ONNX Runtime: cross-platform, high performance ML inferencing and training accelerator
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Windows - Only set thread affinity on Server with auto affinity (#19318)
### Description
Only set thread affinity on Server with auto affinity. Auto affinity =
when API user does specify thread settings or affinity themselves.

### Motivation and Context
On client best to let OS scheduler handle. On big (P-Core) / little
(E-Core) CPU designs affinity overrides win32 Quality of Service (QoS)
and has high power usage. Specifically on background workloads whose
process is tagged QoS Utility (Background), this affinity setting
overrides the OS scheduler that only wants to schedule on the E-Cores.
Thus P-Cores waking up uses more energy than intended on client and
users gets less battery life.

Foreground AI workloads would be tagged QoS High and would run the ORT
threads on all cores.
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include/onnxruntime/core ExecutionProvider API refactor - make GenerateMetaDefId a standalone function, decouple it from EP (#18977) 2024-01-26 07:39:08 -08:00
java Change "#ifdef WIN32" to "#ifdef _WIN32" (#19254) 2024-01-24 14:35:44 -08:00
js [js/webgpu] Remove enableShapesUniforms (#19279) 2024-01-29 17:49:06 -08:00
objectivec Objective-C API updates (#18738) 2023-12-07 16:47:46 -08:00
onnxruntime Windows - Only set thread affinity on Server with auto affinity (#19318) 2024-01-30 10:53:10 -08:00
orttraining [ORTModule] Handle Cast on Constant Number on Triton Code-gen (#19321) 2024-01-30 17:04:01 +08:00
rust Fix rust compile issues and add GH action to run build validations and tests (#18346) 2023-11-09 04:26:02 -08:00
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tools Fix iOS artifacts issue in Microsoft.ML.OnnxRuntime Nuget Package (#19311) 2024-01-30 08:44:20 -08:00
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.gitignore Build onnxruntime.dll as arm64x (#18633) 2023-12-06 16:49:00 -08:00
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.lintrunner.toml FP16 optimizer automatically detect DeepSpeed compatibility (#18084) 2023-10-25 15:11:02 +08:00
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CITATION.cff
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LICENSE
NuGet.config
ort.wprp ORT ETW dynamic logging that improves ORT diagnosability & performance (#18882) 2024-01-11 12:43:27 -08:00
ORT_icon_for_light_bg.png
packages.config Update DirectML nuget version to 1.13.1 (#19122) 2024-01-15 19:04:41 -08:00
pyproject.toml [ORTModule] ATen Efficient Attention and Triton Flash Attention (#17959) 2023-10-27 10:29:27 +08:00
README.md Update README.md (#18963) 2024-01-03 17:26:25 -08:00
requirements-dev.txt ONNX 1.15 integration (#17125) 2023-09-26 14:44:48 -07:00
requirements-doc.txt
requirements-lintrunner.txt Bump linter versions (#18341) 2023-11-08 13:04:40 -08:00
requirements-training.txt ONNX 1.15 integration (#17125) 2023-09-26 14:44:48 -07:00
requirements.txt.in
SECURITY.md
setup.py Adding python3.12 support to ORT (#18814) 2024-01-11 08:34:28 -08:00
ThirdPartyNotices.txt Flash Attention v2 MHA (#17227) 2023-08-31 13:52:21 -07:00
VERSION_NUMBER [ORT 1.17.0 release] Bump up version to 1.18.0 (#19170) 2024-01-17 11:18:32 -08:00

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 →

Get Started & Resources

Builtin Pipeline Status

System Inference Training
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Third-party Pipeline Status

System Inference Training
Linux Build Status

Data/Telemetry

Windows distributions of this project may collect usage data and send it to Microsoft to help improve our products and services. See the privacy statement for more details.

Contributions and Feedback

We welcome contributions! Please see the contribution guidelines.

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

For general discussion or questions, please use GitHub Discussions.

Code of Conduct

This project has adopted the Microsoft Open Source Code of Conduct. For more information see the Code of Conduct FAQ or contact opencode@microsoft.com with any additional questions or comments.

License

This project is licensed under the MIT License.