Papers › Generative Modeling on Manifolds Through Mixture of Riemannian Diffusion Processes

Generative Modeling on Manifolds Through Mixture of Riemannian Diffusion Processes

11 Oct 2023arXiv:2310.07216archive 2025-07-28

Jaehyeong Jo, Sung Ju Hwang

Learning the distribution of data on Riemannian manifolds is crucial for modeling data from non-Euclidean space, which is required by many applications in diverse scientific fields. Yet, existing generative models on manifolds suffer from expensive divergence computation or rely on approximations of heat kernel. These limitations restrict their applicability to simple geometries and hinder scalability to high dimensions. In this work, we introduce the Riemannian Diffusion Mixture, a principled framework for building a generative diffusion process on manifolds. Instead of following the denoising approach of previous diffusion models, we construct a diffusion process using a mixture of bridge processes derived on general manifolds without requiring heat kernel estimations. We develop a geometric understanding of the mixture process, deriving the drift as a weighted mean of tangent directions to the data points that guides the process toward the data distribution. We further propose a scalable training objective for learning the mixture process that readily applies to general manifolds. Our method achieves superior performance on diverse manifolds with dramatically reduced number of in-training simulation steps for general manifolds.

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ApproxMixture harryjo97/riemannian-diffusion-mixture/sde_lib.py official repository ran no licence file found · pointer only · 5fbdb85f24d1929a · report
BackwardProbabilityFlowODE harryjo97/riemannian-diffusion-mixture/sde_lib.py official repository ran no licence file found · pointer only · 19b59bec19e3200f · report
BrownianBridge harryjo97/riemannian-diffusion-mixture/sde_lib.py official repository ran no licence file found · pointer only · 10033a6faeb9277d · report
Mixture harryjo97/riemannian-diffusion-mixture/sde_lib.py official repository ran no licence file found · pointer only · 4b75ec5c88d9640b · report
SpectralBridge harryjo97/riemannian-diffusion-mixture/sde_lib.py official repository ran no licence file found · pointer only · 6b43ed4f8a325d37 · report
UniformDistribution harryjo97/riemannian-diffusion-mixture/sde_lib.py official repository ran no licence file found · pointer only · 9baf8c43db7f0f89 · report
Bridge harryjo97/riemannian-diffusion-mixture/sde_lib.py official repository unverified no licence file found · pointer only · 82575b8689e3c317 · report
DiffusionMixture harryjo97/riemannian-diffusion-mixture/sde_lib.py official repository unverified no licence file found · pointer only · 9fbfe082fc409a42 · report
Wrapped harryjo97/riemannian-diffusion-mixture/sde_lib.py official repository unverified no licence file found · pointer only · d883bdf252f2138a · report

Tasks

Denoising

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Methods

Diffusion

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