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Songki Choi
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Bump up to 1.2.4rc1
Signed-off-by: Songki Choi <[email protected]>
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CHANGELOG.md

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All notable changes to this project will be documented in this file.
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## \[v1.2.4\]
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### Bug fixes
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- Fix 'None' node issue in label schema mapping in case of label deletion (#2300)
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### Enhancements
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- Per-class saliency maps for M-RCNN (#2301)
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- Disable semantic segmentation soft prediction processing (#2302)
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## \[v1.2.3\]
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### Bug fixes

README.md

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---
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[Key Features](#key-features)
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[Quick Start](https://openvinotoolkit.github.io/training_extensions/1.2.3/guide/get_started/quick_start_guide/index.html)
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[Documentation](https://openvinotoolkit.github.io/training_extensions/1.2.3/index.html)
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[Quick Start](https://openvinotoolkit.github.io/training_extensions/1.2.4/guide/get_started/quick_start_guide/index.html)
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[Documentation](https://openvinotoolkit.github.io/training_extensions/1.2.4/index.html)
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[License](#license)
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[![PyPI](https://img.shields.io/pypi/v/otx)](https://pypi.org/project/otx)
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- **Action recognition** including action classification and detection
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- **Anomaly recognition** tasks including anomaly classification, detection and segmentation
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OpenVINO™ Training Extensions supports the [following learning methods](https://openvinotoolkit.github.io/training_extensions/1.2.3/guide/explanation/algorithms/index.html):
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OpenVINO™ Training Extensions supports the [following learning methods](https://openvinotoolkit.github.io/training_extensions/1.2.4/guide/explanation/algorithms/index.html):
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- **Supervised**, incremental training, which includes class incremental scenario and contrastive learning for classification and semantic segmentation tasks
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- **Semi-supervised learning**
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- **Distributed training** to accelerate the training process when you have multiple GPUs
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- **Half-precision training** to save GPUs memory and use larger batch sizes
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- Integrated, efficient [hyper-parameter optimization module (HPO)](https://openvinotoolkit.github.io/training_extensions/1.2.3/guide/explanation/additional_features/hpo.html). Through dataset proxy and built-in hyper-parameter optimizer, you can get much faster hyper-parameter optimization compared to other off-the-shelf tools. The hyperparameter optimization is dynamically scheduled based on your resource budget.
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- Integrated, efficient [hyper-parameter optimization module (HPO)](https://openvinotoolkit.github.io/training_extensions/1.2.4/guide/explanation/additional_features/hpo.html). Through dataset proxy and built-in hyper-parameter optimizer, you can get much faster hyper-parameter optimization compared to other off-the-shelf tools. The hyperparameter optimization is dynamically scheduled based on your resource budget.
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- OpenVINO™ Training Extensions uses [Datumaro](https://openvinotoolkit.github.io/datumaro/docs/) as the backend to hadle datasets. Thanks to that, OpenVINO™ Training Extensions supports the most common academic field dataset formats for each task. We constantly working to extend supported formats to give more freedom of datasets format choice.
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- [Auto-configuration functionality](https://openvinotoolkit.github.io/training_extensions/1.2.3/guide/explanation/additional_features/auto_configuration.html). OpenVINO™ Training Extensions analyzes provided dataset and selects the proper task and model template to provide the best accuracy/speed trade-off. It will also make a random auto-split of your dataset if there is no validation set provided.
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- [Auto-configuration functionality](https://openvinotoolkit.github.io/training_extensions/1.2.4/guide/explanation/additional_features/auto_configuration.html). OpenVINO™ Training Extensions analyzes provided dataset and selects the proper task and model template to provide the best accuracy/speed trade-off. It will also make a random auto-split of your dataset if there is no validation set provided.
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## Getting Started
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### Installation
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Please refer to the [installation guide](https://openvinotoolkit.github.io/training_extensions/1.2.3/guide/get_started/quick_start_guide/installation.html).
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Please refer to the [installation guide](https://openvinotoolkit.github.io/training_extensions/1.2.4/guide/get_started/quick_start_guide/installation.html).
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### OpenVINO™ Training Extensions CLI Commands
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- `otx demo` allows one to apply a trained model on the custom data or the online footage from a web camera and see how it will work in a real-life scenario.
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- `otx explain` runs explain algorithm on the provided data and outputs images with the saliency maps to show how your model makes predictions.
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You can find more details with examples in the [CLI command intro](https://openvinotoolkit.github.io/training_extensions/1.2.3/guide/get_started/quick_start_guide/cli_commands.html).
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You can find more details with examples in the [CLI command intro](https://openvinotoolkit.github.io/training_extensions/1.2.4/guide/get_started/quick_start_guide/cli_commands.html).
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docs/source/conf.py

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project = 'OpenVINO™ Training Extensions'
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copyright = '2023, OpenVINO™ Training Extensions Contributors'
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author = 'OpenVINO™ Training Extensions Contributors'
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release = '1.2.3'
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release = '1.2.4'
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# -- General configuration --------------------------------------------------- #
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otx/__init__.py

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# Copyright (C) 2021-2023 Intel Corporation
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# SPDX-License-Identifier: Apache-2.0
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__version__ = "1.2.3.5"
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__version__ = "1.2.4rc1"
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# NOTE: Sync w/ otx/api/usecases/exportable_code/demo/requirements.txt on release
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openvino==2022.3.0
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openmodelzoo-modelapi==2022.3.0
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otx==1.2.3.5
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otx==1.2.4rc1
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numpy>=1.21.0,<=1.23.5 # np.bool was removed in 1.24.0 which was used in openvino runtime

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