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PET图像的滤波反投影重建和迭代重建方法的性能评估

Performance evaluation of filtered backprojection reconstruction and iterative reconstruction methods for PET images.

作者信息

Wang C X, Snyder W E, Bilbro G, Santago P

机构信息

Department of Radiology, Bowman Grey School of Medicine, Winston-Salem, NC 27157, USA.

出版信息

Comput Biol Med. 1998 Jan;28(1):13-24; discussion 24-5. doi: 10.1016/s0010-4825(97)00031-0.

Abstract

The filtered backprojection (FBP) algorithm and statistical model based iterative algorithms such as the maximum likelihood (ML) reconstruction or the maximum a posteriori (MAP) reconstruction are the two major classes of tomographic reconstruction methods. The FBP method is widely used in clinical setting while iterative methods have attracted research interests in the past decade. In this paper we studied the performance of the FBP, the ML and the MAP methods using simulated projection data. The experiment showed that the MAP algorithm generated superior image quality in terms of the bias, the variance, and the average mean squared error (MSE) measures.

摘要

滤波反投影(FBP)算法以及基于统计模型的迭代算法,如最大似然(ML)重建或最大后验(MAP)重建,是断层扫描重建方法的两大主要类别。FBP方法在临床环境中被广泛使用,而迭代方法在过去十年中引起了研究兴趣。在本文中,我们使用模拟投影数据研究了FBP、ML和MAP方法的性能。实验表明,就偏差、方差和平均均方误差(MSE)测量而言,MAP算法产生了更高的图像质量。

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