Papers › Mirror Diffusion Models for Constrained and Watermarked Generation

Mirror Diffusion Models for Constrained and Watermarked Generation

2 Oct 2023NeurIPS 2023 11arXiv:2310.01236archive 2025-07-28

Guan-Horng Liu, Tianrong Chen, Evangelos A. Theodorou, Molei Tao

Modern successes of diffusion models in learning complex, high-dimensional data distributions are attributed, in part, to their capability to construct diffusion processes with analytic transition kernels and score functions. The tractability results in a simulation-free framework with stable regression losses, from which reversed, generative processes can be learned at scale. However, when data is confined to a constrained set as opposed to a standard Euclidean space, these desirable characteristics appear to be lost based on prior attempts. In this work, we propose Mirror Diffusion Models (MDM), a new class of diffusion models that generate data on convex constrained sets without losing any tractability. This is achieved by learning diffusion processes in a dual space constructed from a mirror map, which, crucially, is a standard Euclidean space. We derive efficient computation of mirror maps for popular constrained sets, such as simplices and ℓ₂-balls, showing significantly improved performance of MDM over existing methods. For safety and privacy purposes, we also explore constrained sets as a new mechanism to embed invisible but quantitative information (i.e., watermarks) in generated data, for which MDM serves as a compelling approach. Our work brings new algorithmic opportunities for learning tractable diffusion on complex domains. Our code is available at https://github.com/ghliu/mdm

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ConstraintSet ghliu/mdm/mdm/constraintset.py official repository unverified Apache-2.0 (permissive) · 2283638ea23d5477 · report
ablation_sampler ghliu/mdm/generate_watermark.py official repository unverified Apache-2.0 (permissive) · 9fbf646e18eed1db · report
build_ckpt_option ghliu/mdm/eval_constr_gen.py official repository unverified Apache-2.0 (permissive) · a888a5e028b6239e · report
edm_sampler ghliu/mdm/generate_watermark.py official repository unverified Apache-2.0 (permissive) · 8b16b0674af254db · report
get_ref_x0 ghliu/mdm/eval_constr_gen.py official repository unverified Apache-2.0 (permissive) · d4f7521fb1839dd1 · report
parse_int_list identical code first harvested elsewhere ran · honoured contract licence of this copy not recorded · cacd4f6ec202d9b4 · report

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