ONNX Runtime: cross-platform, high performance ML inferencing and training accelerator
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Olivia Jain de384805cd
Custom parameters (#10964)
* get inputs independently for trtexec

* track one process only

* remove engine and profile files

* change time to commit time

* add runtime option for io binding

* move to commit date

* fixes

* add option for graph optimization

* cleanup docker script

* note second time creation

* allow for parameters to be configured from pipeline at runtime

* uncomment

* include optional arguments at runtime

* post second session creation

* update cmake version

* Revert "update cmake version"

This reverts commit 09a1364eae68610724c8e90eeea777b7ee03f74b.

* Move data format import
2022-03-23 09:47:24 -07:00
.config A new pipeline to replace the existing WindowsAI packaging pipeline (#10646) 2022-03-03 08:56:49 -08:00
.gdn Update compliance tasks in python packaging pipeline and fix some compile warnings (#8471) 2021-07-30 17:16:37 -07:00
.github Refactor Python API docs to better explain IO binding scenarios (#10651) 2022-03-15 09:40:59 -07:00
.pipelines A new pipeline to replace the existing WindowsAI packaging pipeline (#10646) 2022-03-03 08:56:49 -08:00
cgmanifests [TVM EP] code refactor (#10655) 2022-03-16 13:55:04 +01:00
cmake Support ORT WASM compilation with the training flag (#10973) 2022-03-22 16:13:35 -07:00
csharp skip optional related models from opset16 (#10840) (#10878) 2022-03-16 08:49:42 -07:00
dockerfiles Update rocm_ep and migraphx_ep to rocm4.5.2 and fix dockerfiles to build docker images correctly (#10445) 2022-02-01 16:11:39 -08:00
docs Refactor Python API docs to better explain IO binding scenarios (#10651) 2022-03-15 09:40:59 -07:00
include/onnxruntime/core Move #ifndef ORT_CXX_API_THROW to the no exceptions case. (#10937) 2022-03-21 11:12:56 -07:00
java Making the Java tests faster by optionally disabling ones which require running multiple JVMs. (#10811) 2022-03-08 22:19:37 -08:00
js update with onnx 1.11 release (#10441) 2022-03-07 21:10:55 -08:00
objectivec [iOS packaging] Minor updates. (#10755) 2022-03-04 16:02:53 +10:00
onnxruntime Custom parameters (#10964) 2022-03-23 09:47:24 -07:00
orttraining Update training packages to Pytorch 1.11.0 (#10851) 2022-03-22 16:45:51 -07:00
package/rpm Bump master version to 1.11 (#9957) 2021-12-14 23:32:06 -08:00
samples Add Python checks pipeline (#7032) 2021-08-09 10:37:05 -07:00
server [TVM EP] Rename Standalone TVM (STVM) Execution Provider to TVM EP (#10260) 2022-02-15 10:21:02 +01:00
tools Custom parameters (#10964) 2022-03-23 09:47:24 -07:00
winml Add multi-dim dft test, and fix complex idft (#10947) 2022-03-22 10:08:12 -07:00
.clang-format Initial bootstrap commit. 2018-11-19 16:48:22 -08:00
.clang-tidy Add remaining build options and make minor changes in documentation (#39) 2018-11-27 19:59:40 -08:00
.dockerignore Update dockerfiles (#5929) 2020-11-25 15:38:22 -08:00
.flake8 Add Python checks pipeline (#7032) 2021-08-09 10:37:05 -07:00
.gitattributes Initial bootstrap commit. 2018-11-19 16:48:22 -08:00
.gitignore Remove unused pipeline orttraining-linux-gpu-perf-test-ci-pipeline.yml and unused send_perf_metrics tool. (#10326) 2022-01-21 14:31:34 -08:00
.gitmodules Upgrade emsdk to 3.1.3 (#10577) 2022-02-28 23:52:41 -08:00
build.amd64.1411.bat Initial bootstrap commit. 2018-11-19 16:48:22 -08:00
build.bat Initial bootstrap commit. 2018-11-19 16:48:22 -08:00
build.sh Add iOS test pipeline and a sample app. (#5298) 2020-09-29 13:53:11 -07:00
CITATION.cff Add citation file (#10061) 2021-12-16 19:56:21 -08:00
CODEOWNERS Update CODEOWNERS (#10932) 2022-03-18 09:37:58 -07:00
CONTRIBUTING.md fixed the link (#8757) 2021-08-18 11:45:42 -07:00
LICENSE Remove year from license (#6658) 2021-02-12 00:25:56 -08:00
NuGet.config Delete nuget extra configs (#6477) 2021-01-27 20:25:45 -08:00
ort.wprp Add Tracelogging for profiling (#1639) 2019-11-11 21:34:10 -08:00
ORT_icon_for_light_bg.png Update nuget icon (#10672) 2022-03-01 09:11:03 -08:00
packages.config Bump winrt version (#10243) 2022-01-12 10:52:27 -08:00
README.md Fix typo 2021-08-12 15:57:15 -07:00
requirements-dev.txt Add post-install command to build PyTorch CPP extensions from within onnxruntime package (#8027) 2021-06-28 18:11:58 -07:00
requirements-doc.txt Add auto doc gen for ORTModule API during CI build (#7046) 2021-03-22 10:20:33 -07:00
requirements-training.txt Add post-install command to build PyTorch CPP extensions from within onnxruntime package (#8027) 2021-06-28 18:11:58 -07:00
requirements.txt.in Chang how numpy version is handled. (#8130) 2021-06-23 14:08:37 -07:00
setup.py [TVM EP] Integrate tests for TVM EP into public onnxruntime CI (#10505) 2022-02-24 16:24:23 +01:00
ThirdPartyNotices.txt add copyright (#9943) (#9970) 2021-12-08 14:34:53 -08:00
VERSION_NUMBER Bump master version to 1.11 (#9957) 2021-12-14 23:32:06 -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

General Information: onnxruntime.ai

Usage documention and tutorials: onnxruntime.ai/docs

Companion sample repositories:

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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.