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APPLICATION OF THE BOOTSTRAP TO CALIBRATION EXPERIMENTS

机译:引导程序在校准实验中的应用

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In calibration experiments, a number of samples of known concentration are used to establish the relationship between a measured response and sample concentration; this relationship is then used to estimate the unknown concentration of further samples from their measured responses, In addition to the estimates themselves, it is useful to have available some measure of their precision, usually given in the form of confidence limits, The standard method of inverting prediction limits is found to work well in simple situations, but in nonlinear multivariate calibration it becomes intractable, The bootstrap offers an alternative methodology, but in the calibration framework its application is not obvious, We describe some considerations in bootstrapping calibration data and compare our methods with a previous attempt and with the standard method in linear, nonlinear, and multivariate situations, The bootstrap is found to be a useful tool in those situations where the standard method is difficult to implement.
机译:在校准实验中,使用许多已知浓度的样品来建立测得的响应与样品浓度之间的关系。然后,可以使用这种关系来估计其他样品的未知浓度,这些估计值本身除了估计值本身外,还有一些可用的精度度量方法(通常以置信度限制的形式给出)非常有用。反向预测极限在简单情况下可以很好地工作,但是在非线性多元校准中它变得棘手,引导程序提供了另一种方法,但是在校准框架中其应用并不明显。我们介绍了自举校准数据的一些注意事项,并进行了比较在线性,非线性和多变量情况下,使用以前尝试过的方法和标准方法,在难以实现标准方法的情况下,引导程序被认为是有用的工具。

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