Cloud and Snow Detection from Remote Sensing Imagery Based on Convolutional Neural Network

被引:0
|
作者
Du, Hongcai [1 ]
Li, Kun [1 ]
Guo, Jianhua [2 ]
Zhang, Jinsong [1 ]
Yang, Jingyu [2 ]
机构
[1] Tianjin Univ, Coll Intelligence & Comp, Tianjin 300350, Peoples R China
[2] Tianjin Univ, Sch Elect & Informat Engn, Tianjin 300072, Peoples R China
关键词
remote sensing image; convolutional neural network (CNN); cloud and snow detection; multi-level/scale features fusion module (MFFM); channel and spatial attention module (CSAM); SHADOW;
D O I
10.1117/12.2538928
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Cloud and snow detection is one of the most important tasks in remote sensing (RS) image processing areas. Distinguishing cloud and snow from RS images is a challenging task. Short-wave infrared (SWIR) band has been widely used for ice/snow detection. However, due to the lack of SWIR in high-resolution multispectral images, such as ZY-3 satellite imagery, traditional SWIR-based methods are no longer practical. In order to mitigate the adverse effects of cloud and snow detection, in this work, we propose an effective convolutional neural network (CNN) with a multi-level/scale feature fusion module (MFFM), a channel and spatial attention module, and an encoder-decoder network structure for cloud and snow detection form ZY-3 satellite imageries. The MFFM can aggregate multiple-level/scale feature maps from the backbone network, ResNet50, for providing representative semantic feature information for cloud and snow detection. Channel and spatial attention module (CSAM) is used to further refine the semantic feature maps that outputs by MFFM thus making the network have better detection performance. The encoder-decoder structure allows the proposed CNN to restore detailed object boundaries thus making the detection results more accuracy. Experimental results on the ZY-3 satellite imageries dataset demonstrate that the proposed network can accurately detect cloud and snow, and outperforms several state-of-the-art methods.
引用
收藏
页数:7
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