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首页> 外文期刊>International Journal of Computer Integrated Manufacturing >Entropy-based associative classification algorithm for mining manufacturing data
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Entropy-based associative classification algorithm for mining manufacturing data

机译:基于熵的制造业数据挖掘关联分类算法

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摘要

This paper presents a new associative classification algorithm for data mining. The algorithm uses elementary set concepts, information entropy and database manipulation techniques to develop useful relationships between input and output attributes of large databases. These relationships (knowledge) are represented using IF-THEN association rules, where the IF portion of the rule includes a set of input attributes features and THEN portion of the rule includes a set of output attributes that represent decision outcome. Application of the algorithm is presented with a thermal spray process control case study. Thermal spray is a process of forming a desired shape of material by spraying melted metal on a ceramic mould. The goal of the study is to identify spray process input parameters that can be used to effectively control the process with the purpose of obtaining better characteristics for the sprayed material. Detailed discussion on the source and characteristics of the data sets is also presented.
机译:本文提出了一种新的数据挖掘关联分类算法。该算法使用基本集概念,信息熵和数据库操作技术来开发大型数据库的输入和输出属性之间的有用关系。这些关系(知识)使用IF-THEN关联规则表示,其中规则的IF部分包括一组输入属性特征,而规则的THEN部分包括一组代表决策结果的输出属性。结合热喷涂过程控制案例研究介绍了该算法的应用。热喷涂是通过在陶瓷模具上喷涂熔融金属来形成所需形状的材料的过程。该研究的目的是确定可用于有效控制过程的喷涂过程输入参数,以期获得喷涂材料的更好特性。还介绍了有关数据集的来源和特征的详细讨论。

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