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Efficient Computation of Net Analyte Signal Vector in Inverse Multivariate Calibration Models

机译:逆多元标定模型中净分析物信号矢量的高效计算

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摘要

The net analyte signal vector has been defined by Lorber as the part of a mixture spectrum that is unique for the analyte of interest; i.e., it is orthogonal to the spectra of the interferences. It plays a key role in the development of multivariate analytical figures of merit. Applications have been reported that imply its utility for spectroscopic wavelength selection as well as calibration method comparison. Currently available methods for computing the net analyte signal vector in inverse multivariate calibration models are based on the evaluation of projection matrices. Due to the size of these matrices (p × p, with p the number of wavelengths) the computation may be highly memory- and time-consuming. This paper shows that the net analyte signal vector can be obtained in a highly efficient manner by a suitable scaling of the regression vector. Computing the scaling factor only requires the evaluation of an inner product (p multiplications and additions). The mathematical form of the newly derived expression is discussed, and the generalization to multi-way calibration models is briefly outlined.
机译:净分析物信号矢量已被Lorber定义为混合光谱的一部分,对于感兴趣的分析物而言是唯一的。即,它与干涉光谱正交。它在多元分析品质因数的发展中起着关键作用。据报道,有应用暗示其可用于光谱波长选择和校准方法比较。用于在逆多元校准模型中计算净分析物信号矢量的当前可用方法基于投影矩阵的评估。由于这些矩阵的大小(p×p,其中p为波长的数量),因此计算可能会占用大量内存和时间。本文表明,通过对回归向量进行适当缩放,可以高效地获得净分析物信号向量。计算比例因子仅需要评估一个内积(p乘和加)。讨论了新导出的表达式的数学形式,并简要概述了多路校准模型的一般化。

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