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Estimation of retinal vessel caliber using model fitting and random forests

机译:利用模型拟合和随机林估计视网膜血管

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Retinal vessel caliber changes are associated with several major diseases, such as diabetes and hypertension. These caliber changes can be evaluated using eye fundus images. However, the clinical assessment is tiresome and prone to errors, motivating the development of automatic methods. An automatic method based on vessel cross-section intensity profile model fitting for the estimation of vessel caliber in retinal images is herein proposed. First, vessels are segmented from the image, vessel centerlines are detected and individual segments are extracted and smoothed. Intensity profiles are extracted perpendicularly to the vessel, and the profile lengths are determined. Then, model fitting is applied to the smoothed profiles. A novel parametric model (DoG-L7) is used, consisting on a Difference-of-Gaussians multiplied by a line which is able to describe profile asymmetry. Finally, the parameters of the best-fit model are used for determining the vessel width through regression using ensembles of bagged regression trees with random sampling of the predictors (random forests). The method is evaluated on the REVIEW public dataset. A precision close to the observers is achieved, outperforming other state-of-the-art methods. The method is robust and reliable for width estimation in images with pathologies and artifacts, with performance independent of the range of diameters.
机译:视网膜血管口径变化与糖尿病和高血压等几种主要疾病有关。可以使用眼底图像进行评估这些口径变化。然而,临床评估是令人厌倦的,易于出错,激励自动方法的发展。本文提出了一种基于血管横截面强度型材模型拟议拟议视网膜图像中血管口径估计的自动方法。首先,从图像中分割血管,检测血管中心线,并提取单个区段并平滑。强度曲线垂直于容器提取,并且确定轮廓长度。然后,模型配件应用于平滑的轮廓。使用新的参数模型(DOG-L7),包括在能够描述型材不对称的线的高斯倍增。最后,最佳拟合模型的参数用于通过使用袋装回归树的集合来确定血管宽度,其中袋装回归树与预测器的随机抽样(随机林)。该方法在查看公共数据集上进行评估。达到观察者的精确度,优于其他最先进的方法。该方法对于具有病理学和伪影的图像中的宽度估计是鲁棒且可靠的,性能与直径的范围无关。

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