Online Indices for Predictive Top-k Entity and Aggregate Queries on Knowledge Graphs
Yan Li, Tingjian Ge, Cindy X. Chen
摘要
Knowledge graphs have seen increasingly broad applications. However, they are known to be incomplete. We define the notion of a virtual knowledge graph which extends a knowledge graph with predicted edges and their probabilities. We focus on two important types of queries: top-k entity queries and aggregate queries. To improve query processing efficiency, we propose an incremental index on top of low dimensional entity vectors transformed from network embedding vectors. We also devise query processing algorithms with the index. Moreover, we provide theoretical guarantees of accuracy, and conduct a systematic experimental evaluation. The experiments show that our approach is very efficient and effective. In particular, with the same or better accuracy guarantees, it is one to two orders of magnitude faster in query processing than the closest previous work which can only handle one relationship type. 1057
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- MMKGR: Multi-hop Multi-modal Knowledge Graph ReasoningShangfei Zheng, Weiqing Wang, Jianfeng Qu, Hongzhi Yin 等ICDE 2023 · 被引用 40 次
- Aggregate Queries on Knowledge Graphs: Fast Approximation with Semantic-aware SamplingYuxiang Wang, Arijit Khan, Xiaoliang Xu, Jiahui Jin 等ICDE 2022 · 被引用 20 次
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