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Vessel tree reconstruction in thoracic CT scans with application to nodule detection

机译:胸部CT扫描中的血管树重建及其在结节检测中的应用

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摘要

Vessel tree reconstruction in volumetric data is a necessary prerequisite in various medical imaging applications. Specifically, when considering the application of automated lung nodule detection in thoracic computed tomography (CT) scans, vessel trees can be used to resolve local ambiguities based on global considerations and so improve the performance of nodule detection algorithms. In this study, a novel approach to vessel tree reconstruction and its application to nodule detection in thoracic CT scans was developed by using correlation-based enhancement filters and a fuzzy shape representation of the data. The proposed correlation-based enhancement filters depend on first-order partial derivatives and so are less sensitive to noise compared with Hessian-based filters. Additionally, multiple sets of eigenvalues are used so that a distinction between nodules and vessel junctions becomes possible. The proposed fuzzy shape representation is based on regulated morphological operations that are less sensitive to noise. Consequently, the vessel tree reconstruction algorithm can accommodate vessel bifurcation and discontinuities. A quantitative performance evaluation of the enhancement filters and of the vessel tree reconstruction algorithm was performed. Moreover, the proposed vessel tree reconstruction algorithm reduced the number of false positives generated by an existing nodule detection algorithm by 38%.
机译:在各种医学成像应用中,体积数据中的血管树重建是必要的先决条件。具体而言,当考虑将自动肺结节检测在胸部计算机断层扫描(CT)扫描中的应用时,可以基于全局考虑使用血管树来解决局部歧义,从而提高结节检测算法的性能。在这项研究中,通过使用基于相关的增强过滤器和数据的模糊形状表示,开发了一种新的血管树重建方法及其在胸部CT扫描中结节检测中的应用。所提出的基于相关的增强滤波器依赖于一阶偏导数,因此与基于Hessian的滤波器相比,对噪声的敏感性较低。此外,使用了多组特征值,因此可以区分结节和血管交界处。所提出的模糊形状表示是基于对噪声不太敏感的规范形态学运算。因此,血管树重建算法可以适应血管分支和不连续性。进行了增强过滤器和血管树重构算法的定量性能评估。此外,提出的血管树重构算法将现有结节检测算法产生的假阳性数量减少了38%。

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