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Confidence based anisotropic filtering of magnetic resonance images

机译:基于置信度的磁共振图像各向异性滤波

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Image filtering is an important off-line image processing technique to improve the signal-to-noise ratio (SNR) and/or contrast-to-noise ratio (CNR) of acquired images. The major drawback of filtering is that it often blurs the fine structures and object boundaries in the image along with noise. Anisotropic diffusive filtering techniques incorporate gradient information to blur homogeneous regions while preserving the boundaries and interesting structures. Unfortunately, their performance is limited in low contrast regions and around fuzzy boundaries. This paper introduces a multi-scale confidence based conductance function to address the limitations of anisotropic diffusive filtering. Experiments on phantom and magnetic resonance (MR) images have been performed using both our method and the gradient-based anisotropic diffusive filtering for comparison purposes.
机译:图像滤波是一种重要的离线图像处理技术,可提高获取图像的信噪比(SNR)和/或对比度噪声比(CNR)。过滤的主要缺点是它经常使图像中的精细结构和对象边界以及噪点变得模糊。各向异性扩散滤波技术结合了梯度信息以模糊均质区域,同时保留边界和有趣的结构。不幸的是,它们的性能在低对比度区域和模糊边界附近受到限制。本文介绍了一种基于多尺度置信度的电导函数,以解决各向异性扩散滤波的局限性。为了进行比较,已使用我们的方法和基于梯度的各向异性扩散滤波对幻像和磁共振(MR)图像进行了实验。

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