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首页> 外文期刊>Bulletin of the Korean Chemical Society >Application of Variable Selection for Prediction of Target Concentration
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Application of Variable Selection for Prediction of Target Concentration

机译:变量选择在目标浓度预测中的应用

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Many types of chemical data tend to be characterized by many measured variables on each of a few observations. In this situation, target concentration can be predicted using multivariate statistical modeling. However, it is necessary to use a few variables considering size and cost of instrumentation, for an example, for development of a portable biomedical instrument. This study presents, with a spectral data set of total hemoglobin in whole blood, the possibility that modeling using only a few variables can improve predictability compared to modeling using all of the variables. Predictability from the model using three wavelengths selected from all possible regression method was improved, compared to the model using whole spectra (whole spectra: SEP = 0.4 g/dL, 3-wavelengths: SEP=0.3 g/dL). It appears that the proper selection of variables can be more effective than using whole spectra for determining the hemoglobin concentration in whole blood.
机译:许多类型的化学数据都倾向于通过一些观测值中的许多测量变量来表征。在这种情况下,可以使用多元统计模型预测目标浓度。但是,有必要使用一些考虑仪器尺寸和成本的变量,例如,开发便携式生物医学仪器。这项研究利用全血中总血红蛋白的光谱数据集,提出了与使用所有变量进行建模相比,仅使用几个变量进行建模可以提高可预测性的可能性。与使用整个光谱的模型(整个光谱:SEP = 0.4 g / dL,三个波长:SEP = 0.3 g / dL)相比,使用从所有可能的回归方法中选择的三种波长的模型的可预测性得到了改善。似乎正确选择变量比使用全谱确定全血中血红蛋白浓度可能更有效。

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