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Estimation of the parameter covariance matrix for a one-compartment cardiac perfusion model estimated from a dynamic sequence reconstructed using MAP iterative reconstruction algorithms

机译:使用MAP迭代重建算法重建的动态序列估计的一室心脏灌注模型的参数协方差矩阵估计

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In dynamic cardiac SPECT estimates of kinetic parameters of a one-compartment perfusion model are usually obtained in a two step process: 1) first a MAP iterative algorithm, which properly models the Poisson statistics and the physics of the data acquisition, reconstructs a sequence of dynamic reconstructions, 2) then kinetic parameters are estimated from time activity curves generated from the dynamic reconstructions. This paper provides a method for calculating the covariance matrix of the kinetic parameters, which are determined using weighted least squares fitting that incorporates the estimated variance and covariance of the dynamic reconstructions. Sequential tomographic projections are reconstructed into a sequence of transaxial reconstructions for each transaxial slice using for each reconstruction in the time sequence the fixed-point solution to the MAP reconstruction. Time-activity curves for a sum of activity in a blood region inside the left ventricle and a sum in a cardiac tissue region, for the variance of the two estimates of the sum, and for the covariance between the two ROI estimates are generated at convergence. A one-compartment model is fit to the tissue activity curves assuming a noisy blood input function to give weighted least squares estimates of blood volume fraction, wash-in and wash-out rate constants specifying the kinetics for the left ventricular myocardium. Numerical methods are used to calculate the second derivative of the chi-square criterion to obtain estimates of the covariance matrix for the weighted least square parameter estimates. Even though the method requires one matrix inverse for each time interval of tomographic acquisition, efficient estimates of the tissue kinetic parameters in a dynamic cardiac SPECT study can be obtained with present day desk-top computers.
机译:在动态心脏SPECT估计一室灌注模型的动态心脏SPECT估计中通常在两个步骤过程中获得:1)首先是一种地图迭代算法,它适当地模拟了泊松统计和数据采集的物理,重建了一系列动态重建,2)然后从动态重建生成的时间活动曲线估计动力学参数。本文提供了一种用于计算动力学参数的协方差矩阵的方法,其使用加权最小二乘拟合来确定,其包括动态重建的估计方差和协方差。在时间序列中,将序贯断层投影重建为每个差生切片的每个横向切片的横向重建序列,以时序列到地图重建的定点解决方案。用于左心室内的血液区域中的活动和心脏组织区域中的总和的时间 - 活性曲线,用于总和的两个估计的方差,以及两个投资回报率估计之间的协方差在收敛时产生。假设嘈杂的血液输入功能符合一个单隔室模型,用于给予血液体积分数,洗涤和洗脱速率常数的加权最小二乘估计,指定左心室心肌的动力学。数值方法用于计算CHI-Square标准的第二导数,以获得加权最小二乘估计的协方差矩阵的估计。即使该方法需要一个矩阵对断层采集的每次时间间隔,可以通过当今的桌面计算机获得动态心脏SPECT研究中的组织动力学参数的有效估计。

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