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首页> 外文期刊>IEEE Transactions on Medical Imaging >Vector-extrapolated fast maximum likelihood estimation algorithms for emission tomography
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Vector-extrapolated fast maximum likelihood estimation algorithms for emission tomography

机译:发射层析成像的矢量外推快速最大似然估计算法

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A new class of fast maximum-likelihood estimation (MLE) algorithms for emission computed tomography (ECT) is developed. In these cyclic iterative algorithms, vector extrapolation techniques are integrated with the iterations in gradient-based MLE algorithms, with the objective of accelerating the convergence of the base iterations. This results in a substantial reduction in the effective number of base iterations required for obtaining an emission density estimate of specified quality. The mathematical theory behind the minimal polynomial and reduced rank vector extrapolation techniques, in the context of emission tomography, is presented. These extrapolation techniques are implemented in a positron emission tomography system. The new algorithms are evaluated using computer experiments, with measurements taken from simulated phantoms. It is shown that, with minimal additional computations, the proposed approach results in substantial improvement in reconstruction.
机译:新型的快速最大似然估计(MLE)算法用于发射计算机断层扫描(ECT)。在这些循环迭代算法中,矢量外推技术与基于梯度的MLE算法中的迭代集成在一起,目的是加快基本迭代的收敛速度。这导致获得指定质量的发射密度估计所需的基本迭代的有效数量大大减少。提出了最小多项式和降阶向量外推技术背后的数学理论,该方法是在放射线断层摄影技术的背景下进行的。这些外推技术是在正电子发射断层扫描系统中实现的。使用计算机实验评估新算法,并从模拟体模中进行测量。结果表明,通过最少的额外计算,所提出的方法在重构方面带来了实质性的改进。

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