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A Spectral CT Denoising Algorithm based on Weighted Block Matching 3D Filtering

机译:基于加权块匹配3D滤波的光谱CT去噪算法

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In spectral CT, an energy-resolving detector is capable of counting the number of received photons in different energy channels with appropriate post-processing steps. Because the received photon number in each energy channel is low in practice, the generated projections suffer from low signal-to-noise ratio. This poses a challenge to perform image reconstruction of spectral CT. Because the reconstructed multi-channel images are for the same object but in different energies, there is a high correlation among these images and one can make full use of this redundant information. In this work, we propose a weighted block-matching and three-dimensional (3-D) filtering (BM3D) based method for spectral CT denoising. It is based on denoising of small 3-D data arrays formed by grouping similar 2-D blocks from the whole 3-D data image. This method consists of the following two steps. First, a 2-D image is obtained using the filtered back-projection (FBP) in each energy channel. Second, the proposed weighted BM3D filtering is performed. It not only uses the spatial correlation within each channel image but also exploits the spectral correlation among the channel images. The proposed method is evaluated on both numerical simulation and realistic preclinical datasets, and its merits are demonstrated by the promising results.
机译:在光谱CT中,能量分辨检测器能够通过适当的后处理步骤对不同能量通道中接收到的光子数量进行计数。由于实际上每个能量通道中接收到的光子数较低,因此生成的投影信号信噪比较低。这对执行光谱CT的图像重建提出了挑战。由于重建的多通道图像是针对同一对象但具有不同能量的,因此这些图像之间具有高度相关性,因此可以充分利用这一冗余信息。在这项工作中,我们提出了一种基于加权块匹配和三维(3-D)滤波(BM3D)的频谱CT去噪方法。它基于对小型3-D数据阵列的去噪,该小型3-D数据阵列是通过对整个3-D数据图像中的相似2-D块进行分组而形成的。此方法包括以下两个步骤。首先,在每个能量通道中使用滤波后的反投影(FBP)获得二维图像。第二,执行建议的加权BM3D滤波。它不仅使用每个通道图像内的空间相关性,而且利用通道图像之间的光谱相关性。该方法在数值模拟和实际临床前数据集上均得到了评估,其优点被有希望的结果证明。

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