111 lines
2.2 KiB
Markdown
111 lines
2.2 KiB
Markdown
# YOLOR usage
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**NOTE**: You need to use the main branch of the YOLOR repo to convert the model.
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**NOTE**: The cfg is required.
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* [Convert model](#convert-model)
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* [Compile the lib](#compile-the-lib)
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* [Edit the config_infer_primary_yolor file](#edit-the-config_infer_primary_yolor-file)
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* [Edit the deepstream_app_config file](#edit-the-deepstream_app_config-file)
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* [Testing the model](#testing-the-model)
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##
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### Convert model
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#### 1. Download the YOLOR repo and install the requirements
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```
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git clone https://github.com/WongKinYiu/yolor.git
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cd yolor
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pip3 install -r requirements.txt
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```
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**NOTE**: It is recommended to use Python virtualenv.
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#### 2. Copy conversor
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Copy the `gen_wts_yolor.py` file from `DeepStream-Yolo/utils` directory to the `yolor` folder.
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#### 3. Download the model
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Download the `pt` file from [YOLOR](https://github.com/WongKinYiu/yolor) repo.
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**NOTE**: You can use your custom model, but it is important to keep the YOLO model reference (`yolor_`) in you `cfg` and `weights`/`wts` filenames to generate the engine correctly.
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#### 4. Convert model
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Generate the `cfg` and `wts` files (example for YOLOR-CSP)
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```
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python3 gen_wts_yolor.py -w yolor_csp.pt -c cfg/yolor_csp.cfg
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```
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#### 5. Copy generated files
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Copy the generated `cfg` and `wts` files to the `DeepStream-Yolo` folder
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##
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### Compile the lib
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Open the `DeepStream-Yolo` folder and compile the lib
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* DeepStream 6.1 on x86 platform
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```
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CUDA_VER=11.6 make -C nvdsinfer_custom_impl_Yolo
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```
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* DeepStream 6.0.1 / 6.0 on x86 platform
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```
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CUDA_VER=11.4 make -C nvdsinfer_custom_impl_Yolo
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```
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* DeepStream 6.1 on Jetson platform
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```
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CUDA_VER=11.4 make -C nvdsinfer_custom_impl_Yolo
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```
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* DeepStream 6.0.1 / 6.0 on Jetson platform
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```
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CUDA_VER=10.2 make -C nvdsinfer_custom_impl_Yolo
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```
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##
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### Edit the config_infer_primary_yolor file
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Edit the `config_infer_primary_yolor.txt` file according to your model (example for YOLOR-CSP)
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```
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[property]
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...
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custom-network-config=yolor_csp.cfg
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model-file=yolor_csp.wts
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...
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```
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##
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### Edit the deepstream_app_config.txt file
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```
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...
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[primary-gie]
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...
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config-file=config_infer_primary_yolor.txt
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```
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##
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### Testing the model
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```
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deepstream-app -c deepstream_app_config.txt
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```
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