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cs.CL2026

LibraSpec: Dynamic Diffusion-Based Speculative Decoding via Marginal-Gain-Driven Optimization

Zexun Lin, Yuan Feng, Junlin Lv +2

Speculative decoding accelerates large language model inference by drafting multiple tokens for parallel verification, with efficiency critically determined by the speculative leng…

cs.CL2026

CriticalKV: Optimizing KV Cache Eviction from an Output Perturbation Perspective

Yuan Feng, Junlin Lv, Haoyu Guo +3

Large language models have revolutionized natural language processing but face significant challenges of high storage and runtime costs, due to the transformer architecture's relia…

cs.CL2025

Ada-KV: Optimizing KV Cache Eviction by Adaptive Budget Allocation for Efficient LLM Inference

Yuan Feng, Junlin Lv, Yukun Cao +2

Large Language Models have excelled in various domains but face efficiency challenges due to the growing Key-Value (KV) cache required for long-sequence inference. Recent efforts a…

cs.CL2025

Taming the Fragility of KV Cache Eviction in LLM Inference

Yuan Feng, Haoyu Guo, JunLin Lv +2

Large language models have revolutionized natural language processing, yet their deployment remains hampered by the substantial memory and runtime overhead of the transformer's Key…

cs.CL2024

CritiPrefill: A Segment-wise Criticality-based Approach for Prefilling Acceleration in LLMs

Junlin Lv, Yuan Feng, Xike Xie +3

Large language models have achieved notable success across various domains, yet efficient inference is still limited by the quadratic computation complexity of the attention mechan…