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20232026
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cs.CV2026

Trajectory Forcing: Structure-First Generation with Controllable Semantic Trajectories

Merve Kocabas, Gege Gao, Bernhard Schölkopf +1

Diffusion and flow-based generative models produce strong images, yet their controllability remains largely endpoint-centric: users specify conditions and receive final outputs, wh…

cs.CV2025

Ultra-lightweight Neural Video Representation Compression

Ho Man Kwan, Tianhao Peng, Ge Gao +4

Recent works have demonstrated the viability of utilizing over-fitted implicit neural representations (INRs) as alternatives to autoencoder-based models for neural video compressio…

cs.CV2025

View-Consistent Diffusion Representations for 3D-Consistent Video Generation

Duolikun Danier, Ge Gao, Steven McDonagh +3

Video generation models have made significant progress in generating realistic content, enabling applications in simulation, gaming, and film making. However, current generated vid…

cs.CV2025

GFix: Perceptually Enhanced Gaussian Splatting Video Compression

Siyue Teng, Ge Gao, Duolikun Danier +5

3D Gaussian Splatting (3DGS) enhances 3D scene reconstruction through explicit representation and fast rendering, demonstrating potential benefits for various low-level vision task…

cs.CV2025

ViVo: A Dataset for Volumetric Video Reconstruction and Compression

Adrian Azzarelli, Ge Gao, Ho Man Kwan +4

As research on neural volumetric video reconstruction and compression flourishes, there is a need for diverse and realistic datasets, which can be used to develop and validate reco…

cs.CV2025

Instance Data Condensation for Image Super-Resolution

Tianhao Peng, Ho Man Kwan, Yuxuan Jiang +5

Deep learning based Image Super-Resolution (ISR) relies on large training datasets to optimize model generalization; this requires substantial computational and storage resources d…