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Taesung Kwon

7 accepted papers

2026

Alignment-Guided Score Matching for Text-to-Image Alignment in Diffusion Models

ICML 2026spotlight

Diffusion models generate highly realistic images but often struggle with precise text–image alignment. While recent post-training methods improve alignment using external rewards or human preference signals, their performance heavily depends on reward quality and does not directly address alignment…

Cited by 0SourceScholar
2026

Reviving ConvNeXt for Efficient Convolutional Diffusion Models

CVPR 2026

Recent diffusion models increasingly favor Transformer backbones, motivated by the remarkable scalability of fully attentional architectures. Yet the locality bias, parameter efficiency, and hardware friendliness--the attributes that established ConvNets as the efficient vision backbone--have seen l

Cited by 1SourcecodeScholar
2025

VISION-XL: High Definition Video Inverse Problem Solver using Latent Image Diffusion Models

ICCV 2025poster

In this paper, we propose a novel framework for solving high-definition video inverse problems using latent image diffusion models. Building on recent advancements in spatio-temporal optimization for video inverse problems using image diffusion models, our approach leverages latent-space diffusion m…

2025

ViBiDSampler: Enhancing Video Interpolation Using Bidirectional Diffusion Sampler

ICLR 2025poster

Recent progress in large-scale text-to-video (T2V) and image-to-video (I2V) diffusion models has greatly enhanced video generation, especially in terms of keyframe interpolation. However, current image-to-video diffusion models, while powerful in generating videos from a single conditioning frame, n…

2022

DiffusionCLIP: Text-Guided Diffusion Models for Robust Image Manipulation

CVPR 2022poster

Recently, GAN inversion methods combined with Contrastive Language-Image Pretraining (CLIP) enables zero-shot image manipulation guided by text prompts. However, their applications to diverse real images are still difficult due to the limited GAN inversion capability. Specifically, these approaches…

Cited by 747PDFcodeScholar
2022

Noise Distribution Adaptive Self-Supervised Image Denoising Using Tweedie Distribution and Score Matching

CVPR 2022poster

Tweedie distributions are a special case of exponential dispersion models, which are often used in classical statistics as distributions for generalized linear models. Here, we reveal that Tweedie distributions also play key roles in modern deep learning era, leading to a distribution independent se…

Cited by 21PDFScholar