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Fine-Tuning of UAV Control Rules for Spraying Pesticides on Crop Fields

机译:用于在农作物田地喷洒农药的无人机控制规则的微调

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The use of pesticides in agriculture is essential to maintain the quality of large-scale production. The spraying of these products by using aircraft speeds up the process and prevents compacting of the soil. However, adverse weather conditions (e.g. The speed and direction of the wind) can impair the effectiveness of the spraying of pesticides in a target crop field. Thus, there is a risk that the pesticide can drift to neighboring crop fields. It is believed that a large amount of all the pesticide used in the world drifts outside of the target crop field and only a small amount is effective in controlling pests. However, with increased precision in the spraying, it is possible to reduce the amount of pesticide used and improve the quality of agricultural products as well as mitigate the risk of environmental damage. With this objective, this paper proposes a methodology based on Particle Swarm Optimization (PSO) for the fine-tuning of control rules during the spraying of pesticides in crop fields. This methodology can be employed with speed and efficiency and achieve good results by taking account of the weather conditions reported by a Wireless Sensor Network (WSN). In this scenario, the UAV becomes a mobile node of the WSN that is able to make personalized decisions for each crop field. The experiments that were carried out show that the optimization methodology proposed is able to reduce the drift of pesticides by fine-tuning of control rules.
机译:农药在农业中使用对于维持大规模生产的质量至关重要。使用飞机喷射这些产品的喷射加速过程并防止土壤压实。然而,恶劣的天气条件(例如,风的速度和方向)可以损害杀虫剂在目标作物领域的喷射的有效性。因此,存在杀虫剂可以漂移到邻近的作物领域的风险。据信,世界上使用的所有农药漂移在目标作物领域之外,并且只有少量的控制害虫有效。然而,随着喷涂的精度增加,可以减少使用的农药量,提高农产品质量,并减轻环境损害的风险。通过此目的,本文提出了一种基于粒子群优化(PSO)的方法,用于在裁剪田间喷涂杀虫剂期间控制规则的微调。该方法可以通过考虑无线传感器网络(WSN)报道的天气状况来使用速度和效率,实现良好的结果。在这种情况下,UAV成为能够为每个裁剪字段制定个性化决策的WSN的移动节点。进行的实验表明,所提出的优化方法能够通过对控制规则进行微调来减少农药的漂移。

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