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20192026
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cs.CV2026

MMDiff: Extending Diffusion Transformers for Multi-Modal Generation

Yagmur Akarken, Orest Kupyn, Christian Rupprecht

Diffusion transformers have demonstrated remarkable generative capabilities, yet the rich perceptual representations computed across their denoising trajectory are discarded once t…

cs.CV2026

FLAT: Feedforward Latent Triangle Splatting for Geometrically Accurate Scene Generation

Orest Kupyn, Goutam Bhat, Philipp Henzler +3

Generating explorable 3D scenes from a single image requires strong generative priors and accurate geometric representations suitable for downstream use. Current video diffusion mo…

cs.CV2026

PoseDreamer: Scalable and Photorealistic Human Data Generation Pipeline with Diffusion Models

Lorenza Prospero, Orest Kupyn, Ostap Viniavskyi +2

Acquiring labeled datasets for 3D human mesh estimation is challenging due to depth ambiguities and the inherent difficulty of annotating 3D geometry from monocular images. Existin…

cs.CV2026

VGGRPO: Towards World-Consistent Video Generation with 4D Latent Reward

Zhaochong An, Orest Kupyn, Théo Uscidda +5

Large-scale video diffusion models achieve impressive visual quality, yet often fail to preserve geometric consistency. Prior approaches improve consistency either by augmenting th…

cs.CV2025

Epipolar Geometry Improves Video Generation Models

Orest Kupyn, Théo Uscidda, Marta Tintore Gazulla +3

Video generation models have advanced significantly through the latent diffusion transformers trained with rectified flow techniques. Yet these models still struggle with geometric…

cs.CV2025

S3OD: Towards Generalizable Salient Object Detection with Synthetic Data

Orest Kupyn, Hirokatsu Kataoka, Christian Rupprecht

Salient object detection exemplifies data-bounded tasks where expensive pixel-precise annotations force separate model training for related subtasks like DIS and HR-SOD. We present…