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Automatic multiscale vascular image segmentation algorithm for coronary angiography

机译:用于冠状动脉造影的自动多尺度血管图像分割算法

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摘要

Cardiovascular diseases, particularly severe stenosis, are the main cause of death in the western world. The primary method of diagnosis, considered to be the standard in the detection and quantification of stenotic lesions, is a coronary angiography. This article proposes a new automatic multiscale segmentation algorithm for the study of coronary trees that offers results comparable to the best existing semi-automatic method. According to the state-of-the-art, a representative number of coronary angiography images that ensures the generalisation capacity of the algorithm has been used. All these images were selected by clinics from an Haemodynamics Unit. An exhaustive statistical analysis was performed in terms of sensitivity, specificity and Jaccard. Algorithm improvements imply that the clinician can perform tests on the patient and, bypassing the images through the system, can verify, in that moment, the intervention of existing differences in a coronary tree from a previous test, in such a way that it could change its clinical intra-intervention criteria. (C) 2018 Elsevier Ltd. All rights reserved.
机译:心血管疾病,特别是严重的狭窄是西方世界的主要死亡原因。诊断的主要方法被认为是狭窄病变的检测和量化的标准,是冠状动脉造影。本文提出了一种用于冠状动脉树研究的新的自动多尺度分割算法,该算法可提供与现有最佳半自动方法相媲美的结果。根据最新技术,已经使用了确保算法泛化能力的代表性的冠状动脉血管造影图像。所有这些图像都是由血液动力学部门的诊所选择的。在敏感性,特异性和Jaccard方面进行了详尽的统计分析。算法的改进意味着临床医生可以对患者执行测试,并且绕过系统中的图像,可以在那一刻验证与先前测试相比冠状动脉树中现有差异的干预情况,从而可以改变其临床干预标准。 (C)2018 Elsevier Ltd.保留所有权利。

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