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Method of Spare Parts Prediction Models Evaluation Based on Grey Comprehensive Correlation Degree and Association Rules Mining: A Case Study in Aviation

机译:基于灰色关联度和关联规则挖掘的备件预测模型评估方法:以航空业为例

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摘要

Probability of spare parts sufficiency is crucial in the process of the normal operation of businesses, especially for the airline company. However, higher support sufficiency could inevitably lead to the increase of inventory cost of spare parts and restrict a company's efficiency. Therefore, it is important for businesses to reduce material cost on the premise of normal operation in order to accurately predict spare parts requirements based on reasonable models. The purpose of this paper is to solve problems with the evaluation of spare parts prediction models and to improve efficiency of company. Firstly, this paper summarizes a series of prediction models of spare parts requirements and applies the grey comprehensive correlation degree to rank the models. Secondly, the method of association rules mining is used to discover the association relationships between the types of spare parts and the prediction models. Finally, a case study in aviation is given to demonstrate the feasibility of the methodology, and optimal prediction models are recommended for aircraft spare parts. In accordance with the association relationships, the applicable prediction model can be provided in terms of different types of spare parts. This model will greatly enhance the work efficiency of spare parts prediction and improve the prediction tasks for the aircraft companies.
机译:备件充足的可能性在企业正常运营过程中至关重要,特别是对于航空公司而言。但是,更高的支持充分性不可避免地导致备件库存成本的增加,并限制了公司的效率。因此,对于企业来说,重要的是在正常运行的前提下降低材料成本,以便基于合理的模型准确预测备件需求。本文的目的是解决备件预测模型评估中的问题并提高公司效率。首先,本文总结了一系列备件需求预测模型,并应用灰色综合关联度对模型进行排序。其次,采用关联规则挖掘的方法来发现备件类型与预测模型之间的关联关系。最后,通过在航空领域的案例研究证明了该方法的可行性,并建议了飞机零件的最佳预测模型。根据关联关系,可以根据不同类型的备件提供适用的预测模型。该模型将大大提高零件预测的工作效率,并改善飞机公司的预测任务。

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