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Improved DCT-Based Nonlocal Means Filter for MR Images Denoising

机译:改进的基于DCT的MR图像去噪的非局部均值滤波器

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摘要

The nonlocal means (NLM) filter has been proven to be an efficient feature-preserved denoising method and can be applied to remove noise in the magnetic resonance (MR) images. To suppress noise more efficiently, we present a novel NLM filter based on the discrete cosine transform (DCT). Instead of computing similarity weights using the gray level information directly, the proposed method calculates similarity weights in the DCT subspace of neighborhood. Due to promising characteristics of DCT, such as low data correlation and high energy compaction, the proposed filter is naturally endowed with more accurate estimation of weights thus enhances denoising effectively. The performance of the proposed filter is evaluated qualitatively and quantitatively together with two other NLM filters, namely, the original NLM filter and the unbiased NLM (UNLM) filter. Experimental results demonstrate that the proposed filter achieves better denoising performance in MRI compared to the others.
机译:非局部均值(NLM)滤波器已被证明是一种有效的保留特征的去噪方法,可用于去除磁共振(MR)图像中的噪声。为了更有效地抑制噪声,我们提出了一种基于离散余弦变换(DCT)的新型NLM滤波器。该方法不是直接使用灰度级信息来计算相似度权重,而是在邻域的DCT子空间中计算相似度权重。由于DCT有希望的特性,例如低数据相关性和高能量压缩性,因此所提出的滤波器自然具有更精确的权重估计,从而有效地增强了去噪效果。与其他两个NLM滤波器,即原始NLM滤波器和无偏NLM(UNLM)滤波器一起,对所提出的滤波器的性能进行定性和定量评估。实验结果表明,与其他滤波器相比,该滤波器在MRI中具有更好的降噪性能。

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