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Towards improvement in prediction of iodine value in edible oil system based on chemometric analysis of portable vibrational spectroscopic data

机译:基于便携式振动光谱数据化学计量分析的可食用油系统预测碘值预测的改进

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Iodine value (IV) is a significant parameter to illustrate the quality of edible oil. In this study, three portable spectroscopy devices were employed to determine IV in mixed edible oil system, a new Micro-Electro-Mechanical-System (MEMS) Fourier Transform Infrared Spectrometer (MEMS-FTIR), a MicroNIRTM1700 and an i-Raman Plus-785S. Quantitative model was built by Partial least squares (PLS) regression model and four variable selection methods were applied before PLS model, which are Monte Carlo uninformative variables elimination (MCUVE), competitive reweighted sampling (CARS), bootstrapping soft shrinkage approach (BOSS) and variable combination population analysis (VCPA). The coefficient of determination (R2), and the root mean square error prediction (RMSEP) were used as indicators for the predictability of the PLS models. In MicroNIRTM1700 dataset, MCUVE gave the lowest RMSEP (2.3440), in MEMS-FTIR dataset, CARS showed the best performance with RMSEP (2.2185), in i-Raman Plus-785S dataset, BOSS gave the lowest RMSEP (2.5058). They all had great improvements than full spectrum PLS model. Four variable selection methods take a smaller number of variables and perform significant superiority in prediction accuracy. It was demonstrated that three new portable instruments would be suitable for the on-site determination of edible oil quality in infrared and Raman field.
机译:碘值(iv)是说明可食用油质量的重要参数。在该研究中,采用三种便携式光谱装置来确定混合食用油系统中的IV,新型微电机系统(MEMS)傅里叶变换红外光谱仪(MEMS-FTIR),微尺寸1700和I-Raman加 - 785s。通过部分最小二乘(PLS)回归模型构建的定量模型,并在PLS模型之前应用了四种可变选择方法,这些方法是Monte Carlo未整理的变量消除(MCUVE),竞争重量的采样(汽车),引导软缩收缩方法(BOSS)和可变组合人口分析(VCPA)。确定系数(R2)和根均方误差预测(RMSEP)用作PLS模型可预测性的指标。在Micronirtm1700数据集中,MCUVE在MEMS-FTIR数据集中提供了最低的RMSEP(2.3440),汽车显示了RMSEP(2.2185)的最佳性能,在I-Raman Plus-785S数据集中,BOSS给出了最低的RMSEP(2.5058)。他们都有很大的改进,而不是全谱PLS模型。四个可变选择方法采用较少数量的变量,并以预测精度执行显着的优势。据证明,三种新的便携式仪器适用于现场红外线和拉曼场中可食用油质量的现场测定。

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