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Development of Image Segmentation Methods for Intracranial Aneurysms

机译:颅内动脉瘤图像分割方法的发展

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摘要

Though providing vital means for the visualization, diagnosis, and quantification of decision-making processes for the treatment of vascular pathologies, vascular segmentation remains a process that continues to be marred by numerous challenges. In this study, we validate eight aneurysms via the use of two existing segmentation methods; the Region Growing Threshold and Chan-Vese model. These methods were evaluated by comparison of the results obtained with a manual segmentation performed. Based upon this validation study, we propose a new Threshold-Based Level Set (TLS) method in order to overcome the existing problems. With divergent methods of segmentation, we discovered that the volumes of the aneurysm models reached a maximum difference of 24%. The local artery anatomical shapes of the aneurysms were likewise found to significantly influence the results of these simulations. In contrast, however, the volume differences calculated via use of the TLS method remained at a relatively low figure, at only around 5%, thereby revealing the existence of inherent limitations in the application of cerebrovascular segmentation. The proposed TLS method holds the potential for utilisation in automatic aneurysm segmentation without the setting of a seed point or intensity threshold. This technique will further enable the segmentation of anatomically complex cerebrovascular shapes, thereby allowing for more accurate and efficient simulations of medical imagery.
机译:虽然提供了用于治疗血管病理学的可视化,诊断和定量的重要手段,但血管分割仍然是一种持续受许多挑战损害的过程。在这项研究中,我们通过使用两个现有的分段方法验证八个动脉瘤;该地区生长阈值和Chan-Vese模型。通过比较通过进行手动分段获得的结果来评估这些方法。基于该验证研究,我们提出了一种新的基于阈值的级别集(TLS)方法,以克服现有问题。随着分割的发散方法,我们发现动脉瘤模型的体积达到了24%的最大差异。同样发现动脉瘤的局部动脉解剖形状显着影响了这些模拟的结果。然而,相反,通过使用TLS方法计算的体积差仍然在相对较低的数字,仅在5%左右,从而揭示了脑血管分割应用中固有局限性的存在。所提出的TLS方法容纳在自动动脉瘤分割中利用的可能性,而不设置种子点或强度阈值。该技术将进一步能够使解剖学上复杂的脑血管形状的分割,从而允许更准确和高效地模拟医疗图像。

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