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Semantic Scholar · Article (Remote Sensing)

Drone-Based Wildfire Detection with Multi-Sensor Integration

Published 2024-12-12 From Remote Sensing 7 authors

Attribution

This is the abstract and citation. Full text lives at Semantic Scholar — we link out rather than host. All credit to the authors and Remote Sensing.

Abstract

Verbatim from Semantic Scholar. Not paraphrased, not summarized.

Wildfires pose a severe threat to ecological systems, human life, and infrastructure, making early detection critical for timely intervention. Traditional fire detection systems rely heavily on single-sensor approaches and are often hindered by environmental conditions such as smoke, fog, or nighttime scenarios. This paper proposes Adaptive Multi-Sensor Oriented Object Detection with Space–Frequency Selective Convolution (AMSO-SFS), a novel deep learning-based model optimized for drone-based wildfire and smoke detection. AMSO-SFS combines optical, infrared, and Synthetic Aperture Radar (SAR) data to detect fire and smoke under varied visibility conditions. The model introduces a Space–Frequency Selective Convolution (SFS-Conv) module to enhance the discriminative capacity of features in both spatial and frequency domains. Furthermore, AMSO-SFS utilizes weakly supervised learning and adaptive scale and angle detection to identify fire and smoke regions with minimal labeled data. Extensive experiments show that the proposed model outperforms current state-of-the-art (SoTA) models, achieving robust detection performance while maintaining computational efficiency, making it suitable for real-time drone deployment.

Authors

  • A. Abdusalomov
  • Sabina Umirzakova
  • Makhkamov Bakhtiyor Shukhratovich
  • M. Mukhiddinov
  • Azamat Kakhorov
  • A. Buriboev
  • H. Jeon

Keywords

  • Computer Science
  • Environmental Science
  • Engineering

Citation: A. Abdusalomov, Sabina Umirzakova, Makhkamov Bakhtiyor Shukhratovich , et al. (2024). Drone-Based Wildfire Detection with Multi-Sensor Integration. Remote Sensing. Semantic Scholar ID 97cece3ce6b1b8b961b7804621461bbe94f7295b. https://doi.org/10.3390/rs16244651 ↗