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Unravelling the geometry of data matrices: effects of water stress regimes on winemaking

机译:阐明数据矩阵的几何形状:水分胁迫制度对酿酒的影响

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摘要

A new method is proposed for unravelling the patterns between a set of experiments and the features that characterize those experiments. The aims are to extract these patterns in the form of a coupling between the rows and columns of the corresponding data matrix and to use this geometry as a support for model testing. These aims are reached through two key steps, namely application of an iterative geometric approach to couple the metric spaces associated with the rows and columns, and use of statistical physics to generate matrices that mimic the original data while maintaining their inherent structure, thereby providing the basis for hypothesis testing and statistical inference. The power of this new method is illustrated on the study of the impact of water stress conditions on the attributes of ‘Cabernet Sauvignon’ Grapes, Juice, Wine and Bottled Wine from two vintages. The first step, named data mechanics, de-convolutes the intrinsic effects of grape berries and wine attributes due to the experimental irrigation conditions from the extrinsic effects of the environment. The second step provides an analysis of the associations of some attributes of the bottled wine with characteristics of either the matured grape berries or the resulting juice, thereby identifying statistically significant associations between the juice pH, yeast assimilable nitrogen, and sugar content and the bottled wine alcohol level.
机译:提出了一种新方法,用于揭示一组实验与表征这些实验的特征之间的模式。目的是以相应数据矩阵的行和列之间的耦合形式提取这些模式,并将此几何用作模型测试的支持。这些目标是通过两个关键步骤实现的,即应用迭代几何方法耦合与行和列关联的度量空间,以及使用统计物理学生成模拟原始数据并同时保持其固有结构的矩阵,从而提供假设检验和统计推断的基础。通过研究水分胁迫条件对两个年份“赤霞珠”葡萄,果汁,葡萄酒和瓶装葡萄酒的影响,可以说明这种新方法的强大功能。第一步是数据力学,它可以消除由于环境的外部灌溉条件下的实验灌溉条件而导致的葡萄浆果和葡萄酒属性的内在影响。第二步是分析瓶装葡萄酒的某些属性与成熟葡萄浆果或所得果汁的特性之间的关联,从而确定果汁pH,酵母同化氮和糖含量与瓶装葡萄酒之间的统计学显着关联酒精度。

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