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[ARTICLE · art-65394] src=arxiv.org ↗ pub= topic=artificial-intelligence verified=true sentiment=· neutral

Adaptive Multi-Step Lookahead Decoding for Diffusion Language Models

Researchers propose AdaLook, an adaptive multi-step lookahead decoding framework for masked diffusion language models that dynamically adjusts rollout depth based on candidate-score variance, outperforming existing one-step lookahead methods in accuracy-efficiency trade-offs on multiple benchmarks.

read1 min views1 publishedJul 20, 2026

arXiv:2607.15655v1 Announce Type: new Abstract: Masked diffusion language models (DLMs) enable parallel text generation by iteratively refining masked tokens, offering a promising alternative to autoregressive decoding. Recent lookahead-based decoding methods improve the accuracy--efficiency trade-off by exploring future decoding states before committing token updates. However, existing approaches mainly rely on shallow one-step lookahead, which optimizes immediate information gain but can be suboptimal for longer-horizon decoding trajectories. Meanwhile, we find that a naive extension for deeper lookahead is also ineffective, as fixed-depth rollout introduces additional computation and cannot adapt to heterogeneous intermediate decoding states. Thus, in this work, we propose AdaLook, an adaptive lookahead framework for DLM decoding. AdaLook dynamically determines whether to continue rollout based on candidate-score variance and further enables branch expansion when intermediate rollout states require additional exploration. This design avoids unnecessary deep rollout while allowing the decoder to re-trigger lookahead from informative intermediate states. Experiments on various benchmarks and models demonstrate that AdaLook achieves a better accuracy--decoding steps trade-off than existing one-step lookahead decoding methods.

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