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Target Detection Method for Low-Resolution Remote Sensing Image Based on ESRGAN and ReDet
by
Sun, Guobing
, Wang, Yuwu
, Guo, Shengwei
in
Algorithms
/ Computer vision
/ Datasets
/ ESRGAN
/ Generative adversarial networks
/ Image enhancement
/ Image reconstruction
/ Image resolution
/ Noise
/ Object recognition
/ ReDet
/ Remote sensing
/ remote sensing images
/ super-resolution reconstruction
/ Target detection
/ Target recognition
2021
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Target Detection Method for Low-Resolution Remote Sensing Image Based on ESRGAN and ReDet
by
Sun, Guobing
, Wang, Yuwu
, Guo, Shengwei
in
Algorithms
/ Computer vision
/ Datasets
/ ESRGAN
/ Generative adversarial networks
/ Image enhancement
/ Image reconstruction
/ Image resolution
/ Noise
/ Object recognition
/ ReDet
/ Remote sensing
/ remote sensing images
/ super-resolution reconstruction
/ Target detection
/ Target recognition
2021
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Target Detection Method for Low-Resolution Remote Sensing Image Based on ESRGAN and ReDet
by
Sun, Guobing
, Wang, Yuwu
, Guo, Shengwei
in
Algorithms
/ Computer vision
/ Datasets
/ ESRGAN
/ Generative adversarial networks
/ Image enhancement
/ Image reconstruction
/ Image resolution
/ Noise
/ Object recognition
/ ReDet
/ Remote sensing
/ remote sensing images
/ super-resolution reconstruction
/ Target detection
/ Target recognition
2021
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Target Detection Method for Low-Resolution Remote Sensing Image Based on ESRGAN and ReDet
Journal Article
Target Detection Method for Low-Resolution Remote Sensing Image Based on ESRGAN and ReDet
2021
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Overview
With the widespread use of remote sensing images, low-resolution target detection in remote sensing images has become a hot research topic in the field of computer vision. In this paper, we propose a Target Detection on Super-Resolution Reconstruction (TDoSR) method to solve the problem of low target recognition rates in low-resolution remote sensing images under foggy conditions. The TDoSR method uses the Enhanced Super-Resolution Generative Adversarial Network (ESRGAN) to perform defogging and super-resolution reconstruction of foggy low-resolution remote sensing images. In the target detection part, the Rotation Equivariant Detector (ReDet) algorithm, which has a higher recognition rate at this stage, is used to identify and classify various types of targets. While a large number of experiments have been carried out on the remote sensing image dataset DOTA-v1.5, the results of this paper suggest that the proposed method achieves good results in the target detection of low-resolution foggy remote sensing images. The principal result of this paper demonstrates that the recognition rate of the TDoSR method increases by roughly 20% when compared with low-resolution foggy remote sensing images.
Publisher
MDPI AG
Subject
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