AdaServe: Accelerating Multi-SLO LLM Serving with SLO-Customized Speculative Decoding
Zikun Li, Zhuofu Chen, Remi Delacourt, Gabriele Oliaro, Zeyu Wang, Qinghan Chen, Shuhuai Lin, April Yang, Zhihao Zhang, Zhuoming Chen, Yi-Hsiang Lai, Xinhao Cheng
Abstract
Modern large language model (LLM) applications exhibit diverse service-level objectives (SLOs), from low-latency requirements in interactive coding assistants to more relaxed constraints in data wrangling tasks. Existing LLM serving systems, which rely on uniform batching and scheduling strategies, often fail to meet these heterogeneous SLOs concurrently. We present AdaServe, the first LLM serving system designed to support efficient multi-SLO serving through SLO-customized speculative decoding. AdaServe formulates multi-SLO serving as a constrained optimization problem and introduces a hardware-aware algorithm that constructs a speculation tree tailored to each request's latency target. It features a speculate-select-verify pipeline that enables fine-grained control over decoding speed while maximizing system throughput. AdaServe further adapts to workload variation by dynamically adjusting speculation parameters. Evaluations across diverse workloads show that AdaServe reduces SLO violations by up to 4.3X and improves goodput by up to 1.9X compared to the best-performing baselines, highlighting its effectiveness in multi-SLO serving.
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Install the CLIlune papers fulltext 8cce48b5-328c-4ef5-9afe-3ebdb5cf6748Cited by top-tier papers8
- SuffixDecoding: Extreme Speculative Decoding for Emerging AI ApplicationsGabriele Oliaro, Zhihao Jia, Daniel F. Campos, Aurick QiaoNeurIPS 2025 · 34 citations
- JITServe: SLO-aware LLM Serving with Imprecise Request InformationWei Zhang, Zhiyu Wu, Yi Mu, Rui Ning et al.NSDI 2026 · 29 citations
- Streaming, Fast and Slow: Cognitive Load-Aware Streaming for Efficient LLM ServingChang Xiao, Zixiaofan YangUIST 2025 · 2 citations
- Serving Hybrid LLM Loads with SLO Guarantees Using CPU-GPU Attention PiggybackingZizhao Mo, Junlin Chen, Huanle Xu, ChengZhong XuSIGMOD 2026 · 1 citation
- FlexLLM: Token-Level Co-Serving of LLM Inference and Finetuning with SLO GuaranteesGabriele Oliaro, Xupeng Miao, Xinhao Cheng, Vineeth Kada et al.NSDI 2026
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- SGLang: Efficient Execution of Structured Language Model ProgramsLianmin Zheng, Liangsheng Yin, Zhiqiang Xie, Chuyue Sun et al.NeurIPS 2024 · 1,586 citations
- Fast Inference from Transformers via Speculative DecodingYaniv Leviathan, Matan Kalman, Yossi MatiasICML 2023 · 1,472 citations
- Orca: A Distributed Serving System for Transformer-Based Generative ModelsGyeong-In Yu, Joo Seong Jeong, Geon-Woo Kim, Soojeong Kim et al.OSDI 2022 · 690 citations
- Medusa: Simple LLM Inference Acceleration Framework with Multiple Decoding HeadsTianle Cai, Yuhong Li, Zhengyang Geng, Hongwu Peng et al.ICML 2024 · 669 citations
- DistServe: Disaggregating Prefill and Decoding for Goodput-optimized Large Language Model ServingYinmin Zhong, Shengyu Liu, Junda Chen, Jianbo Hu et al.OSDI 2024 · 646 citations
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