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一种用于校准和验证子集划分的方法。

A method for calibration and validation subset partitioning.

作者信息

Galvão Roberto Kawakami Harrop, Araujo Mário César Ugulino, José Gledson Emídio, Pontes Marcio José Coelho, Silva Edvan Cirino, Saldanha Teresa Cristina Bezerra

机构信息

Instituto Tecnológico de Aeronáutica, Divisão de Engenharia Eletrônica, São José dos Campos, São Paulo, Brazil.

出版信息

Talanta. 2005 Oct 15;67(4):736-40. doi: 10.1016/j.talanta.2005.03.025.

Abstract

This paper proposes a new method to divide a pool of samples into calibration and validation subsets for multivariate modelling. The proposed method is of value for analytical applications involving complex matrices, in which the composition variability of real samples cannot be easily reproduced by optimized experimental designs. A stepwise procedure is employed to select samples according to their differences in both x (instrumental responses) and y (predicted parameter) spaces. The proposed technique is illustrated in a case study involving the prediction of three quality parameters (specific mass and distillation temperatures at which 10 and 90% of the sample has evaporated) of diesel by NIR spectrometry and PLS modelling. For comparison, PLS models are also constructed by full cross-validation, as well as by using the Kennard-Stone and random sampling methods for calibration and validation subset partitioning. The obtained models are compared in terms of prediction performance by employing an independent set of samples not used for calibration or validation. The results of F-tests at 95% confidence level reveal that the proposed technique may be an advantageous alternative to the other three strategies.

摘要

本文提出了一种新方法,用于将样本池划分为校准子集和验证子集,以进行多变量建模。该方法对于涉及复杂基质的分析应用具有价值,在这类应用中,优化的实验设计难以重现真实样本的成分变异性。采用逐步程序根据样本在x(仪器响应)和y(预测参数)空间中的差异来选择样本。在一个案例研究中展示了所提出的技术,该案例涉及通过近红外光谱法和偏最小二乘建模预测柴油的三个质量参数(比重以及样本蒸发10%和90%时的蒸馏温度)。为作比较,还通过完全交叉验证以及使用肯纳德 - 斯通法和随机抽样法进行校准和验证子集划分来构建偏最小二乘模型。通过使用一组未用于校准或验证的独立样本,从预测性能方面对所得模型进行比较。在95%置信水平下的F检验结果表明,所提出的技术可能是其他三种策略的一个有利替代方案。

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