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首页> 外文期刊>IEEE Transactions on Power Systems >Transient stability assessment in longitudinal power systems using artificial neural networks
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Transient stability assessment in longitudinal power systems using artificial neural networks

机译:使用人工神经网络的纵向电力系统暂态稳定性评估

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摘要

Results of the application of artificial neural networks to the problem of transient stability assessment are presented. This technique is applied to a real longitudinal power system that includes discrete supplementary controls. Different representations of the training space patterns and neural networks architectures are investigated. Input variables include topological changes, load and generation levels and contingencies. A special organization of training patterns with a separation by type of contingency is proposed to reduce classification errors. A graphical presentation of results is power system suggested as an aid to help system operators to select preventive control actions.
机译:提出了将人工神经网络应用于暂态稳定性评估问题的结果。此技术应用于包含离散辅助控制的实际纵向动力系统。研究了训练空间模式和神经网络架构的不同表示形式。输入变量包括拓扑更改,负载和生成级别以及突发事件。为了减少分类错误,提出了一种特殊的训练模式组织,并按意外事件类型进行了分隔。电力系统建议以图形方式显示结果,以帮助系统操作员选择预防性控制措施。

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