture mode recognition (area under the curve (AUC) 99.28%–99.71%), (2) cataract diagnosis (normal lens, cataract or postoperative eye with AUCs of 99.82%, 99.96% and 99.93% for mydriatic-slit lamp mode and AUCs >99% for other capture modes) and (3) detection of referable cataracts (AUCs >91% in all tests). In the real-world tertiary referral pattern, the agent suggested 30.3% of people be ‘referred’, substantially increasing the ophthalmologist-to-population service ratio by 10.2-fold compared with the traditional pattern. CONCLUSIONS: The universal AI platform and multilevel collaborative pattern showed robust diagnostic performance and effective service for cataracts. The context of our AI-based medical referral pattern will be extended to other common disease conditions and resource-intensive situations. |
format | Online Article Text |
id | pubmed-6855787 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | BMJ Publishing Group |
record_format | MEDLINE/PubMed |
spelling | pubmed-68557872019-12-03 Universal artificial intelligence platform for collaborative management of cataracts Wu, Xiaohang Huang, Yelin Liu, Zhenzhen Lai, Weiyi Long, Erping Zhang, Kai Jiang, Jiewei Lin, Duoru Chen, Kexin Yu, Tongyong Wu, Dongxuan Li, Cong Chen, Yanyi Zou, Minjie Chen, Chuan Zhu, Yi Guo, Chong Zhang, Xiayin Wang, Ruixin Yang, Yahan Xiang, Yifan Chen, Lijian Liu, Congxin Xiong, Jianhao Ge, Zongyuan Wang, Dingding Xu, Guihua Du, Shaolin Xiao, Chi Wu, Jianghao Zhu, Ke Nie, Danyao Xu, Fan Lv, Jian Chen, Weirong Liu, Yizhi Lin, Haotian Br J Ophthalmol Clinical Science PURPOSE: To establish and validate a universal artificial intelligence (AI) platform for collaborative management of cataracts involving multilevel clinical scenarios and explored an AI-based medical referral pattern to improve collaborative efficiency and resource coverage. METHODS: The training and validation datasets were derived from the Chinese Medical Alliance for Artificial Intelligence, covering multilevel healthcare facilities and capture modes. The datasets were labelled using a three-step strategy: (1) capture mode recognition; (2) cataract diagnosis as a normal lens, cataract or a postoperative eye and (3) detection of referable cataracts with respect to aetiology and severity. Moreover, we integrated the cataract AI agent with a real-world multilevel referral pattern involving self-monitoring at home, primary healthcare and specialised hospital services. RESULTS: The universal AI platform and multilevel collaborative pattern showed robust diagnostic performance in three-step tasks: (1) capture mode recognition (area under the curve (AUC) 99.28%–99.71%), (2) cataract diagnosis (normal lens, cataract or postoperative eye with AUCs of 99.82%, 99.96% and 99.93% for mydriatic-slit lamp mode and AUCs >99% for other capture modes) and (3) detection of referable cataracts (AUCs >91% in all tests). In the real-world tertiary referral pattern, the agent suggested 30.3% of people be ‘referred’, substantially increasing the ophthalmologist-to-population service ratio by 10.2-fold compared with the traditional pattern. CONCLUSIONS: The universal AI platform and multilevel collaborative pattern showed robust diagnostic performance and effective service for cataracts. The context of our AI-based medical referral pattern will be extended to other common disease conditions and resource-intensive situations. BMJ Publishing Group 2019-11 2019-09-02 /pmc/articles/PMC6855787/ /pubmed/31481392 http://dx.doi.org/10.1136/bjophthalmol-2019-314729 Text en © Author(s) (or their employer(s)) 2019. Re-use permitted under CC BY-NC. No commercial re-use. See rights and permissions. Published by BMJ. This is an open access article distributed in accordance with the Creative Commons Attribution Non Commercial (CC BY-NC 4.0) license, which permits others to distribute, remix, adapt, build upon this work non-commercially, and license their derivative works on different terms, provided the original work is properly cited, appropriate credit is given, any changes made indicated, and the use is non-commercial. See: http://creativecommons.org/licenses/by-nc/4.0/. |
spellingShingle | Clinical Science Wu, Xiaohang Huang, Yelin Liu, Zhenzhen Lai, Weiyi Long, Erping Zhang, Kai Jiang, Jiewei Lin, Duoru Chen, Kexin Yu, Tongyong Wu, Dongxuan Li, Cong Chen, Yanyi Zou, Minjie Chen, Chuan Zhu, Yi Guo, Chong Zhang, Xiayin Wang, Ruixin Yang, Yahan Xiang, Yifan Chen, Lijian Liu, Congxin Xiong, Jianhao Ge, Zongyuan Wang, Dingding Xu, Guihua Du, Shaolin Xiao, Chi Wu, Jianghao Zhu, Ke Nie, Danyao Xu, Fan Lv, Jian Chen, Weirong Liu, Yizhi Lin, Haotian Universal artificial intelligence platform for collaborative management of cataracts |
title | Universal artificial intelligence platform for collaborative management of cataracts |
title_full | Universal artificial intelligence platform for collaborative management of cataracts |
title_fullStr | Universal artificial intelligence platform for collaborative management of cataracts |
title_full_unstemmed | Universal artificial intelligence platform for collaborative management of cataracts |
title_short | Universal artificial intelligence platform for collaborative management of cataracts |
title_sort | universal artificial intelligence platform for collaborative management of cataracts |
topic | Clinical Science |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6855787/ https://www.ncbi.nlm.nih.gov/pubmed/31481392 http://dx.doi.org/10.1136/bjophthalmol-2019-314729 |
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