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---
title: SGLang Diffusion
description: Accelerated image and video generation with diffusion models.
---
SGLang Diffusion is an inference framework for accelerated image and video generation using diffusion models. It provides an end-to-end unified pipeline with optimized kernels and an efficient scheduler loop.
## Key features
* **Broad model support:** Wan series, FastWan series, Hunyuan, Qwen-Image, Qwen-Image-Edit, Flux, Z-Image, GLM-Image, and more
* **Fast inference:** optimized kernels, efficient scheduler loop, and Cache-DiT acceleration
* **Ease of use:** OpenAI-compatible API, CLI, and Python SDK
* **Multi-platform:** NVIDIA GPUs (H100, H200, A100, B200, 4090), AMD GPUs (MI300X, MI325X), and Ascend NPU (A2, A3)
## Quick start
1. **Install SGLang Diffusion**
```bash
uv pip install "sglang[diffusion]" --prerelease=allow
```
See the [installation guide](../docs/sglang-diffusion/installation) for more installation methods and ROCm-specific instructions.
2. **Run a one-off generation**
```bash
sglang generate --model-path Qwen/Qwen-Image \
--prompt "A beautiful sunset over the mountains" \
--save-output
```
3. **Serve with the OpenAI-compatible API**
```bash
sglang serve --model-path Qwen/Qwen-Image --port 30010
```
## CLI quick reference
### Generate (one-off generation)
```bash
sglang generate --model-path <MODEL> --prompt "<PROMPT>" --save-output
```
### Serve (HTTP server)
```bash
sglang serve --model-path <MODEL> --port 30010
```
### Enable Cache-DiT acceleration
```bash
SGLANG_CACHE_DIT_ENABLED=true sglang generate --model-path <MODEL> --prompt "<PROMPT>"
```
## References
* [SGLang GitHub](https://github.com/sgl-project/sglang)
* [Cache-DiT](https://github.com/vipshop/cache-dit)
* [FastVideo](https://github.com/hao-ai-lab/FastVideo)
* [xDiT](https://github.com/xdit-project/xDiT)
* [Diffusers](https://github.com/huggingface/diffusers)