P1-KAN an effective Kolmogorov Arnold Network for function approximation

AmazUtah_NLP at SemEval-2024 Task 9: A MultiChoice Question Answering System for Commonsense Defying Reasoning



arXiv:2410.03801v1 Announce Type: new
Abstract: A new Kolmogorov-Arnold network (KAN) is proposed to approximate potentially irregular functions in high dimension. We show that it outperforms multilayer perceptrons in terms of accuracy and converges faster. We also compare it with ReLU-KAN, a recently proposed network: it is more time consuming than ReLU-KAN, but more accurate.



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By stp2y

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