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The relationship between information sampling rates, and parameter estimation models

机译:信息采样率之间的关系,以及参数估计模型

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To estimate parameters from experiments requires the specification of models and each model will exhibit different degrees of sensitivity to the parameters sought. Although experiments can be optimally designed without regard to the experimental data actually realized, the precision of the estimated parameters is a function of the sensitivity and the statistical characteristics of the data. The precision is affected by any correlation in the data, either auto or cross, and by the choice of the model used to estimate the parameters. An informative way of looking at an experiment is by using the concept of Information. An analysis of an actual experiment is used to show how the information, the optimal number of sensors, the optimal sampling rates, and the model are affected by the statistical nature of the signals. The paper demonstrates that one must differentiate between the data needed to specify the model and the precision in the estimated parameters provided by the data.
机译:从实验中估计参数需要模型的规范,每个模型将对寻求的参数表现出不同程度的敏感性。虽然实验可以在实际上实现实际数据的情况下进行最佳设计,但估计参数的精度是敏感性和数据的统计特征的函数。精度受到数据中的任何相关性的影响,无论是自动还是交叉,也可以选择用于估计参数的模型。通过使用信息的概念来看实验的信息性方式。使用实际实验的分析来展示信息如何,传感器的最佳数量,最佳采样率和模型受到信号的统计性质的影响。本文展示了一个必须区分指定模型所需的数据以及数据提供的估计参数中的精度。

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