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Does it care what you asked? Understanding Importance of Verbs in Deep Learning QA System

机译:它关心你问的是什么吗?了解动词在深度学习QA系统中的重要性

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In this paper we present the results of an investigation of the importance of verbs in a deep learning QA system trained on SQuAD data-set. We show that main verbs in questions carry little influence on the decisions made by the system - in over 90% of researched cases swapping verbs for their antonyms did not change system decision. We track this phenomenon down to the insides of the net, analyzing the mechanism of self-attention and values contained in hidden layers of RNN. Finally, we recognize the characteristics of the SQuAD dataset as the source of the problem. Our work refers to the recently popular topic of adversarial examples in NLP, combined with investigating deep net structure.
机译:在本文中,我们介绍了对在课程训练的深度学习QA系统中动词的重要性的结果。我们表明,问题中的主要动词对系统作出的决定影响不大 - 超过90%的研究案例,交换动词的反义词没有改变系统决策。我们将这种现象追溯到网的内部,分析了RNN隐藏层中所含的自我关注和值的机制。最后,我们认识到Squad DataSet的特征作为问题的来源。我们的工作是指NLP中的最近流行的对抗例子,结合调查深网络结构。

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