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International Conference on Spatial Statistics and Predictive Modeling

๐Ÿ“… 18โ€“19 Nov 2026 ๐Ÿ“ London, UK ๐Ÿ‘ค Standard / Listener

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Conference session tracks

Key research areas covered across the sessions โ€” tap a track to read more.

This track focuses on the latest methodologies and innovations in spatial statistics. Researchers are encouraged to present their findings on novel statistical techniques that enhance spatial data analysis.

This session will explore the application of geostatistical methods in environmental research. Topics may include soil contamination, air quality modeling, and ecological assessments.

This track examines the role of GIS analytics in urban development and planning. Contributions should highlight case studies that demonstrate the impact of spatial analysis on urban decision-making.

This session invites papers that delve into spatial data mining approaches and their applications. Researchers are encouraged to discuss algorithms and tools that uncover patterns in spatial datasets.

This track addresses the integration of geoinformatics with big data technologies. Presentations should focus on how large-scale spatial data can be effectively managed and analyzed.

This session will cover predictive modeling techniques specifically tailored for geospatial data. Participants are invited to share their methodologies and results in forecasting spatial phenomena.

This track explores the development and implementation of spatial decision support systems. Papers should discuss frameworks that facilitate informed decision-making using spatial data.

This session focuses on the latest tools and software for geospatial modeling. Contributions should highlight innovative applications and user experiences with these technologies.

This track invites discussions on statistical mapping methodologies and their applications in various fields. Researchers are encouraged to present their work on visualizing spatial data effectively.

This session examines the intersection of GIS and data science, focusing on techniques that integrate spatial and non-spatial data. Papers should highlight innovative approaches to enhance data analysis.

This track explores the integration of artificial intelligence and machine learning within geospatial contexts. Researchers are invited to present their findings on how these technologies can improve spatial analysis and prediction.