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Residual bilinearization combined with kernel-unfolded partial least-squares: A new technique for processing non-linear second-order data achieving the second-order advantage

机译:残余双线性化与核展开的局部最小二乘相结合:一种处理非线性二阶数据的新技术,可实现二阶优势

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摘要

A new second-order multivariate calibration model is presented which allows one to process matrix data showing a non-linear relationship between signal and concentration, and achieving the important second-order advantage. The latter property permits analyte quantitation even in the presence of unexpected sample components, i.e., those not present in the calibration set. The model is based on a combination of residual bilinearization, which provides the second-order advantage, and kernel partial least-squares of unfolded data, a flexible non-linear version of partial least-squares. The latter one involves projection of the measured data onto a non-linear space, which in the present case consists of a set of Gaussian radial basis functions. Simulations concerning two ideal systems are analyzed: one where the signal-concentration relation is quadratic with positive deviations from linearity, and another one where it is sigmoidal. The results are favorably compared with those provided by several artificial neural network approaches. Two experimental systems are also studied, involving the analysis of: 1) the lipid degradation product malondialdehyde in olive oil samples, where the background oil provides a strong interferent signal, and 2) the antibiotic amoxicillin in the presence of the anti-inflammatory salicylate as interferent. The results for these experimental cases are also encouraging.
机译:提出了一种新的二阶多元校准模型,该模型允许处理表示信号和浓度之间非线性关系的矩阵数据,并获得重要的二阶优势。后者的特性允许对分析物进行定量,即使在存在意料之外的样品成分(即校准集中不存在的样品成分)的情况下。该模型基于残差双线性化(提供二阶优势)和展开数据的内核部分最小二乘法(部分最小二乘法的灵活非线性版本)的组合。后者涉及将测量数据投影到非线性空间上,在当前情况下,该空间由一组高斯径向基函数组成。分析了关于两个理想系统的仿真:一个信号浓度关系是二次线性且线性正偏差,另一个是S形信号。将结果与几种人工神经网络方法提供的结果进行了比较。还研究了两个实验系统,涉及以下分析:1)橄榄油样品中的脂质降解产物丙二醛,其中背景油提供了强干扰信号,以及2)在存在抗炎性水杨酸盐的情况下存在抗生素阿莫西林干扰物。这些实验案例的结果也令人鼓舞。

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