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Fully 4D dynamic image reconstruction by nonlinear constrained programming

机译:通过非线性约束编程进行全4D动态图像重建

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In standard SPECT with static radio-tracers, the activity distribution in tissue is assumed constant during the acquisition. However, techniques capable of visualizing dynamic tracers may provide new insight into physiology and function of organisms. This is the aim of dynamic SPECT. We developed oSPECT, a new fully 4D reconstruction approach to obtain time activity curves from single or multiple slow rotations with dynamic SPECT data. It is based on KNITRO, a large-scale nonlinear constrained optimization method that takes curvature information into account to speed up convergence. The performance of oSPECT is tested using data from a dynamic anthropomorphic numerical phantom that simulates myocardial perfusion of 99mTc-Teboroxime. We also tested the method on a simulated brain study with 123I-FP-CIT, a dynamic presynaptic marker for SPECT of the dopaminergic neurotransmission system.
机译:在具有静态无线电示踪剂的标准SPECT中,在采集期间假设组织中的活性分布。然而,能够可视化动态示踪剂的技术可以提供对生物学和生物的生理学和功能的新洞察力。这是动态SPECT的目的。我们开发了一种新的完整4D重建方法,可以通过动态SPECT数据获取来自单个或多个慢速旋转的时间活动曲线。它基于Knitro,一个大规模的非线性约束优化方法,考虑到曲率信息以加速收敛。使用来自动态拟人数值幽灵的数据来测试OSCEP的性能,这些模拟99MTC-Teboroxime的心肌灌注。我们还测试了用123i-FP-CIT的模拟脑研究中的方法,一种用于多巴胺能神经递质系统的动态突触线标志物。

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