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首页> 外文期刊>IEEE Transactions on Medical Imaging >An Expectation Maximization Method for Joint Estimation of Emission Activity Distribution and Photon Attenuation Map in PET
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An Expectation Maximization Method for Joint Estimation of Emission Activity Distribution and Photon Attenuation Map in PET

机译:PET中发射活度分布与光子衰减图联合估计的期望最大化方法

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A maximum likelihood expectation maximization (MLEM) method is proposed for joint estimation of emission activity distribution and photon attenuation map from positron emission tomography (PET) emission data alone. The method is appealing since: (i) it guarantees monotonic likelihood increase to a local extremum, (ii) does not require arbitrary parameters, and (iii) guarantees the positivity of the estimated distributions. Moreover, we propose a discrete Poisson data acquisition model and numerical algorithm for: (i) efficient graphics processing unit (GPU) based formulation, and (ii) a closed form exact solution for the MLEM update equations, which is essential for accurate and robust estimation. Numerical experiments indicate that in the presence of noise, joint EMAA estimation converges to the true emission activity distribution with root mean square errors of 4% and 0.5% respectively in estimation of lung- and myocardial emission activity distributions for a computational XCAT thorax phantom.
机译:提出了一种最大似然期望最大化(MLEM)方法,用于仅根据正电子发射断层扫描(PET)发射数据联合估计发射活动分布和光子衰减图。该方法之所以吸引人,是因为:(i)保证单调似然增加到局部极值,(ii)不需要任意参数,并且(iii)保证估计分布的正性。此外,我们提出了一种离散的Poisson数据采集模型和数值算法,用于:(i)基于高效图形处理单元(GPU)的公式,以及(ii)MLEM更新方程的闭式精确解,这对于精确且鲁棒性至关重要估计。数值实验表明,在存在噪声的情况下,在计算XCAT胸腔体模的肺和心肌放射活性分布估计中,联合EMAA估计收敛到真实放射活性分布,均方根误差分别为4%和0.5%。

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