CVPR2021|底层视觉相关论文汇总(如果觉得有帮助,欢迎点赞和收藏)

Awesome-CVPR2021-Low-Level-Vision((持续更新,3月22日新增1篇恢复1其他;3月21日新增1篇超分1去雨;3月16日新增1篇去噪;3月13日新增1篇:1inpaiting;3月11日新增7篇:1质量评估2去雾4超分1增强;3月9日新增2篇去雨;3月8日新增2篇:2图像恢复;3月7日新增3篇:1去雨1去模糊1超分;3月6日新增2篇:1超分1inpainting)
整理了下2021年CVPR图像重建/底层视觉(Low-Level Vision)相关的一些论文,包括超分辨率,图像恢复,去雨,去雾,去模糊,去噪等方向。大家如果觉得有帮助,欢迎点赞和收藏~~
优先在Github更新:Awesome-CVPR2021-Low-Level-Vision,欢迎star~
知乎:https://zhuanlan.zhihu.com/p/354662001
CVPR2021官网:http://cvpr2021.thecvf.com
开会时间:2021年6月19日-6月25日
论文接收公布时间:2021年2月28日

1.超分辨率(Super-Resolution)

Unsupervised Degradation Representation Learning for Blind Super-Resolution

Data-Free Knowledge Distillation For Image Super-Resolution

AdderSR: Towards Energy Efficient Image Super-Resolution

Exploring Sparsity in Image Super-Resolution for Efficient Inference

ClassSR: A General Framework to Accelerate Super-Resolution Networks by Data Characteristic

Cross-MPI: Cross-scale Stereo for Image Super-Resolution using Multiplane Images

LAU-Net: Latitude Adaptive Upscaling Network for Omnidirectional Image Super-resolution

Learning Continuous Image Representation with Local Implicit Image Function

Temporal Modulation Network for Controllable Space-Time Video Super-Resolution

Robust Reference-based Super-Resolution via C²-Matching

GLEAN: Generative Latent Bank for Large-Factor Image Super-Resolution

BasicVSR: The Search for Essential Components in Video Super-Resolution and Beyond

Video Rescaling Networks with Joint Optimization Strategies for Downscaling and Upscaling

2.图像去雨(Image Deraining)

Removing Raindrops and Rain Streaks in One Go

From Rain Generation to Rain Removal

Semi-Supervised Video Deraining Embedded with Dynamical Rain Generator

Closing the Loop: Joint Rain Generation and Removal via Disentangled Image Translation

3.图像去雾(Image Dehazing)

Learning to Restore Hazy Video: A New Real-World Dataset and A New Method

ContrastiveLearning for Compact Single Image Dehazing

4.去模糊(Deblurring)

DeFMO: Deblurring and Shape Recovery of Fast Moving Objects

ARVo: Learning All-Range Volumetric Correspondence for Video Deblurring

5.去噪(Denoising)

Neighbor2Neighbor: Self-Supervised Denoising from Single Noisy Images

6.图像恢复(Image Restoration)

Multi-Stage Progressive Image Restoration

CT Film Recovery via Disentangling Geometric Deformation and Illumination Variation: Simulated Datasets and Deep Models

Restoring Extremely Dark Images in Real Time

Dual Pixel Exploration: Simultaneous Depth Estimation and Image Restoration

Progressive Semantic-Aware Style Transformation for Blind Face Restoration

7.图像增强(Image Enhancement)

Auto-Exposure Fusion for Single-Image Shadow Removal

Learning Multi-Scale Photo Exposure Correction

Robust Reflection Removal with Reflection-free Flash-only Cues

8.图像去摩尔纹(Image Demoireing)

9.图像修复(Inpainting)

PD-GAN:Probabilistic Diverse GAN for Image Inpainting

Generating Diverse Structure for Image Inpainting with Hierarchical VQ-VAE

10.图像质量评价(Image Quality Assessment)

SDD-FIQA:Unsupervised Face Image Quality Assessment with Similarity DistributionDistance

11.插帧(Frame Interpolation)

FLAVR: Flow-Agnostic Video Representations for Fast Frame Interpolation

CDFI: Compression-driven Network Design for Frame Interpolation

DeFMO: Deblurring and Shape Recovery of Fast Moving Objects

12.视频压缩(Video Compression)

MetaSCI: Scalable and Adaptive Reconstruction for Video Compressive Sensing

13.其他多任务

Pre-Trained Image Processing Transformer

Invertible Image Signal Processing

持续更新~

参考

[1] CVPR 2021 结果出炉!最新71篇CVPR’21论文汇总(更新中)
[2] CVPR2021最新信息及已接收论文/代码(持续更新)
[3] 15分钟看完:悉尼科技大学入选 CVPR 2021 的 13 篇论文,都研究什么?
[4] CVPR 2021放榜,腾讯优图20篇论文都在这里了

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