首页> 外国专利> Predicting response to anti-vascular endothelial growth factor therapy with computer-extracted morphology and spatial arrangement features of leakage patterns on baseline fluorescein angiography in diabetic macular edema

Predicting response to anti-vascular endothelial growth factor therapy with computer-extracted morphology and spatial arrangement features of leakage patterns on baseline fluorescein angiography in diabetic macular edema

机译:预测抗血管内皮生长因子治疗对计算机提取的形态和泄漏模式的空间排列特征对糖尿病黄斑水肿的基线荧光素血管造影抗血管内皮生长因子治疗

摘要

Embodiments facilitate prediction of anti-vascular endothelial growth (anti-VEGF) therapy response in DME patients. A first set of embodiments discussed herein relates to training of a machine learning classifier to determine a prediction for response to anti-VEGF therapy based on a set of graph-network features and a set of morphological features generated based on FA images of tissue demonstrating DME. A second set of embodiments discussed herein relates to determination of a prediction of response to anti-VEGF therapy for a DME patient (e.g., non-rebounder vs. rebounder, response vs. non-response) based on a set of graph-network features and a set of morphological features generated based on FA imagery of the patient.
机译:实施方案有助于预测DME患者抗血管内皮生长(抗VEGF)治疗反应。本文讨论的第一组实施例涉及对机器学习分类器的训练,以确定基于一组图形网络特征和基于组织的组织的FA图像生成的一组形态特征来确定对抗VEGF治疗的响应预测。 。本文讨论的第二组实施例涉及基于一组图形网络特征确定对DME患者的抗VEGF治疗的响应预测的响应(例如,非篮板,响应与非响应)基于患者的FA图像产生的一组形态特征。

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