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HD-GEN: A Software System for Large-Scale Human Mobility Data Generation Based on Patterns of Life

  • Hossein Amiri
  • , Richard Yang
  • , Shiyang Ruan
  • , Joon Seok Kim
  • , Hamdi Kavak
  • , Andrew Crooks
  • , Dieter Pfoser
  • , Carola Wenk
  • , Andreas Zufle
  • Emory University
  • George Mason University
  • Tulane University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Understanding individual human mobility is critical for a wide range of applications. Real-world trajectory datasets provide valuable insights into actual movement behaviors but are often constrained by data sparsity and participant bias. Synthetic data, by contrast, offer scalability and flexibility but frequently lack realism. To address this gap, we introduce a comprehensive software pipeline for generating, calibrating, and processing large-scale human mobility datasets that integrate the realism of empirical data with the control and extensibility of Patterns-of-Life simulations. Our system consists of three integrated components. First, a genetic algorithm-based calibration module fine-tunes simulation parameters to align with real-world mobility characteristics, such as daily trip counts and radius of gyration, enabling realistic behavioral modeling. Second, a data generation engine constructs geographically grounded simulations using OpenStreetMap data to produce diverse mobility logs. Third, a data processing suite transforms raw simulation logs into structured formats suitable for downstream applications, including model training and benchmarking.

Original languageEnglish
Title of host publication33rd ACM SIGSPATIAL International Conference on Advances in Geographic Information Systems, ACM SIGSPATIAL 2025
EditorsMohamed Mokbel, Shashi Shekar, Andreas Zufle, Yao-Yi Chiang, Maria Luisa Damiani, Moustafa Youssef
PublisherAssociation for Computing Machinery, Inc
Pages407-410
Number of pages4
ISBN (Electronic)9798400720864
DOIs
StatePublished - Dec 12 2025
Event33rd ACM SIGSPATIAL International Conference on Advances in Geographic Information Systems, ACM SIGSPATIAL 2025 - Minneapolis, United States
Duration: Nov 3 2025Nov 6 2025

Publication series

Name33rd ACM SIGSPATIAL International Conference on Advances in Geographic Information Systems, ACM SIGSPATIAL 2025

Conference

Conference33rd ACM SIGSPATIAL International Conference on Advances in Geographic Information Systems, ACM SIGSPATIAL 2025
Country/TerritoryUnited States
CityMinneapolis
Period11/3/2511/6/25

Keywords

  • geolife
  • patterns of life
  • realistic trajectory datasets
  • simulation

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