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20242026
most citedLa-Proteina: Atomistic Protein Generation via Partially Latent Flow Matching

3 citations · 3 across the 7 of their papers we have counts for

collaborators

31 papers

cs.CV2026

Parallel Decoding Distillation for Fast Image and Video Generation

Neta Shaul, Chao Liu, Arash Vahdat +1

Generation in video diffusion or flow models is computationally expensive due to the slow and iterative sampling process. Current state-of-the-art (SOTA) acceleration methods heavi…

cs.CV2026

Transition Matching Distillation for Fast Video Generation

Weili Nie, Julius Berner, Nanye Ma +3

Large video diffusion and flow models have achieved remarkable success in high-quality video generation, but their use in real-time interactive applications remains limited due to…

cs.CV2026

Flex-Forcing: Towards a Unified Autoregressive and Bidirectional Video Diffusion Model

Xinyin Ma, Julius Berner, Chao Liu +3

Recent progress in large-scale generative models has substantially advanced video generation, yet existing methods remain constrained by a rigid inference paradigm. Bidirectional d…

cs.CL2026

Esoteric Language Models: A Family of Any-Order Diffusion LLMs

Subham Sekhar Sahoo, Zhihan Yang, Yash Akhauri +7

Diffusion-based language models offer a compelling alternative to autoregressive (AR) models by enabling parallel and controllable generation. Within this family, Masked Diffusion…

cs.LG20263 cited

La-Proteina: Atomistic Protein Generation via Partially Latent Flow Matching

Tomas Geffner, Kieran Didi, Zhonglin Cao +6

Recently, many generative models for de novo protein structure design have emerged. Yet, only few tackle the difficult task of directly generating fully atomistic structures jointl…

cs.LG2026

DiLaDiff: Distilled Latent-Augmented Diffusion for Language Modeling

Jean-Marie Lemercier, Tomas Geffner, Karsten Kreis +3

Diffusion language models intrinsically fail to capture correlations between decoded tokens, which leads to a harsh trade-off between sampling quality and throughput. To solve this…