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Denoising algorithm based on edge extraction and wavelet transform in digital holography

机译:基于边缘提取和小波变换的数字全息去噪算法

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Digital holography is a kind of coherent imaging method and inevitably affected by many factors in the process of recording. One of dominant problems is the speckle noise, which is essentially nonlinear multiplicative noise related to signals. So it is more difficult to remove than additive noise. Due to the noise pollution, the low resolution of image reconstructed is caused. A new solution for suppressing speckle noise in digital hologram is presented, which combines Canny filtering algorithm with wavelet threshold denoising algorithm. Canny filter is used to obtain the edge detail. Wavelet transformation performs denoising. In order to suppress speckle effectively and retain the image details as much as possible, Neyman-Pearson (N-P) criterion is introduced to estimate wavelet coefficient in every scale. An improved threshold function is proposed, whose curve is smoother. The reconstructed image is achieved by merging the denoised image with the edge details. Experimental results and performance parameters of the proposed algorithm are discussed and compared with other methods, which shows that the presented approach can not only effectively eliminate speckle noise, but also retain useful signals and edge information simultaneously.
机译:数字全息术是一种相干成像方法,在记录过程中不可避免地受到许多因素的影响。主要问题之一是斑点噪声,本质上是与信号相关的非线性乘法噪声。因此,比加性噪声更难消除。由于噪声污染,导致重建图像的低分辨率。提出了一种将Canny滤波算法与小波阈值去噪算法相结合的数字全息散斑噪声抑制方法。 Canny滤镜用于获取边缘细节。小波变换执行去噪。为了有效地抑制斑点并尽可能保留图像细节,引入了Neyman-Pearson(N-P)准则来估计每个尺度的小波系数。提出了一种改进的阈值函数,其曲线更平滑。通过将去噪后的图像与边缘细节合并来获得重建的图像。对该算法的实验结果和性能参数进行了讨论,并与其他方法进行了比较,结果表明,该方法不仅可以有效地消除斑点噪声,而且可以同时保留有用的信号和边缘信息。

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