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- W4316171087 abstract "Question answering is one of the well-studied tasks in the natural language processing(NLP) community, which aims to secure an answer span from a given document and query. Previous attempts decomposed this task into two subtask, i.e., understanding the semantic information of the given document and query, then finding a reasonable textual span within the document as the corresponding answer. However, one of the major drawbacks of the previous works is lack of extracting sufficient semantics that is buried within the input. To alleviate the issue above, in this paper, we propose a global-local attention flow model to take advantage of the semantic features from different aspects and reduce the redundancy of model encoder. Experimental results on the SQUAD dataset shows that our model outperforms the baseline models, which proves the effectiveness of the proposed method." @default.
- W4316171087 created "2023-01-15" @default.
- W4316171087 creator A5088640940 @default.
- W4316171087 date "2022-10-21" @default.
- W4316171087 modified "2023-10-14" @default.
- W4316171087 title "GLAF: Global-and-Local Attention Flow Model for Question Answering" @default.
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- W4316171087 doi "https://doi.org/10.1145/3571560.3571570" @default.
- W4316171087 hasPublicationYear "2022" @default.
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