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An adaptation of ridge regression for improved estimation of kinetic model parameters from PET studies

机译:改进脊回归以改进PET研究的动力学模型参数估计

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摘要

The quantitative analysis of dynamic positron emission tomography (PET) data to obtain kinetic constants in compartmental models involves the use of nonlinear weighted least squares regression. Current estimation techniques often have poor mean square error estimation properties. Ridge regression is a technique that has been found to have potential for improving mean square error when adapted to the nonlinear PET estimation problem. The effectiveness of ridge regression in this context, however, relies heavily on the correct selection of an unknown biasing parameter and the precise specification of a penalty function. In this study, an approach is explored for improving the effectiveness of ridge regression by incorporation of more rigorous Bayesian formulations for specification of the ridge penalty function. Using a variance component model, a prior covariance for the ridge penalty term is developed. An adaptive approach to the selection of the biasing parameter is also evaluated. The adaptive selection of the biasing parameter was not shown to improve estimation over more standard ridge estimation techniques. Ridge regression with the Bayesian formulation for the penalty, however, reduces current ridge regression parameter loss by up to 16% when the penalty closely reflects the true kinetic parameter covariance structure and performs comparably to the current method when the penalty does not.
机译:对动态正电子发射断层扫描(PET)数据进行定量分析以获得隔室模型中的动力学常数涉及使用非线性加权最小二乘回归。当前的估计技术通常具有差的均方误差估计特性。 Ridge回归是一种已发现有可能在适应非线性PET估计问题时改善均方误差的技术。但是,在这种情况下,岭回归的有效性很大程度上取决于对未知偏置参数的正确选择以及惩罚函数的精确指定。在这项研究中,探索了一种方法,该方法通过结合更严格的贝叶斯公式来指定岭惩罚函数来提高岭回归的有效性。使用方差分量模型,开发了脊罚项的先验协方差。还评估了用于选择偏置参数的自适应方法。未显示偏置参数的自适应选择可改善更多标准脊估计技术的估计。使用罚分的贝叶斯公式进行岭回归时,如果罚分紧密地反映了真实的动力学参数协方差结构,则当前的岭回归参数损失最多可减少16%,而当罚分没有时,则与当前方法相当。

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