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G. V. Steeg

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#natural language process... Preprint Sep 2026

DEdit: Iterative Draft Editing for Speculative Decoding

Speculative decoding accelerates autoregressive LLMs by having a lightweight drafter propose tokens that the target model verifies in parallel. Diffusion-based drafters further reduce drafting latency by proposing multiple tokens at once. However, these tokens are predicted independently, so a single early error causes...

Long-Xuan Yu, Bingsen Chen, Peng Shi et al. · 0 citations
#natural language process... Preprint Sep 2026

Line-Coupled Language Model

Autoregressive language models generate one token per decoding step, limiting the useful output of each forward pass. Although diffusion models, insertion-based decoding, and multi-token prediction enable parallel generation, they either incur additional training-time token traffic or struggle to predict strongly depen...

Shi-Yuan Li, Shao-Rong Zhang, Zhaorui Yang et al. · 0 citations

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