Update quick_start_recognition.md
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@ -43,6 +43,11 @@ The detection model with the recognition inference model for the 4 directions (L
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| Product Recignition Model | Product Scenario | [Model Download Link](https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/product_ResNet50_vd_aliproduct_v1.0_infer.tar) | [inference_product.yaml](../../../deploy/configs/inference_product.yaml) | [build_product.yaml](../../../deploy/configs/build_product.yaml) |
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| Vehicle ReID Model | Vehicle ReID Scenario | [Model Download Link](https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/vehicle_reid_ResNet50_VERIWild_v1.0_infer.tar) | - | - |
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| Models Introduction | Recommended Scenarios | inference Model | Predict Config File | Config File to Build Index Database |
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| ------------ | ------------- | -------- | ------- | -------- |
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| Lightweight generic mainbody detection model | General Scenarios |[Model Download Link](https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/picodet_PPLCNet_x2_5_mainbody_lite_v1.0_infer.tar) | - | - |
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| Lightweight generic recognition model | General Scenarios | [Model Download Link](https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/general_PPLCNet_x2_5_lite_v1.0_infer.tar) | [inference_product.yaml](../../../deploy/configs/inference_product.yaml) | [build_product.yaml](../../../deploy/configs/build_product.yaml) |
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Demo data in this tutorial can be downloaded here: [download link](https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/data/recognition_demo_data_en_v1.1.tar).
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@ -50,6 +55,7 @@ Demo data in this tutorial can be downloaded here: [download link](https://paddl
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**Attention**
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1. If you do not have wget installed on Windows, you can download the model by copying the link into your browser and unzipping it in the appropriate folder; for Linux or macOS users, you can right-click and copy the download link to download it via the `wget` command.
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2. If you want to install `wget` on macOS, you can run the following command.
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3. The predict config file of the lightweight generic recognition model and the config file to build index database are used for the config of product recognition model of server-side. You can modify the path of the model to complete the index building and prediction.
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```shell
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# install homebrew
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@ -123,6 +129,13 @@ The `models` folder should have the following file structure.
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│ └── inference.pdmodel
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```
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**Attention**
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If you want to use the lightweight generic recognition model, you need to re-extract the features of the demo data and re-build the index. The way is as follows:
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```shell
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python3.7 python/build_gallery.py -c configs/build_product.yaml -o Global.rec_inference_model_dir=./models/general_PPLCNet_x2_5_lite_v1.0_infer
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```
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<a name="Product_recognition_and_retrival"></a>
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### 2.2 Product Recognition and Retrieval
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@ -260,12 +260,12 @@ cp recognition_demo_data_v1.1/gallery_product/data_file.txt recognition_demo_dat
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然后在文件`recognition_demo_data_v1.1/gallery_product/data_file_update.txt`中添加以下的信息,
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```
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gallery/anmuxi/001.jpg 安慕希酸奶
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gallery/anmuxi/002.jpg 安慕希酸奶
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gallery/anmuxi/003.jpg 安慕希酸奶
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gallery/anmuxi/004.jpg 安慕希酸奶
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gallery/anmuxi/005.jpg 安慕希酸奶
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gallery/anmuxi/006.jpg 安慕希酸奶
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gallery/anmuxi/001.jpg 安慕希酸奶
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gallery/anmuxi/002.jpg 安慕希酸奶
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gallery/anmuxi/003.jpg 安慕希酸奶
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gallery/anmuxi/004.jpg 安慕希酸奶
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gallery/anmuxi/005.jpg 安慕希酸奶
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gallery/anmuxi/006.jpg 安慕希酸奶
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```
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