首页> 外文会议>2008 International Conference on Machine Learning and Cybernetics(2008机器学习与控制论国际会议)论文集 >DETERMINATION OF ACETIC ACID OF FRUIT VINEGARS USING NEAR INFRARED SPECTROSCOPY AND LEAST SQUARES-SUPPORT VECTOR MACHINE
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DETERMINATION OF ACETIC ACID OF FRUIT VINEGARS USING NEAR INFRARED SPECTROSCOPY AND LEAST SQUARES-SUPPORT VECTOR MACHINE

机译:近红外光谱和最小二乘支持向量机测定果醋中的乙酸

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Two chemometric methods were performed for the determination of acetic acid of fruit vinegars using near infrared (NIR) spectroscopy. Three varieties of fruit vinegars were prepared and 135 samples (45 samples for each variety) were selected for the calibration set, whereas 45 samples (15 samples for each variety) for the validation set. Partial least squares (PLS) analysis was the calibration method as well as extraction method for latent variables (LVs). The first eight LVs were employed as the inputs of least squares-support vector machine (LS-SVM) model. Then LS-SVM model with radial basis function (RBF) kernel was applied to build the regression model compared with PLS model. The correlation coefficient (r), root mean square error of prediction (RMSEP) and bias for validation set were 0.994, 0.814 and -0.091 by PLS, whereas 0.997, 0.651 and 0.011 by LS-SVM, respectively. LS-SVM model outperformed PLS model, but both models achieved an excellent prediction precision. The results indicated that MR spectroscopy combined with chentometrics could be utilized as a high precision and fast way for the determination of acetic acid of fruit vinegars.
机译:进行了两种化学计量学方法,使用近红外(NIR)光谱法测定水果醋中的乙酸。准备了三个种类的果醋,并选择了135个样品(每个品种45个样品)作为校准集,而选择了45个样品(每个品种15个样品)作为验证集。偏最小二乘(PLS)分析是潜在变量(LVs)的校准方法和提取方法。前八个LV被用作最小二乘支持向量机(LS-SVM)模型的输入。与PLS模型相比,采用带有径向基函数(RBF)核的LS-SVM模型建立回归模型。相关系数(r),预测均方根误差(RMSEP)和验证集偏差通过PLS分别为0.994、0.814和-0.091,而通过LS-SVM分别为0.997、0.651和0.011。 LS-SVM模型优于PLS模型,但两个模型均具有出色的预测精度。结果表明,MR光谱法与化学计量法相结合,可用于水果醋中乙酸的快速,准确测定。

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