• Resumo

    Analysis of the impact of parameters in TextGCN

    Data de publicação: 29/04/2021

    Deep learning models uses many parameters to work properly. As
    they become more complex, the authors of these novel models cannot
    explore in their papers the variation of each parameter of their
    model. Therefore, this work describes an analysis of the impact of
    four different parameters (Early Stopping, Learning Rate, Dropout,
    and Hidden 1) in the TextGCN Model. This evaluation used four
    datasets considered in the original TextGCN publication, obtaining
    as a side-effect small improvements in the results of three of them.
    The most relevant conclusion is that these parameters influence the
    convergence and accuracy, although they individually do not constitute
    strong support when aiming to improve the model’s results
    reported as the state-of-the-art.

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