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Optimized Fuzzy Decision Tree Data Mining for Engineering Applications

机译:用于工程应用的优化模糊决策树数据挖掘

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Manufacturing organizations are striving to remain competitive in an era of increased competition and every-changing conditions. Manufacturing technology selection is a key factor in the growth of an organization and a fundamental challenge is effectively managing the computation of data to support future decision-making. Classification is a data mining technique used to predict group membership for data instances. Popular methods include decision trees and neural networks. This paper investigates a unique fuzzy reasoning method suited to engineering applications using fuzzy decision trees. The paper focuses on the inference stages of fuzzy decision trees to support decision-engineering tasks. The relaxation of crisp decision tree boundaries through fuzzy principles increases the importance of the degree of confidence exhibited by the inference mechanism. Industrial philosophies have a strong influence on decision practices and such strategic views must be considered. The paper is organized as follows: introduction to the research area, literature review, proposed inference mechanism and numerical example. The research is concluded and future work discussed.
机译:制造业组织正在努力保持竞争力的竞争时期和每一个不断变化的条件。制造技术选择是组织增长的关键因素,基本挑战是有效地管理数据计算,以支持未来的决策。分类是用于预测数据实例的组成员资格的数据挖掘技术。流行的方法包括决策树和神经网络。本文研究了使用模糊决策树适用于工程应用的独特模糊推理方法。本文侧重于模糊决策树的推理阶段,以支持决策工程任务。通过模糊原理放松酥脆的决策树边界增加了推理机制呈现的信心程度的重要性。工业哲学对决策做法产生了强烈影响,并且必须考虑这种战略意见。本文组织如下:研究领域简介,文献综述,提出推理机制和数值示例。研究得出结论,并讨论了未来的工作。

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