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A means to an end: Validating models by fitting experimental data

机译:达到目的的手段:通过拟合实验数据来验证模型

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摘要

Validation of a computational model is often based on accurate replication of experimental data. Therefore, it is essential that modelers grasp the interpretations of that data, so that models are not incorrectly rejected or accepted. We discuss some model validation problems, and argue that consideration of the experimental design leading to the data is essential in guiding the design of the simulations of a given model. We advocate a "models-as-animals" protocol in which the number of animals and cells sampled in the original experiment are matched by the number of models simulated and artificial cells sampled. Examples are given to explain the underlying logic of this approach.
机译:计算模型的验证通常基于对实验数据的准确复制。因此,建模人员必须掌握该数据的解释,以确保模型不会被错误地拒绝或接受。我们讨论了一些模型验证问题,并认为考虑导致数据的实验设计对于指导给定模型的仿真设计至关重要。我们提倡“以动物为模型”的协议,其中原始实验中采样的动物和细胞的数量与模拟和采样的人工细胞的数量相匹配。举例说明了这种方法的基本逻辑。

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