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Input feature selection for real-time transient stability assessment for artificial neural network (ANN) using ANN sensitivity analysis

机译:利用ANN敏感性分析,对人工神经网络(ANN)实时瞬态稳定性评估的输入特征选择

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This paper presents a method for the selection of the input parameters, and their ranking for feedforward artificial neural networks (FF-ANN) applications in transient stability assessment. The method utilizes feedforward artificial neural networks to estimate the sensitivity of the output to all inputs. An evaluation of most of the common inputs used by the researchers is made. Sensitivity analysis using ANN is performed on key parameters to obtain the optimal ranking of the ANN input features. The critical clearing time (CCT) is used to assess the transient stability of the system. The proposed method is applied to a simple power system to illustrate the concept. The preliminary results show that the proposed sensitivity factors are converging to stable values.
机译:本文介绍了选择输入参数的方法,以及它们对瞬态稳定性评估中的前馈人工神经网络(FF-ANN)应用的排名。该方法利用前馈人工神经网络来估计输出对所有输入的灵敏度。对研究人员使用的大多数共同投入的评估。使用ANN的灵敏度分析在关键参数上执行以获得ANN输入功能的最佳排名。关键清算时间(CCT)用于评估系统的瞬态稳定性。所提出的方法应用于简单的电力系统以说明概念。初步结果表明,所提出的敏感因素正在收敛到稳定的值。

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