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A block-based noise level estimation from X-ray images in SVD domain

机译:SVD域中基于X射线图像的基于块的噪声水平估计

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Accurate and fast estimation of noise levels from medical images has numerous applications in medical image processing, including image enhancement, image segmentation and feature extraction. In this paper, a block-based noise level estimation algorithm in SVD domain is proposed. The proposed algorithm employs the non-overlapping block image segmentation to estimate homogenous image regions. Each homogenous block is used to obtain an independent noise level estimates in SVD domain. For any particular image, the overall noise level estimate is ascertained by averaging over the set of noise level estimates associated with the homogenous image blocks. In this paper, the optimal size of image segmentation blocks is evaluated systematically over a large dataset of x-ray images. The experimental results show that the proposed method offers numerous advantages over some alternative SVD domain method.
机译:从医学图像准确而快速地估计噪声水平在医学图像处理中具有众多应用,包括图像增强,图像分割和特征提取。本文提出了一种基于块的SVD域噪声水平估计算法。所提出的算法利用非重叠块图像分割来估计均匀图像区域。每个同质块用于在SVD域中获得独立的噪声水平估计。对于任何特定图像,通过对与同质图像块关联的一组噪声水平估计值求平均,可以确定总体噪声水平估计值。在本文中,对大型X射线图像数据集系统地评估了图像分割块的最佳大小。实验结果表明,与某些替代的SVD域方法相比,该方法具有许多优势。

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