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Simulation of cross-correlated random field samples from sparse measurements using Bayesian compressive sensing

机译:使用贝叶斯压缩传感从稀疏测量中模拟互相关的随机场样本

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Cross-correlated random field samples (RFSs) of engineering quantities (e.g., mechanical properties of materials) are often needed for stochastic analysis of structures when cross-correlation between engineering quantities and spatial/temporal auto-correlation of each quantity are considered. Theoretically, cross-correlated RFSs may be simulated using a cross-correlated random field generator with prescribed random field parameters and cross-correlation. In engineering practice, random field parameters and cross-correlation are often unknown, and they need to be estimated from extensive measurements. When the number of measurements is sparse and limited, due to sensor failure, budget limit etc., it is challenging to accurately estimate random field parameters or properly simulate cross-correlated RFSs. This paper aims to address this challenge by developing a cross-correlated random field generator based on Bayesian compressive sampling (BCS) and Karhunen–Loève (KL) expansion. The generator proposed only requires sparse measurements as input, and provides cross-correlated RFSs with a high resolution as output. The cross-correlated RFSs are able to simultaneously characterize the cross-correlation between different quantities and the spatial/temporal auto-correlation for each quantity. The generator proposed is illustrated using numerical examples. The results show that proposed generator performs reasonably well.
机译:当考虑工程量与每个量的空间/时间自相关之间的互相关性时,经常需要工程量(例如,材料的机械性能)的互相关随机场样本(RFS)来进行结构的随机分析。理论上,可以使用具有规定的随机场参数和互相关的互相关随机场发生器来模拟互相关的RFS。在工程实践中,随机场参数和互相关通常是未知的,需要从大量测量中进行估计。当测量数量稀少且受限时,由于传感器故障,预算限制等原因,准确估算随机场参数或正确模拟互相关的RFS都是一项挑战。本文旨在通过开发基于贝叶斯压缩采样(BCS)和Karhunen-Loève(KL)展开的互相关随机场发生器来应对这一挑战。提出的生成器仅需要稀疏的测量作为输入,并提供具有高分辨率的互相关RFS作为输出。互相关的RFS能够同时表征不同数量之间的互相关以及每个数量的空间/时间自相关。所提出的生成器使用数字示例进行了说明。结果表明,提出的发电机性能良好。

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