Vladimir Gavrilov e7b35c3b00 nGraph reference for the operation RDFT. (#11175)
* Written nGraph reference for the operation RDFT.

* Used std::reverse() algorithm to simplify the function reverse_shape() from fft_common.cpp.

* Added assert into the function offset_from_coords_and_strides().

* Deleted redundant variable.

* Deleted redundant functions from the reference implementation of (I)DFT.

* Renamed the method reverse_shape() in fft_common.hpp.

* Code style fix.
2022-03-30 09:38:05 +03:00
2022-03-30 09:01:05 +03:00
2021-05-31 15:24:56 +03:00
2018-10-16 13:45:03 +03:00
2020-11-17 16:44:44 +03:00

OpenVINO™ Toolkit

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

This toolkit allows developers to deploy pre-trained deep learning models through a high-level OpenVINO™ Runtime C++ and Python APIs integrated with application logic.

This open source version includes several components: namely Model Optimizer, OpenVINO™ Runtime, Post-Training Optimization Tool, 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 TensorFlow, ONNX, PaddlePaddle, MXNet, Caffe, Kaldi.

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OpenVINO™ 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.

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C++ 80.5%
Python 15.5%
C 2.8%
CMake 0.9%
Cython 0.1%