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Clustering and estimation of 2-D motion fields in ultrasonic images based on regression characteristics with respiratory signal

机译:基于回归特性与呼吸信号的超声图像中2-D运动场的聚类与估计

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摘要

We estimated instantaneous 2-D motion field in ultrasonic images of internal organs. We have proposed an algorithm based on the correlation between respiration and the motion of internal organs, in which, motion is represented as a regression model with respect to the respiratory signal and independently estimated in each pixel. In this paper, it is assumed that motion has a multi-modal distribution, thereby reducing the number of unknown parameters, and hence improving the accuracy of the motion estimated. We constructed a computationally stable estimation algorithm based on this assumption, and verified the applicability of the proposed technique through experiments on simulated and real image data.
机译:我们估计了内脏超声图像中的瞬时2-D运动场。 我们提出了一种基于呼吸与内器官之间的相关性的算法,其中,运动被表示为相对于呼吸信号的回归模型,并且在每个像素中独立地估计。 在本文中,假设运动具有多模态分布,从而减少未知参数的数量,从而提高了估计的运动的准确性。 我们基于该假设构建了一种基于计算稳定的估计算法,并通过模拟和真实图像数据的实验验证了所提出的技术的适用性。

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