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Optimization of Time-Course Experiments for Kinetic Model Discrimination

机译:动力学模型判别时间课程实验的优化

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摘要

Systems biology relies heavily on the construction of quantitative models of biochemical networks. These models must have predictive power to help unveiling the underlying molecular mechanisms of cellular physiology, but it is also paramount that they are consistent with the data resulting from key experiments. Often, it is possible to find several models that describe the data equally well, but provide significantly different quantitative predictions regarding particular variables of the network. In those cases, one is faced with a problem of model discrimination, the procedure of rejecting inappropriate models from a set of candidates in order to elect one as the best model to use for prediction.
机译:系统生物学在很大程度上依赖于生化网络定量模型的构建。这些模型必须具有预测能力,以帮助揭示细胞生理学的潜在分子机制,但是与关键实验得到的数据相一致也是至关重要的。通常,可以找到几个描述数据的模型,这些模型可以很好地描述数据,但是提供关​​于网络特定变量的定量预测却大不相同。在那些情况下,人们将面临模型歧视的问题,即从一组候选人中剔除不合适模型的程序,以选择一个模型作为用于预测的最佳模型。

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