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帕累托校准、稳定性及波长选择的评估

Assessment of pareto calibration, stability, and wavelength selection.

作者信息

Anderson Kelly J, Kalivas John H

机构信息

Department of Chemistry, Idaho State University, Pocatello, Idaho 83209, USA.

出版信息

Appl Spectrosc. 2003 Mar;57(3):309-16. doi: 10.1366/000370203321558227.

Abstract

Recent work has shown that ridge regression (RR) is Pareto to partial least squares (PLS) and principal component regression (PCR) when the variance indicator Euclidian norm of the regression coefficients, //p//, is plotted against the bias indicator root mean square error of calibration (RMSEC). Simplex optimization demonstrates that RR is Pareto for several other spectral data sets when //p// is used with RMSEC and the root mean square error of evaluation (RMSEE) as optimization criteria. From this investigation, it was observed that while RR is Pareto optimal, PLS and PCR harmonious models are near equivalent to harmonious RR models. Additionally, it was found that RR is Pareto robust, i.e., models formed at one temperature were then used to predict samples at another temperature. Wavelength selection is commonly performed to improve analysis results such that bias indicators RMSEC, RMSEE, root mean square error of validation, or root mean square error of cross-validation decrease using a subset of wavelengths. Just as critical to an analysis of selected wavelengths is an assessment of variance. Using wavelengths deemed optimal in a previous study, this paper reports on the variance/bias tradeoff. An approach that forms the Pareto model with a Pareto wavelength subset is suggested.

摘要

最近的研究表明,当将回归系数的方差指标欧几里得范数∥p∥与校准均方根误差(RMSEC)这一偏差指标进行绘制时,岭回归(RR)相对于偏最小二乘法(PLS)和主成分回归(PCR)是帕累托最优的。单纯形优化表明,当将∥p∥与RMSEC以及评估均方根误差(RMSEE)用作优化标准时,RR对于其他几个光谱数据集也是帕累托最优的。从这项研究中可以观察到,虽然RR是帕累托最优的,但PLS和PCR和谐模型几乎等同于和谐RR模型。此外,还发现RR具有帕累托稳健性,即,在一个温度下形成的模型随后被用于预测另一个温度下的样品。通常进行波长选择以改善分析结果,使得使用波长子集时,偏差指标RMSEC、RMSEE、验证均方根误差或交叉验证均方根误差会降低。与所选波长分析同样重要的是方差评估。利用在先前研究中被视为最优的波长,本文报告了方差/偏差权衡。提出了一种用帕累托波长子集形成帕累托模型的方法。

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