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Scaling Up Cooperative Game Theory-Based Energy Management Using Prosumer Clustering

机译:使用Prosumer聚类扩展基于合作博弈论的能源管理

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Game theory based energy sharing schemes emerged in recent years to incentivize efficient management of the increasing amount of distributed energy resources. Among these, cooperative game theoretic schemes provide detailed financial incentives on the individual prosumer level. The nucleolus, a mechanism to allocate these financial incentives, has been proven to guarantee the prosumers’ willingness to participate. However, the computation time of the nucleolus increases exponentially with the number of participants, strictly limiting the size of this scheme. This study proposes to incorporate clustering techniques to estimate the nucleolus at reduced computation times, where a novel marginal contribution profile is used as the clustering features. A stratified random sampling based approach is formulated to evaluate the estimation performance, showing that the proposed method is able to scale up the cooperative energy management scheme from less than 15 players to over 100 players while maintaining high accuracy of the nucleolus estimation.
机译:近年来基于博弈论的能源共享方案使得激活了越来越多的分布式能源资源管理。其中,合作游戏理论计划提供了对个人制度水平的详细财务激励。核仁是分配这些金融激励措施的机制,已被证明是为了保证吸取的参与意愿。然而,核仁的计算时间随着参与者的数量,严格限制了该方案的规模来增加。本研究提出包括聚类技术来估计在减少计算时间的核仁,其中新颖的边缘贡献曲线用作聚类特征。配制了基于分层的随机采样方法以评估估计性能,表明所提出的方法能够将合作能源管理方案从不到15名球员扩展到超过100名球员,同时保持核仁估计的高精度。

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