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Few-Step Diffusion Sampling Through Instance-Aware Discretizations

About

Diffusion and flow matching models generate high-fidelity data by simulating paths defined by Ordinary or Stochastic Differential Equations (ODEs/SDEs), starting from a tractable prior distribution. The probability flow ODE formulation enables the use of advanced numerical solvers to accelerate sampling. Orthogonal yet vital to solver design is the discretization strategy. While early approaches employed handcrafted heuristics and recent methods adopt optimization-based techniques, most existing strategies enforce a globally shared timestep schedule across all samples. This uniform treatment fails to account for instance-specific complexity in the generative process, potentially limiting performance. Motivated by controlled experiments on synthetic data, which reveals the suboptimality of global schedules under instance-specific dynamics, we propose an instance-aware discretization framework. Our method learns to adapt timestep allocations based on input-dependent priors, extending gradient-based discretization search to the conditional generative setting. Empirical results across diverse settings, including synthetic data, pixel-space diffusion, latent-space images and video flow matching models, demonstrate that our method consistently improves generation quality with marginal tuning cost compared to training and negligible inference overhead.

Liangyu Yuan, Ruoyu Wang, Tong Zhao, Dingwen Fu, Mingkun Lei, Beier Zhu, Chi Zhang• 2026

Related benchmarks

TaskDatasetResultRank
Image GenerationCIFAR-10
FID2.34
203
Class-conditional Image GenerationImageNet 64x64
FID4.94
156
Image GenerationCIFAR-10 32x32
FID2.6
147
Image GenerationLSUN bedroom
FID3.66
105
Image GenerationImageNet 64
FID4.49
100
Image GenerationFFHQ
FID3.31
91
Image GenerationFFHQ 64x64
FID3.9
76
Image GenerationAFHQ v2
FID2.35
47
Image GenerationAFHQ 64x64 v2 (unconditional)
FID2.37
22
Image GenerationLSUN Bedrooms 256x256 (val)
FID3.81
20
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