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3D optical flow computation using a parallel variational multigrid scheme with application to cardiac C-arm CT motion

机译:使用并行变分多网格方案的3D光流计算及其在心脏C臂CT运动中的应用

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Motivated by recent applications to 3D medical motion estimation, we consider the problem of 3D optical flow computation in real time. The 3D optical flow model is derived from a straightforward extension of the 2D Horn-Schunck model and discretized using standard finite differences. We compare memory costs and convergence rates of four numerical schemes: Gauss-Seidel and multigrid with three different strategies of coarse grid operators discretization: direct coarsening, lumping and Galerkin approaches. Experimental results to compute 3D motion from cardiac C-arm CT images demonstrate that our variational multi-grid based on Galerkin discretization outperforms significantly the Gauss-Seidel method. The parallel implementation of the proposed scheme using domain partitioning shows that the algorithm scales well up to 32 processors on a cluster of AMD Opteron CPUs which consists of four-way nodes connected by an Infiniband network.
机译:由于最近在3D医学运动估计中的应用,我们考虑了3D光流实时计算的问题。 3D光流模型源自2D Horn-Schunck模型的直接扩展,并使用标准有限差分进行离散化。我们用四种不同的粗网格算子离散化策略(直接粗化,集总和Galerkin方法)比较了四种数值方案(高斯-赛德尔和多重网格)的存储成本和收敛速度。从心脏C臂CT图像计算3D运动的实验结果表明,基于Galerkin离散化的变分多重网格性能明显优于Gauss-Seidel方法。使用域分区对提议的方案进行并行执行,结果表明,该算法在AMD Opteron CPU群集上可扩展至多达32个处理器,该群集由通过Infiniband网络连接的四向节点组成。

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