Design of Postoperative Visual Acuity Prediction Program Based on Machine Learning before Cataract Surgery

L. Shuxian
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Abstract

With the rapid development of modern artificial intelligence technology, its practice and application in different fields has gradually developed, and the medical field is no exception. The application of artificial intelligence technology based on machine learning in ophthalmology is one of them. The eye image is fine, complex, and informative. The diagnosis results are often limited by the doctor's knowledge level and clinical experience, subjective, time-consuming and labor-intensive. The application of artificial intelligence technology of machine learning combined with computer in ophthalmology can greatly improve the diagnostic efficiency of ophthalmic diseases in clinical work and reduce the burden on ophthalmologists. This article aims to analyze the predictive value of postoperative visual acuity before cataract surgery based on the indicators of preoperative examination of cataract patients and the patient's living habits and disease cognition levels.
基于机器学习的白内障术前视力预测程序设计
随着现代人工智能技术的飞速发展,其在不同领域的实践和应用也逐渐发展起来,医疗领域也不例外。基于机器学习的人工智能技术在眼科中的应用就是其中之一。眼睛的图像是精细的、复杂的和信息丰富的。诊断结果往往受限于医生的知识水平和临床经验,主观性强,费时费力。将机器学习与计算机相结合的人工智能技术应用于眼科,可以大大提高临床工作中眼科疾病的诊断效率,减轻眼科医生的负担。本文旨在根据白内障患者术前检查指标,结合患者的生活习惯和疾病认知水平,分析白内障术前术后视力的预测价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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