WildfireX-SLAM: A Large-scale Low-altitude RGB-D Dataset for Wildfire SLAM and Beyond
Zhicong Sun, Jacqueline Lo, Jinxing Hu

TL;DR
WildfireX-SLAM introduces a large-scale synthetic dataset for SLAM in wildfire and forest environments, enabling research in large-scale outdoor SLAM with diverse environmental conditions.
Contribution
The paper presents WildfireX-SLAM, a comprehensive synthetic dataset for large-scale forest SLAM, filling the gap of high-quality data for wildfire and forest scene applications.
Findings
Benchmark reveals challenges of 3DGS-based SLAM in forests.
Dataset supports various environmental conditions for robust SLAM research.
Potential for improving wildfire emergency response and forest management.
Abstract
3D Gaussian splatting (3DGS) and its subsequent variants have led to remarkable progress in simultaneous localization and mapping (SLAM). While most recent 3DGS-based SLAM works focus on small-scale indoor scenes, developing 3DGS-based SLAM methods for large-scale forest scenes holds great potential for many real-world applications, especially for wildfire emergency response and forest management. However, this line of research is impeded by the absence of a comprehensive and high-quality dataset, and collecting such a dataset over real-world scenes is costly and technically infeasible. To this end, we have built a large-scale, comprehensive, and high-quality synthetic dataset for SLAM in wildfire and forest environments. Leveraging the Unreal Engine 5 Electric Dreams Environment Sample Project, we developed a pipeline to easily collect aerial and ground views, including ground-truth…
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Taxonomy
TopicsRobotics and Sensor-Based Localization · UAV Applications and Optimization · Fire Detection and Safety Systems
