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An Analysis of Contrast Agent Flow Patterns From Sequential Ultrasound Images Using a Motion Estimation Algorithm Based on Optical Flow Patterns

机译:基于光学流型的运动估计算法分析顺序超声图像中的造影剂流型

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摘要

This study estimates flow patterns of contrast agents from successive ultrasound image sequences by using an anisotropic diffusion-based optical flow algorithm. Before flow fields were recovered, the test sequences were reconstructed using relative composition of structural and textural parts from the original image. To improve estimation performance, an anisotropic diffusion filtering model was embedded into a spline-based slightly nonconvex total variation-L1 minimization algorithm. In addition, an incremental coarse-to-fine warping framework was employed with a linear minimization scheme to account for a large displacement. After each warping iteration, the implementation used intermediate bilateral filtering to prevent oversmoothing across motion boundaries. The performance of the proposed algorithm was tested using three different sequences obtained from two simulated datasets and phantom ultrasound sequences. The results indicate the robust performance of the proposed method under different noise environments. The results of the phantom study also demonstrate reliable performance according to different injection conditions of contrast agents. These experimental results suggest the potential clinical applicability of the proposed algorithm to ultrasonographic diagnosis based on contrast agents.
机译:这项研究通过使用基于各向异性扩散的光流算法,从连续的超声图像序列估计造影剂的流型。在恢复流场之前,使用原始图像中结构和纹理部分的相对组成来重建测试序列。为了提高估计性能,将各向异性扩散滤波模型嵌入到基于样条的略微非凸总变化量L1最小化算法中。另外,采用增量的从粗到细的翘曲框架和线性最小化方案来解决较大的位移。在每次翘曲迭代之后,该实现均使用中间双边滤波来防止跨运动边界的过度平滑。使用从两个模拟数据集和幻影超声序列获得的三个不同序列测试了所提出算法的性能。结果表明了该方法在不同噪声环境下的鲁棒性能。幻像研究的结果还表明,根据造影剂的不同注射条件,其性能可靠。这些实验结果表明,所提出的算法在基于造影剂的超声诊断中的潜在临床应用性。

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