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Automatic segmentation of 4D cardiac MR images for extraction of ventricular chambers using a spatio-temporal approach

机译:使用时空方法自动分割4D心脏MR图像以提取心室

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An accurate ventricular function quantification is important to support evaluation, diagnosis and prognosis of several cardiac pathologies. However, expert heart delineation, specifically for the right ventricle, is a time consuming task with high inter-and-intra observer variability. A fully automatic 3D+time heart segmentation framework is herein proposed for short-axis-cardiac MRI sequences. This approach estimates the heart using exclusively information from the sequence itself without tuning any parameters. The proposed framework uses a coarse-to-fine approach, which starts by localizing the heart via spatio-temporal analysis, followed by a segmentation of the basal heart that is then propagated to the apex by using a non-rigid-registration strategy. The obtained volume is then refined by estimating the ventricular muscle by locally searching a prior endocardium-pericardium intensity pattern. The proposed framework was applied to 48 patients datasets supplied by the organizers of the MICCAI 2012 Right Ventricle segmentation challenge. Results show the robustness, efficiency and competitiveness of the proposed method both in terms of accuracy and computational load.
机译:准确的心室功能量化对于支持评估,诊断和预后几种心脏疾病很重要。但是,特别是针对右心室的专家心脏定界是一项耗时的任务,观察者之间和内部的差异很大。本文提出了针对短轴心脏MRI序列的全自动3D +时间心脏分割框架。这种方法仅使用来自序列本身的信息来估计心脏,而无需调整任何参数。提出的框架使用从粗到细的方法,该方法首先通过时空分析对心脏进行定位,然后对基底心脏进行分割,然后通过使用非刚性注册策略将其传播到心尖。然后,通过局部搜索先前的心内膜-心包强度模式来估计心室肌,从而精炼获得的体积。拟议的框架已应用于MICCAI 2012右心室分割挑战赛组织者提供的48位患者数据集。结果表明,该方法在准确性和计算量方面都具有鲁棒性,效率和竞争力。

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