Unverified Commit 03d5fbfd authored by Lianmin Zheng's avatar Lianmin Zheng Committed by GitHub
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Release 0.4.1.post3 - upload the config.json to PyPI (#2647)

parent 1703d766
# SGLang v0.4.1 - DeepSeek V3 Support # DeepSeek V3 Support
We're excited to announce [SGLang v0.4.1](https://github.com/sgl-project/sglang/releases/tag/v0.4.1), which now supports [DeepSeek V3](https://huggingface.co/deepseek-ai/DeepSeek-V3-Base) - currently the strongest open-source LLM, even surpassing GPT-4o. The SGLang and DeepSeek teams worked together to get DeepSeek V3 FP8 running on NVIDIA and AMD GPUs **from day one**. SGLang also has supported [MLA optimization](https://lmsys.org/blog/2024-09-04-sglang-v0-3/#deepseek-multi-head-latent-attention-mla-throughput-optimizations) and [DP attention](https://lmsys.org/blog/2024-12-04-sglang-v0-4/#data-parallelism-attention-for-deepseek-models), making SGLang one of the best open-source LLM engines for running DeepSeek models.
The SGLang and DeepSeek teams worked together to get DeepSeek V3 FP8 running on NVIDIA and AMD GPU **from day one**. We've also supported MLA optimization and DP attention before, making SGLang one of the best open-source LLM engines for running DeepSeek models.
Special thanks to Meituan's Search & Recommend Platform Team and Baseten's Model Performance Team for implementing the model, and DataCrunch for providing GPU resources. Special thanks to Meituan's Search & Recommend Platform Team and Baseten's Model Performance Team for implementing the model, and DataCrunch for providing GPU resources.
...@@ -20,17 +18,20 @@ If you encounter errors when starting the server, ensure the weights have finish ...@@ -20,17 +18,20 @@ If you encounter errors when starting the server, ensure the weights have finish
docker run --gpus all --shm-size 32g -p 30000:30000 -v ~/.cache/huggingface:/root/.cache/huggingface --ipc=host lmsysorg/sglang:latest \ docker run --gpus all --shm-size 32g -p 30000:30000 -v ~/.cache/huggingface:/root/.cache/huggingface --ipc=host lmsysorg/sglang:latest \
python3 -m sglang.launch_server --model deepseek-ai/DeepSeek-V3 --tp 8 --trust-remote-code --port 30000 python3 -m sglang.launch_server --model deepseek-ai/DeepSeek-V3 --tp 8 --trust-remote-code --port 30000
``` ```
For high QPS scenarios, add the `--enable-dp-attention` argument to boost throughput. For high QPS scenarios, add the `--enable-dp-attention` argument to boost throughput.
### Using pip ### Using pip
```bash ```bash
# Installation # Installation
pip install "sglang[all]==0.4.1.post2" --find-links https://flashinfer.ai/whl/cu124/torch2.4/flashinfer pip install "sglang[all]>=0.4.1.post3" --find-links https://flashinfer.ai/whl/cu124/torch2.4/flashinfer
# Launch # Launch
python3 -m sglang.launch_server --model deepseek-ai/DeepSeek-V3 --tp 8 --trust-remote-code python3 -m sglang.launch_server --model deepseek-ai/DeepSeek-V3 --tp 8 --trust-remote-code
``` ```
For high QPS scenarios, add the `--enable-dp-attention` argument to boost throughput.
### Example with OpenAI API ### Example with OpenAI API
```python3 ```python3
......
# Usage (to build SGLang ROCm docker image): # Usage (to build SGLang ROCm docker image):
# docker build --build-arg SGL_BRANCH=v0.4.1.post2 -t v0.4.1.post2-rocm620 -f Dockerfile.rocm . # docker build --build-arg SGL_BRANCH=v0.4.1.post3 -t v0.4.1.post3-rocm620 -f Dockerfile.rocm .
# default base image # default base image
ARG BASE_IMAGE="rocm/vllm-dev:20241022" ARG BASE_IMAGE="rocm/vllm-dev:20241022"
......
...@@ -11,9 +11,9 @@ docker pull nvidia/cuda:12.1.1-devel-ubuntu22.04 ...@@ -11,9 +11,9 @@ docker pull nvidia/cuda:12.1.1-devel-ubuntu22.04
# Nvidia # Nvidia
docker run --shm-size 128g -it -v /tmp/huggingface:/hf_home --gpus all nvidia/cuda:12.1.1-devel-ubuntu22.04 /bin/bash docker run --shm-size 128g -it -v /tmp/huggingface:/hf_home --gpus all nvidia/cuda:12.1.1-devel-ubuntu22.04 /bin/bash
# AMD # AMD
docker run --rm --device=/dev/kfd --device=/dev/dri --group-add video --shm-size 128g -it -v /tmp/huggingface:/hf_home lmsysorg/sglang:v0.4.1.post2-rocm620 /bin/bash docker run --rm --device=/dev/kfd --device=/dev/dri --group-add video --shm-size 128g -it -v /tmp/huggingface:/hf_home lmsysorg/sglang:v0.4.1.post3-rocm620 /bin/bash
# AMD just the last 2 GPUs # AMD just the last 2 GPUs
docker run --rm --device=/dev/kfd --device=/dev/dri/renderD176 --device=/dev/dri/renderD184 --group-add video --shm-size 128g -it -v /tmp/huggingface:/hf_home lmsysorg/sglang:v0.4.1.post2-rocm620 /bin/bash docker run --rm --device=/dev/kfd --device=/dev/dri/renderD176 --device=/dev/dri/renderD184 --group-add video --shm-size 128g -it -v /tmp/huggingface:/hf_home lmsysorg/sglang:v0.4.1.post3-rocm620 /bin/bash
``` ```
### Step 2: Configure the runner by `config.sh` ### Step 2: Configure the runner by `config.sh`
......
...@@ -13,7 +13,7 @@ Note: Please check the [FlashInfer installation doc](https://docs.flashinfer.ai/ ...@@ -13,7 +13,7 @@ Note: Please check the [FlashInfer installation doc](https://docs.flashinfer.ai/
## Method 2: From source ## Method 2: From source
``` ```
# Use the last release branch # Use the last release branch
git clone -b v0.4.1.post2 https://github.com/sgl-project/sglang.git git clone -b v0.4.1.post3 https://github.com/sgl-project/sglang.git
cd sglang cd sglang
pip install --upgrade pip pip install --upgrade pip
...@@ -26,7 +26,7 @@ Note: To AMD ROCm system with Instinct/MI GPUs, do following instead: ...@@ -26,7 +26,7 @@ Note: To AMD ROCm system with Instinct/MI GPUs, do following instead:
``` ```
# Use the last release branch # Use the last release branch
git clone -b v0.4.1.post2 https://github.com/sgl-project/sglang.git git clone -b v0.4.1.post3 https://github.com/sgl-project/sglang.git
cd sglang cd sglang
pip install --upgrade pip pip install --upgrade pip
...@@ -51,7 +51,7 @@ docker run --gpus all \ ...@@ -51,7 +51,7 @@ docker run --gpus all \
Note: To AMD ROCm system with Instinct/MI GPUs, it is recommended to use `docker/Dockerfile.rocm` to build images, example and usage as below: Note: To AMD ROCm system with Instinct/MI GPUs, it is recommended to use `docker/Dockerfile.rocm` to build images, example and usage as below:
```bash ```bash
docker build --build-arg SGL_BRANCH=v0.4.1.post2 -t v0.4.1.post2-rocm620 -f Dockerfile.rocm . docker build --build-arg SGL_BRANCH=v0.4.1.post3 -t v0.4.1.post3-rocm620 -f Dockerfile.rocm .
alias drun='docker run -it --rm --network=host --device=/dev/kfd --device=/dev/dri --ipc=host \ alias drun='docker run -it --rm --network=host --device=/dev/kfd --device=/dev/dri --ipc=host \
--shm-size 16G --group-add video --cap-add=SYS_PTRACE --security-opt seccomp=unconfined \ --shm-size 16G --group-add video --cap-add=SYS_PTRACE --security-opt seccomp=unconfined \
...@@ -60,11 +60,11 @@ alias drun='docker run -it --rm --network=host --device=/dev/kfd --device=/dev/d ...@@ -60,11 +60,11 @@ alias drun='docker run -it --rm --network=host --device=/dev/kfd --device=/dev/d
drun -p 30000:30000 \ drun -p 30000:30000 \
-v ~/.cache/huggingface:/root/.cache/huggingface \ -v ~/.cache/huggingface:/root/.cache/huggingface \
--env "HF_TOKEN=<secret>" \ --env "HF_TOKEN=<secret>" \
v0.4.1.post2-rocm620 \ v0.4.1.post3-rocm620 \
python3 -m sglang.launch_server --model-path meta-llama/Llama-3.1-8B-Instruct --host 0.0.0.0 --port 30000 python3 -m sglang.launch_server --model-path meta-llama/Llama-3.1-8B-Instruct --host 0.0.0.0 --port 30000
# Till flashinfer backend available, --attention-backend triton --sampling-backend pytorch are set by default # Till flashinfer backend available, --attention-backend triton --sampling-backend pytorch are set by default
drun v0.4.1.post2-rocm620 python3 -m sglang.bench_one_batch --batch-size 32 --input 1024 --output 128 --model amd/Meta-Llama-3.1-8B-Instruct-FP8-KV --tp 8 --quantization fp8 drun v0.4.1.post3-rocm620 python3 -m sglang.bench_one_batch --batch-size 32 --input 1024 --output 128 --model amd/Meta-Llama-3.1-8B-Instruct-FP8-KV --tp 8 --quantization fp8
``` ```
## Method 4: Using docker compose ## Method 4: Using docker compose
......
...@@ -4,7 +4,7 @@ build-backend = "setuptools.build_meta" ...@@ -4,7 +4,7 @@ build-backend = "setuptools.build_meta"
[project] [project]
name = "sglang" name = "sglang"
version = "0.4.1.post2" version = "0.4.1.post3"
description = "SGLang is yet another fast serving framework for large language models and vision language models." description = "SGLang is yet another fast serving framework for large language models and vision language models."
readme = "README.md" readme = "README.md"
requires-python = ">=3.8" requires-python = ">=3.8"
...@@ -61,7 +61,7 @@ dev_hpu = ["sglang[all_hpu]", "sglang[test]"] ...@@ -61,7 +61,7 @@ dev_hpu = ["sglang[all_hpu]", "sglang[test]"]
"Bug Tracker" = "https://github.com/sgl-project/sglang/issues" "Bug Tracker" = "https://github.com/sgl-project/sglang/issues"
[tool.setuptools.package-data] [tool.setuptools.package-data]
"sglang" = ["srt/layers/fused_moe_triton/configs/*.json"] "sglang" = ["srt/layers/moe/fused_moe_triton/configs/*.json", "srt/layers/quantization/configs/*.json"]
[tool.setuptools.packages.find] [tool.setuptools.packages.find]
exclude = [ exclude = [
......
__version__ = "0.4.1.post2" __version__ = "0.4.1.post3"
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