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Modified VS3-NET for Reading Comprehension and Question Answering with No-Answers

机译:修改了VS 3 -NET,用于阅读理解和问题,否则没有答案

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Span-based machine reading comprehension of question answering (MRQA) is basically composed of an encoding module for the question and passage respectively, and a question-passage matching module to locate the answer in the passage using an attention mechanism. Recently, the newly published SQuAD 2.0 is a span-based MRQA for dealing with unanswerable questions. In this paper, we solve three issues of current practices in SQuAD 2.0: (1) modules that encode slowly, (2) type-unaware questions encoding module with unanswerable questions, and (3) a non-compositional matching module. We propose a modified VS3-NET model. This modified model is based on co-attention with contextual embedding using simple recurrent unit (SRU) instead of other recurrent neural network (RNN) to speed up training and test while retaining the recurrency of the model. Moreover, it uses variational inference to infer the question type with the unanswerable questions, uses a hierarchical matching and scoring module, and uses a gated module for features and a context vector. Experiments show that the modified VS3-NET provides outstanding improvements over the base model performance and produces performances competitive with the state-of-the-art models on SQuAD v2.0.
机译:基于跨度的机器阅读理解问题应答(MRQA)基本上分别由问题和段落的编码模块组成,以及使用注意机制来定位段落中的答案的问题通道匹配模块。最近,新发布的小队2.0是一个基于跨度的MRQA,用于处理未经批准的问题。在本文中,我们在小队中的3.0中解决了三个当前实践的问题:(1)编码缓慢的模块,(2)无答复问题编码模块的类型 - (2)和(3)非组合匹配模块。我们提出了一个修改过的vs 3 -NET模型。这种修改的模型基于使用简单的复发单元(SRU)而不是其他经常性神经网络(RNN)来加速培训和测试的共同关注,同时保持模型的复发性。此外,它使用变分推理来推断出不可批售的问题的问题类型,使用分层匹配和评分模块,并使用GETED模块进行特征和上下文向量。实验表明修改过的vs 3 -NET提供了对基础模型性能的突出改进,并产生了与队长v2.0的最先进模型竞争的表演。

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