Sensing for Disasters Solutions
Advanced AI-Enhanced Geospatial Sensing for Disaster Management
This project integrates advanced AI with geospatial analytics for real-time, high-precision natural disaster sensing. It leverages three AI models, with the aim of enhancing system robustness, maximising state estimation accuracy in sensor-scarce environments, and optimising sensor deployment.
The first model detects sensor anomalies, the second interprets geographic data for precise state estimations, and the third innovatively predicts the maximum mean-square error (MSE) to evaluate sensor deployment. This evolutionary algorithm-based optimisation framework tackles large-scale sensor network management, significantly improving disaster preparedness and responsiveness in New South Wales.
Project lead:
Dr Wanchun Liu – University of Sydney
Funding:
$40,000
Type of project:
Fundamental research
Collaborators: University of Technology Sydney and Pivotel Satellite
Project duration:
12 months
Project status:
In progress
Final presentation:
December 2025
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