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On predicting monitoring system effectiveness

机译:论预测监测系统效果

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While the objective of structural design is to achieve stability with an appropriate level of reliability, the design of systems for structural health monitoring is performed to identify a configuration that enables acquisition of data with an appropriate level of accuracy in order to understand the performance of a structure or its condition state. However, a rational standardized approach for monitoring system design is not fully available. Hence, when engineers design a monitoring system, their approach is often heuristic with performance evaluation based on experience, rather than on quantitative analysis. In this contribution, we propose a probabilistic model for the estimation of monitoring system effectiveness based on information available in prior condition, i.e. before acquiring empirical data. The presented model is developed considering the analogy between structural design and monitoring system design. We assume that the effectiveness can be evaluated based on the prediction of the posterior variance or covariance matrix of the state parameters, which we assume to be defined in a continuous space. Since the empirical measurements are not available in prior condition, the estimation of the posterior variance or covariance matrix is performed considering the measurements as a stochastic variable. Moreover, the model takes into account the effects of nuisance parameters, which are stochastic parameters that affect the observations but cannot be estimated using monitoring data. Finally, we present an application of the proposed model to a real structure. The results show how the model enables engineers to predict whether a sensor configuration satisfies the required performance.
机译:虽然结构设计的目的是通过适当的可靠性实现稳定性,但是进行了用于结构健康监测系统的设计,以识别能够以适当的准确度获取数据的配置,以便理解A的性能结构或其状况状态。但是,监控系统设计的合理标准化方法不完全可用。因此,当工程师设计监测系统时,它们的方法通常是基于经验的性能评估的启发式,而不是在定量分析。在这一贡献中,我们提出了一种概率模型,用于估计监测系统效率,基于现状中可用的信息,即在获取实证数据之前。考虑到结构设计和监控系统设计之间的类比,开发了所提出的模型。我们假设可以基于状态参数的后差或协方差矩阵的预测来评估效果,我们假设在连续空间中定义。由于在先前条件下不可用经验测量,因此考虑到测量值作为随机变量来执行后续方差或协方差矩阵的估计。此外,该模型考虑了滋扰参数的影响,这是影响观察的随机参数,但不能使用监测数据估计。最后,我们向真实结构展示了所提出的模型的应用。结果显示该模型如何使工程师能够预测传感器配置是否满足所需性能。

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