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Multiscale analysis of tortuosity in retinal images using wavelets and fractal methods

机译:小波和分形方法对视网膜图像中曲折度的多尺度分析

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In many retinopathies one of the first alterations which can be detected is tortuosity of the retinal vessels. Already published techniques focused on the representation of the vessel as a mathematical curve, which provided good results but problems due to skeletonization or the choice of the sampling rate were shown recently. We present here a new algorithm for the automated grading of tortuosity, which we have applied to images created from the RET-TORT database. The algorithm is based on a combination of multiscale wavelet and nonlinear derived analysis and can be directly applied to images of segmented vessels without suffering from influences of imperfect mathematical abstractions or poorly chosen sampling rates. This improves reproducibility and is advantageous in clinical practice for identification of tortuosity and treatment decision making. Our method is robust against noise and provides equally good results for arterioles and venules, in line with manual rankings by specialists. (C) 2015 Elsevier B.V. All rights reserved.
机译:在许多视网膜病变中,可以检测到的第一个变化之一是视网膜血管的弯曲。已经发表的技术着重于将容器表示为数学曲线,这提供了很好的结果,但是最近显示了由于骨架化或采样率的选择引起的问题。我们在这里提出了一种用于曲折度自动分级的新算法,该算法已应用于从RET-TORT数据库创建的图像。该算法基于多尺度小波和非线性派生分析的结合,可以直接应用于分段血管的图像,而不会受到不完善的数学抽象或选择的采样率不佳的影响。这提高了可再现性,并且在临床实践中有利于识别曲折性和治疗决策。根据专家的手动排名,我们的方法具有强大的抗噪能力,并为小动脉和小静脉提供了同样好的结果。 (C)2015 Elsevier B.V.保留所有权利。

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