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Use of multicolour fluorescence imaging for diagnosis of bacterial and fungal infection on zucchini by implementing machine learning

机译:多色荧光成像用途通过实施机器学习诊断夏南琴细菌和真菌感染的用途

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Zucchini (Cucurbita pepo L.) is a cucurbitaceous plant ranking high in economic importance among vegetable crops worldwide. Pathogen infections cause alterations in plants primary and secondary metabolism that lead to a significant decrease in crop quality and yield. Such changes can be monitored by remote and proximal sensing, providing spatial and temporal information about the infection process. Remote sensing can also provide specific signatures of disease that could be used in phenotyping and to detect a pest, forecast its evolution and predict crop yield. In this work, metabolic changes triggered by soft rot (caused by Dickeya dadantii) and powdery mildew (caused by Podosphaera fusca) on zucchini leaves have been studied by multicolour fluorescence imaging and by thermography. The fluorescence parameter F520/F680 showed statistically significant differences between infected (with D. dadantii or P. fusca) and mock-control leaves during the whole period of study. Artificial neural networks, logistic regression analyses and support vector machines trained with a set of features characterising the histograms of F520/F680 images could be used as classifiers, discriminating between healthy and infected leaves. These results show the applicability of multicolour fluorescence imaging on plant phenotyping.
机译:西葫芦(Cucurbita Pepo L.)是全球蔬菜作物中经济重要性的葫芦科植物。病原体感染导致植物初级和次生新陈代谢的改变,导致作物质量和产量的显着降低。可以通过远程和近端感测来监视这种更改,提供有关感染过程的空间和时间信息。遥感还可以提供可用于表型的特定疾病签名,并检测害虫,预测其演化和预测作物产量。在这项工作中,通过多色荧光成像和热成像研究了由软腐腐(Dickeya Dadantii引起的Dickeya Dadantii引起的粉末状叶片(Podosphaera Fusca引起)引发的代谢变化。荧光参数F520 / F680在整个研究期间显示出感染(D. dadantii或P. fusca)和模拟叶片之间的统计学上显着的差异。用一组特征培训的人工神经网络,逻辑回归分析和支持向量机表征F520 / F680图像的直方图的特征可以用作分类器,区分健康和感染的叶子。这些结果表明,多色荧光成像对植物表型的适用性。

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