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基于BP神经网络的大跨高空连廊应变监测数据恢复 被引量:8
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作者 赵昕 贾京 郑毅敏 《建筑科学与工程学报》 CAS 2009年第1期101-106,共6页
为了解决大跨高空连廊吊装阶段性态监测中应变监测数据存在缺失的问题,利用BP神经网络进行数据恢复。首先基于相关性分析,选择与数据缺失监测点应变值相关性最强的5个监测点作为参考点;然后利用未缺失时间段内待恢复监测点和参考点的应... 为了解决大跨高空连廊吊装阶段性态监测中应变监测数据存在缺失的问题,利用BP神经网络进行数据恢复。首先基于相关性分析,选择与数据缺失监测点应变值相关性最强的5个监测点作为参考点;然后利用未缺失时间段内待恢复监测点和参考点的应变数据进行建模和检验,一半数据用来建立BP神经网络模型,一半数据用来进行模型的检验;最后利用建立的模型对缺失的数据进行恢复,得到了完整的应变监测数据。利用得到的恢复数据与参考点数据在缺失段内的相关系数对数据恢复的效果进行了评价。结果表明:该方法可有效地恢复缺失的应变监测数据。 展开更多
关键词 性态监测 相关性分析 BP神经网络 数据恢复 数据缺失 参考点 高空连廊
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Remaining useful life estimation based on Wiener degradation processes with random failure threshold 被引量:17
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作者 TANG Sheng-jin YU Chuan-qiang +3 位作者 FENG Yong-bao XIE Jian GAO Qin-he SI Xiao-sheng 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第9期2230-2241,共12页
Remaining useful life(RUL) estimation based on condition monitoring data is central to condition based maintenance(CBM). In the current methods about the Wiener process based RUL estimation, the randomness of the fail... Remaining useful life(RUL) estimation based on condition monitoring data is central to condition based maintenance(CBM). In the current methods about the Wiener process based RUL estimation, the randomness of the failure threshold has not been studied thoroughly. In this work, by using the truncated normal distribution to model random failure threshold(RFT), an analytical and closed-form RUL distribution based on the current observed data was derived considering the posterior distribution of the drift parameter. Then, the Bayesian method was used to update the prior estimation of failure threshold. To solve the uncertainty of the censored in situ data of failure threshold, the expectation maximization(EM) algorithm is used to calculate the posteriori estimation of failure threshold. Numerical examples show that considering the randomness of the failure threshold and updating the prior information of RFT could improve the accuracy of real time RUL estimation. 展开更多
关键词 condition based maintenance remaining useful life wiener process random failure threshold BAYESIAN EM algorithm
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