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Spatial-temporal Data Science in the Real World

Research Seminar Series

20251230Harry KaiHo ChanPaul Event image
  • Date

    30 Dec 2025

  • Organiser

    Department of Industrial and Systems Engineering, PolyU

  • Time

    14:30 - 16:00

  • Venue

    CF303  

Speaker

Prof. Harry Kai-Ho Chan

Remarks

If you have enquiries regarding E-certificate after the seminar, please contact david.kuo@polyu.edu.hk.

20251230Harry KaiHo ChanPaul Poster

Summary

Recent advances in data science and machine learning for spatial data are reshaping how we model, analyze and understand the world around us. By leveraging rich positioning data and sensor observations, data-driven models can support more informed and context-aware decision-making and more accurate predictions. In this talk, I will share some of my projects in spatial and spatio-temporal data science, including missing data imputation, data mining, and policy-oriented analytics. I will highlight the motivations behind these studies, and show how tackling real-world challenges has led to methodological innovations and practical insights.

Keynote Speaker

Prof. Harry Kai-Ho Chan

Prof. Harry Kai-Ho Chan

Lecturer in Data Science
School of Information, Journalism and Communication, The University of Sheffield, United Kingdom

Harry Kai-Ho Chan received the PhD degree in Computer Science from the Hong Kong University of Science and Technology in 2019. He was a Postdoc researcher at Roskilde University, Denmark, from 2020 to 2022. He is currently the Lecturer in Data Science (equivalent to Assistant Professor) at the University of Sheffield, United Kingdom. His research interests include databases, data mining and analytics, machine learning and data visualization, with a focus on spatial and spatio-temporal data. He has served as the PC members of VLDB, ICDE, KDD, WWW, CIKM, SIGSPATIAL, ICDM etc, and the journal referee of TKDE, VLDBJ, TKDD etc. He is the registration co-chair for PAKDD 2026, and served as Web co-chair for SSTD 2025.

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