Move CI to Github Actions #16
Workflow file for this run
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name: CI | |
on: | |
push: | |
branches: | |
- main | |
pull_request: | |
branches: | |
- main | |
schedule: | |
- cron: '4 4 * * *' # This schedule runs the nightly job every night at 4:04AM | |
jobs: | |
lint_py39_torch_release: | |
runs-on: ubuntu-latest | |
steps: | |
- name: Checkout | |
uses: actions/checkout@v2 | |
- name: Set up Python | |
uses: actions/setup-python@v2 | |
with: | |
python-version: 3.9 | |
- name: Install dependencies | |
run: | | |
python -m pip install --upgrade pip | |
pip install flake8 black isort | |
./scripts/install_via_pip.sh | |
- name: Lint with flake8 | |
run: flake8 --config ./.github/workflows/flake8_config.ini | |
- name: Lint with black | |
run: black --check --diff --color . | |
- name: Check import order with isort | |
run: isort -v -l 88 -o opacus --lines-after-imports 2 -m 3 --trailing-comma --check-only . | |
unittest_py38_torch_release: | |
runs-on: ubuntu-latest | |
steps: | |
- name: Checkout | |
uses: actions/checkout@v2 | |
- name: Set up Python | |
uses: actions/setup-python@v2 | |
with: | |
python-version: 3.8 | |
- name: Install dependencies | |
run: | | |
python -m pip install --upgrade pip | |
pip install pytest coverage coveralls | |
./scripts/install_via_pip.sh | |
- name: Run unit tests | |
run: | | |
mkdir unittest-py38-release-reports | |
coverage run -m pytest --doctest-modules -p conftest --junitxml=unittest-py38-release-reports/junit.xml opacus | |
coverage report -i -m | |
- name: Store test results | |
uses: actions/upload-artifact@v2 | |
with: | |
name: unittest-py38-release-reports | |
path: unittest-py38-release-reports | |
unittest_py39_torch_release: | |
runs-on: ubuntu-latest | |
steps: | |
- name: Checkout | |
uses: actions/checkout@v2 | |
- name: Set up Python | |
uses: actions/setup-python@v2 | |
with: | |
python-version: 3.9 | |
- name: Install dependencies | |
run: | | |
python -m pip install --upgrade pip | |
pip install pytest coverage coveralls | |
./scripts/install_via_pip.sh | |
- name: Run unit tests | |
run: | | |
mkdir unittest-py39-release-reports | |
coverage run -m pytest --doctest-modules -p conftest --junitxml=unittest-py39-release-reports/junit.xml opacus | |
coverage report -i -m | |
- name: Store test results | |
uses: actions/upload-artifact@v2 | |
with: | |
name: unittest-py39-release-reports | |
path: unittest-py39-release-reports | |
unittest_py39_torch_nightly: | |
runs-on: ubuntu-latest | |
if: ${{ github.event_name == 'schedule' }} | |
steps: | |
- name: Checkout | |
uses: actions/checkout@v2 | |
- name: Set up Python | |
uses: actions/setup-python@v2 | |
with: | |
python-version: 3.9 | |
- name: Install dependencies | |
run: | | |
python -m pip install --upgrade pip | |
pip install pytest coverage coveralls | |
./scripts/install_via_pip.sh -n | |
- name: Run unit tests | |
run: | | |
mkdir unittest-py39-nightly-reports | |
coverage run -m pytest --doctest-modules -p conftest --junitxml=unittest-py39-nightly-reports/junit.xml opacus | |
coverage report -i -m | |
- name: Store test results | |
uses: actions/upload-artifact@v2 | |
with: | |
name: unittest-py39-nightly-reports | |
path: unittest-py39-nightly-reports | |
prv_accountant_values: | |
runs-on: ubuntu-latest | |
steps: | |
- name: Checkout | |
uses: actions/checkout@v2 | |
- name: Set up Python | |
uses: actions/setup-python@v2 | |
with: | |
python-version: 3.9 | |
- name: Install dependencies | |
run: | | |
python -m pip install --upgrade pip | |
./scripts/install_via_pip.sh | |
- name: Run prv accountant unit tests | |
run: | | |
python -m unittest opacus.tests.prv_accountant | |
integrationtest_py39_torch_release_cpu: | |
runs-on: ubuntu-latest | |
steps: | |
- name: Checkout | |
uses: actions/checkout@v2 | |
- name: Set up Python | |
uses: actions/setup-python@v2 | |
with: | |
python-version: 3.9 | |
- name: Install dependencies | |
run: | | |
python -m pip install --upgrade pip | |
pip install pytest coverage coveralls | |
./scripts/install_via_pip.sh | |
- name: Run MNIST integration test (CPU) | |
run: | | |
mkdir -p runs/mnist/data | |
mkdir -p runs/mnist/test-reports | |
coverage run examples/mnist.py --lr 0.25 --sigma 0.7 -c 1.5 --batch-size 64 --epochs 1 --data-root runs/mnist/data --n-runs 1 --device cpu | |
python -c "import torch; accuracy = torch.load('run_results_mnist_0.25_0.7_1.5_64_1.pt'); exit(0) if (accuracy[0]>0.78 and accuracy[0]<0.95) else exit(1)" | |
coverage report -i -m | |
- name: Store test results | |
uses: actions/upload-artifact@v2 | |
with: | |
name: mnist-cpu-reports | |
path: runs/mnist/test-reports | |
integrationtest_py39_torch_release_cuda: | |
runs-on: ubuntu-latest | |
needs: [unittest_py39_torch_release] | |
container: | |
# https://hub.docker.com/r/nvidia/cuda | |
image: nvidia/cuda:12.3.1-base-ubuntu22.04 | |
options: --gpus all | |
env: | |
TZ: 'UTC' | |
steps: | |
- name: Checkout | |
uses: actions/checkout@v2 | |
- name: Set up Python | |
uses: actions/setup-python@v2 | |
with: | |
python-version: 3.9 | |
- name: Install dependencies | |
run: | | |
python -m pip install --upgrade pip | |
pip install pytest coverage coveralls | |
./scripts/install_via_pip.sh -c | |
- name: Install CUDA toolkit and cuDNN | |
run: | | |
apt-get update | |
apt-get install -y --no-install-recommends \ | |
cuda-toolkit-11-1 \ | |
libcudnn8=8.1.1.33-1+cuda11.1 \ | |
libcudnn8-dev=8.1.1.33-1+cuda11.1 | |
- name: Run MNIST integration test (CUDA) | |
run: | | |
mkdir -p runs/mnist/data | |
mkdir -p runs/mnist/test-reports | |
python examples/mnist.py --lr 0.25 --sigma 0.7 -c 1.5 --batch-size 64 --epochs 1 --data-root runs/mnist/data --n-runs 1 --device cuda | |
python -c "import torch; accuracy = torch.load('run_results_mnist_0.25_0.7_1.5_64_1.pt'); exit(0) if (accuracy[0]>0.78 and accuracy[0]<0.95) else exit(1)" | |
- name: Store MNIST test results | |
uses: actions/upload-artifact@v2 | |
with: | |
name: mnist-gpu-reports | |
path: runs/mnist/test-reports | |
- name: Run CIFAR10 integration test (CUDA) | |
run: | | |
mkdir -p runs/cifar10/data | |
mkdir -p runs/cifar10/logs | |
mkdir -p runs/cifar10/test-reports | |
pip install tensorboard | |
python examples/cifar10.py --lr 0.1 --sigma 1.5 -c 10 --batch-size 2000 --epochs 10 --data-root runs/cifar10/data --log-dir runs/cifar10/logs --device cuda | |
python -c "import torch; model = torch.load('model_best.pth.tar'); exit(0) if (model['best_acc1']>0.4 and model['best_acc1']<0.49) else exit(1)" | |
python examples/cifar10.py --lr 0.1 --sigma 1.5 -c 10 --batch-size 2000 --epochs 10 --data-root runs/cifar10/data --log-dir runs/cifar10/logs --device cuda --grad_sample_mode no_op | |
python -c "import torch; model = torch.load('model_best.pth.tar'); exit(0) if (model['best_acc1']>0.4 and model['best_acc1']<0.49) else exit(1)" | |
- name: Store CIFAR10 test results | |
uses: actions/upload-artifact@v2 | |
with: | |
name: cifar10-gpu-reports | |
path: runs/cifar10/test-reports | |
- name: Run IMDb integration test (CUDA) | |
run: | | |
mkdir -p runs/imdb/data | |
mkdir -p runs/imdb/test-reports | |
pip install --user datasets transformers | |
python examples/imdb.py --lr 0.02 --sigma 1.0 -c 1.0 --batch-size 64 --max-sequence-length 256 --epochs 2 --data-root runs/imdb/data --device cuda | |
python -c "import torch; accuracy = torch.load('run_results_imdb_classification.pt'); exit(0) if (accuracy>0.54 and accuracy<0.66) else exit(1)" | |
- name: Store IMDb test results | |
uses: actions/upload-artifact@v2 | |
with: | |
name: imdb-gpu-reports | |
path: runs/imdb/test-reports | |
- name: Run charlstm integration test (CUDA) | |
run: | | |
mkdir -p runs/charlstm/data | |
wget https://download.pytorch.org/tutorial/data.zip -O runs/charlstm/data/data.zip | |
unzip runs/charlstm/data/data.zip -d runs/charlstm/data | |
rm runs/charlstm/data/data.zip | |
mkdir -p runs/charlstm/test-reports | |
pip install scikit-learn | |
python examples/char-lstm-classification.py --epochs=20 --learning-rate=2.0 --hidden-size=128 --delta=8e-5 --batch-size 400 --n-layers=1 --sigma=1.0 --max-per-sample-grad-norm=1.5 --data-root="runs/charlstm/data/data/names/" --device cuda --test-every 5 | |
python -c "import torch; accuracy = torch.load('run_results_chr_lstm_classification.pt'); exit(0) if (accuracy>0.60 and accuracy<0.80) else exit(1)" | |
- name: Store test results | |
uses: actions/upload-artifact@v2 | |
with: | |
name: charlstm-gpu-reports | |
path: runs/charlstm/test-reports | |
micro_benchmarks_py39_torch_release_cuda: | |
runs-on: ubuntu-latest | |
needs: [integrationtest_py39_torch_release_cuda] | |
container: | |
# https://hub.docker.com/r/nvidia/cuda | |
image: nvidia/cuda:12.3.1-base-ubuntu22.04 | |
options: --gpus all | |
env: | |
TZ: 'UTC' | |
steps: | |
- name: Checkout | |
uses: actions/checkout@v2 | |
- name: Set up Python | |
uses: actions/setup-python@v2 | |
with: | |
python-version: 3.9 | |
- name: Install dependencies | |
run: | | |
python -m pip install --upgrade pip | |
pip install pytest coverage coveralls | |
./scripts/install_via_pip.sh | |
- name: Install CUDA toolkit and cuDNN | |
run: | | |
apt-get update | |
apt-get install -y --no-install-recommends \ | |
cuda-toolkit-11-1 \ | |
libcudnn8=8.1.1.33-1+cuda11.1 \ | |
libcudnn8-dev=8.1.1.33-1+cuda11.1 | |
- name: Run benchmark integration tests (CUDA) | |
run: | | |
mkdir -p benchmarks/results/raw | |
python benchmarks/run_benchmarks.py --batch_size 16 --layers "groupnorm instancenorm layernorm" --config_file ./benchmarks/config.json --root ./benchmarks/results/raw/ --cont | |
IFS=$' ';layers=("groupnorm" "instancenorm" "layernorm"); rm -rf /tmp/report_layers; mkdir -p /tmp/report_layers; IFS=$'\n'; files=`( echo "${layers[*]}" ) | sed 's/.*/.\/benchmarks\/results\/raw\/&*/'` | |
cp -v ${files[@]} /tmp/report_layers | |
report_id=`IFS=$'-'; echo "${layers[*]}"` | |
python benchmarks/generate_report.py --path-to-results /tmp/report_layers --save-path benchmarks/results/report-${report_id}.csv --format csv | |
python benchmarks/generate_report.py --path-to-results /tmp/report_layers --save-path benchmarks/results/report-${report_id}.pkl --format pkl | |
python benchmarks/check_threshold.py --report-path "./benchmarks/results/report-"$report_id".pkl" --metric runtime --threshold 3.0 --column "hooks/baseline" | |
python benchmarks/check_threshold.py --report-path "./benchmarks/results/report-"$report_id".pkl" --metric memory --threshold 1.6 --column "hooks/baseline" | |
- name: Store artifacts | |
uses: actions/upload-artifact@v2 | |
with: | |
name: benchmarks-reports | |
path: benchmarks/results/ | |
unittest_multi_gpu: | |
runs-on: linux.4xlarge.nvidia.gpu | |
steps: | |
- name: Checkout | |
uses: actions/checkout@v2 | |
- name: Set up Python | |
uses: actions/setup-python@v2 | |
with: | |
python-version: 3.x | |
- name: Install dependencies | |
run: | | |
python -m pip install --upgrade pip | |
pip install pytest coverage coveralls | |
./scripts/install_via_pip.sh -c | |
- name: Run multi-GPU unit tests | |
run: | | |
nvidia-smi | |
nvcc --version | grep "cuda_" | |
mkdir unittest-multigpu-reports | |
coverage run -m unittest opacus.tests.multigpu_gradcheck.GradientComputationTest.test_gradient_correct | |
coverage report -i -m | |
- name: Store test results | |
uses: actions/upload-artifact@v2 | |
with: | |
name: unittest-multigpu-reports | |
path: unittest-multigpu-reports | |
finish_coveralls_parallel: | |
runs-on: ubuntu-latest | |
steps: | |
- name: Checkout | |
uses: actions/checkout@v2 | |
- name: Finish Coveralls Parallel | |
run: | | |
python -m pip install --upgrade pip | |
pip install coveralls --user | |
coveralls --finish | |
- name: coveralls upload | |
timeout-minutes: 5 | |
run: | | |
python -m pip install --upgrade pip | |
pip install coveralls --user | |
COVERALLS_PARALLEL=true COVERALLS_FLAG_NAME="${GITHUB_JOB}" coveralls |