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Model-based extraction of input and organ functions in dynamic scintigraphic imaging

机译:动态闪烁成像中基于模型的输入和器官功能提取

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摘要

Image-based definition of input function (IF) and organ function is a prerequisite for kinetic analysis of dynamic scintigraphy or positron emission tomography. This task is typically done manually by a human operator and suffers from low accuracy and reproducibility. We propose a probabilistic model based on physiological assumption that time-activity curves (TACs) arise as a convolution of an IF and tissue-specific kernels. The model is solved via the Variational Bayes estimation procedure and provides estimates of the IF, tissue-specific TACs and their related spatial distributions (images) as its results. The algorithm was tested with data of dynamic renal scintigraphy. The method was applied to the problem of differential renal function estimation and the IF estimation and the results are compared with competing techniques on data-sets with 99 and 19 patients. The MATLAB implementation of the algorithm is available for download.
机译:输入图像(IF)和器官功能的基于图像的定义是动态闪烁显像或正电子发射断层扫描动力学分析的前提。该任务通常由操作人员手动完成,并且准确性和再现性低。我们提出基于生理假设的概率模型,即时间活动曲线(TAC)作为IF和组织特有核的卷积出现。该模型通过变分贝叶斯估计程序求解,并提供IF,组织特异性TAC及其相关空间分布(图像)的估计作为结果。该算法已通过动态肾脏闪烁显像数据进行了测试。该方法适用于肾功能差异估计和中​​频估计的问题,并将结果与​​99例和19例患者的数据集竞争技术进行比较。该算法的MATLAB实现可下载。

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