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Weighted least squares phase unwrapping based on the wavelet transform

机译:基于小波变换的加权最小二乘相位展开

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The weighted least squares phase unwrapping algorithm is a robust and accurate method to solve phase unwrapping problem. This method usually leads to a large sparse linear equation system. Gauss-Seidel relaxation iterative method is usually used to solve this large linear equation. However, this method is not practical due to its extremely slow convergence. The multigrid method is an efficient algorithm to improve convergence rate. However, this method needs an additional weight restriction operator which is very complicated. For this reason, the multiresolution analysis method based on the wavelet transform is proposed. By applying the wavelet transform, the original system is decomposed into its coarse and fine resolution levels and an equivalent equation system with better convergence condition can be obtained. Fast convergence in separate coarse resolution levels speeds up the overall system convergence rate. The simulated experiment shows that the proposed method converges faster and provides better result than the multigrid method.
机译:加权最小二乘相位展开算法是解决阶段展开问题的鲁棒和准确的方法。该方法通常导致大稀疏线性方程系统。高斯-Seidel弛豫迭代方法通常用于解决这一大线性方程。然而,由于其极其慢的收敛,这种方法是不实际的。 MultiGrid方法是提高收敛速率的有效算法。然而,该方法需要额外的重量限制运算符,这是非常复杂的。因此,提出了基于小波变换的多分辨率分析方法。通过应用小波变换,原始系统分解成其粗糙和精细分辨率水平,并且可以获得具有更好收敛条件的等效式系统。单独的粗糙分辨率水平的快速收敛速度加速整体系统收敛速率。模拟实验表明,所提出的方法会收敛更快并提供比多重资源的方法更好。

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