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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >A Data-Driven Reliability Estimation Approach for Phased-Mission Systems
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A Data-Driven Reliability Estimation Approach for Phased-Mission Systems

机译:相控任务系统的数据驱动可靠性估计方法

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We attempt to address the issues associated with reliability estimation for phased-mission systems (PMS) and present a novel data-driven approach to achieve reliability estimation for PMS using the condition monitoring information and degradation data of such system under dynamic operating scenario. In this sense, this paper differs from the existing methods only considering the static scenario without using the real-time information, which aims to estimate the reliability for a population but not for an individual. In the presented approach, to establish a linkage between the historical data and real-time information of the individual PMS, we adopt a stochastic filtering model to model the phase duration and obtain the updated estimation of the mission time by Bayesian law at each phase. At the meanwhile, the lifetime of PMS is estimated from degradation data, which are modeled by an adaptive Brownian motion. As such, the mission reliability can be real time obtained through the estimated distribution of the mission time in conjunction with the estimated lifetime distribution. We demonstrate the usefulness of the developed approach via a numerical example.
机译:我们试图解决与阶段性任务系统(PMS)的可靠性估计相关的问题,并提出一种新颖的数据驱动方法,以在动态操作场景下使用状态监测信息和此类系统的降级数据来实现PMS的可靠性估计。从这个意义上讲,本文与仅考虑静态场景而不使用实时信息的现有方法有所不同,该方法旨在评估总体的信度,而不是个人的信度。在提出的方法中,为了在单个PMS的历史数据和实时信息之间建立联系,我们采用随机过滤模型对阶段持续时间进行建模,并根据每个阶段的贝叶斯定律获得任务时间的更新估计。同时,从退化数据估计PMS的寿命,退化数据由自适应布朗运动建模。这样,可以通过估计的任务时间分布以及估计的寿命分布实时获得任务可靠性。我们通过一个数值示例来证明所开发方法的有用性。

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