Add PaddlePaddle demo
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.github/workflows/demo_test.yml
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.github/workflows/demo_test.yml
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@ -831,3 +831,21 @@ jobs:
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- name: Run fio test
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run: docker exec ${{ github.job }} bash -c "cd /root/occlum/demos/benchmarks/fio && SGX_MODE=SIM ./run_fio_on_occlum.sh fio-seq-read.fio"
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PaddlePaddle_test:
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runs-on: ubuntu-20.04
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steps:
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- uses: actions/checkout@v1
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with:
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submodules: true
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- uses: ./.github/workflows/composite_action/sim
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with:
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container-name: ${{ github.job }}
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build-envs: 'OCCLUM_RELEASE_BUILD=1'
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- name: Build python and paddlepaddle
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run: docker exec ${{ github.job }} bash -c "cd /root/occlum/demos/paddlepaddle; ./install_python_with_conda.sh"
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- name: Run paddlepaddle test
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run: docker exec ${{ github.job }} bash -c "cd /root/occlum/demos/paddlepaddle; SGX_MODE=SIM ./run_paddlepaddle_on_occlum.sh"
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@ -24,6 +24,7 @@ This set of demos shows how real-world apps can be easily run inside SGX enclave
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* [mysql](mysql/): A demo of [MySQL](https://www.mysql.com/).
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* [openvino](openvino/) A benchmark of [OpenVINO Inference Engine](https://docs.openvinotoolkit.org/2019_R3/_docs_IE_DG_inference_engine_intro.html).
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* [pytorch](pytorch/): Demos of standalone and distributed [PyTorch](https://pytorch.org/).
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* [paddlepaddle](paddlepaddle/): A demo of [PaddlePaddle](https://www.paddlepaddle.org.cn/).
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* [redis](redis/): A demo of [Redis](https://redis.io).
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* [sofaboot](sofaboot/): A demo of [SOFABoot](https://github.com/sofastack/sofa-boot), an open source Java development framework based on Spring Boot.
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* [sqlite](sqlite/) A demo of [SQLite](https://www.sqlite.org) SQL database engine.
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demos/paddlepaddle/.gitignore
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demos/paddlepaddle/.gitignore
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occlum_instance/
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miniconda/
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Miniconda3*
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demos/paddlepaddle/README.md
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demos/paddlepaddle/README.md
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# Use PaddlePaddle with Python and Occlum
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This project demonstrates how Occlum enables _unmodified_
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[PaddlePaddle](https://www.paddlepaddle.org.cn/) programs running in SGX
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enclaves, on the basis of _unmodified_ [Python](https://www.python.org). The
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workload is a primary AI task from [PaddlePaddle Quick
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Start](https://www.paddlepaddle.org.cn/documentation/docs/zh/guides/beginner/quick_start_cn.html).
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The source code of the workload resides in `demo.py`.
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## How to Run
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This tutorial is written under the assumption that you have Docker installed and use Occlum in a Docker container.
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Occlum is compatible with glibc-supported Python, we employ miniconda as python installation tool. You can import paddle packages using conda. Here, miniconda is automatically installed by install_python_with_conda.sh script, the required python and paddle packages for this project are also loaded by this script.
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Step 1 (on the host): Start an Occlum container
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```
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docker pull occlum/occlum:latest-ubuntu20.04
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docker run -it --name=pythonDemo --device /dev/sgx/enclave occlum/occlum:latest-ubuntu20.04 bash
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```
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Step 2 (in the Occlum container): Download miniconda and install python to prefix position.
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```
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cd /root/demos/paddlepaddle
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bash ./install_python_with_conda.sh
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```
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Step 3 (in the Occlum container): Run the sample code on Occlum
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```
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cd /root/demos/paddlepaddle
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bash ./run_paddlepaddle_on_occlum.sh
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```
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demos/paddlepaddle/demo.py
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demos/paddlepaddle/demo.py
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import paddle
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import numpy as np
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from paddle.vision.transforms import Normalize
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transform = Normalize(mean=[127.5], std=[127.5], data_format='CHW')
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train_dataset = paddle.vision.datasets.MNIST(image_path='mnist/train-images-idx3-ubyte.gz',
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label_path='mnist/train-labels-idx1-ubyte.gz',
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mode='train', transform=transform)
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test_dataset = paddle.vision.datasets.MNIST(image_path='mnist/t10k-images-idx3-ubyte.gz',
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label_path='mnist/t10k-labels-idx1-ubyte.gz',
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mode='test', transform=transform)
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lenet = paddle.vision.models.LeNet(num_classes=10)
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model = paddle.Model(lenet)
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model.prepare(paddle.optimizer.Adam(parameters=model.parameters()),
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paddle.nn.CrossEntropyLoss(),
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paddle.metric.Accuracy())
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model.fit(train_dataset, epochs=5, batch_size=64, verbose=1)
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model.evaluate(test_dataset, batch_size=64, verbose=1)
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model.save('./output/mnist')
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model.load('output/mnist')
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img, label = test_dataset[0]
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img_batch = np.expand_dims(img.astype('float32'), axis=0)
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out = model.predict_batch(img_batch)[0]
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pred_label = out.argmax()
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print('true label: {}, pred label: {}'.format(label[0], pred_label))
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36
demos/paddlepaddle/install_python_with_conda.sh
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demos/paddlepaddle/install_python_with_conda.sh
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#!/bin/bash
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set -e
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script_dir="$( cd "$( dirname "${BASH_SOURCE[0]}" )" >/dev/null 2>&1 && pwd )"
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# 1. Init occlum workspace
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[ -d occlum_instance ] || occlum new occlum_instance
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# 2. Install python and dependencies to specified position
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[ -f Miniconda3-latest-Linux-x86_64.sh ] || wget https://repo.anaconda.com/miniconda/Miniconda3-latest-Linux-x86_64.sh
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[ -d miniconda ] || bash ./Miniconda3-latest-Linux-x86_64.sh -b -p $script_dir/miniconda
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$script_dir/miniconda/bin/conda create --prefix $script_dir/python-occlum -y matplotlib numpy python=3.8.10 paddlepaddle==2.4.2 -c paddle
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CORE_PY=$script_dir/python-occlum/lib/python3.8/site-packages/paddle/fluid/core.py
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IMAGE_PY=$script_dir/python-occlum/lib/python3.8/site-packages/paddle/dataset/image.py
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# Adjust the source code to run in Occlum
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sed -i "186 i \ elif sysstr == 'occlum':\n return True" $CORE_PY
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sed -ie "37,64d" $IMAGE_PY
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sed -i "37 i \try:\n import cv2\nexcept ImportError:\n cv2 = None" $IMAGE_PY
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# Download the dataset
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DATASET=$script_dir/mnist
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[ -d $DATASET ] && exit 0
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TRAIN_IMAGE=train-images-idx3-ubyte.gz
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TRAIN_LABEL=train-labels-idx1-ubyte.gz
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TEST_IMAGE=t10k-images-idx3-ubyte.gz
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TEST_LABEL=t10k-labels-idx1-ubyte.gz
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URL=http://yann.lecun.com/exdb/mnist
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mkdir $DATASET
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wget $URL/$TRAIN_IMAGE -P $DATASET
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wget $URL/$TRAIN_LABEL -P $DATASET
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wget $URL/$TEST_IMAGE -P $DATASET
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wget $URL/$TEST_LABEL -P $DATASET
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demos/paddlepaddle/paddlepaddle.yaml
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demos/paddlepaddle/paddlepaddle.yaml
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includes:
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- base.yaml
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targets:
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- target: /bin
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createlinks:
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- src: /opt/python-occlum/bin/python3
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linkname: python3
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# python packages
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- target: /opt
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copy:
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- dirs:
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- ../python-occlum
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# python code and dataset
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- target: /
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copy:
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- files:
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- ../demo.py
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- dirs:
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- ../mnist
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demos/paddlepaddle/run_paddlepaddle_on_occlum.sh
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demos/paddlepaddle/run_paddlepaddle_on_occlum.sh
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#!/bin/bash
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set -e
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BLUE='\033[1;34m'
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NC='\033[0m'
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script_dir="$( cd "$( dirname "${BASH_SOURCE[0]}" )" >/dev/null 2>&1 && pwd )"
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python_dir="$script_dir/occlum_instance/image/opt/python-occlum"
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cd occlum_instance && rm -rf image
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copy_bom -f ../paddlepaddle.yaml --root image --include-dir /opt/occlum/etc/template
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if [ ! -d $python_dir ];then
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echo "Error: cannot stat '$python_dir' directory"
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exit 1
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fi
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new_json="$(jq '.resource_limits.user_space_size = "6000MB" |
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.resource_limits.kernel_space_heap_size = "256MB" |
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.resource_limits.max_num_of_threads = 64 |
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.env.default += ["PYTHONHOME=/opt/python-occlum"]' Occlum.json)" && \
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echo "${new_json}" > Occlum.json
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occlum build
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# Run the python demo
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echo -e "${BLUE}occlum run /bin/python3 demo.py${NC}"
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occlum run /bin/python3 demo.py
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