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Huining Yu

1 accepted papers

2026

Absorbing Quantization Error by Deformable Noise Scheduler for Diffusion Models

ICML 2026poster

Diffusion models deliver state-of-the-art image quality but are expensive to deploy. Post-training quantization (PTQ) can shrink models and speed up inference, yet residual quantization errors distort the diffusion distribution (the timestep-wise marginal over $\vx_t$), degrading sample quality. We …

Cited by 0SourceScholar