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Image super-resolution: A comprehensive review, recent trends, challenges and applications
Super resolution (SR) is an eminent system in the field of computer vison and image
processing to improve the visual perception of the poor-quality images. The key objective of …
processing to improve the visual perception of the poor-quality images. The key objective of …
Transformers in vision: A survey
Astounding results from Transformer models on natural language tasks have intrigued the
vision community to study their application to computer vision problems. Among their salient …
vision community to study their application to computer vision problems. Among their salient …
Learning enriched features for fast image restoration and enhancement
Given a degraded input image, image restoration aims to recover the missing high-quality
image content. Numerous applications demand effective image restoration, eg …
image content. Numerous applications demand effective image restoration, eg …
Learning enriched features for real image restoration and enhancement
With the goal of recovering high-quality image content from its degraded version, image
restoration enjoys numerous applications, such as in surveillance, computational …
restoration enjoys numerous applications, such as in surveillance, computational …
A new generative adversarial network for medical images super resolution
For medical image analysis, there is always an immense need for rich details in an image.
Typically, the diagnosis will be served best if the fine details in the image are retained and …
Typically, the diagnosis will be served best if the fine details in the image are retained and …
Deep learning for image super-resolution: A survey
Image Super-Resolution (SR) is an important class of image processing techniqueso
enhance the resolution of images and videos in computer vision. Recent years have …
enhance the resolution of images and videos in computer vision. Recent years have …
Feedback network for image super-resolution
Recent advances in image super-resolution (SR) explored the power of deep learning to
achieve a better reconstruction performance. However, the feedback mechanism, which …
achieve a better reconstruction performance. However, the feedback mechanism, which …
Meta-SR: A magnification-arbitrary network for super-resolution
Recent research on super-resolution has achieved greatsuccess due to the development of
deep convolutional neu-ral networks (DCNNs). However, super-resolution of arbi-trary scale …
deep convolutional neu-ral networks (DCNNs). However, super-resolution of arbi-trary scale …
High-resolution iterative feedback network for camouflaged object detection
Spotting camouflaged objects that are visually assimilated into the background is tricky for
both object detection algorithms and humans who are usually confused or cheated by the …
both object detection algorithms and humans who are usually confused or cheated by the …
The 2018 PIRM challenge on perceptual image super-resolution
This paper reports on the 2018 PIRM challenge on perceptual super-resolution (SR), held in
conjunction with the Perceptual Image Restoration and Manipulation (PIRM) workshop at …
conjunction with the Perceptual Image Restoration and Manipulation (PIRM) workshop at …