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Analyzing tree-shape anatomical structures using topological descriptors of branching and ensemble of classifiers

机译:分析树木分支和集合谱系的树形解剖结构

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摘要

The analysis of anatomical tree-shape structures visualized in medical images provides insight into the relationship between tree topology and pathology of the corresponding organs. In this paper, we propose three methods to extract descriptive features of the branching topology; the asymmetry index, the encoding of branching patterns using a node labeling scheme and an extension of the Sholl analysis. Based on these descriptors, we present classification schemes for tree topologies with respect to the underlying pathology. Moreover, we present a classifier ensemble approach which combines the predictions of the individual classifiers to optimize the classification accuracy. We applied the proposed methodology to a dataset of x-ray galactograms, medical images which visualize the breast ductal tree, in order to recognize images with radiological findings regarding breast cancer. The experimental results demonstrate the effectiveness of the proposed framework compared to state-of-the-art techniques suggesting that the proposed descriptors provide more valuable information regarding the topological patterns of ductal trees and indicating the potential of facilitating early breast cancer diagnosis.
机译:对医学图像中可视化的解剖树形结构的分析提供了对树形拓扑与相应器官病理之间关系的深入了解。在本文中,我们提出了三种方法来提取分支拓扑的描述性特征。不对称索引,使用节点标记方案对分支模式进行编码以及Sholl分析的扩展。基于这些描述符,我们提出了针对基础病理的树形拓扑分类方案。此外,我们提出了一种分类器集成方法,该方法结合了各个分类器的预测以优化分类精度。我们将提出的方法应用于X射线半乳糖图(可视化乳腺导管树的医学图像)的数据集,以便识别具有关于乳腺癌的放射学发现的图像。实验结果表明,与最新技术相比,该框架的有效性,表明所提出的描述符提供了有关导管树拓扑模式的更有价值的信息,并表明了促进早期乳腺癌诊断的潜力。

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