Papers › Generalized Interpolating Discrete Diffusion

Generalized Interpolating Discrete Diffusion

6 Mar 2025arXiv:2503.04482archive 2025-07-28

Dimitri von Rütte, Janis Fluri, Yuhui Ding, Antonio Orvieto, Bernhard Schölkopf, Thomas Hofmann

While state-of-the-art language models achieve impressive results through next-token prediction, they have inherent limitations such as the inability to revise already generated tokens. This has prompted exploration of alternative approaches such as discrete diffusion. However, masked diffusion, which has emerged as a popular choice due to its simplicity and effectiveness, reintroduces this inability to revise words. To overcome this, we generalize masked diffusion and derive the theoretical backbone of a family of general interpolating discrete diffusion (GIDD) processes offering greater flexibility in the design of the noising processes. Leveraging a novel diffusion ELBO, we achieve compute-matched state-of-the-art performance in diffusion language modeling. Exploiting GIDD's flexibility, we explore a hybrid approach combining masking and uniform noise, leading to improved sample quality and unlocking the ability for the model to correct its own mistakes, an area where autoregressive models notoriously have struggled. Our code and models are open-source: https://github.com/dvruette/gidd/

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HybridDiffusion dvruette/gidd/gidd/diffusion_process.py official repository ran · metamorphic tier: deterministic MIT (permissive) · 87e25940be28fc43 · report
sample_categorical dvruette/gidd/gidd/diffusion_process.py official repository ran · our draft was wrong MIT (permissive) · d5a6f595215768b4 · report
NoiseSchedule dvruette/gidd/gidd/diffusion_process.py official repository unverified MIT (permissive) · 7a14b1e64871324a · report

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Language ModelingLanguage Modelling

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