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Neural networks and pseudo-measurements for real-time monitoring of distribution systems

机译:用于配电系统实时监控的神经网络和伪测量

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摘要

A state estimation scheme for power distribution systems, based on artificial neural networks (ANNs), is proposed. Despite the influence of measurement uncertainties, it allows quantities describing the distribution system operation to be identified on-line, thereby constituting neural "pseudo-instruments". Details of the design and optimization of such a neural scheme are discussed, underlining the importance of ANN tuning to achieve greater levels of accuracy. The performance obtained in a study case, for different types of operating conditions, was analyzed and confirmed the feasibility and the robustness of the proposed approach. This neural estimation scheme proves to be preferable to traditional mathematical approaches whenever there are online requirements, due to the typically high operating speed of ANNs.
机译:提出了一种基于人工神经网络的配电系统状态估计方案。尽管存在测量不确定性的影响,但它仍允许在线识别描述配电系统运行的数量,从而构成神经“伪仪器”。讨论了这种神经方案的设计和优化细节,强调了ANN调整对实现更高准确度的重要性。分析研究案例中针对不同类型的操作条件获得的性能,并证实了所提出方法的可行性和鲁棒性。每当有在线需求时,由于人工神经网络的典型高运行速度,这种神经估计方案被证明比传统的数学方法更可取。

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