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Designing Tariffs in a Competitive Energy Market Using Particle Swarm Optimization Techniques

机译:使用粒子群优化技术在竞争力的能源市场中设计关税

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The main challenge of the Smart Grid Paradigm is achieving a tight balance between supply and demand of electrical energy. A contemporary approach to address this challenge is the use of autonomous broker agents. These intelligent entities are able to interact with both producers and consumers by offering tariffs, in order to buy or sell energy, respectively, within a new energy market mechanism: the Tariff Market. Agents are incentivized to level supply and demand within their portfolio, in line with maximizing their profit. In this work, we study a profit optimization strategy that was implemented for Mertacor broker-agent, always considering the customized needs of his customers. The agent was developed and tested in the PowerTAC Competition platform, which provides a powerful benchmark for researching Tariff Markets. To fulfill the agent's objectives, two types of strategies were implemented: (ⅰ) a tariff formation strategy and (ⅱ) a tariff update strategy. Both strategies are treated as optimization problems, where the broker's objective is maximizing its profit as well as maintaining an acceptable customer market share. To this end, Particle Swarm Optimization techniques were adopted. The results look very promising and there is a great future work potential based on them.
机译:智能电网范例的主要挑战是实现电能供需之间的紧张平衡。一种解决这一挑战的当代方法是使用自主经纪人代理商。这些智能实体能够通过提供关税,以分别在新的能源市场机制内购买或销售能源来互动,以便在新的能源市场机制:关税市场。代理商在他们的投资组合中提供级别供应和需求,这符合其利润最大化。在这项工作中,我们研究了为Mertacor Broker-Agent实施的利润优化策略,始终考虑其客户的定制需求。该代理商在Powertac竞争平台中开发和测试,为研究关税市场提供了强大的基准。为了履行代理人的目标,实施了两种类型的策略:(Ⅰ)关税形成策略和(Ⅱ)关税更新策略。这两个策略都被视为优化问题,经纪人的目标是最大化其利润,并保持可接受的客户市场份额。为此,采用粒子群优化技术。结果看起来非常有前途,基于它们存在未来的未来工作潜力。

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