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CDMap: Complementarity and Disparity-aware Map Inference Quality Enhancement

  • Wenyu Wu
  • , Jiali Mao*
  • , Jiafan Liu
  • , Yixiao Tong
  • , Lisheng Zhao
  • , Shaosheng Cao
  • , Jilin Hu
  • , Aoying Zhou
  • , Lin Zhou
  • *此作品的通讯作者
  • East China Normal University
  • Shanghai Engineering Research Center of Big Data Management
  • DiDi

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Due to the high coverage and low cost nature of trajectory data, an increasing number of works have utilized trajectory data to infer maps. Nevertheless, limited by the sparse trajectories in some areas and intermingled trajectories on parallel roads, the existing inferring methods still face a high missed detection rate of the roads. In view of that, we propose a Complementarity and Disparity-aware Map Inference Framework, called CDMap, consisting of grid dual feature extraction, contextual road difference-embedded grid representation, dual feature complementary network-based road topology prediction and parallel roads disparity-enhanced model optimization. To improve the prediction accuracy of the roads in areas with sparse trajectories, we extract point-wise features and segment-wise features separately for the grids, then design a dual feature complementary network to adaptively model the importance of both types of features in different road scenarios. Further, to proliferate the detection accuracy of parallel roads, we incorporate the contextual roads' differences between parallel roads into grid representations, then put forward a parallel roads disparity-enhanced model optimization strategy. Extensive comparative experiments conducted on three real-world datasets demonstrate the superiority of CDMap over the state-of-the-art methods, especially by achieving the most significant reduction in missed detection rate (30.23%) on the trajectory data collected from DidiChuxing platform.

源语言英语
主期刊名Proceedings - 2025 IEEE 41st International Conference on Data Engineering, ICDE 2025
出版商IEEE Computer Society
4156-4168
页数13
ISBN(电子版)9798331536039
DOI
出版状态已出版 - 2025
活动41st IEEE International Conference on Data Engineering, ICDE 2025 - Hong Kong, 中国
期限: 19 5月 202523 5月 2025

出版系列

姓名Proceedings - International Conference on Data Engineering
ISSN(印刷版)1084-4627
ISSN(电子版)2375-0286

会议

会议41st IEEE International Conference on Data Engineering, ICDE 2025
国家/地区中国
Hong Kong
时期19/05/2523/05/25

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