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Intelligent negotiation agent with learning capability for energy trading between building and utility grid

机译:具有学习能力的智能谈判代理,可在建筑物与公用电网之间进行能源交易

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摘要

In this paper, a particle swarm optimization (PSO) based negotiation agent with learning capability is proposed to facilitate the bi-directional energy trading between the building and the utility grid. A comprehensive set of factors in the integrated smart building and utility grid system is taken into account in developing the negotiation model. In addition, the learning capability of the negotiation agent is developed to adaptively adjust the trader's decisions according to the opponent's behaviors. The feasibility of the proposed negotiation agent is evaluated by the simulation results. It turns out that the proposed intelligent agent is capable of making rational deals in bi-directional energy trading by maximizing the trader's payoffs with reduced negotiation time.
机译:本文提出了一种具有学习能力的基于粒子群优化(PSO)的协商代理,以促进建筑物与公用电网之间的双向能源交易。在开发谈判模型时,要考虑到智能建筑与公用电网集成系统中的一系列综合因素。此外,还开发了谈判代理的学习能力,可以根据对手的行为自适应地调整交易者的决定。仿真结果评估了拟议谈判代理的可行性。事实证明,所提出的智能代理能够通过在减少谈判时间的情况下最大化交易者的收益来在双向能源交易中进行合理的交易。

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