FD-Net: A Single-Stage Fire Detection Framework for Remote Sensing in Complex Environments

Author:

Yuan Jianye1,Wang Haofei2,Li Minghao3,Wang Xiaohan3,Song Weiwei2,Li Song1,Gong Wei1

Affiliation:

1. Electronic Information School, Wuhan University, Wuhan 473072, China

2. Peng Cheng Laboratory, Department of Mathematics and Theories, Shenzhen 518000, China

3. School of Remote Sensing and Information Engineering, Wuhan University, Wuhan 430079, China

Abstract

Fire detection is crucial due to the exorbitant annual toll on both human lives and the economy resulting from fire-related incidents. To enhance forest fire detection in complex environments, we propose a new algorithm called FD-Net for various environments. Firstly, to improve detection performance, we introduce a Fire Attention (FA) mechanism that utilizes the position information from feature maps. Secondly, to prevent geometric distortion during image cropping, we propose a Three-Scale Pooling (TSP) module. Lastly, we fine-tune the YOLOv5 network and incorporate a new Fire Fusion (FF) module to enhance the network’s precision in identifying fire targets. Through qualitative and quantitative comparisons, we found that FD-Net outperforms current state-of-the-art algorithms in performance on both fire and fire-and-smoke datasets. This further demonstrates FD-Net’s effectiveness for application in fire detection.

Funder

National Natural Science Foundation of China

Publisher

MDPI AG

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