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Hierarchical classification of sparkling wine samples according to the country of origin based on the most informative chemical elements

机译:基于最具信息化的化学元素的原籍国的分层分类

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Reliable discrimination of the geographical origin of sparkling wines is of upmost importance to ensure product quality and authenticity, impacting on product price and producer reputation. This paper proposes a multivariate-based framework aimed at identifying relevant chemical elements (features) for classifying sparkling wine samples according to the country of origin. For that matter, the framework relies on the weights generated by the reliefF algorithm as an index to assess the importance of features for sample stratification. The features with the smallest indices are iteratively eliminated, leading to the subset of features responsible for the highest classification accuracy. Hierarchical classification testing four classification techniques is used to improve multiclass categorization. A total of 111 sparkling wine samples from four countries (Argentina, Brazil, France and Spain) described by 12 chemical elements are assessed. The proposed method obtained average 100% accurate classifications when retaining only 3 of the original features: K, Li, and Mn.
机译:可靠的闪亮葡萄酒的地理来源歧视最重要的是,以确保产品质量和真实性,影响产品价格和生产者声誉。本文提出了一种基于多元的框架,旨在识别相关化学元素(特征),用于根据原产国进行分类闪亮葡萄酒样本。就此而言,该框架依赖于Creieff算法生成的权重,作为评估样本分层特征的重要性的索引。具有最小指标的功能迭代地消除,导致负责最高分类精度的特征子集。分层分类测试四种分类技术用于改善多字节分类。评估了12个化学元素描述的四个国家(阿根廷,巴西,法国和西班牙)的111个闪亮的葡萄酒样本。当保留只有3个原始特征时,所提出的方法平均为100%精确分类:K,Li和Mn。

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