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📄 ResearchAugust 20, 2026

Discrete Diffusion Inference-Time Control with Nested Sequential Monte Carlo

We study inference-time control for text generation in discrete diffusion language models, where the goal is to steer sampling toward sequence-level rewards without retraining. Prior work in this domain has focused on particle-based methods such as best-of-$n$ sampling and bootstrap sequential Monte...

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Source

http://arxiv.org/abs/2608.20123v1