Application of Classification Algorithm C 4.5 for Predicting Asset Maintenance

M. Rizki, Deni Mahdiana
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引用次数: 2

Abstract

In asset management, determining maintenance actions is one of the problems faced by the company. The importance of maintenance to accelerate the production or performance of a company is now a necessity that must be run. The problem faced by Astra Daihatsu Motor is the difficulty in determining the maintenance action that must be chosen because of information delays when there are assets that are damaged, failed or failure. With the proposal using a decision tree with C4.5 algorithm can predict failures and damage that occur so that it can determine more accurate maintenance actions. Decision tree is a prediction model using tree structure or hierarchical structure. The concept of a decision tree is to transform data into decision trees and decision rules. The main benefit of using a decision tree is its ability to break down complex decision-making processes to be simpler so that decision makers will better interpret the solution of the problem. Using the decision tree method with the C4.5 algorithm can help the problems faced by Astra Daihatsu Motor in determining maintenance. This is shown from the test results of 98.20%. And it can be concluded that the application of C4.5 algorithm is able to produce asset maintenance patterns with better accuracy.
分类算法c4.5在资产维护预测中的应用
在资产管理中,确定维护行动是公司面临的问题之一。维护对加速公司生产或绩效的重要性现在是必须运行的。阿斯特拉大发汽车(Astra Daihatsu Motor)面临的问题是,在存在资产损坏、故障或失效的情况下,由于信息延迟,难以确定必须选择的维护行动。建议使用带有C4.5算法的决策树可以预测发生的故障和损坏,从而可以确定更准确的维护操作。决策树是一种采用树状结构或层次结构的预测模型。决策树的概念是将数据转化为决策树和决策规则。使用决策树的主要好处是它能够将复杂的决策过程分解为更简单的过程,以便决策者能够更好地解释问题的解决方案。采用C4.5算法的决策树方法可以帮助阿斯特拉大发电机在维修决策中遇到的问题。这可以从98.20%的测试结果中看出。可以看出,应用C4.5算法能够生成精度较高的资产维护模式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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