2023
DOI: 10.3390/rs15174281
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Vehicle Detection in Multisource Remote Sensing Images Based on Edge-Preserving Super-Resolution Reconstruction

Hong Zhu,
Yanan Lv,
Jian Meng
et al.

Abstract: As an essential technology for intelligent transportation management and traffic risk prevention and control, vehicle detection plays a significant role in the comprehensive evaluation of the intelligent transportation system. However, limited by the small size of vehicles in satellite remote sensing images and lack of sufficient texture features, its detection performance is far from satisfactory. In view of the unclear edge structure of small objects in the super-resolution (SR) reconstruction process, deep … Show more

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Cited by 3 publications
(1 citation statement)
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“…This idea enhances the capacity to accurately identify and categorize objects by improving its localization capabilities. Zhu et al 28 proposed a novel two-stage object detection network (VDNET-RSI) incorporating super-resolution reconstruction technology, which aims to enhance the texture information of minor marks by utilizing a locally constructed implicit mapping function. Zhang et al 29 used a dual-branch network to integrate super-resolution technology with object detection tasks, enhancing the detection accuracy.…”
Section: Related Research Workmentioning
confidence: 99%
“…This idea enhances the capacity to accurately identify and categorize objects by improving its localization capabilities. Zhu et al 28 proposed a novel two-stage object detection network (VDNET-RSI) incorporating super-resolution reconstruction technology, which aims to enhance the texture information of minor marks by utilizing a locally constructed implicit mapping function. Zhang et al 29 used a dual-branch network to integrate super-resolution technology with object detection tasks, enhancing the detection accuracy.…”
Section: Related Research Workmentioning
confidence: 99%