Information Detection of Seismic Debris Flow by UAV High-resolution Image Based on Transfer Learning

被引:0
|
作者
GUO Jiawei [1 ,2 ]
LI Yongshu [1 ]
WANG Hongshu [3 ]
LU Heng [4 ,5 ]
WANG Xiaobo [6 ,7 ]
机构
[1] Faculty of Geosciences and Environmental Engineering, Southwest Jiaotong University
[2] Information Technology Center of Chengdu Planning and Management Bureau
[3] Department of Surveying and Mapping Engineering, Sichuan Water Conservancy Vocational College
[4] State Key Laboratory of Hydraulics and Mountain River Engineering, Sichuan University
[5] College of Hydraulic and Hydroelectric Engineering, Sichuan University
[6] Provincial Geomatics Center of Qinghai
[7] Geomatics Technology and Application Key Laboratory of Qinghai Province
基金
中国国家自然科学基金;
关键词
Earthquake; Debris flow; UAV high-resolution image; Transfer learning; Information detection;
D O I
10.19743/j.cnki.0891-4176.201901013
中图分类号
P642.23 [泥石流]; TP751 [图像处理方法];
学科分类号
081002 ; 0837 ;
摘要
A large number of debris flow disasters(called Seismic debris flows) would occur after an earthquake, which can cause a great amount of damage. UAV low-altitude remote sensing technology has become a means of quickly obtaining disaster information as it has the advantage of convenience and timeliness, but the spectral information of the image is so scarce, making it difficult to accurately detect the information of earthquake debris flow disasters. Based on the above problems, a seismic debris flow detection method based on transfer learning(TL) mechanism is proposed. On the basis of the constructed seismic debris flow disaster database, the features acquired from the training of the convolutional neural network(CNN) are transferred to the disaster information detection of the seismic debris flow. The automatic detection of earthquake debris flow disaster information is then completed, and the results of object-oriented seismic debris flow disaster information detection are compared and analyzed with the detection results supported by transfer learning.
引用
收藏
页码:112 / 119
页数:8
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