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The use of visible and near infrared spectroscopy to classify the floral origin of honey samples produced in Uruguay

机译:使用可见光和近红外光谱对乌拉圭生产的蜂蜜样品的花香来源进行分类

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摘要

This study reports the use of visible (vis) and near infrared (NIR) spectroscopy as a tool to classify honey samples from Uruguay, according to their floral origin. Classification models were developed using principal component analysis, discriminant partial least squares (DPLS) regression and linear discriminant analysis (LDA). Honey samples (n=50) from two floral origins, namely Eucalyptus spp. and pasture, were split randomly into even calibration (n=25) and validation sets (n=25). Both LDA and DPLS models correctly classified, on average, more than 75% of the honey samples belonging to pasture and more than 85% of the honey samples belonging to Eucalyptus spp. These results showed that vis-NIR might be a suitable and alternative method that can easily be implemented by both the industry and retailers to classify samples according their floral origin. Vis-NIR analysis requires little sample preparation and is rapid. However, the relatively limited number of samples involved in the present work led us to be cautious in terms of extrapolating the results of this work to other floral types.
机译:这项研究报告了使用可见(vis)和近红外(NIR)光谱作为对乌拉圭蜂蜜样品根据花的起源进行分类的工具。使用主成分分析,判别偏最小二乘(DPLS)回归和线性判别分析(LDA)开发了分类模型。蜂蜜样品(n = 50)来自两个花卉起源,即桉树。和牧场随机分为均匀校准(n = 25)和验证集(n = 25)。 LDA和DPLS模型均正确地平均对属于牧场的蜂蜜样本中的超过75%,以及对属于桉树的蜂蜜样本中的超过85%进行了正确分类。这些结果表明,vis-NIR可能是一种合适的替代方法,行业和零售商均可轻松实施以根据花的来源对样品进行分类。 Vis-NIR分析几乎不需要样品制备,而且速度很快。但是,目前工作中涉及的样本数量相对有限,导致我们在将这项工作的结果推算到其他花卉类型方面持谨慎态度。

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