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Evaluation, Classification and Clustering with Neuro-Fuzzy Techniques in Integrate Pest Management

机译:综合害虫管理中神经模糊技术的评价,分类和聚类

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In the present article are described the results obtained by the application of neuro-fuzzy methodologies in the study of Bactrocera Oleae (olive fly) infestation in Liguria region olive grows. The main aim of this project is create an informatic decisional support for experts in the applications of Integrated Pest Management strategies against the Bactrocera Oleae infestation. This system will suggest an appropriate treatments for each monitored farm to optimize the quality of the olive oil and the economic and environmental impact of these treatments. Forecast and statistical analyses on agronomic data sets like the case in study (the growth of olive fly), are actually made using standard approaches like analytical ones; this kind of data are very variable and non-linear, characteristics which make them complex to be treated mathematically. Agronomic research needs to introduce new analysis techniques for taking data and information, for example neuro-fuzzy techniques that allow a large use of infestation data with a good flexibility degree.
机译:在本文中,描述了通过在植物区橄榄橄榄橄榄菌的Bactrocera Oleae(橄榄蝇)侵染的研究中应用神经模糊方法获得的结果。该项目的主要目的是为综合害虫管理策略对Bactrocera ofeae侵扰施用的专家创造了一个信息策略支持。该系统将为每个监控农场提出适当的治疗,以优化橄榄油的质量和这些治疗的经济和环境影响。预测和统计分析与研究中的农艺数据集(橄榄飞的生长),实际上是使用分析方法等标准方法制成的;这种数据是非常可变的,非线性的,特征使它们复杂地是在数学上进行处理。农艺研究需要引入用于采取数据和信息的新分析技术,例如神经模糊技术,允许大量使用具有良好的灵活性的侵扰数据。

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