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products:sbc:vim4:npu:demos:facenet [2023/09/15 02:44] sravan [Facenet Pytorch Demo - 6] |
products:sbc:vim4:npu:demos:facenet [2025/01/08 22:31] (current) louis |
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- | ~~tag> NPU Facenet | + | ~~tag> NPU FaceNet |
- | ====== Facenet Pytorch VIM4 Demo - 6 ====== | + | |
+ | **Doc for version ddk-3.4.7.7** | ||
+ | |||
+ | ====== FaceNet PyTorch VIM4 Demo - 6 ====== | ||
+ | |||
+ | {{indexmenu_n> | ||
===== Get Source Code ===== | ===== Get Source Code ===== | ||
+ | |||
+ | [[gh> | ||
```shell | ```shell | ||
- | git clone https:// | + | $ git clone https:// |
``` | ``` | ||
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==== Build virtual environment ==== | ==== Build virtual environment ==== | ||
- | Follow Docker official | + | Follow Docker official |
- | Get Docker. | + | Follow the script below to get Docker |
```shell | ```shell | ||
- | $ docker pull yanwyb/npu:v1 | + | docker pull numbqq/npu-vim4 |
- | $ docker run -it --name | + | |
- | -v / | + | |
- | -v / | + | |
- | yanwyb/ | + | |
``` | ``` | ||
- | ==== Get convert tool ==== | + | ==== Get Convert Tool ==== |
- | Download Tool from [[gl> | + | Download Tool from [[gh> |
```shell | ```shell | ||
- | $ git clone https://gitlab.com/ | + | $ git lfs install |
+ | $ git lfs clone https://github.com/ | ||
+ | $ cd vim4_npu_sdk | ||
+ | $ ls | ||
+ | adla-toolkit-binary | ||
``` | ``` | ||
+ | |||
+ | * '' | ||
+ | * '' | ||
+ | * '' | ||
+ | |||
+ | <WRAP important> | ||
+ | If your kernel is older than 241129, please use branch npu-ddk-1.7.5.5. | ||
+ | </ | ||
+ | |||
+ | ==== Convert ==== | ||
After training model, modify '' | After training model, modify '' | ||
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``` | ``` | ||
- | Create a python | + | Create a Python |
```python export.py | ```python export.py | ||
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Enter '' | Enter '' | ||
- | ```shell convert_adla.sh | + | ```bash convert_adla.sh |
#!/bin/bash | #!/bin/bash | ||
| | ||
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--dtypes " | --dtypes " | ||
--inference-input-type float32 \ | --inference-input-type float32 \ | ||
- | --inference-output-type float32 \ | + | --inference-output-type float32 \ |
--quantize-dtype int8 --outdir onnx_output | --quantize-dtype int8 --outdir onnx_output | ||
--channel-mean-value " | --channel-mean-value " | ||
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``` | ``` | ||
- | Run '' | + | Run '' |
```shell | ```shell | ||
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``` | ``` | ||
- | ===== Run NPU ===== | + | ===== Run inference on the NPU ===== |
==== Get source code ==== | ==== Get source code ==== | ||
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```shell | ```shell | ||
- | $ git clone https:// | + | $ git clone https:// |
``` | ``` | ||
+ | |||
+ | <WRAP important> | ||
+ | If your kernel is older than 241129, please use version before tag ddk-3.4.7.7. | ||
+ | </ | ||
==== Install dependencies ==== | ==== Install dependencies ==== | ||
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=== Picture input demo === | === Picture input demo === | ||
- | There are two modes of this demo. One is converting face images into feature vectors and saving vectors in face library. Another is comparing input face image with faces in library and outputting Euclidean distance and cosine similarity. | + | There are two modes of this demo. One is converting face images into feature vectors and saving vectors in the face library. Another is comparing input face image with faces in the library and outputting Euclidean distance and cosine similarity. |
Put '' | Put '' | ||
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```shell | ```shell | ||
# Compile | # Compile | ||
- | $ cd vim4_npu_applications/ | + | $ cd vim4_npu_applications/ |
$ mkdir build | $ mkdir build | ||
$ cd build | $ cd build | ||
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# Run mode 1 | # Run mode 1 | ||
- | $ sudo ./facenet -m ../ | + | $ ./facenet -m ../ |
``` | ``` | ||
- | After running mode 1, a file named '' | + | After running mode 1, a file named '' |
```shell | ```shell | ||
# Run mode 2 | # Run mode 2 | ||
- | $ sudo ./facenet -m ../ | + | $ ./facenet -m ../data/model/ |
``` | ``` | ||
+ | {{: | ||
+ | |||
+ | Here are two comparison methods, **Euclidean distance** and **cosine similarity**. | ||
+ | |||
+ | **Euclidean distance** is smaller, more similar between two faces. | ||
+ | |||
+ | **Cosine similarity** is closer to 1, more similar between two faces. |