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ELIMINATION OF UNINFORMATIVE VARIABLES FOR MULTIVARIATE CALIBRATION

机译:消除多元校准的非均匀变量

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摘要

A new method for the elimination of uninformative variables in multivariate data sets is proposed. To achieve this, artificial (noise) variables are added and a closed form of the PLS or PCR model is obtained for the data set containing the experimental and the artificial variables. The experimental variables that do not have more importance than the artificial variables, as judged from a criterion based on the b coefficients, are eliminated. The performance of the method is evaluated on simulated data, Practical aspects are discussed on experimentally obtained near-IR data sets, It is concluded that the elimination of uninformative variables can improve predictive ability.
机译:提出了一种消除多元数据集中非信息量变量的新方法。为此,添加了人工(噪声)变量,并为包含实验变量和人工变量的数据集获取了封闭形式的PLS或PCR模型。根据基于b系数的标准判断,消除了没有比人工变量重要的实验变量。该方法的性能在模拟数据上进行了评估,并在实验上获得了近红外数据集,讨论了实用方面,结论是消除非信息性变量可以提高预测能力。

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