REPOSE: Distributed Top-k Trajectory Similarity Search with Local Reference Point Tries
Bolong Zheng, Lianggui Weng, Xi Zhao, Kai Zeng, Xiaofang Zhou, Christian S. Jensen
摘要
Trajectory similarity computation is a fundamental component in a variety of real-world applications, such as ridesharing, road planning, and transportation optimization. Recent advances in mobile devices have enabled an unprecedented increase in the amount of available trajectory data such that efficient query processing can no longer be supported by a single machine. As a result, means of performing distributed in-memory trajectory similarity search are called for. However, existing distributed proposals either suffer from computing resource waste or are unable to support the range of similarity measures that are being used. We propose a distributed in-memory management framework called REPOSE for processing top-k trajectory similarity queries on Spark. We develop a reference point trie (RP-Trie) index to organize trajectory data for local search. In addition, we design a novel heterogeneous global partitioning strategy to eliminate load imbalance in distributed settings. We report on extensive experiments with real-world data that offer insight into the performance of the solution, and show that the solution is capable of outperforming the state-of-the-art proposals.
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- GRLSTM: Trajectory Similarity Computation with Graph-Based Residual LSTMSilin Zhou, Jing Li, Hao Wang, Shuo Shang 等AAAI 2023 · 被引用 48 次
- Trajectory Similarity Measurement: An Efficiency PerspectiveYanchuan Chang, Egemen Tanin, Gao Cong, Christian S. Jensen 等VLDB 2024 · 被引用 28 次
- TraSS: Efficient Trajectory Similarity Search Based on Key-Value Data StoresHuajun He, Ruiyuan Li, Sijie Ruan, Tianfu He 等ICDE 2022 · 被引用 22 次
- Exact and Efficient Similar Subtrajectory Search: Integrating Constraints and SimplificationLiwei Deng, Fei Wang, Tianfu Wang, Yan Zhao 等ICDE 2025 · 被引用 1 次
- OneDB: A Distributed Multi-Metric Data Similarity Search SystemTang Qian, Yifan Zhu, Lu Chen, Xiangyu Ke 等KDD 2026
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