Fast Augmentation Algorithms for Network Kernel Density Visualization
Tsz Nam Chan, Zhe Li, Leong Hou U, Jianliang Xu, Reynold Cheng
Abstract
Network kernel density visualization, or NKDV, has been extensively used to visualize spatial data points in various domains, including traffic accident hotspot detection, crime hotspot detection, disease outbreak detection, and business and urban planning. Due to a wide range of applications for NKDV, some geographical software, e.g., ArcGIS, can also support this operation. However, computing NKDV is very time-consuming. Although NKDV has been used for more than a decade in different domains, existing algorithms are not scalable to million-sized datasets. To address this issue, we propose three efficient methods in this paper, namely aggregate distance augmentation (ADA), interval augmentation (IA), and hybrid augmentation (HA), which can significantly reduce the time complexity for computing NKDV. In our experiments, ADA, IA and HA can achieve at least 5x to 10x speedup, compared with the state-of-the-art solutions.
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Install the CLIlune papers fulltext 1a35fda7-3bf8-4f6d-9630-41117beda94eCited by top-tier papers6
- SLAM: Efficient Sweep Line Algorithms for Kernel Density VisualizationTsz Nam Chan, Leong Hou U, Byron Choi, Jianliang XuSIGMOD 2022 · 14 citations
- SWS: A Complexity-Optimized Solution for Spatial-Temporal Kernel Density VisualizationTsz Nam Chan, Pak Lon Ip, Leong Hou U, Byron Choi et al.VLDB 2022 · 14 citations
- SAFE: A Share-and-Aggregate Bandwidth Exploration Framework for Kernel Density VisualizationTsz Nam Chan, Pak Lon Ip, Leong Hou U, Byron Choi et al.VLDB 2022 · 11 citations
- Fast Network K-function-based Spatial AnalysisTsz Nam Chan, Leong Hou U, Yun Peng, Byron Choi et al.VLDB 2022 · 8 citations
- Large-Scale Spatiotemporal Kernel Density VisualizationTsz Nam Chan, Pak Lon Ip, Bojian Zhu, Leong Hou U et al.ICDE 2025 · 6 citations
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