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Explaining Trained Neural Networks with Semantic Web Technologies: First Steps

11 October 2017
Md Kamruzzaman Sarker
Ning Xie
Derek Doran
M. Raymer
Pascal Hitzler
    3DV
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Abstract

The ever increasing prevalence of publicly available structured data on the World Wide Web enables new applications in a variety of domains. In this paper, we provide a conceptual approach that leverages such data in order to explain the input-output behavior of trained artificial neural networks. We apply existing Semantic Web technologies in order to provide an experimental proof of concept.

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