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Estimation of kinetic parameters without input functions: analysis of three methods for multichannel blind identification

机译:没有输入函数的动力学参数估计:三种多通道盲法识别方法的分析

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Compartment modeling of dynamic medical image data implies that the concentration of the tracer over time in a particular region of the organ of interest is well modeled as a convolution of the tissue response with the tracer concentration in the blood stream. The tissue response is different for different tissues while the blood input is assumed to be the same for different tissues. The kinetic parameters characterizing the tissue responses can be estimated by multichannel blind identification methods. These algorithms use the simultaneous measurements of concentration in separate regions of the organ; if the regions have different responses, the measurement of the blood input function may not be required. Three blind identification algorithms are analyzed here to assess their utility in medical imaging: eigenvector-based algorithm for multichannel blind deconvolution; cross relations; and iterative quadratic maximum-likelihood (IQML). Comparisons of accuracy with conventional (not blind) identification techniques where the blood input is known are made as well. Tissue responses corresponding to a physiological two-compartment model are primarily considered. The statistical accuracies of estimation for the three methods are evaluated and compared for multiple parameter sets. The results show that IQML gives more accurate estimates than the other two blind identification methods.
机译:动态医学图像数据的隔室建模意味着,随着时间的推移,在目标器官的特定区域中示踪剂的浓度被很好地建模为组织响应与血流中示踪剂浓度的卷积。对于不同的组织,组织反应是不同的,而对于不同的组织,血液输入被认为是相同的。表征组织反应的动力学参数可以通过多通道盲法识别方法进行估算。这些算法使用了同时测量器官各个部位浓度的方法。如果区域具有不同的响应,则可能不需要测量血液输入功能。这里分析了三种盲识别算法,以评估其在医学成像中的效用:基于特征向量的多通道盲解卷积算法;交叉关系;和迭代二次最大似然(IQML)。还与已知血液输入的常规(非盲目)识别技术进行了准确性比较。主要考虑对应于生理两室模型的组织反应。评估并比较了三种方法的估计的统计准确性,以获取多个参数集。结果表明,IQML比其他两种盲目识别方法提供了更准确的估计。

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