Explainable Hopfield Neural Networks Using an Automatic Video-Generation System

نویسندگان

چکیده

Hopfield Neural Networks (HNNs) are recurrent neural networks used to implement associative memory. They can be applied pattern recognition, optimization, or image segmentation. However, sometimes it is not easy provide the users with good explanations about results obtained them due mainly large number of changes in state neurons (and their weights) produced during a problem machine learning. There currently limited techniques visualize, verbalize, abstract HNNs. This paper outlines how we construct automatic video-generation systems explain its execution. work constitutes novel approach obtain explainable artificial intelligence general and HNNs particular building on theory data-to-text software visualization approaches. We present complete methodology build these kinds systems. Software architecture also designed, implemented, tested. Technical details implementation detailed explained. apply our creating explainer video execution small recognition problem. Finally, several aspects videos generated evaluated (quality, content, motivation design/presentation).

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ژورنال

عنوان ژورنال: Applied sciences

سال: 2021

ISSN: ['2076-3417']

DOI: https://doi.org/10.3390/app11135771