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Sourceless and source-assisted reconstruction in SPECT, with application to attenuation correction using medium energy transmission scanning

机译:SPECT中的源源和源辅助重建,应用于使用中型能量传输扫描衰减校正

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This study outlines new results obtained from a family of MLEM based algorithms and a likelihood function based on knowledge of the emission data only. Algorithms are developed for SPECT and PET, but results are shown for SPECT only. Algorithm validation was based on MCAT simulations, phantom studies with low-energy emission imaging and medium energy scanning point source transmission imaging. The scanning point source provides asymmetric fan beam data, while the emission data has parallel collimation. It is shown that the sourceless algorithms will converge to the ML solution if the initial input images are within the domain of influence of the local maximum. If a successive update rule is followed, in which the emission image is updated, followed by an update of the attenuation image, the likelihood function is concave in the neighborhood of its maximum. Line-search estimates for the relaxation parameter are guaranteed to converge. In general, the sourceless likelihood function is complex and has many local maxima.
机译:本研究概述了从基于MLEM的算法系列获得的新结果以及基于仅对发射数据的知识的似然函数。为SPECT和PET开发了算法,但结果仅显示了SPECT。算法验证基于MCAT仿真,具有低能量发射成像和中型能量扫描点源传输成像的幻影研究。扫描点源提供不对称的风扇光束数据,而发射数据具有并行准直。结果表明,如果初始输入图像在局部最大值的影响范畴内,则源算法将收敛到ML解决方案。如果遵循连续更新规则,其中更新了发射图像,然后更新衰减图像,似然函数在其最大邻域中凹。保证放宽参数的线路搜索估计将收敛。一般来说,源性似然函数复杂,并且具有许多局部最大值。

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