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NON-NEGATIVE MATRIX FACTORIZATION BASED UNCERTAINTY QUANTIFICATION METHOD FOR COMPLEX NETWORKED SYSTEMS

机译:基于非负矩阵分解的复杂网络系统的不确定性量化方法

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The behavior of large networked systems with underlying complex nonlinear dynamic are hard to predict. With increasing number of states, the problem becomes even harder. Quantifying uncertainty in such systems by conventional methods requires high computational time and the accuracy obtained in estimating the state variables can also be low. This paper presents a novel computational Uncertainty Quantifying (UQ) method for complex networked systems. Our approach is to represent the complex systems as networks (graphs) whose nodes represent the dynamical units, and whose links stand for the interactions between them. First, we apply Non-negative Matrix Factorization (NMF) based decomposition method to partition the domain of the dynamical system into clusters, such that the inter-cluster interaction is minimized and the intra-cluster interaction is maximized. The decomposition method takes into account the dynamics of individual nodes to perform system decomposition. Initial validation results on two well-known dynamical systems have been performed. The validation results show that uncertainty propagation error quantified by RMS errors obtained through our algorithms are competitive or often better, compared to existing methods.
机译:大型网络系统具有底层复杂非线性动态的行为很难预测。随着州数量的越来越多,问题变得越来越难。通过传统方法量化这种系统中的不确定性需要高计算时间,并且估计状态变量的准确性也可以低。本文介绍了复杂网络系统的新型计算不确定性量化(UQ)方法。我们的方法是将复杂系统表示为网络(图),其节点表示动态单元,并且其链路代表它们之间的交互。首先,我们应用基于非负矩阵分解(NMF)的分解方法将动态系统的域分区为簇,使得集群间交互被最小化并且群集内交互最大化。分解方法考虑了各个节点的动态以执行系统分解。已经执行了两个众所周知的动态系统的初始验证结果。验证结果表明,与现有方法相比,通过我们的算法获得的RMS错误量化的不确定性传播误差是竞争的或往往更好的。

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