Journal of Xidian University ›› 2021, Vol. 48 ›› Issue (5): 38-46.doi: 10.19665/j.issn1001-2400.2021.05.006

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Fire segmentation based on the improved DeeplabV3+ and the analytical method for fire development

NING Yang1(),DU Jianchao1(),HAN Shuo1(),YANG Chuankai2()   

  1. 1. School of Telecommunications Engineering,Xidian University,Xi’an 710071,China
    2. Electric Power Research Institute of State Grid,Shaanxi Electric Power Company,Xi’an 710100,China
  • Received:2021-04-12 Online:2021-10-20 Published:2021-11-09

Abstract:

Fire detection and development analysis are significant for fire control.The fire segmentation based on the improved DeeplabV3+ and the analytical method for fire development are proposed:First,the low-level feature sources are added to the decoder of the DeeplabV3+,which is fused with high-level features,and the image size is gradually recovered by 2 times up sampling to retain more details and achieve more accurate fire segmentation.Then,the number of pixels obtained by each fire video frame is combined into a fire series,and key points are used to segment and linearly fit the series to obtain the key trend of fire development.Experimental results show that the proposed method can effectively analyze the fire development situation on the basis of accurate fire segmentation,and provide an effective help for fire detection and control.

Key words: deep learning, fire segmentation, deeplabV3+, fire analysis

CLC Number: 

  • TP391