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    Explainable Hopfield Neural Networks using an automatic video-generation system

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    Explainable Hopfield Neural Networks Using an Automatic Video-Generation System.pdf (3.095Mb)
    Date
    2021
    Author
    Rubio Manzano, Clemente
    Segura Navarrete, Alejandra
    Martínez Araneda, Claudia
    Vidal Castro, Christian
    Publisher
    MDPI
    Description
    Artículo de publicación ISI
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    Abstract
    Hopfield Neural Networks (HNNs) are recurrent neural networks used to implement associative memory. They can be applied to pattern recognition, optimization, or image segmentation. However, sometimes it is not easy to provide the users with good explanations about the results obtained with them due to mainly the large number of changes in the state of neurons (and their weights) produced during a problem of machine learning. There are currently limited techniques to visualize, verbalize, or abstract HNNs. This paper outlines how we can construct automatic video-generation systems to explain its execution. This work constitutes a novel approach to obtain explainable artificial intelligence systems in general and HNNs in particular building on the theory of data-to-text systems and software visualization approaches. We present a complete methodology to build these kinds of systems. Software architecture is also designed, implemented, and tested. Technical details about the implementation are also detailed and explained. We apply our approach to creating a complete explainer video about the execution of HNNs on a small recognition problem. Finally, several aspects of the videos generated are evaluated (quality, content, motivation and design/presentation).
    URI
    http://repositoriodigital.ucsc.cl/handle/25022009/2670
    Ir a texto completo en URI:
    https://doi.org/10.3390/app11135771
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