基于K近邻的物联网语义互操作性作物选择框架

P. S. Khatoon, Muqeem Ahmed
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引用次数: 1

摘要

在农业系统中,土壤通过其提供的众多生态系统服务发挥着决定性作用。农业利用自然空间和资源进行对人类有用的生产。土壤是植物养分的主要来源。根从土壤和水中吸收营养离子。在耕作开始之前,必须在土壤中混合额外的营养物。过量使用化学品对作物和环境都有不利影响。为了获得最大产量,必须满足最优的养分需要量。提出了一种基于k近邻算法的作物选择准则。该方法利用土壤类型、气候、微量元素、常量元素、水源等农业投入来选择最适合农场的作物。该算法还提供了作物生产所需的营养不足量。该方法可以集成到基于物联网(IoT)的应用程序的语义互操作性框架中。所提出的方法准确地估计了作物需求和相应的养分数量,以实现由产量定义的生产目标。
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A Crop Selection Framework using K Nearest Neighbour for IoT Semantic Interoperability Applications
In agrosystems, the soil plays a determining role through the multitude of ecosystem services that it provides. Agriculture exploits natural spaces and resources for useful production to humans. Soil is the primary source of nutrients for the plants. The roots absorb nutrient ions from soil and water. Additional nutrients must be mixed in the soil before the cultivation begins. Use of excess chemicals has adverse effects both on the crop and the environment. Optimal amount of nutrient requirement must be met for maximum yield. This paper presents a crop selection criteria based on K-nearest neighbour algorithm. The proposed method used farm inputs like soil type, climate, micronutrients, macronutrients, water source etc. to select the best crop suited for the farm. The algorithm also provides the amount of deficient nutrients required for the crop production. This methodology can be integrated into a semantic interoperability framework for Internet of Things (IoT) based applications. The proposed method accurately estimated the crop needs and the corresponding quantity of the nutrient necessary and sufficient to achieve a production objective defined by the yield.
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