English

Discrete Diffusion Models: A Unified Framework from Tokenization to Generation

Machine Learning 2026-07-15 v1 Artificial Intelligence Computation and Language

Abstract

Discrete denoising diffusion models (DDMs) have recently emerged as a compelling alternative to autoregressive (AR) modeling for discrete data, offering parallel generation and iterative global refinement capabilities. Unlike continuous diffusion, where the state space is fixed, DDMs are fundamentally shaped by how the discrete state space is constructed: the tokenization scheme, the vocabulary topology, and domain-specific structural alphabets. This work introduces a unified conceptual framework that views discrete diffusion models through the construction of the underlying discrete state space. Within this framework, existing formulations, including transition-matrix, masking/absorbing-state, and score/ratio-based approaches, emerge as different instantiations of a common design space. The framework further exposes common design trade-offs across training objectives, inference algorithms, scaling behavior, systems optimization, and evaluation protocols, suggesting several promising directions for future research.

Cite

@article{arxiv.2607.13431,
  title  = {Discrete Diffusion Models: A Unified Framework from Tokenization to Generation},
  author = {Ye Yuan and Weien Li and Rui Song and Zeyu Li and Haochen Liu and Xiangyu Kong and Zixuan Dong and Linfeng Du and Zipeng Sun and Weixu Zhang and Jiaxin Huang and Changjiang Han and Yonghan Yang and Zichen Zhao and Xiuyuan Hu and Haolun Wu and Yankai Chen and Fengran Mo and Jikun Kang and Bowei He and Philip S. Yu and Xue Liu},
  journal= {arXiv preprint arXiv:2607.13431},
  year   = {2026}
}