BRIGHT: A globally distributed multimodal building damage assessment dataset with very-high-resolution for all-weather disaster response
Hongruixuan Chen, Jian Song, Olivier Dietrich, Clifford Broni-Bediako, Weihao Xuan, Junjue Wang, Xinlei Shao, Yimin Wei, Junshi Xia, Cuiling Lan, Konrad Schindler, Naoto Yokoya

TL;DR
BRIGHT is a comprehensive, high-resolution, multimodal dataset combining optical and SAR imagery, designed to enable accurate, all-weather building damage assessment for disaster response worldwide.
Contribution
It introduces the first open-access, globally distributed multimodal dataset with high-resolution optical and SAR data for diverse disaster scenarios, supporting AI-based damage assessment.
Findings
Validated AI models demonstrate transferability and robustness on BRIGHT.
BRIGHT enables all-weather, day-and-night disaster response capabilities.
Supports development of advanced multimodal AI for building damage assessment.
Abstract
Disaster events occur around the world and cause significant damage to human life and property. Earth observation (EO) data enables rapid and comprehensive building damage assessment (BDA), an essential capability in the aftermath of a disaster to reduce human casualties and to inform disaster relief efforts. Recent research focuses on the development of AI models to achieve accurate mapping of unseen disaster events, mostly using optical EO data. However, solutions based on optical data are limited to clear skies and daylight hours, preventing a prompt response to disasters. Integrating multimodal (MM) EO data, particularly the combination of optical and SAR imagery, makes it possible to provide all-weather, day-and-night disaster responses. Despite this potential, the development of robust multimodal AI models has been constrained by the lack of suitable benchmark datasets. In this…
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Taxonomy
TopicsInfrastructure Maintenance and Monitoring · Fire Detection and Safety Systems · 3D Surveying and Cultural Heritage
MethodsFocus
