Question Directed Graph Attention Network for Numerical Reasoning over Text

Conference on Empirical Methods in Natural Language Processing(2020)

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摘要
Numerical reasoning over texts, such as addition, subtraction, sorting and counting, is a challenging machine reading comprehension task, since it requires both natural language understanding and arithmetic computation. To address this challenge, we propose a heterogeneous graph representation for the context of the passage and question needed for such reasoning, and design a question directed graph attention network to drive multi-step numerical reasoning over this context graph. Our model, which combines deep learning and graph reasoning, achieves remarkable results in benchmark datasets such as DROP.
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关键词
attention network,numerical reasoning,graph
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