Automatic Diagnosis of Infectious Keratitis Based on Slit Lamp Images Analysis

Author:

Hu Shaodan1ORCID,Sun Yiming1,Li Jinhao2ORCID,Xu Peifang1,Xu Mingyu1,Zhou Yifan1,Wang Yaqi3ORCID,Wang Shuai24,Ye Juan1

Affiliation:

1. Department of Ophthalmology, College of Medicine, The Second Affiliated Hospital of Zhejiang University, Hangzhou 310009, China

2. School of Mechanical, Electrical and Information Engineering, Shandong University, Weihai 264209, China

3. College of Media Engineering, Communication University of Zhejiang, Hangzhou 310018, China

4. Suzhou Research Institute, Shandong University, Suzhou 215123, China

Abstract

Infectious keratitis (IK) is a common ophthalmic emergency that requires prompt and accurate treatment. This study aimed to propose a deep learning (DL) system based on slit lamp images to automatically screen and diagnose infectious keratitis. This study established a dataset of 2757 slit lamp images from 744 patients, including normal cornea, viral keratitis (VK), fungal keratitis (FK), and bacterial keratitis (BK). Six different DL algorithms were developed and evaluated for the classification of infectious keratitis. Among all the models, the EffecientNetV2-M showed the best classification ability, with an accuracy of 0.735, a recall of 0.680, and a specificity of 0.904, which was also superior to two ophthalmologists. The area under the receiver operating characteristics curve (AUC) of the EffecientNetV2-M was 0.85; correspondingly, 1.00 for normal cornea, 0.87 for VK, 0.87 for FK, and 0.64 for BK. The findings suggested that the proposed DL system could perform well in the classification of normal corneas and different types of infectious keratitis, based on slit lamp images. This study proves the potential of the DL model to help ophthalmologists to identify infectious keratitis and improve the accuracy and efficiency of diagnosis.

Funder

National Natural Science Foundation Regional Innovation and Development Joint Fund

National Natural Science Foundation of China

Clinical Medical Research Center for Eye Diseases of Zhejiang Province

Natural Science Foundation of Jiangsu Province

Publisher

MDPI AG

Subject

Medicine (miscellaneous)

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