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Inho Kong

3 accepted papers

2026

Error as Signal: Stiffness-Aware Diffusion Sampling via Embedded Runge-Kutta Guidance

ICLR 2026poster

Classifier-Free Guidance (CFG) has established the foundation for guidance mechanisms in diffusion models, showing that well-designed guidance proxies significantly improve conditional generation and sample quality. Autoguidance (AG) has extended this idea, but it relies on an auxiliary network and…

Cited by 0SourcecodeScholar
2024

Diffusion Prior-Based Amortized Variational Inference for Noisy Inverse Problems

ECCV 2024oral

"Recent studies on inverse problems have proposed posterior samplers that leverage the pre-trained diffusion models as powerful priors. These attempts have paved the way for using diffusion models in a wide range of inverse problems. However, the existing methods entail computationally demanding ite…

2024

Stochastic Conditional Diffusion Models for Robust Semantic Image Synthesis

ICML 2024poster

Semantic image synthesis (SIS) is a task to generate realistic images corresponding to semantic maps (labels). However, in real-world applications, SIS often encounters noisy user inputs. To address this, we propose Stochastic Conditional Diffusion Model (SCDM), which is a robust conditional diffusi…