Knowledge-aware Attentive Neural Network for Ranking Question Answer Pairs

被引:38
|
作者
Shen, Ying [1 ]
Deng, Yang [1 ]
Yang, Min [2 ]
Li, Yaliang [3 ]
Du, Nan [3 ]
Fan, Wei [3 ]
Lei, Kai [1 ]
机构
[1] Peking Univ, Sch Elect & Comp Engn, Shenzhen Grad Sch, Beijing, Peoples R China
[2] Chinese Acad Sci, Shenzhen Inst Adv Technol, Beijing, Peoples R China
[3] Tencent Med AI Lab, Beijing, Peoples R China
来源
基金
中国国家自然科学基金;
关键词
D O I
10.1145/3209978.3210081
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Ranking question answer pairs has attracted increasing attention recently due to its broad applications such as information retrieval and question answering (QA). Significant progresses have been made by deep neural networks. However, background information and hidden relations beyond the context, which play crucial roles in human text comprehension, have received little attention in recent deep neural networks that achieve the state of the art in ranking QA pairs. In the paper, we propose KABLSTM, a Knowledge-aware Attentive Bidirectional Long Short-Term Memory, which leverages external knowledge from knowledge graphs (KG) to enrich the representational learning of QA sentences. Specifically, we develop a context-knowledge interactive learning architecture, in which a context-guided attentive convolutional neural network (CNN) is designed to integrate knowledge embeddings into sentence representations. Besides, a knowledge-aware attention mechanism is presented to attend interrelations between each segments of QA pairs. KABLSTM is evaluated on two widely-used benchmark QA datasets: WikiQA and TREC QA. Experiment results demonstrate that KABLSTM has robust superiority over competitors and sets state-of-the-art.
引用
收藏
页码:901 / 904
页数:4
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