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Feature Adaptive Generator Model Calibration

机译:具有自适应发电机型号校准

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This paper addresses a key challenge in practical applicability of automatic model calibration, namely determining a reasonable set of parameters from grid events. The proposed approach extracts features from the event data and model validation results based on a change point detection algorithm. A similarity-based parameter screening approach together with weighted nonlinear least square optimization are designed to allow for easy integration of the extracted features. The proposed approach shows superior performance in terms of reasonable parameter choice, response accuracy, and computational speed, based on tests with NERC synthetic data and WECC field data.
机译:本文解决了自动模型校准的实际适用性的关键挑战,即确定来自网格事件的合理参数集。所提出的方法基于改变点检测算法从事件数据和模型验证结果中提取特征。基于相似性的参数筛选方法与加权非线性最小二乘优化一起旨在允许容易地集成提取的特征。基于使用NERC合成数据和WECC现场数据的测试,所提出的方法在合理的参数选择,响应精度和计算速度方面表现出卓越的性能。

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