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Parameter Set Selection for Signal Transduction Pathway Models including Uncertainties

机译:用于信号转导通路模型的参数设置选择,包括不确定性

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It is common that only a subset of the parameters of dynamic models can be accurately estimated. One approach for identifying a subset of parameters for estimation is to perform clustering of the parameters into groups based upon their sensitivity vectors. However, this approach has the drawback that uncertainty cannot be directly incorporated as the sensitivity vectors are based upon the nominal values of the parameters. One technique to address this deficiency is to define sensitivity cones, where a sensitivity cone includes all possible sensitivity vectors of one parameter for different values resulting from the uncertainty. Parameter clustering can then be performed based upon the sensitivity cones, instead of the sensitivity vectors. This paper applies this new approach to a signal transduction pathway model with a large number of uncertain parameters.
机译:很常见的是,只能准确地估计动态模型参数的子集。用于识别估计的参数子集的一种方法是基于它们的灵敏度向量对参数的聚类进行分组。然而,这种方法具有缺点,即由于灵敏度向量基于参数的标称值,不能直接结合不确定性。一种解决这种缺陷的一种技术是定义灵敏度锥体,其中灵敏度锥包括一个参数的所有可能的灵敏度向量,用于由不确定性产生的不同值。然后可以基于灵敏度锥体而不是灵敏度向量来执行参数聚类。本文将这种新方法应用于具有大量不确定参数的信号转导通路模型。

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