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Graph-cut based edge detection for kalman filter based left ventricle tracking in 3D+T echocardiography

机译:基于绘制的基于图形的边沿检测3D + T超声心动图中的左心室跟踪

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Consistent endocardial border segmentation in 3D echocardiography is a challenging task. One of the major difficulties rises due to the fact that the trabeculated structure of the endocardium causes the endocardial intensity profile characteristics to change over a cardiac cycle. In this paper, we present a hybrid edge detection approach using both max flow/min cut (MFMC) and step criterion (STEP) edge detectors, and its integration into a Kalman filter based left ventricle (LV) tracking framework. We treat the endocardial edge detection problem as a graph partitioning problem where the graph is defined by using the intensity profiles, and propose a max flow/min cut based solution. For the end-systole, the step criterion edge detector is a more suitable option. Accordingly, we introduce the weighted combination of these techniques called the hybrid edge detector (Hybrid) where the weight factor is determined by the size of the tracked endocardial mesh. Surface and volumetric measurement comparisons between the STEP, MFMC and Hybrid shows that the Hybrid handles the specific problem of time-dependent intensity profiles better than the other approaches.
机译:3D超声心动图中一致的心内膜区域边界分割是一个具有挑战性的任务。其中一个主要困难是由于内膜内腔室的分叉结构导致心内膜强度曲线特征在心脏周期发生变化的事实,因此升高。在本文中,我们使用MAX流/分切(MFMC)和步骤标准(步骤)边缘检测器的混合边缘检测方法,以及其集成到基于Kalman滤波器的左心室(LV)跟踪框架中。我们将内内容边缘检测问题视为图形分区问题,其中通过使用强度配置文件来定义图表,并提出了基于MAX流/最小切割的解决方案。对于结束 - 交易所,步骤标准边缘检测器是更合适的选择。因此,我们介绍了这些技术的加权组合,称为混合边缘检测器(混合),其中重量因子由跟踪的外部内容网格的大小确定。步骤,MFMC和Hybrid之间的表面和体积测量比较表明,混合动力比其他方法更好地处理时间相关强度谱的特定问题。

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