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Learning for System Identification of NDAE-modeled Power Systems

By Wenjie Mei and others
System identification through learning approaches is emerging as a promising strategy for understanding and simulating dynamical systems, which nevertheless faces considerable difficulty when confronted with power systems modeled by differential-algebraic equations (DAEs). This paper introduces a neural network (NN) framework for effectively learning and simulating solution trajectories of DAEs. The... Show more
December 12, 2023
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Learning for System Identification of NDAE-modeled Power Systems
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