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首页> 外文期刊>AEU: Archiv fur Elektronik und Ubertragungstechnik: Electronic and Communication >Curvelet based nonlocal means algorithm for image denoising
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Curvelet based nonlocal means algorithm for image denoising

机译:基于曲波的非局部均值图像去噪算法

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摘要

In this work, a curvelet based nonlocal means denoising method is proposed. In the proposed method, the curvelet transform is firstly implemented on the noisy image to produce reconstructed images. Then the similarity of two pixels in the noisy image is computed based on these reconstructed images which include complementary image features at relatively high noise levels or both the reconstructed images and the noisy image at relatively low noise levels. Finally, the pixel similarity and the noisy image are utilized to obtain the final denoised result using the nonlocal means method. Quantitative and visual comparisons demonstrate that the proposed method outperforms the state-of-art nonlocal means denoising methods in terms of noise removal and detail preservation.
机译:在这项工作中,提出了一种基于曲波的非局部均值去噪方法。在提出的方法中,首先在噪声图像上执行curvelet变换,以产生重构图像。然后,基于这些重构图像来计算噪声图像中两个像素的相似度,这些重构图像包括处于相对较高噪声水平的互补图像特征,或者包括处于相对较低噪声水平的重构图像和噪声图像。最后,利用非局部均值方法利用像素相似度和噪声图像获得最终的去噪结果。定量和视觉比较表明,在噪声去除和细节保留方面,所提方法优于最新的非局部均值去噪方法。

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