Preliminary machine learning model for citrus greening disease (Huanglongbing-HLB) prediction in Colombia

Edisson Chavarro-Mesa, Enrique Delahoz-Domínguez, Mary Fennix-Agudelo, Wendy Miranda-Castro, J. Ángel-Diaz
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引用次数: 0

Abstract

Citrus greening disease (Huanglongbing-HLB) is considered the most destructive citrus disease worldwide. Of the three species of Candidatus liberibacter associated with HLB, two have been recently reported in Latin America. The first report of HLB in Colombia was in March 2016. In this paper, a dataset was extracted for six departments in the northern zone of Colombia, where has been previously reported, applying image georeferencing with QGIS Software. Preliminary Random Forest and K-Nearest Neighbors (KNN) machine learning models were used in order to test and validate the obtained results, for disease monitoring and HLB incidence prediction. The performance of both models was also compared, obtaining a 100% AUC value with Random Forest model.
哥伦比亚柑橘黄龙冰- hlb病预测的初步机器学习模型
黄龙冰病被认为是世界上最具破坏性的柑橘病害。在与HLB相关的三种自由候选菌中,最近在拉丁美洲报道了两种。哥伦比亚首次报告HLB是在2016年3月。本文采用QGIS软件进行图像地理参考,提取了哥伦比亚北部地区6个省的数据集。使用初步随机森林和k -近邻(KNN)机器学习模型来测试和验证获得的结果,用于疾病监测和HLB发病率预测。比较了两种模型的性能,得到了随机森林模型100%的AUC值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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