Semantic Framework based Query Generation for Temporal Question Answering over Knowledge Graphs
Wentao Ding, Hao Chen, Huayu Li, Yuzhong Qu
Abstract
Answering factual questions with temporal intent over knowledge graphs (temporal KGQA) attracts rising attention in recent years. In the generation of temporal queries, existing KGQA methods ignore the fact that some intrinsic connections between events can make them temporally related, which may limit their capability. We systematically analyze the possible interpretation of temporal constraints and conclude the interpretation structures as the Semantic Framework of Temporal Constraints, SF-TCons. Based on the semantic framework, we propose a temporal question answering method, SF-TQA, which generates query graphs by exploring the relevant facts of mentioned entities, where the exploring process is restricted by SF-TCons. Our evaluations show that SF-TQA significantly outperforms existing methods on two benchmarks over different knowledge graphs.
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Install the CLIlune papers fulltext a21dbcef-9faf-4fc6-817f-25c13060177cCited by top-tier papers6
- Faithful Temporal Question Answering over Heterogeneous SourcesZhen Jia, Philipp Christmann, Gerhard WeikumWWW 2024 · 20 citations
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- Timeline-based Sentence Decomposition with In Context Learning for Temporal Fact ExtractionJianhao Chen, Haoyuan Ouyang, Junyang Ren, Wentao Ding et al.ACL 2024 · 3 citations
- RTQA : Recursive Thinking for Complex Temporal Knowledge Graph Question Answering with Large Language ModelsZhaoyan Gong, Juan Li, Zhiqiang Liu, Lei Liang et al.EMNLP 2025 · 1 citation
- Temporal Evidence Chain for Temporal Knowledge Graph Question Answering with Large Language ModelsShihao Liu, Xiaofei Zhou, Bo Wang, Geyuan ZhangACL 2026
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