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首页> 外文期刊>American Journal of Analytical Chemistry >Visible and Near-Infrared Spectroscopic Discriminant Analysis Applied to Brand Identification of Wine
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Visible and Near-Infrared Spectroscopic Discriminant Analysis Applied to Brand Identification of Wine

机译:可见和近红外光谱判别分析应用于品牌鉴定葡萄酒

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High-end wine brand is made through the use of high-quality grape variety and yeast strain, and through a unique process. Not only is it rich in nutrients, but also it has a unique taste and a fragrant scent. Brand identification of wine is difficult and complex because of high similarity. In this paper, visible and near-infrared (NIR) spectroscopy combined with partial least squares discriminant analysis (PLS-DA) was used to explore the feasibility of wine brand identification. Chilean Aoyo wine (2016 vintage) was selected as the identification brand (negative, 100 samples), and various other brands of wine were used as interference brands (positive, 373 samples). Samples of each type were randomly divided into the calibration, prediction and validation sets. For comparison, the PLS-DA models were established in three independent and two complex wavebands of visible (400 - 780 nm), short-NIR (780 - 1100 nm), long-NIR (1100 - 2498 nm), whole NIR (780 - 2498 nm) and whole scanning (400 - 2498 nm). In independent validation, the five models all achieved good discriminant effects. Among them, the visible region model achieved the best effect. The recognition-accuracy rates in validation of negative, positive and total samples achieved 100%, 95.6% and 97.5%, respectively. The results indicated the feasibility of wine brand identification with Vis-NIR spectroscopy.
机译:高端葡萄酒品牌是通过使用优质葡萄品种和酵母菌株,并通过独特的工艺进行。它不仅富含营养素,还具有独特的味道和香味。葡萄酒的品牌鉴定是由于高度高的葡萄酒难以和复杂。在本文中,可见和近红外(NIR)光谱与部分最小二乘判别分析(PLS-DA)用于探讨葡萄酒品牌鉴定的可行性。选择了智利·奥诺葡萄酒(2016年葡萄酒)作为识别品牌(负,100个样品),各种其他品牌的葡萄酒被用作干扰品牌(阳性,373个样品)。将每种类型的样本随机分为校准,预测和验证集。为了比较,PLS-DA模型是在三个独立的,两个复杂波段的可见(400-780nm),短NIR(780-1100nm),长NIR(1100-2498 nm),整个NIR(780 - 2498 nm)和整个扫描(400-2498 nm)。在独立验证中,五种型号都取得了良好的判别效果。其中,可见区域模型实现了最佳效果。验证阴性,阳性和总样品的识别准确度分别达到100%,95.6%和97.5%。结果表明,葡萄酒品牌鉴定与Vis-Nir光谱的可行性。

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