CSV-Decode: Certifiable Sub-Vocabulary Decoding for Efficient Large Language Model Inference

November 16, 2025 ยท Declared Dead ยท ๐Ÿ› arXiv.org

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Authors Dong Liu, Yanxuan Yu, Ben Lengerich arXiv ID 2511.21702 Category cs.CL: Computation & Language Cross-listed cs.AI Citations 4 Venue arXiv.org Repository https://github.com/FastLM/CSV-Decode}{https://github.com/FastLM/CSV-Decode} Last Checked 2 months ago
Abstract
Large language models face significant computational bottlenecks during inference due to the expensive output layer computation over large vocabularies. We present CSV-Decode, a novel approach that uses geometric upper bounds to construct small sub-vocabularies for each decoding step, enabling efficient sparse computation while maintaining dual correctness guarantees: exact top-$k$ certification and $\varepsilon$-certified softmax approximations. Our method clusters vocabulary embeddings offline and uses centroid-plus-radius bounds to identify which tokens can be safely omitted from computation. We provide a complete system implementation with sparse GEMV kernels, multi-GPU sharding, and CUDA Graph optimization. Experimental results demonstrate significant speedup over full vocabulary decoding while maintaining distributional guarantees and low fallback rates. Our code implementation available at \href{https://github.com/FastLM/CSV-Decode}{https://github.com/FastLM/CSV-Decode}.
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