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Model based inference from microvascular measurements: Combining experimental measurements and model predictions using a Bayesian probabilistic approach

机译:基于微血管测量的基于模型的推断:使用贝叶斯概率方法将实验测量与模型预测相结合

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摘要

ObjectiveIn vivo imaging of the microcirculation and network-oriented modeling have emerged as powerful means of studying microvascular function and understanding its physiological significance. Network-oriented modeling may provide the means of summarizing vast amounts of data produced by high-throughput imaging techniques in terms of key, physiological indices. To estimate such indices with sufficient certainty, however, network-oriented analysis must be robust to the inevitable presence of uncertainty due to measurement errors as well as model errors.
机译:目的微循环的体内成像和面向网络的建模已成为研究微血管功能和了解其生理意义的有力手段。面向网络的建模可以提供根据关键的生理指标汇总由高通量成像技术产生的大量数据的方法。然而,为了足够确定地估计这些指标,面向网络的分析必须对由于测量误差和模型误差而不可避免地存在不确定性具有鲁棒性。

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