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Rapid measurement of antioxidant activity in dark soy sauce by NIR spectroscopy combined with spectral intervals selection and nonlinear regression tools

机译:NIR光谱结合光谱间隔选择和非线性回归工具,快速测量暗酱油抗氧化活性的抗氧化活性

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This paper attempted to show the feasibility of measuring the antioxidant activity in dark soy sauce by NIR spectroscopy technique. Chemometrics on spectral intervals selection and nonlinear regression tools were systematically studied in the calibrating model. First, the optimal spectral intervals were selected by synergy interval-partial least square (Si-PLS). Then, kernel PLS (KPLS) and back propagation artificial neural network (BPANN), as two nonlinear regression tools, were performed comparatively to calibrate models based on optimal spectral intervals, called Si-KPLS and Si-BPANN models, respectively. These models were optimized by cross-validation, and the performance of the final model was evaluated according to correlation coefficient (Rp2) and root mean square error of prediction (RMSEP) in the prediction set. The results showed that the Si-BPANN model was superior to other models, and the optimal result was achieved with Rp2 = 0.9769 and RMSEP = 0.0221 in the prediction set. This work demonstrated that total antioxidant capacity in dark soy sauce could be measured by NIR spectroscopy technique, and Si-BPANN showed its superiority in model calibration...
机译:本文试图通过NIR光谱技术展示测量暗酱油中抗氧化活性的可行性。在校准模型中系统地研究了谱间隔选择和非线性回归工具的化学计量学。首先,通过协同间隔部分最小二乘(Si-PL)选择最佳光谱间隔。然后,作为两个非线性回归工具的内核PLS(KPLS)和后传播人工神经网络(BPANN)分别基于最佳光谱间隔,称为SI-KPLS和SI-BPANN模型进行校准模型。这些模型通过交叉验证优化,根据预测集中的相关系数(RP2)和ROP 2)和ROPED(RMSEP)的根均方误差来评估最终模型的性能。结果表明,Si-BPANN模型优于其他模型,并在预测集中使用RP2 = 0.9769和RMSEP = 0.0221实现最佳结果。这项工作表明,通过NIR光谱技术可以测量深酱油的总抗氧化能力,并且SI-BPANN在模型校准中显示其优越性......

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