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Improved iterative image reconstruction with automatic noise artifact suppression

机译:具有自动噪声伪影抑制功能的改进的迭代图像重建

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摘要

A method for stabilizing iterative image reconstruction techniques has been developed for improving the image quality of position emission tomography. A damping matrix is introduced, which suppresses noisy correction on a pixel-by-pixel basis, depending on the statistical precision of the iterative correction. The precision is evaluated by comparing a certain number of correction submatrices, each of which is formed from a subset of the projection data. Simulation studies showed that statistical noise is effectively suppressed, while the image of the source object is reconstructed with high resolution, as long as the signal level is higher than the local noise level. In the application to the MLE (maximum likelihood estimator), the minimum RMS error of the image was reduced to 84% for 500 k total counts, and the RMS error increased more slowly with further iterations as compared with the simple MLE. The method was also applied to the FIR (filtered iterative reconstruction) algorithm, and the images were found to be better than those obtained by the convolution backprojection method.
机译:已经开发了用于稳定迭代图像重建技术的方法,以改善位置发射断层摄影的图像质量。引入了阻尼矩阵,该阻尼矩阵根据迭代校正的统计精度逐个像素地抑制噪声校正。通过比较一定数量的校正子矩阵来评估精度,每个校正子矩阵都是由投影数据的子集形成的。仿真研究表明,只要信号电平高于局部噪声电平,就可以有效地抑制统计噪声,同时以高分辨率重建源对象的图像。在MLE(最大似然估计器)的应用中,对于500k总计数,图像的最小RMS误差减小到84%,并且与简单MLE相比,RMS误差随着进一步的迭代而增加得更慢。该方法还应用于FIR(滤波迭代重建)算法,发现图像比通过卷积反投影方法获得的图像更好。

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