OpenVINO™ is an open-source toolkit for optimizing and deploying AI inference
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Elizaveta Lobanova f4ba0f28a9
[GNA] Convert Matmul with batch size > 8 to pointwise convolution (#5991)
* [GNA] Convert Matmul with batch size > 8 to pointwise convolution.
Support Eltwise split to more than 2 parts.
Fake Quantize support fixes.

* Put convolution split into a separate transformation

* Add separate transformations for cases with bias and fake quantize

* Rollback restriction for diagonal layer reshape
2021-06-09 18:15:39 +03:00
.ci OpenVINO ONNX CI - set more stable proxy (#5945) 2021-06-08 12:37:20 +03:00
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docs ImportNetwork with explicit device name only (#5689) 2021-06-09 10:09:25 +03:00
inference-engine [GNA] Convert Matmul with batch size > 8 to pointwise convolution (#5991) 2021-06-09 18:15:39 +03:00
licensing [Speech sample] Added numpy array support (#5479) 2021-06-03 12:22:06 +03:00
model-optimizer Add ShapeOfConstFolding transform (#5858) 2021-06-09 12:14:39 +03:00
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tests Enable MYRIAD in stress tests (#6026) 2021-06-08 12:47:20 +03:00
thirdparty samples: Fixed klocwork issues in speech (#6066) 2021-06-08 10:16:37 +03:00
tools [IE CLDNN] Updated GPU device config (#6040) 2021-06-09 09:02:25 +03:00
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.gitmodules [Speech sample] Added numpy array support (#5479) 2021-06-03 12:22:06 +03:00
CMakeLists.txt Python in OpenVINO: improvements (#6027) 2021-06-07 10:52:48 +03:00
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OpenVINO™ Toolkit

Stable release Apache License Version 2.0 GitHub branch checks state Azure DevOps builds (branch)

This toolkit allows developers to deploy pre-trained deep learning models through a high-level C++ Inference Engine API integrated with application logic.

This open source version includes several components: namely Model Optimizer, nGraph and Inference Engine, as well as CPU, GPU, MYRIAD, multi device and heterogeneous plugins to accelerate deep learning inferencing on Intel® CPUs and Intel® Processor Graphics. It supports pre-trained models from the Open Model Zoo, along with 100+ open source and public models in popular formats such as Caffe*, TensorFlow*, MXNet* and ONNX*.

Repository components:

License

Deep Learning Deployment Toolkit is licensed under Apache License Version 2.0. By contributing to the project, you agree to the license and copyright terms therein and release your contribution under these terms.

Resources:

Support

Please report questions, issues and suggestions using:


* Other names and brands may be claimed as the property of others.