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Adaptive nonlinear multigrid inversion with applications to Bayesian optical diffusion tomography

机译:自适应非线性多重网格反演及其在贝叶斯光学层析成像中的应用

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We previously proposed a general framework for nonlinear multi-grid inversion applicable to any inverse problem in which the forward model can be naturally represented at differing resolutions. The method has the potential for very large computational savings and robust convergence. In this paper, multigrid inversion is further extended to adaptively allocate computation to the scale at which the algorithm can best reduce the cost. We applied the proposed method to solve the problem of optical diffusion tomography in a Bayesian framework, and our simulation results indicate that the adaptive scheme can improve computational efficiency in this application.
机译:我们先前提出了适用于任何反问题的非线性多网格反演的通用框架,在该反问题中,前向模型可以自然地以不同的分辨率表示。该方法具有节省大量计算和强大收敛性的潜力。在本文中,进一步扩展了多网格反演,以将计算自适应地分配到算法可以最大程度地降低成本的规模。我们将提出的方法用于解决贝叶斯框架中的光学扩散层析成像问题,并且仿真结果表明,该自适应方案可以提高该应用中的计算效率。

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