cs.AI updates on arXiv.org 10月28日 12:10
糖尿病视网膜病变早期诊断框架研究
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本文提出一种结合传统特征提取与深度学习的混合诊断框架,用于糖尿病视网膜病变的早期检测,以提高诊断准确性和减少误诊。

arXiv:2510.21810v1 Announce Type: cross Abstract: Diabetic Retinopathy (DR), a vision-threatening complication of Dia-betes Mellitus (DM), is a major global concern, particularly in India, which has one of the highest diabetic populations. Prolonged hyperglycemia damages reti-nal microvasculature, leading to DR symptoms like microaneurysms, hemor-rhages, and fluid leakage, which, if undetected, cause irreversible vision loss. Therefore, early screening is crucial as DR is asymptomatic in its initial stages. Fundus imaging aids precise diagnosis by detecting subtle retinal lesions. This paper introduces a hybrid diagnostic framework combining traditional feature extraction and deep learning (DL) to enhance DR detection. While handcrafted features capture key clinical markers, DL automates hierarchical pattern recog-nition, improving early diagnosis. The model synergizes interpretable clinical data with learned features, surpassing standalone DL approaches that demon-strate superior classification and reduce false negatives. This multimodal AI-driven approach enables scalable, accurate DR screening, crucial for diabetes-burdened regions.

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糖尿病视网膜病变 深度学习 早期诊断 混合诊断框架 糖尿病
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