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An Efficient Clustering Algorithm Based on Grid Density and its Application in Human Mobility Analysis

  • Chonghui Guo*
  • , Zhenna Na
  • , Leilei Sun
  • , Xiaoguang Chen
  • *此作品的通讯作者
  • Dalian University of Technology
  • Tsinghua University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Density Peaks based Clustering (DPC) is a recently proposed clustering algorithm, which is realized by first selecting some representative objects named density peaks, then assigning each remaining objects to one of the density peaks. Different from classical centroid-based clustering algorithms, DPC can find arbitrary-shaped clusters, and no predefined initial centroid set is required. However, a key disadvantage of the DPC lies in its computational complexity. DPC requires computation of two indicators for each data object. When the number of data increases, the computational complexity of DPC grows dramatically, which limits the application in many real-world problems. For example, when we use the taxi drop-offs to analyze the human mobility, DPC cannot be directly used due to the large number of taxi drop-off records. This paper proposes an efficient DPC algorithm based on grid density. By partitioning the effective data space into a desirable number of grids, two indicators of each grid are computed, as the number of grids is much smaller than that of data objects, a great amount of computational time and memory space can be saved. In experiments, we compare Grid-DPC with K-centers, affinity propagation and DPC on both synthetic and publicly available datasets. Results demonstrate that Grid-DPC can achieve comparable clustering performance with the classical DPC. We also employee Grid-DPC to analyze large-scale taxi records of a city in China and of New York Manhattan area. The discovered human mobility zones have great potential in urban planning and can help taxi drivers make better routing decisions.

源语言英语
主期刊名Integrated Uncertainty in Knowledge Modelling and Decision Making 6th International Symposium, IUKM 2018, Proceedings
编辑Dang Hung Tran, Thierry Denoeux, Masahiro Inuiguchi, Van-Nam Huynh
出版商Springer Verlag
87-100
页数14
ISBN(印刷版)9783319754284
DOI
出版状态已出版 - 2018
已对外发布
活动6th International Symposium on Integrated Uncertainty in Knowledge Modelling and Decision Making, IUKM 2018 - Hanoi, 越南
期限: 15 3月 201817 3月 2018

出版系列

姓名Lecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
10758 LNAI
ISSN(印刷版)0302-9743
ISSN(电子版)1611-3349

会议

会议6th International Symposium on Integrated Uncertainty in Knowledge Modelling and Decision Making, IUKM 2018
国家/地区越南
Hanoi
时期15/03/1817/03/18

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