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Video restoration based on deep learning: a comprehensive survey
Video restoration concerns the recovery of a clean video sequence starting from its
degraded version. Different video restoration tasks exist, including denoising, deblurring …
degraded version. Different video restoration tasks exist, including denoising, deblurring …
Coherent event guided low-light video enhancement
With frame-based cameras, capturing fast-moving scenes without suffering from blur often
comes at the cost of low SNR and low contrast. Worse still, the photometric constancy that …
comes at the cost of low SNR and low contrast. Worse still, the photometric constancy that …
Nerflix: High-quality neural view synthesis by learning a degradation-driven inter-viewpoint mixer
Neural radiance fields (NeRF) show great success in novel-view synthesis. However, in real-
world scenes, recovering high-quality details from the source images is still challenging for …
world scenes, recovering high-quality details from the source images is still challenging for …
Exploring temporal frequency spectrum in deep video deblurring
Video deblurring aims to restore the latent video frames from their blurred counterparts.
Despite the remarkable progress, most promising video deblurring methods only investigate …
Despite the remarkable progress, most promising video deblurring methods only investigate …
Video adverse-weather-component suppression network via weather messenger and adversarial backpropagation
Although convolutional neural networks (CNNs) have been proposed to remove adverse
weather conditions in single images using a single set of pre-trained weights, they fail to …
weather conditions in single images using a single set of pre-trained weights, they fail to …
Genuine knowledge from practice: Diffusion test-time adaptation for video adverse weather removal
Real-world vision tasks frequently suffer from the appearance of unexpected adverse
weather conditions, including rain, haze, snow, and raindrops. In the last decade …
weather conditions, including rain, haze, snow, and raindrops. In the last decade …
Real-rawvsr: Real-world raw video super-resolution with a benchmark dataset
In recent years, real image super-resolution (SR) has achieved promising results due to the
development of SR datasets and corresponding real SR methods. In contrast, the field of …
development of SR datasets and corresponding real SR methods. In contrast, the field of …
Exploring motion ambiguity and alignment for high-quality video frame interpolation
For video frame interpolation (VFI), existing deep-learning-based approaches strongly rely
on the ground-truth (GT) intermediate frames, which sometimes ignore the non-unique …
on the ground-truth (GT) intermediate frames, which sometimes ignore the non-unique …
EvTexture: event-driven texture enhancement for video super-resolution
Event-based vision has drawn increasing attention due to its unique characteristics, such as
high temporal resolution and high dynamic range. It has been used in video super …
high temporal resolution and high dynamic range. It has been used in video super …
Video Demoiréing with Deep Temporal Color Embedding and Video-Image Invertible Consistency
Demoiréing is the task of removing moiré patterns, which are commonly caused by the
interference between the screen and digital cameras. Although research on single image …
interference between the screen and digital cameras. Although research on single image …