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Mang Ning

4 accepted papers

2025

Consistent Story Generation: Unlocking the Potential of Zigzag Sampling

NeurIPS 2025poster

Text-to-image generation models have made significant progress in producing high-quality images from textual descriptions, yet they continue to struggle with maintaining subject consistency across multiple images, a fundamental requirement for visual storytelling. Existing methods attempt to address…

Cited by 0SourcecodeScholar
2025

DCTdiff: Intriguing Properties of Image Generative Modeling in the DCT Space

ICML 2025poster

This paper explores image modeling from the frequency space and introduces DCTdiff, an end-to-end diffusion generative paradigm that efficiently models images in the discrete cosine transform (DCT) space. We investigate the design space of DCTdiff and reveal the key design factors. Experiments on di…

2024

Elucidating the Exposure Bias in Diffusion Models

ICLR 2024poster

Diffusion models have demonstrated impressive generative capabilities, but their exposure bias problem, described as the input mismatch between training and sampling, lacks in-depth exploration. In this paper, we investigate the exposure bias problem in diffusion models by first analytically modelli…

2023

Input Perturbation Reduces Exposure Bias in Diffusion Models

ICML 2023poster

Denoising Diffusion Probabilistic Models have shown an impressive generation quality although their long sampling chain leads to high computational costs. In this paper, we observe that a long sampling chain also leads to an error accumulation phenomenon, which is similar to the exposure bias proble…