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Scheduled-Asynchronous Distributed Algorithm for Optimal Power Flow

机译:最优功率调度异步调度算法

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Optimal power flow (OPF) problems are nonconvex and large-scale optimization problems with important applications in power networks. This paper proposes the scheduled-asynchronous algorithm to solve a distributed semidefinite programming formulation of the OPF problem. In this formulation, every agent seeks to solve a local optimization with its own cost function, physical constraints on its nodal power injection, voltage, and power flow of the lines it is connected to, and decision constraints on variables shared with neighbors to ensure consistency of the obtained solution. In the scheduled-asynchronous algorithm, every pair of connected nodes in the electrical network update their local variables in an alternating fashion. This strategy is asynchronous, in the sense that no clock synchronization is required, and relies on an orientation of the electrical network that prescribes the precise ordering of node updates. We establish the asymptotic convergence properties to the primal-dual optimizer when the orientation is acyclic. Given the dependence of the convergence rate on the network orientation, we also develop a distributed graph coloring algorithm that finds an orientation with diameter at most five for electrical networks. Simulations illustrate our results on various IEEE bus test cases.
机译:最优潮流(OPF)问题是非凸的,并且是大规模优化问题,在电力网络中具有重要的应用。提出了一种调度异步算法来求解OPF问题的分布式半定规划公式。在此公式中,每个代理程序都试图通过自身的成本函数,对其节点功率注入的物理约束,电压和所连接线路的功率流以及与邻居共享的变量的决策约束来解决局部优化,以确保一致性获得的溶液。在调度异步算法中,电网中的每对连接节点都以交替方式更新其局部变量。在不需要时钟同步的意义上,该策略是异步的,并且依赖于规定节点更新的精确排序的电网方向。当方向为非循环时,我们为原始对偶优化器建立渐近收敛性。给定收敛速度对网络方向的依赖性,我们还开发了一种分布式图形着色算法,该算法可找到直径最大为5的方向的电气网络。仿真说明了我们在各种IEEE总线测试案例中的结果。

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