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兵工学报 ›› 2014, Vol. 35 ›› Issue (11): 1883-1890.doi: 10.3969/j.issn.1000-1093.2014.11.021

• 论文 • 上一篇    下一篇

基于多维特征参数的装备状态动态评估方法

王少华, 张耀辉, 韩小孩   

  1. (装甲兵工程学院 技术保障工程系, 北京 100072)
  • 收稿日期:2013-12-17 修回日期:2013-12-17 上线日期:2015-01-05
  • 作者简介:王少华(1986—), 男, 博士研究生
  • 基金资助:
    军队“十二五”预先研究项目(51327020303)

Dynamic Evaluation Methods for Equipment Technical Condition Based on Multi-dimensional Characteristic Parameters

WANG Shao-hua, ZHANG Yao-hui, HAN Xiao-hai   

  1. (Department of Technology Support Engineering, Academy of Armored Force Engineering, Beijing 100072, China)
  • Received:2013-12-17 Revised:2013-12-17 Online:2015-01-05

摘要: 针对目前状态评估方法多重视状态特征参数的静态观测值,对时序状态数据所蕴含的趋势信息关注较少的缺点,提出了静态评估与动态评估相结合的状态评估方法。针对多维状态特征条件下赋权难度大的问题,采用变尺度混沌算法进行客观赋权,建立了状态静态评估模型。在静态评估的基础上,提出运用劣化速度间的“距离”修正静态评估结果来进行动态评估。运用近邻样本密度加权的核模糊C均值聚类算法对劣化速度标准向量进行求解,提出了动态调整函数优化算法,建立了完整的装备状态动态评估模型。通过案例分析验证了该方法的有效性。

关键词: 兵器科学与技术, 多维特征参数, 混沌优化算法, NSD-WKFCM聚类算法, 动态评估

Abstract: According to the fact that current condition evaluation models lay more emphasis on the static observations of characteristic parameters and less on trend information inherent in sequential observations, a new condition evaluation model with static and dynamic evaluations is proposed. For the weighting of multi-dimensional characteristic parameters, a mutative scale chaos algorithm is applied to achieve optimal objective weighting, and a static condition evaluation model is established. Based on static evaluation, a “distance” which measures real-time deteriorating speed and standard deteriorating speed is opted to modify the static evaluation result. NSD-WKFCM (neighbor sample density weighted kernel fuzzy C-means) clustering algorithm is used to solve standard vector of deteriorating speed. A dynamic adjusting function based on “distance” combined with its parameter optimization algorithm is proposed, and the complete dynamic condition evaluation model is established. A case study is performed to verify the effectiveness of the model.

Key words: ordnance science and technology, multi-dimensional characteristic parameter, chaos optimization algorithm, NSD-WKFCM clustering algorithm, dynamic evaluation

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