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Accurate Quantification of Local Changes for Carotid Arteries in 3D Ultrasound Images Using Convex Optimization-Based Deformable Registration

机译:使用基于凸优化的可变形配准准确量化3D超声图像中颈动脉的局部变化

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Registration of longitudinally acquired 3D ultrasound (US) images plays an important role in monitoring and quantifying progression/regression of carotid atherosclerosis. We introduce an image-based non-rigid registration algorithm to align the baseline 3D carotid US with longitudinal images acquired over several follow-up time points. This algorithm minimizes the sum of absolute intensity differences (SAD) under a variational optical-flow perspective within a multi-scale optimization framework to capture local and global deformations. Outer wall and lumen were segmented manually on each image, and the performance of the registration algorithm was quantified by Dice similarity coefficient (DSC) and mean absolute distance (MAD) of the outer wall and lumen surfaces after registration. In this study, images for 5 subjects were registered initially by rigid registration, followed by the proposed algorithm. Mean DSC generated by the proposed algorithm was 79.3 ± 3.8% for lumen and 85.9 ± 4.0% for outer wall, compared to 73.9 ± 3.4% and 84.7 ± 3.2% generated by rigid registration. Mean MAD of 0.46±0.08mm and 0.52±0.13mm were generated for lumen and outer wall respectively by the proposed algorithm, compared to 0.55±0.08mm and 0.54±0.11mm generated by rigid registration. The mean registration time of our method per image pair was 143 ± 23s.
机译:纵向采集的3D超声(US)图像的配准在监测和量化颈动脉粥样硬化的进展/消退中起着重要作用。我们引入了一种基于图像的非刚性配准算法,以将基线3D颈动脉US与在多个后续时间点上获取的纵向图像对齐。该算法在多尺度优化框架内捕获局部和全局变形的情况下,在变化的光流视角下将绝对强度差(SAD)的总和最小化。在每个图像上手动分割外壁和内腔,并在配准后通过Dice相似系数(DSC)和外壁和内腔表面的平均绝对距离(MAD)来量化配准算法的性能。在这项研究中,首先通过刚性配准对5个对象的图像进行配准,然后再提出算法。所提出的算法产生的平均DSC对于管腔为79.3±3.8%,对于外壁为85.9±4.0%,相比之下,通过刚性配准产生的DSC为73.9±3.4%和84.7±3.2%。所提出的算法产生的内腔和外壁平均MAD分别为0.46±0.08mm和0.52±0.13mm,相比之下,通过刚性配准产生的平均MAD为0.55±0.08mm和0.54±0.11mm。我们的方法每对图像的平均配准时间为143±23s。

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