196 lines
8.4 KiB
Markdown
196 lines
8.4 KiB
Markdown
# MMEditing Deployment
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- [Installation](#installation)
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- [Install mmedit](#install-mmedit)
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- [Install mmdeploy](#install-mmdeploy)
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- [Convert model](#convert-model)
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- [Convert super resolution model](#convert-super-resolution-model)
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- [Model specification](#model-specification)
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- [Model inference](#model-inference)
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- [Backend model inference](#backend-model-inference)
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- [SDK model inference](#sdk-model-inference)
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- [Supported models](#supported-models)
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______________________________________________________________________
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[MMEditing](https://github.com/open-mmlab/mmediting/tree/1.x) aka `mmedit` is an open-source image and video editing toolbox based on PyTorch. It is a part of the [OpenMMLab](https://openmmlab.com/) project.
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## Installation
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### Install mmedit
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Please follow the [installation guide](https://github.com/open-mmlab/mmediting/tree/1.x#installation) to install mmedit.
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### Install mmdeploy
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There are several methods to install mmdeploy, among which you can choose an appropriate one according to your target platform and device.
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**Method I:** Install precompiled package
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> **TODO**. MMDeploy hasn't released based on 1.x branch.
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**Method II:** Build using scripts
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If your target platform is **Ubuntu 18.04 or later version**, we encourage you to run
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[scripts](../01-how-to-build/build_from_script.md). For example, the following commands install mmdeploy as well as inference engine - `ONNX Runtime`.
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```shell
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git clone --recursive -b 1.x https://github.com/open-mmlab/mmdeploy.git
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cd mmdeploy
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python3 tools/scripts/build_ubuntu_x64_ort.py $(nproc)
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export PYTHONPATH=$(pwd)/build/lib:$PYTHONPATH
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export LD_LIBRARY_PATH=$(pwd)/../mmdeploy-dep/onnxruntime-linux-x64-1.8.1/lib/:$LD_LIBRARY_PATH
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```
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**Method III:** Build from source
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If neither **I** nor **II** meets your requirements, [building mmdeploy from source](../01-how-to-build/build_from_source.md) is the last option.
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## Convert model
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You can use [tools/deploy.py](https://github.com/open-mmlab/mmdeploy/tree/1.x/tools/deploy.py) to convert mmedit models to the specified backend models. Its detailed usage can be learned from [here](https://github.com/open-mmlab/mmdeploy/tree/1.x/docs/en/02-how-to-run/convert_model.md#usage).
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When using `tools/deploy.py`, it is crucial to specify the correct deployment config. We've already provided builtin deployment config [files](https://github.com/open-mmlab/mmdeploy/tree/1.x/configs/mmedit) of all supported backends for mmedit, under which the config file path follows the pattern:
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```
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{task}/{task}_{backend}-{precision}_{static | dynamic}_{shape}.py
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```
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- **{task}:** task in mmedit.
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MMDeploy supports models of one task in mmedit, i.e., `super resolution`. Please refer to chapter [supported models](#supported-models) for task-model organization.
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**DO REMEMBER TO USE** the corresponding deployment config file when trying to convert models of different tasks.
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- **{backend}:** inference backend, such as onnxruntime, tensorrt, pplnn, ncnn, openvino, coreml etc.
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- **{precision}:** fp16, int8. When it's empty, it means fp32
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- **{static | dynamic}:** static shape or dynamic shape
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- **{shape}:** input shape or shape range of a model
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### Convert super resolution model
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The command below shows an example about converting `ESRGAN` model to onnx model that can be inferred by ONNX Runtime.
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```shell
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cd mmdeploy
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# download esrgan model from mmedit model zoo
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mim download mmedit --config esrgan_psnr-x4c64b23g32_1xb16-1000k_div2k --dest .
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# convert esrgan model to onnxruntime model with dynamic shape
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python tools/deploy.py \
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configs/mmedit/super-resolution/super-resolution_onnxruntime_dynamic.py \
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esrgan_psnr-x4c64b23g32_1xb16-1000k_div2k.py \
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esrgan_psnr_x4c64b23g32_1x16_1000k_div2k_20200420-bf5c993c.pth \
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demo/resources/face.png \
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--work-dir mmdeploy_models/mmedit/ort \
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--device cpu \
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--show \
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--dump-info
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```
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You can also convert the above model to other backend models by changing the deployment config file `*_onnxruntime_dynamic.py` to [others](https://github.com/open-mmlab/mmdeploy/tree/1.x/configs/mmedit), e.g., converting to tensorrt model by `super-resolution/super-resolution_tensorrt-_dynamic-32x32-512x512.py`.
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```{tip}
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When converting mmedit models to tensorrt models, --device should be set to "cuda"
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```
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## Model specification
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Before moving on to model inference chapter, let's know more about the converted model structure which is very important for model inference.
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The converted model locates in the working directory like `mmdeploy_models/mmedit/ort` in the previous example. It includes:
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```
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mmdeploy_models/mmedit/ort
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├── deploy.json
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├── detail.json
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├── end2end.onnx
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└── pipeline.json
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```
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in which,
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- **end2end.onnx**: backend model which can be inferred by ONNX Runtime
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- \***.json**: the necessary information for mmdeploy SDK
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The whole package **mmdeploy_models/mmedit/ort** is defined as **mmdeploy SDK model**, i.e., **mmdeploy SDK model** includes both backend model and inference meta information.
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## Model inference
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### Backend model inference
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Take the previous converted `end2end.onnx` model as an example, you can use the following code to inference the model and visualize the results.
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```python
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from mmdeploy.apis.utils import build_task_processor
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from mmdeploy.utils import get_input_shape, load_config
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import torch
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deploy_cfg = 'configs/mmedit/super-resolution/super-resolution_onnxruntime_dynamic.py'
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model_cfg = 'esrgan_psnr-x4c64b23g32_1xb16-1000k_div2k.py'
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device = 'cpu'
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backend_model = ['./mmdeploy_models/mmedit/ort/end2end.onnx']
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image = './demo/resources/face.png'
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# read deploy_cfg and model_cfg
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deploy_cfg, model_cfg = load_config(deploy_cfg, model_cfg)
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# build task and backend model
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task_processor = build_task_processor(model_cfg, deploy_cfg, device)
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model = task_processor.build_backend_model(backend_model)
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# process input image
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input_shape = get_input_shape(deploy_cfg)
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model_inputs, _ = task_processor.create_input(image, input_shape)
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# do model inference
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with torch.no_grad():
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result = model.test_step(model_inputs)
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# visualize results
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task_processor.visualize(
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image=image,
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model=model,
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result=result[0],
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window_name='visualize',
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output_file='output_restorer.bmp')
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```
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### SDK model inference
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You can also perform SDK model inference like following,
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```python
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from mmdeploy_python import Restorer
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import cv2
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img = cv2.imread('./demo/resources/face.png')
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# create a classifier
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restorer = Restorer(model_path='./mmdeploy_models/mmedit/ort', device_name='cpu', device_id=0)
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# perform inference
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result = restorer(img)
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# visualize inference result
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# convert to BGR
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result = result[..., ::-1]
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cv2.imwrite('output_restorer.bmp', result)
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```
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Besides python API, mmdeploy SDK also provides other FFI (Foreign Function Interface), such as C, C++, C#, Java and so on. You can learn their usage from [demos](https://github.com/open-mmlab/mmdeploy/tree/1.x/demo).
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## Supported models
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| Model | Task | ONNX Runtime | TensorRT | ncnn | PPLNN | OpenVINO |
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| :---------------------------------------------------------------------------------- | :--------------- | :----------: | :------: | :--: | :---: | :------: |
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| [SRCNN](https://github.com/open-mmlab/mmediting/tree/1.x/configs/srcnn) | super-resolution | Y | Y | Y | Y | Y |
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| [ESRGAN](https://github.com/open-mmlab/mmediting/tree/1.x/configs/esrgan) | super-resolution | Y | Y | Y | Y | Y |
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| [ESRGAN-PSNR](https://github.com/open-mmlab/mmediting/tree/1.x/configs/esrgan) | super-resolution | Y | Y | Y | Y | Y |
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| [SRGAN](https://github.com/open-mmlab/mmediting/tree/1.x/configs/srgan_resnet) | super-resolution | Y | Y | Y | Y | Y |
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| [SRResNet](https://github.com/open-mmlab/mmediting/tree/1.x/configs/srgan_resnet) | super-resolution | Y | Y | Y | Y | Y |
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| [Real-ESRGAN](https://github.com/open-mmlab/mmediting/tree/1.x/configs/real_esrgan) | super-resolution | Y | Y | Y | Y | Y |
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| [EDSR](https://github.com/open-mmlab/mmediting/tree/1.x/configs/edsr) | super-resolution | Y | Y | Y | N | Y |
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| [RDN](https://github.com/open-mmlab/mmediting/tree/1.x/configs/rdn) | super-resolution | Y | Y | Y | Y | Y |
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