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NIR Detection of Alcohol Content Based on GA-PLS

机译:基于GA-PLS的醇含量检测醇含量

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摘要

Alcohol content is an important indicator of many products, rapid and accurate analysis is the key link of commodity inspection and productive process. Study using NIRS model to detect alcohol content of wine, adopted genetic algorithm partial least-squares (GA-PLS) method to analyze the nearinfrared spectroscopy (NIRS) characteristic wavelengths of alcohol content, the best NIR GA-PLS model is established. Experiment find GA-PLS can flexible and effective select out the characteristic wavelengths, can not only get rid of the useless information wavelengths, but also improve model's predicted precision, therefore, the predicted precision of GA-PLS model superior to PLS model established with global spectrum. The best predicted effect is obtained when 133 wavelengths with higher selected frequency join modeling, its root mean square error of prediction (RMSEP) is 0.0066 and correlation coefficient of prediction (Rp) is 0.9996. The results show, NIRS combined with GA-PLS method can detect alcohol content of wine rapidly and accurately, expected to achieve rapid detection of alcohol content online.
机译:酒精含量是许多产品的重要指标,快速准确的分析是商品检验和生产过程的关键环节。使用NIRS模型进行检测葡萄酒的酒精含量,采用遗传算法部分最小二乘(GA-PLS)方法,分析接近过的光谱(NIRS)的酒精含量的特征波长,建立了最佳的NIR GA-PLS模型。实验发现GA-PL可以灵活且有效地选择特征波长,不仅可以摆脱无用的信息波长,而且还提高了模型的预测精度,因此,GA-PLS模型的预测精度优于全局的PLS模型。光谱。当具有较高选择频率连接建模的133个波长时,其预测(RMSEP)的根均方误差为0.0066,并且相关系数(RP)为0.9996。结果表明,NIR与GA-PLS方法相结合,可以快速准确地检测酒精含量的酒,预计将在线迅速检测酒精含量。

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