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Phase pattern denoising using a regularized cost function with complex-valued Markov random fields based on a discrete model

机译:使用基于离散模型的具有复值马尔可夫随机场的正则化成本函数进行相位模式去噪

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摘要

We present a simple and effective method for denoising phase patterns based on a discrete model. The proposed filtering method transforms the image denoising problem to solving the energy diffusion problem of a system with complex-valued fields. We establish an appropriate cost function that uses the discrete form of complex-valued Markov random fields. The attractiveness of the proposed filtering method includes three points: the first is that the filtering process can be easily implemented using an iterative method, the second is that 2pi phase jumps are well preserved, and the third is its little computational effort. The performance of the proposed method is demonstrated by simulated and experimentally obtained phase patterns.
机译:我们提出了一种基于离散模型的简单有效的去噪相位模式方法。所提出的滤波方法将图像去噪问题转换为具有复值场的系统的能量扩散问题。我们建立了一个适当的成本函数,该函数使用复数值马尔可夫随机字段的离散形式。所提出的滤波方法的吸引力包括三点:第一点是可以使用迭代方法轻松实现滤波过程,第二点是2pi相位跳变得到了很好的保留,第三点是其计算量很小。通过仿真和实验获得的相位图证明了该方法的性能。

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