|本期目录/Table of Contents|

[1]梁敏健,刘德阳.基于PAC-ID3融合的电梯液压缓冲器隐患智能识别方法研究[J].工业仪表与自动化装置,2021,(05):94-100.[doi:10.19950/j.cnki.cn61-1121/th.2021.05.020]
 LIANG Minjian,LIU Deyang.Research on intelligent recognition method of elevator hydraulic buffer hidden danger based on PAC-ID3 fusion[J].Industrial Instrumentation & Automation,2021,(05):94-100.[doi:10.19950/j.cnki.cn61-1121/th.2021.05.020]
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基于PAC-ID3融合的电梯液压缓冲器隐患智能识别方法研究

《工业仪表与自动化装置》[ISSN:1000-0682/CN:61-1121/TH]

卷:
期数:
2021年05期
页码:
94-100
栏目:
出版日期:
2021-10-15

文章信息/Info

Title:
Research on intelligent recognition method of elevator hydraulic buffer hidden danger based on PAC-ID3 fusion
作者:
梁敏健刘德阳
广东省特种设备检测研究院珠海检测院,广东 珠海 519002
Author(s):
LIANG MinjianLIU Deyang
(Zhuhai Branch,Guangdong institute of Special Equipment Inspection and Research,Guangdong Zhuhai 519002,China)
关键词:
液压缓冲器ID3算法主成分分析法PAC-ID3多值倾向性
Keywords:
hydraulic buffer ID3 algorithm principal components analysis(PCA) PAC-ID3 multi-value orientation
分类号:
TP311
DOI:
10.19950/j.cnki.cn61-1121/th.2021.05.020
文献标志码:
A
摘要:
针对传统决策树算法应用于电梯液压缓冲器隐患智能识别准确率有待提高的问题,提出一种改进传统决策树ID3与主成分分析法(PCA)融合的智能识别方法(PAC-ID3)。针对传统ID3算法倾向于选择取值较多的属性缺点,引进属性阈值和信息增益率,对传统ID3算法进行改进优化;样本数集通过主成分分析方法,解决决策树存在多值倾向问题,选出更具有代表性的决策属性,提高决策树的建模效率和准确率;通过对改进优化融合前后算法进行了比较,实验结果表明,改进融合后的算法提高了隐患识别的精确率。
Abstract:
Aiming at the problem that the accuracy of traditional decision tree algorithm applied to the classification and prediction of elevator hydraulic buffer failure types needs to be improved, this paper proposes a method for predicting failure type classification that improves the integration of traditional decision tree ID3 and principal components analysis(PAC).Aiming at the shortcomings of traditional ID3 algorithms that tend to choose more attributes, the attribute threshold and information gain rate are introduced to improve and optimize the traditional ID3 algorithm.The sample number set uses the principal component analysis method to solve the problem of the multi-value tendency of the decision tree.To select more representative decision attributes to improve the modeling efficiency and accuracy of the decision tree.By comparing the algorithms before and after the improved optimization fusion,the experimental results show that the improved fusion algorithm improves the accuracy of the prediction classification rate.

参考文献/References:

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备注/Memo

备注/Memo:
收稿日期:2021-04-15

基金项目:
广东省市场监督管理局科技项目(2020CT03,2018CT10)
广东省特种设备检测研究院科技项目(2020JD-2-05,2020JD-2-04,2021JD-1-05)

作者简介:
梁敏健(1984),男,广东清远人,博士,正高级工程师,从事特种设备智能检测及仪器仪表开发。
更新日期/Last Update: 1900-01-01