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9 Commits

Author SHA1 Message Date
caa692926c mount current dir to /workspace 2025-08-28 17:52:17 +08:00
9a851a8836 更新 Dockerfile 2025-08-28 17:30:26 +08:00
967c4b7d9e 更新 Dockerfile 2025-08-28 17:27:35 +08:00
2d4c9a1544 remove unnecessary files 2025-08-26 20:32:18 +08:00
be947dfc79 update readme 2025-08-26 18:13:06 +08:00
fcf7f30797 update base image of a100 2025-08-26 17:31:39 +08:00
b9906fa791 change base image for mlu370 2025-08-26 17:25:25 +08:00
root
ce8d16c160 update run_in_docker_mlu370 scripts 2025-08-26 15:35:32 +08:00
b524f25741 support mlu370 2025-08-25 17:07:12 +08:00
10 changed files with 18 additions and 56 deletions

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Dockerfile.bi100

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Dockerfile Normal file
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FROM git.modelhub.org.cn:9443/enginex-iluvatar/bi100-3.2.1-x86-ubuntu20.04-py3.10-poc-llm-infer:v1.2.2
WORKDIR /workspace
ENV PT_SDPA_ENABLE_HEAD_DIM_PADDING=1
RUN pip install diffusers==0.34.0
COPY main.py dataset.json /workspace/

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FROM harbor-contest.4pd.io/zhangyiqun/public/pytorch:2.6.0-cuda12.4-cudnn9-devel
WORKDIR /workspace
# ENV PT_SDPA_ENABLE_HEAD_DIM_PADDING=1
RUN pip install diffusers transformers sentencepiece -i https://nexus.4pd.io/repository/pypi-all/simple
COPY main.py test.sh dataset.json /workspace/

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FROM git.modelhub.org.cn:980/enginex-iluvatar/bi100-3.2.1-x86-ubuntu20.04-py3.10-poc-llm-infer:v1.2.2
WORKDIR /workspace
ENV PT_SDPA_ENABLE_HEAD_DIM_PADDING=1
RUN pip install diffusers==0.34.0
COPY main.py test.sh dataset.json /workspace/

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FROM git.modelhub.org.cn:980/enginex-iluvatar/mr100_corex:4.3.0
WORKDIR /workspace
COPY whls-mrv100 /packages
RUN pip install diffusers==0.34.0 sentencepiece transformers==4.55.2
# RUN pip install /packages/*.whl
COPY main.py test.sh dataset.json /workspace/

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## Installation
参考Dockerfile构建运行镜像
## Quickstart
### 测试程序
1. 下载模型https://modelscope.cn/models/AI-ModelScope/stable-diffusion-v1-5
2. 运行测试程序
修改测试程序`test.py`里面的模型路径,直接执行即可
### 构建镜像
```bash
python3 test.py
docker build -t diffusers:v0.1 .
```
### 批量测试程序
1. 准备输入数据集`dataset.json`,可以参考示例`dataset.json`
2. 运行测试程序
### 模型下载
模型地址https://modelscope.cn/models/AI-ModelScope/stable-diffusion-v1-5
并放到目录:`/mnt/contest_ceph/zhanghao/models/stable-diffusion-v1-5`(如更改目录,请修改后面的执行脚本中的模型路径)
### 测试程序
1. 准备输入数据集,可以参考示例`dataset.json`
2. 在docker镜像里运行测试程序会根据`dataset.json`内容,在`output`目录下生成图片文件。
```bash
python3 main.py --model "/mnt/contest_ceph/zhanghao/models/stable-diffusion-v1-5" --json "dataset.json" --results "results.json" --outdir "output" --device cuda --dtype fp16
./run_in_docker.sh
```
## 测试结果

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#! /usr/bin/env bash
image=harbor-contest.4pd.io/zhanghao/diffusers:bi100-0.2
docker run -it -v /root/zhanghao:/workspace -v /mnt:/mnt --device=dev/iluvatar1:/dev/iluvatar0 $image bash
image=diffusers:v0.1
docker run -v `pwd`:/workspace -v /mnt/contest_ceph/zhanghao/models/stable-diffusion-v1-5:/workspace/stable-diffusion-v1-5 --device=dev/iluvatar1:/dev/iluvatar0 $image python3 main.py --model "./stable-diffusion-v1-5" --json "dataset.json" --results "results.json" --outdir "output" --device cuda --dtype fp16

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#! /usr/bin/env bash
image=harbor-contest.4pd.io/zhanghao/diffusers:a100-0.2
docker run -it -v /home/zhanghao/workspace:/workspace -v /mnt:/mnt $image bash

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#! /usr/bin/env bash
image=harbor-contest.4pd.io/zhanghao/diffusers:mrv100-0.2
docker run -it -v /root/zhanghao:/workspace -v /mnt:/mnt --device=dev/iluvatar0:/dev/iluvatar0 $image bash

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test.py
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from diffusers import DiffusionPipeline
import torch
import time
model_path = "/mnt/contest_ceph/zhanghao/models/stable-diffusion-v1-5"
# model_path = "/mnt/contest_ceph/zhanghao/models/stable-diffusion-3.5-medium"
pipeline = DiffusionPipeline.from_pretrained(model_path, torch_dtype=torch.float16)
pipeline.to("cuda")
start = time.time()
image = pipeline("An image of a squirrel in Picasso style").images[0]
end = time.time()
print(f"elapsed: {end - start}")
image.save("squirrel_picasso.png")

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python3 main.py --model "/mnt/contest_ceph/zhanghao/models/stable-diffusion-v1-5" --json "dataset.json" --results "results.json" --outdir "output" --device cuda --dtype fp16