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Applying Machine Learning to High-Quality Wine Identification

机译:将机器学习应用于高质量的葡萄酒识别

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This paper discusses a machine learning approach, aimed at the definition of methods for authenticity assessment of some of the highest valued Nebbiolo-based wines from Piedmont (Italy). This issue is one of the most relevant in the wine market, where commercial frauds related to such a kind of products are estimated to be worth millions of Euros. The main objective of the work is to demonstrate the effectiveness of classification algorithms in exploiting simple features about the chemical profile of a wine, obtained from inexpensive standard bio-chemical analyses. We report on experiments performed with datasets of real samples and with synthetic datasets which have been artificially generated from real data through the learning of a Bayesian network generative model.
机译:本文讨论了一种机器学习方法,旨在定义对来自意大利皮埃蒙特(Piedmont)(意大利)的一些最有价值的内比奥罗(Nebbiolo)基酒进行真实性评估的方法。此问题是葡萄酒市场中最相关的问题之一,与此类产品有关的商业欺诈据估计价值数百万欧元。这项工作的主要目的是证明分类算法在开发有关葡萄酒化学特性的简单特征方面的有效性,该特征是从廉价的标准生化分析中获得的。我们报告了对真实样品的数据集和通过学习贝叶斯网络生成模型从真实数据人工生成的合成数据集进行的实验。

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