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Segmentation of Lumen and External Elastic Laminae in Intravascular Ultrasound Images Using Ultrasonic Backscattering Physics Initialized Multiscale Random Walks

机译:超声波背散处理物理初始化多尺度随机散步血管内超声图像中腔外弹性薄片的分割

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Coronary artery disease accounts for a large number of deaths across the world and clinicians generally prefer using x-ray computed tomography or magnetic resonance imaging for localizing vascular pathologies. Interventional imaging modalities like intravascular ultrasound (IVUS) are used to adjunct diagnosis of atherosclerotic plaques in vessels, and help assess morphological state of the vessel and plaque, which play a significant role for treatment planning. Since speckle intensity in IVUS images are inherently stochastic in nature and challenge clinicians with accurate visibility of the vessel wall boundaries, it requires automation. In this paper we present a method for segmenting the lumen and external elastic laminae of the artery wall in IVUS images using random walks over a multiscale pyramid of Gaussian decomposed frames. The seeds for the random walker are initialized by supervised learning of ultrasonic backscattering and attenuation statistical mechanics from labelled training samples. We have experimentally evaluated the performance using 77 IVUS images acquired at 40 MHz that are available in the IVUS segmentation challenge dataset (http://www.cvc.uab.es/IVUSchallenge2011/dataset.html.) to obtain a Jaccard score of 0.89×0.14 for lumen and 0.85±0.12 for external elastic laminae segmentation over a 10-fold cross-validation study.
机译:冠状动脉疾病占世界各地的大量死亡,临床医生通常更喜欢使用X射线计算的断层扫描或磁共振成像来定位血管病理学。血管内超声(IVUS)等介入成像方式用于诊断血管中动脉粥样硬化斑块的诊断,并有助于评估血管和斑块的形态状态,这对治疗规划起着重要作用。由于IVUS图像中的散斑强度本质上是随机性的,并且挑战临床医生的精确可见性船舶壁边界,因此需要自动化。在本文中,我们介绍了一种使用随机散步在高斯分解框架的多尺度金字塔上的IVUS图像中动脉壁的内腔和外部弹性薄片的方法。随机步行者的种子是通过监督超声波背散射和衰减统计机制从标记的训练样本进行初始化的。我们已经通过在40 MHz中获取的77 IVUS图像进行了实验评估了在IVUS分段挑战数据集(http://www.cvc.uab.es/ivuschallenge2011/dataset.html。)中获得的绩效,以获得0.89的Jaccard得分×0.14用于内部弹性薄层的腔和0.85±0.12在10倍交叉验证研究中进行外部弹性薄层分割。

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