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Towards making NLG a voice for interpretable Machine Learning

机译:努力使NLG成为可解释机器学习的代名词

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This paper presents a study to understand the issues related to using NLG to humanise explanations from a popular interpretable machine learning framework called LIME. Our study shows that self-reported rating of NLG explanation was higher than that for a non-NLG explanation. However, when tested for comprehension, the results were not as clear-cut showing the need for performing more studies to uncover the factors responsible for high-quality NLG explanations.
机译:本文提出了一项研究,以了解与使用NLG将来自流行的可解释机器学习框架LIME的解释进行人性化相关的问题。我们的研究表明,自我报告的NLG解释评分高于非NLG解释。但是,在进行理解测试时,结果并没有那么明确,表明需要进行更多的研究来揭示造成高质量NLG解释的因素。

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