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SeXAI: A Semantic Explainable Artificial Intelligence Framework

机译:SEXAI:一个语义解释的人工智能框架

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The interest in Explainable Artificial Intelligence (XAI) research is dramatically grown during the last few years. The main reason is the need of having systems that beyond being effective are also able to describe how a certain output has been obtained and to present such a description in a comprehensive manner with respect to the target users. A promising research direction making black boxes more transparent is the exploitation of semantic information. Such information can be exploited from different perspectives in order to provide a more comprehensive and interpretable representation of AI models. In this paper, we present the first version of SeXAI, a semantic-based explainable framework aiming to exploit semantic information for making black boxes more transparent. After a theoretical discussion, we show how this research direction is suitable and worthy of investigation by showing its application to a real-world use case.
机译:在过去几年中,对可解释的人工智能(XAI)研究的兴趣显着发展。 主要原因是需要具有超越有效的系统,还能够描述如何获得某个输出并以综合方式对目标用户提供这种描述。 一个有前途的研究方向制作黑匣子更透明的是利用语义信息。 这些信息可以从不同的角度利用,以便提供更全面的和可解释的AI模型表示。 在本文中,我们展示了SEXAI的第一个版本,一种基于语义的可解释的框架,旨在利用语义信息,使黑匣子更加透明。 在理论上的讨论之后,我们通过将其应用于真实用例显示其应用,我们展示了如何适合和值得调查。

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