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2DNMR data inversion using locally adapted multi-penalty regularization

机译:2DNMR数据反演使用本地适应的多罚规则化

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Geologists and Reservoir Engineers routinely use time-domain nuclear magnetic resonance (NMR) to learn about the porous structure of rocks that hold underground fluids. In particular, two-dimensional NMR (2DNMR) technique is now gaining importance in a wide variety of applications. Crucial issue in 2DNMR analysis are the speed, robustness and accuracy of the data inversion process. This paper proposes a multi-penalty method with locally adapted regularization parameters for fast and accurate inversion of 2DNMR data. The method solves an unconstrained optimization problem whose objective function contains a data-fitting term, a single L1 penalty parameter and a multiple parameter L2 penalty. We propose an adaptation of the Fast Iterative Shrinkage and Thresholding (FISTA) method to solve the multi-penalty minimization problem, and an automatic procedure to compute all the penalty parameters. This procedure generalizes the Uniform Penalty principle introduced in [Bortolotti et al., Inverse Problems, 33(1), 2016]. The proposed approach allows us to obtain accurate 2D relaxation time distributions while keeping short the computation time. Results of numerical experiments on synthetic and real data prove that the proposed method is efficient and effective in reconstructing the peaks and the flat regions that usually characterize 2DNMR relaxation time distributions.
机译:地质学家和水库工程师经常使用时域核磁共振(NMR)来了解持有地下液体的岩石的多孔结构。特别地,二维NMR(2DNMR)技术现在在各种应用中都获得了重要性。 2DNMR分析中的重要问题是数据反演过程的速度,稳健性和准确性。本文提出了一种多禁用方法,具有本地适应的正则化参数,用于2dnmr数据的快速准确反演。该方法解决了一个不受约束的优化问题,其客观函数包含数据拟合项,单个L1惩罚参数和多个参数L2惩罚。我们提出了一种适应快速迭代收缩和阈值平衡(FISTA)方法来解决多惩罚最小化问题,以及计算所有惩罚参数的自动过程。该过程概括了[Bortolotti等,逆问题,33(1),2016]中介绍的统一罚款原则。所提出的方法允许我们获得准确的2D放松时间分布,同时保持计算时间短。合成和实验数据的数值实验结果证明,该方法在重建峰值和平坦区域方面是高效且有效的,该峰值和平坦区域通常表征2DNMR弛豫时间分布。

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