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SGLang

Fast LLM serving framework with RadixAttention KV cache reuse and structured output (JSON/regex) natively.

@ai-supply
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रेटिंग★ 4.7
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SGLang

SGLang (Structured Generation Language) is a fast serving framework for large language and vision-language models. Its core innovation is RadixAttention — a prefix tree-based KV cache that enables automatic reuse across requests — dramatically cutting latency for workloads with shared prefixes (system prompts, few-shot examples, RAG contexts).

Key Features

  • RadixAttention: automatic KV cache reuse via radix tree, 5× throughput on shared-prefix workloads
  • Native structured output: JSON schema, regex, EBNF grammar — zero overhead
  • Multi-modal: vision-language models (LLaVA, InternVL, Qwen-VL)
  • Speculative decoding and tensor parallelism
  • OpenAI-compatible API with streaming
  • Supports Llama, Mistral, Qwen, DeepSeek, Gemma, and more

Quick Start

pip install sglang[all]

# Launch server
python -m sglang.launch_server \
  --model-path meta-llama/Llama-3.1-8B-Instruct \
  --port 30000

# Query with structured output
import sglang as sgl

@sgl.function
def classify(s, text):
    s += sgl.user(f"Classify: {text}")
    s += sgl.assistant(sgl.gen("label", choices=["positive", "negative"]))

Install via ai-supply

npx ai-supply add sglang-structured-generation

Curated mirror of the open-source SGLang (Apache-2.0). Get it from the source.

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