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Fast and non-iterative zonal estimation for the non-rectangular data in the transparent surface reconstruction from polarization analysis

机译:偏振分析中透明表面重建中的非矩形数据的快速和非迭代区域估计

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摘要

In the method of surface reconstruction from polarization, the reconstructed area is generally non-rectangular and contains a large number of sampling points. There is a difficulty that the coefficient matrix in front of the height vector changes with the shape of the measured data when using the zonal estimation. The traditional iterative approaches consume more time for the reconstruction of this type of data. This paper presents a non-iterative zonal estimation to reduce the computing time and to accurately reconstruct the surface. The index vector is created according to the positions of both the valid and invalid elements in the difference and gradient matrices. It is used to obtain the coefficient matrix corresponding to the general data. The heights in the non-rectangular area are calculated non-iteratively by the least squares method. At the same time, the sparse matrix is applied for handling the large-scale data quickly. The simulation and the experiment are designed to verify the feasibility of the proposed method. The results show that the proposed method is highly efficient and accurate in the reconstruction of the non-rectangular data. (C) 2020 Optical Society of America
机译:在从极化的表面重建方法中,重建区域通常是非矩形的并且包含大量采样点。在使用Zonal估计时,难以在高度向量前面的系数矩阵随测量数据的形状而变化。传统的迭代方法消耗更多的时间来重建这种类型的数据。本文呈现了不迭代的区内估计,以减少计算时间并准确地重建表面。根据差异和渐变矩阵中的有效和无效元素的位置创建索引向量。它用于获得与一般数据相对应的系数矩阵。非矩形区域中的高度通过最小二乘法计算而不迭代地计算。同时,稀疏矩阵用于快速处理大规模数据。仿真和实验旨在验证所提出的方法的可行性。结果表明,该方法在非矩形数据的重建中是高效且准确的。 (c)2020美国光学学会

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    《Applied optics》 |2020年第6期|共9页
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