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Distributed Robust Algorithm for Economic Dispatch in Smart Grids Over General Unbalanced Directed Networks

机译:一般不平衡指向网络智能电网经济派遣的分布式鲁棒算法

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摘要

The increased complexity of modern energy network raises the necessity of flexible and reliable methods for smart grid operation. To this end, this article is centered on the economic dispatch problem (EDP) in smart grids, which aims at scheduling generators to meet the total demand at the minimized cost. This article proposes a fully distributed algorithm to address the EDP over directed networks and takes into account communication delays and noisy gradient observations. In particular, the rescaling gradient technique is introduced in the algorithm design and the implementation of the distributed algorithm only resorts to row-stochastic weight matrices, which allows each generator to locally allocate the weights on the messages received from its in-neighbors. It is proved that the optimal dispatch can be achieved under the assumptions that the nonidentical constant communication delays inflicting on each link are uniformly bounded and the noises embroiled in gradient observation of every generator are bounded variance zero mean. Simulations are provided to validate and testify the effectiveness of the presented algorithm.
机译:现代能源网络的复杂性增加提高了智能电网操作的灵活可靠方法的必要性。为此,本文以智能电网的经济调度问题(EDP)为中心,旨在以最小化成本满足总需求的调度发电机。本文提出了一种完全分布式的算法来解决针对定向网络的EDP,并考虑通信延迟和嘈杂的梯度观察。特别地,在算法的设计中引入了重新扫描梯度技术,并且分布式算法的实现仅具有行随机重量矩阵,其允许每个发电机本地分配从其邻接所接收的消息上的权重。证明可以在假设下实现最佳调度,即在每个链路上施加的非恒定恒定通信延迟均匀有界均匀,并且在每个发电机的梯度观察中啮合的噪声是有界方差零均值。提供仿真以验证和作证所提出的算法的有效性。

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