2019
DOI: 10.1590/1678-992x-2017-0239
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Identification of patterns for increasing production with decision trees in sugarcane mill data

Abstract: Sugarcane mills in Brazil collect a vast amount of data relating to production on an annual basis. The analysis of this type of database is complex, especially when factors relating to varieties, climate, detailed management techniques, and edaphic conditions are taken into account. The aim of this paper was to perform a decision tree analysis of a detailed database from a production unit and to evaluate the actionable patterns found in terms of their usefulness for increasing production. The decision tree rev… Show more

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Cited by 4 publications
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