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Demand-side management and control for a class of smart grids based on game theory

机译:基于博弈论的一类智能电网的需求方管理与控制

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With the help of evolutionary game theory, demand-side management (DSM) problem of a new class of networked smart grids is presented and solved in this paper. Some communities selected as controllers are cooperative with grid providers, while others pursue their individual benefits in the considered smart grids. Unconditional Imitation and Blind Imitation rules are introduced as strategy updating rules (SURs) of the uncooperative communities. The electricity price of each grid varies with the number of grid users. Based on semi-tensor product (STP) technique, the problem can be converted into control networked evolutionary game (CNEG). The objective in this paper is to select some communities as controllers and then design appropriate control sequences for them such that the minimal common benefit can be obtained and maintained. A nonlinear binary optimization is formulated to minimize total cost in the transient process of considered game.
机译:在进化博弈论的帮助下,本文提出并解决了新类联网智能电网的需求侧管理(DSM)问题。选择作为控制器的某些社区是与网格提供商合作,而其他人则在考虑的智能电网中追求其个人利益。无条件模仿和盲模范被引入作为不合作社区的策略更新规则(Surs)。每个网格的电价随着网格用户的数量而变化。基于半张量产品(STP)技术,可以将问题转换为控制网络进化游戏(CNEG)。本文的目的是选择一些社区作为控制器,然后为它们设计适当的控制序列,使得可以获得并维持最小的共同益处。非线性二进制优化被配制成最小化考虑游戏的瞬态过程中的总成本。

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