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Artificial life and online flows optimisation in energy networks

机译:能源网络中的人工生命和在线流量优化

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In this paper we propose a methodology to optimally manage and online control energy flows over a power network. Such a methodology is essentially based on a artificial life environment. Exploiting some results achieved in the field of evolutionary computing and artificial life environments, the proposed method is intended to combine the ability to select the current best configuration for the network flows with the capability of building an online model for the performance of the network by means of continuous learning the current situation, adapting its internal actions and updating the suggested optimal solution, which controls the process. With the aim to investigate in the future the possibility of a partially distributed control system, we firstly define the concept of energy district. Hence, we formulate the problem of the online optimal flows management in this type of energy power networks and we finally present some results about the application of the evolutionary control to a real benchmark, the network of the "Casaccia" Research Centre, when critic operating conditions are simulated.
机译:在本文中,我们提出了一种方法,可以最佳地管理和在线控制电网上的能量流。这种方法基本上是基于人工生活环境。利用在进化计算和人工生命环境领域中取得的一些成果,提出的方法旨在将为网络流选择当前最佳配置的能力与通过以下方式为网络性能建立在线模型的能力结合起来:不断学习当前状况,调整其内部行为并更新建议的最佳解决方案(控制过程)的过程。为了研究将来使用部分分布式控制系统的可能性,我们首先定义了能源区的概念。因此,我们提出了这种类型的能源网络中在线最优流量管理的问题,并最终提出了将进化控制应用于实际基准(“卡萨恰”研究中心的网络)的一些结果,当批评家操作时条件是模拟的。

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