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Occlusion and nonstationary displacement field estimation in quantum-limited image sequences

机译:量子受限图像序列中的遮挡和非平稳位移场估计

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Abstract: In this paper, we develop an algorithm for obtaining the maximum a posteriori (MAP) estimate of the displacement vector field (DVF) from two consecutive image frames of an image sequence acquired under quantum-limited conditions. The estimation of the DVF has applications in temporal filtering, object tracking and frame registration in low- light level image sequences as well as low-dose clinical x-ray image sequences. The quantum-limited effect is modeled as an undesirable, Poisson-distributed, signal-dependent noise artifact. The specification of priors for the DVF allows a smoothness constraint for the vector field. In addition, discontinuities and areas corresponding to occlusions which are present in the field are taken into account through the introduction of both a line process and an occlusion process for neighboring vectors. A Bayesian formulation is used in this paper to estimate the DVF and a block component algorithm is employed in obtaining a solution. Several experiments involving a phantom sequence show the effectiveness of this estimator in obtaining the DVF under severe quantum noise conditions.!27
机译:摘要:在本文中,我们开发了一种算法,该算法可从在量子受限条件下获取的图像序列的两个连续图像帧中获得位移矢量场(DVF)的最大后验(MAP)估计。 DVF的估计在低光水平图像序列以及低剂量临床X射线图像序列中的时间滤波,对象跟踪和帧配准中都有应用。量子限制效应被建模为不希望的,泊松分布的,依赖信号的噪声伪像。 DVF的先验规范规定了矢量场的平滑度约束。另外,通过引入针对相邻矢量的线过程和遮挡过程,来考虑与场中存在的遮挡相对应的不连续性和面积。在本文中使用贝叶斯公式来估计DVF,并且使用块分量算法来获得解。涉及幻影序列的几个实验表明,该估计器在严峻的量子噪声条件下获得DVF的有效性。27

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