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Hyperparameter Selection for Bayesian Image Reconstruction by Mimicking Physical Crystallization

机译:模仿物理结晶贝叶斯图像重建的封闭表选择

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摘要

Although Bayesian theory has been successfully applied for count-limited medical image reconstruction in the past two decades, its wide applications in clinic has been hampered by its hyperparameter ${eta}$, which is traditionally determined by a trial-error style. To eliminate the cumbersome style, this work aims to present a selection method by mimicking the physical model of cooling down the temperature adaptively for an economic high-quality crystal. From the basic Bayes' law, the physical meaning of hyperparameter can be interpreted as the ratio of the data uncertainty (or variance ${lpha}$) and the prior tolerance (or ${sigma}$) by formulating the probability distribution functions (FDFs) of the data fidelity and prior expectation. Inspired by this idea, the prior tolerance ${sigma}$ can be treated as the temperature of the texture patterns, and ${eta}$ can be adjusted according to different texture pattern status by satisfying the condition of each PDF in the Bayes' Law during the iteration. In Simulated phantom study, realistic Poisson noise added to the pre-log transmission data model was used. Both phantom simulation and clinical patient data results show that the proposed method can provide comparable reconstructed image quality comparing to the conventional methods but with much less reconstruction time. It is observed that the parameter introduced to satisfy the prior's PDF is more sensitive to stop the iteration process.
机译:虽然贝叶斯理论在过去二十年中已成功应用于有限的医学形象重建,但其在诊所的广泛应用程序被其普遍存在者受到阻碍 $ { beta} $ < / tex>,传统上由试验错误样式决定。为了消除繁琐的风格,这项工作旨在通过模拟适应经济高质量晶体的自适应冷却温度的物理模型来呈现选择方法。从基本贝叶斯定律来看,HyperParameter的物理含义可以被解释为数据不确定性的比率(或方差 $ { alpha} $ < / tex>)和现有的容忍度(或 $ { sigma} $ < / tex>)通过制定数据保真度的概率分布函数(FDF)和事先期望。灵感来自这个想法,现有的容忍度 $ { sigma} $ < / tex> 可以被视为纹理图案的温度, $ { beta} $ < / tex> 可以根据迭代期间满足贝叶斯定律中每个PDF的条件来调整不同的纹理模式状态。在模拟幻像研究中,使用了添加到预目的传输数据模型的现实泊松噪声。幻影仿真和临床患者数据结果表明,该方法可以提供与传统方法相比的可比重建图像质量,而是较少的重建时间。观察到以满足先前的PDF引入的参数对停止迭代过程更敏感。

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