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首页> 外文期刊>Artificial Intelligence for Engineering Design, Analysis & Manufacturing >Association rules mining between service demands and remanufacturing services
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Association rules mining between service demands and remanufacturing services

机译:关联规则挖掘服务需求与再制造服务之间的挖掘

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摘要

The potential relationship between service demands and remanufacturing services (RMS) is essential to make the decision of a RMS plan accurately and improve the efficiency and benefit. In the traditional association rule mining methods, a large number of candidate sets affect the mining efficiency, and the results are not easy for customers to understand. Therefore, a mining method based on binary particle swarm optimization ant colony algorithm to discover service demands and remanufacture services association rules is proposed. This method preprocesses the RMS records, converts them into a binary matrix, and uses the improved ant colony algorithm to mine the maximum frequent itemset. Because the particle swarm algorithm determines the initial pheromone concentration of the ant colony, it avoids the blindness of the ant colony, effectively enhances the searchability of the algorithm, and makes association rule mining faster and more accurate. Finally, a set of historical RMS record data of straightening machine is used to test the validity and feasibility of this method by extracting valid association rules to guide the design of RMS scheme for straightening machine parts.
机译:服务需求与再制造服务之间的潜在关系(RMS)对于准确提高RMS计划的决定是必不可少的,提高效率和效益。在传统的关联规则挖掘方法中,大量候选集会影响采矿效率,结果对客户不容易理解。因此,提出了一种基于二进制粒子群优化蚁群算法来发现服务需求和再制造服务关联规则的挖掘方法。该方法预处理RMS记录,将它们转换为二进制矩阵,并使用改进的蚁群算法来挖掘最大频繁的项目集。由于粒子群算法确定了蚁群的初始信息素浓度,因此它避免了蚁群的失明,有效提高了算法的可搜索,并使关联规则挖掘得更快,更准确。最后,通过提取有效关联规则来指导矫直机部件的RMS方案设计来测试该方法的一组历史RMS记录数据来测试该方法的有效性和可行性。

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