ONNX Runtime: cross-platform, high performance ML inferencing and training accelerator
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Wei-Sheng Chin b71ebf91a5
[DORT] Reduce global configs to make enabling dynamic shape easier (#16720)
There are several global configs used by DORT.
```py
DEFAULT_ONNX_EXPORTER_OPTIONS = torch.onnx._internal.exporter.ResolvedExportOptions(
    torch.onnx._internal.exporter.ExportOptions()
)

# TODO(wechi): This line must generate result identical to the call of
# _create_onnx_supports_op_overload_table(...) inside
# create_onnx_friendly_decomposition_table(...) in
# torch/onnx/_internal/fx/decomposition_table.py.
_SUPPORT_DICT = torch.onnx._internal.fx.decomposition_table._create_onnx_supports_op_overload_table(
    DEFAULT_ONNX_EXPORTER_OPTIONS.onnx_registry
)  # type: ignore

_EXTRA_SUPPORT_DICT: Dict[str, Any] = {
    "getattr": None,
    "_operator.getitem": None,
}

DORT_DECOMPOSITION_TABLE = DEFAULT_ONNX_EXPORTER_OPTIONS.decomposition_table
```

We can see all but `_EXTRA_SUPPORT_DICT` are extracted from deduced from
ONNX exporter's options. As there are many ways to configure ONNX
exporter's options, we decided to move these variables to `OrtBackend`'s
`__init__` so that the construction of `OrtBackend` becomes more
flexible (especially for enabling dynamic shape or not).
2023-07-18 09:06:58 -07:00
.config
.devcontainer
.gdn Update win-ci-pipeline.yml: enable xnnpack tests (#16244) 2023-06-14 19:12:42 -07:00
.github Bump actions/checkout from 2 to 3 (#16405) 2023-07-01 03:51:31 +00:00
.pipelines [DML EP] Update DirectML version to 1.12.0 (#16011) 2023-05-18 19:37:12 -07:00
.vscode
cgmanifests [TensorRT EP] TRT 8.6 minor version update (#16475) 2023-06-26 10:44:27 -07:00
cmake [ios] Enable --use_extensions with custom built iOS pod (#16711) 2023-07-14 15:37:16 -07:00
csharp Add MAUI test app that can be used to test model loading and performance (#16658) 2023-07-18 08:21:18 +10:00
dockerfiles Enable model subgraph execution in OVEP and setting the OpenVINO dll's to the path from the OpenVINO pypi packge in OVEP and fix OVEP windows io buffer sample (#16147) 2023-06-16 19:47:09 -07:00
docs Call lazy_reset_grad in on-device training docs (#16696) 2023-07-13 13:29:54 -07:00
include/onnxruntime/core Fix warning about uninitialized member (#16736) 2023-07-17 11:33:54 -07:00
java [java] Adding addExternalInitializers and addInitializer to OrtSession.SessionOptions (#16198) 2023-07-05 12:51:59 -07:00
js [js/web] fix file size trim for wasm only .min.js (#16681) 2023-07-13 14:20:51 -07:00
objectivec [ios] Enable --use_extensions with custom built iOS pod (#16711) 2023-07-14 15:37:16 -07:00
onnxruntime [ROCm] fix kernel explorer GemmSoftmaxGemm test (#16735) 2023-07-18 16:47:39 +08:00
orttraining [DORT] Reduce global configs to make enabling dynamic shape easier (#16720) 2023-07-18 09:06:58 -07:00
rust Add rust bindings (#12606) 2023-02-08 14:57:15 -08:00
samples Enable pylint and numpy rules (#15218) 2023-03-27 20:37:53 -07:00
swift/OnnxRuntimeBindingsTests Add iOS Swift Package Manager support (#15297) 2023-04-20 16:18:35 +10:00
tools Add MAUI test app that can be used to test model loading and performance (#16658) 2023-07-18 08:21:18 +10:00
winml [WinML] Fix warnings in OnnxruntimeEngine and OnnxruntimeEngineBuilder (#16679) 2023-07-12 13:09:50 -07:00
.clang-format Run clang-format in CI (#15524) 2023-04-18 09:26:58 -07:00
.clang-tidy
.dockerignore
.gitattributes
.gitignore remove 'lib/' from .gitignore (#15613) 2023-04-24 18:43:32 -07:00
.gitmodules Update eigen to 3.4 and remove the eigen from git submodule (#15875) 2023-05-11 11:56:59 -07:00
.lintrunner.toml Minimal Build for On-Device Training (#16326) 2023-06-22 12:27:23 -07:00
build.bat Upgrade old Python version in packaging pipeline (#16667) 2023-07-17 08:24:47 -07:00
build.sh Upgrade old Python version in packaging pipeline (#16667) 2023-07-17 08:24:47 -07:00
CITATION.cff
CODEOWNERS Add owners for public facing API files (#15288) 2023-03-30 17:16:15 -07:00
CONTRIBUTING.md Fix link to High Level Design (#11786) 2023-02-28 11:05:54 -08:00
lgtm.yml
LICENSE
NuGet.config
ort.wprp
ORT_icon_for_light_bg.png
Package.swift Enable iOS packaging for training (#16525) 2023-07-05 13:27:59 -07:00
packages.config [DML EP] Update DirectML version to 1.12.0 (#16011) 2023-05-18 19:37:12 -07:00
pyproject.toml Bump ruff in CI (#15533) 2023-04-17 10:11:44 -07:00
README.md add third-party pipeline status to README.md (#16155) 2023-05-31 22:14:39 -07:00
requirements-dev.txt Remove codecov from requirements-dev.txt (#15487) 2023-04-12 18:48:02 -07:00
requirements-doc.txt
requirements-lintrunner.txt Enable RUFF as a formatter (#15699) 2023-04-26 14:04:07 -07:00
requirements-training.txt
requirements.txt.in
SECURITY.md
setup.py Triton Codegen for ORTModule (#15831) 2023-07-13 18:17:58 +08:00
ThirdPartyNotices.txt Implement openAI endpoint invoker for nuget (#15797) 2023-05-11 22:04:02 -07:00
VERSION_NUMBER Update VERSION_NUMBER (#15773) 2023-05-03 15:07:34 -07:00

ONNX Runtime is a cross-platform inference and training machine-learning accelerator.

ONNX Runtime inference can enable faster customer experiences and lower costs, supporting models from deep learning frameworks such as PyTorch and TensorFlow/Keras as well as classical machine learning libraries such as scikit-learn, LightGBM, XGBoost, etc. ONNX Runtime is compatible with different hardware, drivers, and operating systems, and provides optimal performance by leveraging hardware accelerators where applicable alongside graph optimizations and transforms. Learn more →

ONNX Runtime training can accelerate the model training time on multi-node NVIDIA GPUs for transformer models with a one-line addition for existing PyTorch training scripts. Learn more →

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For feature requests or bug reports, please file a GitHub Issue.

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License

This project is licensed under the MIT License.