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Dynamic Equivalent Modeling for Microgrids Based on LSTM Recurrent Neural Network

机译:基于LSTM经常性神经网络的微电网动态等效建模

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An equivalent modeling method of microgrid based on LSTM recurrent neural network suggests in this paper. The advantage of neural network in dealing with nonlinear systems is utilized to solve the equivalent modeling problem of grid-connected microgrids. The equivalent model of microgrid based on LSTM recurrent neural network is established by collecting the current and power data of the common coupling point(PCC) between microgrid and distribution grid. According to the modeling requirement, design a neural network structure with 3 inputs and 2 outputs. In the process of training LSTM recurrent neural network, the current and power of the PCC are taken as the input and output of the network respectively, and the switching power of the microgrid and the distribution grid is taken as the evaluation index of the accuracy of the equivalent model. The proposed LSTM microgrid equivalent model is proved to be applicable and accurate by constructing a microgrid model comprising distributed generation systems in PSCAD4.5.
机译:本文基于LSTM复发性神经网络的微电网等等效建模方法。利用神经网络处理非线性系统的优点来解决网格连接的微电网的等效建模问题。基于LSTM经常性神经网络的微电网等同模型通过收集微电网和分布网格之间的公共耦合点(PCC)的电流和功率数据来建立。根据建模要求,设计具有3个输入和2个输出的神经网络结构。在训练LSTM经常性神经网络的过程中,PCC的电流和功率分别作为网络的输入和输出,以及微电网的开关功率和分布网格被视为评估指标的准确性等同的模型。通过构建包括PSCAD4.5中的分布式发电系统的微电网模型,证明了所提出的LSTM微电网等效模型是适用和准确的。

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