Third of four; stacked on #38047. Two small changes, both about the same thing: the record holds the operator's input, and nothing else should be true of it. ## `/server_info` can answer what was actually typed It reports `resolved_dict()` -- what resolution decided. There was no way to ask the other question, and the two are not derivable from each other: a field nobody set reads the same as one set to the value resolution would have picked anyway. The launcher stores the arguments it parsed and the in-process `Engine` stores the call that built the record. All three readbacks report it beside the resolved values, so both surfaces come back in one request: HTTP `/server_info`, `Engine.get_server_info`, and the gRPC bridge's -- the last one builds from `resolved_dict()` and would otherwise have been the one surface of the three that answers only "what resolution decided". It rides on the record rather than in a field -- it describes how the configuration was asked for, so it is not part of the configuration: no CLI flag, no namespace, not in the bags. Being on the record is what lets a subprocess copy answer the same question the launcher can, and `replace_resolved` carries it because a copy was launched by whatever launched its parent. The crash dump already collected all four surfaces (`server_args`, `config_updates`, `resolved_config`, `launch_command`); this is the one that `/server_info` was missing. ## The record is sealed for the length of resolution The read-only guard armed on `_resolution_finished`, so for the whole run of the pipeline nothing stopped a resolver from assigning a field. Nothing in `srt/` does -- 0 assignments statically, and 0 writes observed across the launch-shape matrix with a watching `__setattr__` -- but that was a convention, and the defect it permits is invisible: a value a resolver wrote onto the record is indistinguishable from a value the operator typed, which is the one distinction the record exists to preserve. It now arms when resolution starts. A resolver that assigns a field fails at boot with a message naming `declare_resolution`, which is where the decision belongs: the stash carries a source and leaves the input intact. `declare_direct_writes` asks for the seal by name through `record_writable`. It hands the record to an out-of-tree platform plugin that sets fields on it; those implementations cannot be converted by editing a resolver here, so the write stays and the diff is captured into the stash afterwards. Naming the exception is the point -- an in-tree resolver reaching for it is doing something it should be declaring. ## Verification Costs nothing: the 211 test-side assignments all happen before `resolve_once`, which a post-resolution write already refused. A full registered-unit sweep (648 files) against the stack's merge-base: 19 failures on both sides, the same 19, none of them config. Driving a deliberate write into a real handler produces the new error, so the seal is tested by more than its own unit test.
🌐 Website | Blog | Documentation | Roadmap | Join Slack | Weekly Dev Meeting | Slides
News
- [2026/07] 🔥 SGLang and Miles add day-0 support for Kimi K3 (blog).
- [2026/07] RadixArk and Google bring full SGLang features to TPUs (blog).
- [2026/07] Serving GLM5.2 NVFP4 agentic workloads with SGLang: Reaching 500 TPS in two weeks (blog).
- [2026/06] 🔥 The next generation of speculative decoding: DFlash and Spec V2 (blog).
- [2026/06] SGLang provides day-0 support for latest open models (Nemotron 3 Ultra, Nemotron 3 Super, Higgs Audio v3 TTS).
- [2026/04] 🔥 DeepSeek-V4 on Day 0: From Fast Inference to Verified RL with SGLang and Miles (blog).
- [2026/02] 🔥 Unlocking 25x Inference Performance with SGLang on NVIDIA GB300 NVL72 (blog).
- [2026/01] SGLang Diffusion accelerates video and image generation (blog).
More
- [2025/12] SGLang provides day-0 support for latest open models (MiMo-V2-Flash, Nemotron 3 Nano, Mistral Large 3, LLaDA 2.0 Diffusion LLM, MiniMax M2).
- [2025/11] SGLang Diffusion accelerates video and image generation (blog).
- [2025/10] SGLang now runs natively on TPU with the SGLang-Jax backend (blog).
- [2025/10] PyTorch Conference 2025 SGLang Talk (slide).
- [2025/10] SGLang x Nvidia SF Meetup on 10/2 (recap).
- [2025/09] Deploying DeepSeek on GB200 NVL72 with PD and Large Scale EP (Part II): 3.8x Prefill, 4.8x Decode Throughput (blog).
- [2025/09] SGLang Day 0 Support for DeepSeek-V3.2 with Sparse Attention (blog).
- [2025/08] SGLang x AMD SF Meetup on 8/22: Hands-on GPU workshop, tech talks by AMD/xAI/SGLang, and networking (Roadmap, Large-scale EP, Highlights, AITER/MoRI, Wave).
- [2025/08] SGLang provides day-0 support for OpenAI gpt-oss model (instructions)
- [2025/06] SGLang, the high-performance serving infrastructure powering trillions of tokens daily, has been awarded the third batch of the Open Source AI Grant by a16z (a16z blog).
- [2025/06] Deploying DeepSeek on GB200 NVL72 with PD and Large Scale EP (Part I): 2.7x Higher Decoding Throughput (blog).
- [2025/05] Deploying DeepSeek with PD Disaggregation and Large-scale Expert Parallelism on 96 H100 GPUs (blog).
- [2025/03] Supercharge DeepSeek-R1 Inference on AMD Instinct MI300X (AMD blog)
- [2025/03] SGLang Joins PyTorch Ecosystem: Efficient LLM Serving Engine (PyTorch blog)
- [2025/02] Unlock DeepSeek-R1 Inference Performance on AMD Instinct™ MI300X GPU (AMD blog)
- [2025/01] SGLang provides day one support for DeepSeek V3/R1 models on NVIDIA and AMD GPUs with DeepSeek-specific optimizations. (instructions, AMD blog, 10+ other companies)
- [2024/12] v0.4 Release: Zero-Overhead Batch Scheduler, Cache-Aware Load Balancer, Faster Structured Outputs (blog).
- [2024/10] The First SGLang Online Meetup (slides).
- [2024/09] v0.3 Release: 7x Faster DeepSeek MLA, 1.5x Faster torch.compile, Multi-Image/Video LLaVA-OneVision (blog).
- [2024/07] v0.2 Release: Faster Llama3 Serving with SGLang Runtime (vs. TensorRT-LLM, vLLM) (blog).
- [2024/02] SGLang enables 3x faster JSON decoding with compressed finite state machine (blog).
- [2024/01] SGLang provides up to 5x faster inference with RadixAttention (blog).
- [2024/01] SGLang powers the serving of the official LLaVA v1.6 release demo (usage).
About
SGLang is a high-performance serving framework for large language models and multimodal models. It is designed to deliver low-latency and high-throughput inference across a wide range of setups, from a single GPU to large distributed clusters. Its core features include:
- Fast Runtime: Provides efficient serving with RadixAttention for prefix caching, a zero-overhead CPU scheduler, prefill-decode disaggregation, speculative decoding, continuous batching, paged attention, tensor/pipeline/expert/data parallelism, structured outputs, chunked prefill, quantization (FP4/FP8/INT4/AWQ/GPTQ), and multi-LoRA batching.
- Broad Model Support: Supports a wide range of language models (Llama, Qwen, DeepSeek, Kimi, GLM, GPT, Gemma, Mistral, etc.), embedding models (e5-mistral, gte, mcdse), reward models (Skywork), and diffusion models (WAN, Qwen-Image), with easy extensibility for adding new models. Compatible with most Hugging Face models and OpenAI APIs.
- Extensive Hardware Support: Runs on NVIDIA GPUs (GB200/B300/H100/A100/Spark/5090), AMD GPUs (MI355/MI300), Intel Xeon CPUs, Google TPUs, Ascend NPUs, and more.
- Active Community: SGLang is open-source and supported by a vibrant community with widespread industry adoption, powering over 400,000 GPUs worldwide.
- RL & Post-Training Backbone: SGLang is a proven rollout backend used for training many frontier models, with native RL integrations and adoption by well-known post-training frameworks such as AReaL, Miles, slime, Tunix, verl and more.
Getting Started
Benchmark and Performance
Learn more in the release blogs: v0.2 blog, v0.3 blog, v0.4 blog, Large-scale expert parallelism, GB200 rack-scale parallelism, GB300 long context.
Adoption and Sponsorship
SGLang has been deployed at large scale, generating trillions of tokens in production each day. It is trusted and adopted by a wide range of leading enterprises and institutions, including xAI, NVIDIA, AMD, Intel, LinkedIn, Cursor, Oracle Cloud, Google Cloud, Microsoft Azure, AWS, Atlas Cloud, Voltage Park, Nebius, DataCrunch, Novita, RunPod, InnoMatrix, Modal, MIT, UCLA, the University of Washington, Stanford, UC Berkeley, Tsinghua University, Baseten, Baidu, AntGroup, Alibaba, Tencent, and other major technology organizations. As an open-source LLM inference engine, SGLang has become the de facto industry standard, with deployments running on over 400,000 GPUs worldwide. SGLang is currently hosted under the non-profit open-source organization LMSYS.
Contact Us
For enterprises interested in adopting or deploying SGLang at scale, including technical consulting, sponsorship opportunities, or partnership inquiries, please contact us at sglang@lmsys.org.
Long-term active SGLang contributors are eligible for coding agent sponsorship, such as Cursor, Claude Code, or OpenAI Codex. Email sglang@lmsys.org with your most important commits or pull requests.
Acknowledgment
We learned the design and reused code from the following projects: Guidance, vLLM, LightLLM, FlashInfer, Outlines, and LMQL.

