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Multi-agent based metalearner using genetic algorithm for decision support in electricity markets

机译:基于遗传算法的多主体金属学习者在电力市场中的决策支持

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摘要

The continuous changes in electricity markets' mechanisms and operations turn this environment into a challenging domain for the participating entities. Simulation tools are increasingly being used for decision support purposes of such entities. In particular, multi-agent based simulation, which facilitates the modeling of different types of mechanisms and players, is being fruitfully applied to the study of worldwide electricity markets. An effective decision support to market players' negotiations is, however, still not properly reached due to the uncertainty that results from the increasing penetration of renewable generation and the complexity of market mechanisms themselves. In this scope, this paper proposes a novel metalearner that provides decision support to market players in their negotiations. The proposed metalearner uses as input the output of several other market negotiation strategies, which are used to create a new, enhanced response. The final result is achieved through the combination and evolution of the strategies' learning results by applying a genetic algorithm.
机译:电力市场机制和运营的不断变化将这种环境变成了参与实体的挑战领域。仿真工具正越来越多地用于此类实体的决策支持目的。尤其是,基于多主体的仿真(其有助于对不同类型的机制和参与者进行建模)已被有效地应用于全球电力市场的研究。然而,由于可再生能源发电普及率的提高和市场机制本身的复杂性所带来的不确定性,仍然未能适当地为市场参与者的谈判提供有效的决策支持。在此范围内,本文提出了一种新颖的金属学习者,可以为市场参与者的谈判提供决策支持。拟议的金属学习者将其他几种市场谈判策略的输出作为输入,这些策略用于创建新的,增强的响应。最终结果是通过应用遗传算法将策略的学习结果进行组合和演变而获得的。

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