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Smart Grid Optimization Through Asynchronous, Distributed Primal Dual Iterations

机译:通过异步,分布式原始对偶迭代进行智能电网优化

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摘要

The diversity of components in the smart grid and issues, such as scalability, stability, and privacy, have led to the desire for more distributed control paradigms. In this paper, we address the problem of optimizing smart grid operation with separable global costs and separable but nonconvex constraints, while considering important aspects of network operation, such as power flow and nodal voltage constraints. A localized primal dual method is applied through the use of an augmented Lagrange function, which is used to overcome the issues of nonconvexity in the presence of nonlinear equality constraints. The nonseparability of the augmented Lagrange penalty function is addressed through the use of local and neighborhood communication leading to a completely distributed solution of the global problem.
机译:智能电网中组件的多样性以及诸如可伸缩性,稳定性和隐私性之类的问题,导致了人们对更多分布式控制范例的渴望。在本文中,我们在考虑网络运行的重要方面(例如潮流和节点电压约束)的同时,解决了具有可分离的全局成本和可分离但不凸的约束条件的智能电网运行优化问题。通过使用增强的Lagrange函数来应用局部原始对偶方法,该方法用于克服存在非线性等式约束时的非凸性问题。拉格朗日罚分函数的不可分性通过使用局部和邻域通信解决,从而解决了全局问题的完全分布式问题。

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