A conditional linear Gaussian network to assess the impact of several agronomic settings on the quality of Tuscan Sangiovese grapes

Alessandro Magrini, S. Di Blasi, F. Stefanini
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引用次数: 8

Abstract

Summary In this paper, a Conditional Linear Gaussian Network (CLGN) model is built for a two-year experiment on Tuscan Sangiovese grapes involving canopy management techniques (number of buds, defoliation and bunch thinning) and harvest time (technological and late harvest). We found that the impact of the considered treatments on the color of wine can be predicted still in the vegetative season of the grapevine; the best treatments to obtain wines with good structure are those with a low number of buds; the best treatments to obtain fresh wines suitable for young consumers are those with technological rather than late harvest, preferably with a high number of buds, and anyway with both defoliation and bunch thinning not performed.
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一个条件线性高斯网络来评估几种农艺设置对托斯卡纳桑娇维塞葡萄质量的影响
本文建立了一个条件线性高斯网络(CLGN)模型,用于为期两年的托斯卡纳桑娇维塞葡萄试验,涉及冠层管理技术(芽数,落叶和束减)和采收时间(技术和晚收)。我们发现,在葡萄藤的营养季节,考虑的处理对葡萄酒颜色的影响仍然可以预测;获得结构良好的葡萄酒的最佳处理方法是那些芽数较少的葡萄酒;获得适合年轻消费者的新鲜葡萄酒的最佳处理方法是采用技术而不是晚收,最好是有大量的芽,无论如何都不进行落叶和束减。
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