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DEVELOPMENT OF A DATA MINING APPLICATION FOR AGRICULTURE BASED ON BAYESIAN NETWORKS

机译:基于贝叶斯网络的农业数据挖掘应用开发。

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摘要

Data mining is a process by which the data can be analyzed so as to generate useful knowledge. It aims to use existing data to invent new facts and to uncover new relationships previously unknown even to experts. Bayesian network is a powerful tool for dealing with uncertainties, and has a widespread use in the area of data mining. In this paper, we focus on development of a data mining application for agriculture based on Bayesian networks. Let features (or objects) as variables or the nodes in Bayesian network, let directed edges present the relationships between features, and the relevancy intensity can be regarded as confidence between the variables. Accordingly, it can find the relationships in the agricultural data by learning a Bayesian network. After defining the domain variables and data preparation, we construct a model for agricultural application based on Bayesian network learning method. The experimental results indicate that the proposed method is feasible and efficient, and it is a promising approach for data mining in agricultural data.
机译:数据挖掘是一个过程,通过该过程可以分析数据以生成有用的知识。它旨在利用现有数据来发明新的事实,并发现甚至对于专家而言也是未知的新关系。贝叶斯网络是处理不确定性的有力工具,在数据挖掘领域具有广泛的用途。在本文中,我们专注于基于贝叶斯网络的农业数据挖掘应用程序的开发。以特征(或对象)为变量或贝叶斯网络中的节点,以有向边表示特征之间的关系,关联强度可以视为变量之间的置信度。因此,它可以通过学习贝叶斯网络来找到农业数据中的关系。在定义了域变量并准备了数据之后,我们基于贝叶斯网络学习方法构建了一个农业应用模型。实验结果表明,该方法是可行且有效的,是一种用于农业数据挖掘的有前途的方法。

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