A Neuro-Automata Decision Support System for the Control of Late Blight in Tomato Crops

G. K. Vianna, G. S. Oliveira, G. V. Cunha
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引用次数: 5

Abstract

The use of decision support systems in agriculture may help monitoring large fields of crops by automatically detecting the symptoms of foliage diseases. In our work, we designed and implemented a decision support system for small tomatoes producers. This work investigates ways to recognize the late blight disease from the analysis of digital images of tomatoes, using a pair of multilayer perceptron neural networks. The networks outputs are used to generate repainted tomato images in which the injuries on the plant are highlighted, and to calculate the damage level of each plant. Those levels are then used to construct a situation map of a farm where a cellular automata simulates the outbreak evolution over the fields. The simulator can test different pesticides actions, helping in the decision on when to start the spraying and in the analysis of losses and gains of each choice of action.
番茄晚疫病防治的神经自动机决策支持系统
在农业中使用决策支持系统可以通过自动检测叶病的症状来帮助监测大面积的作物。在我们的工作中,我们为小型番茄生产商设计并实现了一个决策支持系统。本研究使用一对多层感知器神经网络,从番茄的数字图像分析中识别晚疫病的方法。网络输出用于生成重绘的西红柿图像,其中植物上的损伤被突出显示,并计算每个植物的损伤程度。然后,这些水平被用来构建一个农场的情况图,其中一个细胞自动机模拟了整个农场的爆发演变。模拟器可以测试不同的农药作用,帮助决定何时开始喷洒,并分析每种选择的损失和收益。
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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