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Quantitative Evaluation of Reconstructed Image with Filtered Back Projection Bayes Method

机译:滤波反投影贝叶斯方法对重建图像的定量评估

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We compared a Bayesian reconstruction method with conventional filtered back projection (FBP) method in positron emission tomography (PET). In the medical scene, PET scanning plays an important role for functional diagnosis such like measuring the cerebral glucose metabolisms. Tomographic image is reconstructed from the observed data, which is the recieved signals from administrated-radioactive substances existing in the target tissue, by a PET scanner. Various reconstruction methods have been proposed, and we focus on a Bayesian approach of our previous method, that is, introducing a Gaussian Markov random field (GMRF) as a prior and Gaussian observations as likelihood function. We evaluate reconstruction performances of our method in a region of interest (ROl) based approach and compare with the one of FBP method. In the result, we obtain our Bayesian approach might be able to suppress fluctuation of the observation noise.
机译:我们将贝叶斯重建方法与常规过滤反投影(FBP)方法在正电子发射断层扫描(PET)中进行了比较。在医学领域,PET扫描对于功能诊断(例如测量脑部葡萄糖代谢)起着重要作用。断层图像是由观察到的数据重建而成的,这是通过PET扫描仪从目标组织中存在的放射性放射性物质接收到的信号。已经提出了各种重建方法,并且我们集中于先前方法的贝叶斯方法,即,引入高斯马尔可夫随机场(GMRF)作为先验,引入高斯观测作为似然函数。我们评估了我们的方法在基于感兴趣区域(RO1)的方法中的重建性能,并与FBP方法之一进行了比较。结果,我们获得了贝叶斯方法可能能够抑制观测噪声的波动。

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