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ACL
2015

Semantic Parsing via Staged Query Graph Generation: Question Answering with Knowledge Base

8 years 13 days ago
Semantic Parsing via Staged Query Graph Generation: Question Answering with Knowledge Base
We propose a novel semantic parsing framework for question answering using a knowledge base. We define a query graph that resembles subgraphs of the knowledge base and can be directly mapped to a logical form. Semantic parsing is reduced to query graph generation, formulated as a staged search problem. Unlike traditional approaches, our method leverages the knowledge base in an early stage to prune the search space and thus simplifies the semantic matching problem. By applying an advanced entity linking system and a deep convolutional neural network model that matches questions and predicate sequences, our system outperforms previous methods substantially, and achieves an F1 measure of 52.5% on the WEBQUESTIONS dataset.
Wen-tau Yih, Ming-Wei Chang, Xiaodong He, Jianfeng
Added 13 Apr 2016
Updated 13 Apr 2016
Type Journal
Year 2015
Where ACL
Authors Wen-tau Yih, Ming-Wei Chang, Xiaodong He, Jianfeng Gao
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