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Centered Multi-Task Generative Adversarial Network for Small Object Detection
by
Wang, Hongfeng
, Wang, Jianzhong
, Bai, Kemeng
, Sun, Yong
in
Accuracy
/ Algorithms
/ Exploitation
/ generative adversarial network
/ image super-resolution
/ Meteorological satellites
/ Methods
/ Neural networks
/ Semantics
/ Sensors
/ two-stage small object detection
2021
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Centered Multi-Task Generative Adversarial Network for Small Object Detection
by
Wang, Hongfeng
, Wang, Jianzhong
, Bai, Kemeng
, Sun, Yong
in
Accuracy
/ Algorithms
/ Exploitation
/ generative adversarial network
/ image super-resolution
/ Meteorological satellites
/ Methods
/ Neural networks
/ Semantics
/ Sensors
/ two-stage small object detection
2021
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Do you wish to request the book?
Centered Multi-Task Generative Adversarial Network for Small Object Detection
by
Wang, Hongfeng
, Wang, Jianzhong
, Bai, Kemeng
, Sun, Yong
in
Accuracy
/ Algorithms
/ Exploitation
/ generative adversarial network
/ image super-resolution
/ Meteorological satellites
/ Methods
/ Neural networks
/ Semantics
/ Sensors
/ two-stage small object detection
2021
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Centered Multi-Task Generative Adversarial Network for Small Object Detection
Journal Article
Centered Multi-Task Generative Adversarial Network for Small Object Detection
2021
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Overview
Despite the breakthroughs in accuracy and efficiency of object detection using deep neural networks, the performance of small object detection is far from satisfactory. Gaze estimation has developed significantly due to the development of visual sensors. Combining object detection with gaze estimation can significantly improve the performance of small object detection. This paper presents a centered multi-task generative adversarial network (CMTGAN), which combines small object detection and gaze estimation. To achieve this, we propose a generative adversarial network (GAN) capable of image super-resolution and two-stage small object detection. We exploit a generator in CMTGAN for image super-resolution and a discriminator for object detection. We introduce an artificial texture loss into the generator to retain the original feature of small objects. We also use a centered mask in the generator to make the network focus on the central part of images where small objects are more likely to appear in our method. We propose a discriminator with detection loss for two-stage small object detection, which can be adapted to other GANs for object detection. Compared with existing interpolation methods, the super-resolution images generated by CMTGAN are more explicit and contain more information. Experiments show that our method exhibits a better detection performance than mainstream methods.
Publisher
MDPI AG,MDPI
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