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cs.CV2025

VTinker: Guided Flow Upsampling and Texture Mapping for High-Resolution Video Frame Interpolation

Chenyang Wu, Jiayi Fu, Chun-Le Guo +2

Due to large pixel movement and high computational cost, estimating the motion of high-resolution frames is challenging. Thus, most flow-based Video Frame Interpolation (VFI) metho…

cs.CV2025

FlowLUT: Efficient Image Enhancement via Differentiable LUTs and Iterative Flow Matching

Liubing Hu, Chen Wu, Anrui Wang +3

Deep learning-based image enhancement methods face a fundamental trade-off between computational efficiency and representational capacity. For example, although a conventional thre…

eess.IV2025

Semantics-Guided Generative Image Compression

Cheng-Lin Wu, Hyomin Choi, Ivan V. Bajić

Advancements in text-to-image generative AI with large multimodal models are spreading into the field of image compression, creating high-quality representation of images at extrem…

cs.CV2025

UHD Image Dehazing via anDehazeFormer with Atmospheric-aware KV Cache

Pu Wang, Pengwen Dai, Chen Wu +5

In this paper, we propose an efficient visual transformer framework for ultra-high-definition (UHD) image dehazing that addresses the key challenges of slow training speed and high…

cs.CV2025

Distribution-aware Dataset Distillation for Efficient Image Restoration

Zhuoran Zheng, Xin Su, Chen Wu +1

With the exponential increase in image data, training an image restoration model is laborious. Dataset distillation is a potential solution to this problem, yet current distillatio…

cs.CV2025

AdaQual-Diff: Diffusion-Based Image Restoration via Adaptive Quality Prompting

Xin Su, Chen Wu, Yu Zhang +2

Restoring images afflicted by complex real-world degradations remains challenging, as conventional methods often fail to adapt to the unique mixture and severity of artifacts prese…