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Shunjun Wei

Researcher at University of Electronic Science and Technology of China

Publications -  166
Citations -  2016

Shunjun Wei is an academic researcher from University of Electronic Science and Technology of China. The author has contributed to research in topics: Synthetic aperture radar & Computer science. The author has an hindex of 11, co-authored 120 publications receiving 454 citations.

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HRSID: A High-Resolution SAR Images Dataset for Ship Detection and Instance Segmentation

TL;DR: Experimental results reveal that ship detection and instance segmentation can be well implemented on HRSID, and this work has constructed a High-Resolution SAR Images Dataset (HRSID).
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LS-SSDD-v1.0: A Deep Learning Dataset Dedicated to Small Ship Detection from Large-Scale Sentinel-1 SAR Images

TL;DR: A Large-Scale SAR Ship detection dataset from Sentinel-1 and a Pure Background Hybrid Training mechanism (PBHT-mechanism) to suppress false alarms of land in large-scale SAR images to inspire related scholars to make extensive research into SAR ship detection methods with engineering application value.
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Depthwise Separable Convolution Neural Network for High-Speed SAR Ship Detection

TL;DR: A novel high-speed SAR ship detection approach by mainly using depthwise separable convolution neural network (DS-CNN), which has great application value in real-time maritime disaster rescue and emergency military planning.
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SAR Ship Detection Dataset (SSDD): Official Release and Comprehensive Data Analysis

TL;DR: Wang et al. as discussed by the authors made an official release of SSDD based on its initial version, which is the first open dataset that is widely used to research state-of-the-art technology of ship detection from Synthetic Aperture Radar (SAR) imagery based on DL.
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HyperLi-Net: A hyper-light deep learning network for high-accurate and high-speed ship detection from synthetic aperture radar imagery

TL;DR: Experimental results on the SAR Ship Detection Dataset (SSDD), Gaofen-SSDD and Sentinel-SS DD show that HyperLi-Net’s accuracy and speed are both superior to the other nine state-of-the-art methods.