A Method Dealing with the Class Imbalance Problem in Transient Stability Assessment: Combining ADCHSMOTE-TL and Lifting Dimension Linear Regression
编号:91 访问权限:仅限参会人 更新:2023-11-20 13:45:41 浏览:590次 口头报告

报告开始:2023年12月09日 16:30(Asia/Shanghai)

报告时间:15min

所在会场:[S7] Power system protection and control [S7] Power system protection and control

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摘要
Transient stability assessment datasets (TSA) are often imbalanced, a characteristic that negatively affects the performance of machine learning classifiers. In this work, a novel data-level method combining ADCHSMOTE-TL and lifting dimension linear regression is proposed to restore balance in imbalanced datasets of TSA. It consists of three major components: 1) an oversampling method based on convex hull theory; 2) a way to eliminate the generated samples of the non-target class using the Tomek links technique; and 3) a data-driven approach for efficient calculation of power flow equations. An essential advantage of the method proposed over the existing oversampling techniques is that it considers the nonlinear coupling between features in the TSA data. Case studies on the IEEE39 system have demonstrated that the proposed method can enhance diversity in sample generation, decrease the generation of non-target class samples, and improve the accuracy of the assessment model in detecting samples of transient instability.
关键词
class imbalance, machine learning, oversampling, power system, transient stability assessmen
报告人
Tao Liu
postgraduate Huazhong University of Science and Technology

稿件作者
Tao Liu Huazhong University of Science and Technology
Jinfu Chen Huazhong University of Science and Technology
Defu Cai Electric Power Research Institute
Erxi Wang Electric Power Research Institute
Dian Xu Electric Power Research Institute
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重要日期
  • 会议日期

    12月08日

    2023

    12月10日

    2023

  • 11月01日 2023

    初稿截稿日期

  • 12月10日 2023

    注册截止日期

主办单位
IEEE IAS
承办单位
Southwest Jiaotong University (SWJTU)
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