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Enhancement of Myocardial Boundary Tracking Using Wavelet-based Motion Estimation

机译:基于小波的运动估计增强心肌边界跟踪

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摘要

Myocardial boundary tracking in echocardiograms is a challenging task due to soft tissue contrast, speckled noise, scattering and attenuation of the ultrasound signal. Furthermore, most ultrasound images that are acquired by physicians in clinical practice have a poor rating quality and are hard to analyze and recognize. Both of these factors could complicate the development of an algorithm to track the movement of myocardial boundary in echocardiograms. With this in mind, we proposed a method that combines a wavelet multi-scale strategy and a warping optical flow to generate a high-accuracy velocity vector from two consecutive frames of poor-quality ultrasound images. From these sets of high-accuracy velocity vectors, the movement of points along the myocardial boundary is tracked starting from the end diastole to the end systole of the cardiac cycle. A set of multi-scale images generated by Haar wavelet decomposition is processed recursively to compute the motion vector field in an echocardiographic image sequence. Artificially generated cardiac image sequences were used to measure performance by comparing the angular error of the proposed motion estimation technique to other established methods. The proposed method was also tested and evaluated by expert cardiologists using actual poor-quality ultrasound images that were acquired from healthy and unhealthy volunteers to track myocardial boundaries based on the parasternal long axis view of the human cardiac.
机译:由于软组织对比度,斑点噪声,超声信号的散射和衰减,超声心动图中的心肌边界跟踪是一项艰巨的任务。此外,医生在临床实践中采集的大多数超声图像的评级质量较差,并且难以分析和识别。这两个因素可能会使在超声心动图中跟踪心肌边界运动的算法的开发变得复杂。考虑到这一点,我们提出了一种结合小波多尺度策略和扭曲光流的方法,该方法可以从两个连续的质量差的超声图像帧中生成高精度速度矢量。从这组高精度速度向量集中,可以追踪从心脏舒张末期到心动周期末期的沿心肌边界的点的运动。通过Haar小波分解生成的一组多尺度图像被递归处理,以计算超声心动图图像序列中的运动矢量场。通过将拟议的运动估计技术的角度误差与其他已建立的方法进行比较,使用人工生成的心脏图像序列来测量性能。专业心脏病专家还使用从健康和不健康的志愿者那里获得的实际质量差的超声图像对所提出的方法进行了测试和评估,这些图像是基于人心脏的胸骨旁长轴视图来跟踪心肌边界的。

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