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Understanding Helicoverpa armigera Pest Population Dynamics related to Chickpea Crop Using Neural Networks

机译:了解与鹰嘴豆作物有关的Helicoverpa Armigera害虫种群使用神经网络

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Insect pests are a major cause of crop loss globally. Pest management will be effective and efficient if we can predict the occurrence of peak activities of a given pest. Research efforts are going on to understand the pest dynamics by applying analytical and other techniques on pest surveillance data sets. In this study we make an effort to understand pest population dynamics using Neural Networks by analyzing pest surveillance data set of Helicoverpa armigera or Pod borer on chickpea (Cicer arietinum L.) crop. The results show that neural network method successfully predicts the pest attack incidences for one week in advance.
机译:昆虫害虫是全球作物损失的主要原因。如果我们可以预测给定害虫的峰值活动的发生,害虫管理将有效和有效。通过在害虫监控数据集上应用分析和其他技术来了解害虫动态的研究努力。在这项研究中,我们通过分析鹰嘴豆(Cicer Arietinum L.)作物的Helicoverpa Armigera或Pod Borer的害虫监测数据集来了解害虫群体动态。结果表明,神经网络方法提前一周内成功预测害虫攻击事件。

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