cs.AI updates on arXiv.org 07月22日
AI-Based Impedance Encoding-Decoding Method for Online Impedance Network Construction of Wind Farms
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本文提出基于AI的阻抗编码解码方法,简化风电场阻抗网络模型在线构建过程,提高阻抗曲线传输效率,实现准确重建。

arXiv:2507.14187v1 Announce Type: cross Abstract: The impedance network (IN) model is gaining popularity in the oscillation analysis of wind farms. However, the construction of such an IN model requires impedance curves of each wind turbine under their respective operating conditions, making its online application difficult due to the transmission of numerous high-density impedance curves. To address this issue, this paper proposes an AI-based impedance encoding-decoding method to facilitate the online construction of IN model. First, an impedance encoder is trained to compress impedance curves by setting the number of neurons much smaller than that of frequency points. Then, the compressed data of each turbine are uploaded to the wind farm and an impedance decoder is trained to reconstruct original impedance curves. At last, based on the nodal admittance matrix (NAM) method, the IN model of the wind farm can be obtained. The proposed method is validated via model training and real-time simulations, demonstrating that the encoded impedance vectors enable fast transmission and accurate reconstruction of the original impedance curves.

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AI 风电场 阻抗网络模型 在线构建 阻抗曲线
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