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Rafal Karczewski

5 accepted papers

2026

The Spacetime of Diffusion Models: An Information Geometry Perspective

ICLR 2026oral

We present a novel geometric perspective on the latent space of diffusion models. We first show that the standard pullback approach, utilizing the deterministic probability flow ODE decoder, is fundamentally flawed. It provably forces geodesics to decode as straight segments in data space, effective…

Cited by 0SourcecodeScholar
2025

Devil is in the Details: Density Guidance for Detail-Aware Generation with Flow Models

ICML 2025poster

Diffusion models have emerged as a powerful class of generative models, capable of producing high-quality images by mapping noise to a data distribution. However, recent findings suggest that image likelihood does not align with perceptual quality: high-likelihood samples tend to be smooth, while lo…

2025

Diffusion Models as Cartoonists: The Curious Case of High Density Regions

ICLR 2025poster

We investigate what kind of images lie in the high-density regions of diffusion models. We introduce a theoretical mode-tracking process capable of pinpointing the exact mode of the denoising distribution, and we propose a practical high-density sampler that consistently generates images of higher l…

2025

What Ails Generative Structure-based Drug Design: Expressivity is Too Little or Too Much?

AISTATS 2025oral

Several generative models with elaborate training and sampling procedures have been proposed to accelerate structure-based drug design (SBDD); however, their empirical performance turns out to be suboptimal. We seek to better understand this phenomenon from both theoretical and empirical perspective…

Cited by 0SourcecodeScholar