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20242026
most citedGenerative Modeling Enables Molecular Structure Retrieval from Coulomb Explosion Imaging

4 citations · 5 across the 20 of their papers we have counts for

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cs.LG2026

One-Step Generative Modeling via Wasserstein Gradient Flows

Jiaqi Han, Puheng Li, Qiushan Guo +3

Diffusion models and flow-based methods have shown impressive generative capability, especially for images, but their sampling is expensive because it requires many iterative updat…

cs.LG2026

Beyond Pairwise Preferences: Listwise Reward-Aware Alignment for Diffusion Models

Austin Wang, Jiaqi Han, Stefano Ermon +1

Preference optimization has emerged as an efficient alternative to online reinforcement learning from human feedback (RLHF) for aligning text-to-image diffusion models. However, ex…

cs.LG2026

Align Your Structures: Generating Trajectories with Structure Pretraining for Molecular Dynamics

Aniketh Iyengar, Jiaqi Han, Pengwei Sun +3

Generating molecular dynamics (MD) trajectories using deep generative models has attracted increasing attention, yet remains inherently challenging due to the limited availability…

cs.LG2025

Data-regularized Reinforcement Learning for Diffusion Models at Scale

Haotian Ye, Kaiwen Zheng, Jiashu Xu +15

Aligning generative diffusion models with human preferences via reinforcement learning (RL) is critical yet challenging. Most existing algorithms are often vulnerable to reward hac…

cs.LG2025

Energy Scaling Laws for Diffusion Models: Quantifying Compute in Image Generation

Aniketh Iyengar, Jiaqi Han, Boris Ruf +3

The rapidly growing computational demands of diffusion models for image generation have raised significant concerns about energy consumption and environmental impact. While existin…

cs.LG2025

PRISM-Physics: Causal DAG-Based Process Evaluation for Physics Reasoning

Wanjia Zhao, Qinwei Ma, Jingzhe Shi +7

Benchmarks for competition-style reasoning have advanced evaluation in mathematics and programming, yet physics remains comparatively explored. Most existing physics benchmarks eva…