Evaluation Protocol of Skeletonization Applied to Grayscale Curvilinear Structures

Rabaa Youssef, A. Ricordeau, S. Sevestre, A. Benazza-Benyahia
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引用次数: 3

Abstract

Few evaluation protocols were suggested to assess quality of skeletonization methods of grayscale images. Most of these protocols employ criteria and images both devoted to target application. No common image databases are available and the validation of skeleton structural properties under grayscale object variability suffers from a lack of standardized procedures. These properties are namely the preservation of geometry, topology and extremities respectively related to skeleton location and morphological quality. In this paper, we propose an evaluation protocol for skeletonization applied to grayscale curvilinear structures that focuses on skeleton structural properties, regardless of application specificities. We first identify challenging situations for skeletonizing grayscale images an then, construct a synthetic image database of objects with varying contrast, curvature and width. Secondly, we focus on criteria that reflect skeleton structural properties to assess its quality and noise robustness. We apply the proposed protocol on skeletonization methods within differential geometry framework that highlights good skeleton location and morphological thinning category that promotes skeleton connectivity. Experimental results indicate that the proposed protocol is able to describe the behavior of the criteria regarding the structural rendering of skeletonization methods.
应用于灰度曲线结构的骨架化评价方案
针对灰度图像的骨架化方法,提出了几种评价方案。这些协议中的大多数都使用专用于目标应用程序的标准和映像。目前还没有通用的图像数据库,而且在灰度目标变异性下的骨架结构特性验证也缺乏标准化的程序。这些特性分别是与骨骼位置和形态质量相关的几何、拓扑和肢体的保存。在本文中,我们提出了一种适用于灰度曲线结构的骨架化评估协议,该协议专注于骨架结构特性,而不考虑应用的特殊性。我们首先识别了灰度图像骨架化的难点,然后构建了一个由不同对比度、曲率和宽度的物体组成的合成图像数据库。其次,我们将重点放在反映骨架结构特性的标准上,以评估其质量和噪声鲁棒性。我们在微分几何框架内应用所提出的骨架化方法协议,该框架突出了良好的骨架定位和促进骨架连通性的形态细化类别。实验结果表明,所提出的协议能够描述关于骨架化方法的结构渲染准则的行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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