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	d259952224
	
	
	
		
			
			* add paddle_trt in benchmark * update benchmark in device * update benchmark * update result doc * fixed for CI * update python api_docs * update index.rst * add runtime cpp examples * deal with comments * Update infer_paddle_tensorrt.py * Add runtime quick start * deal with comments * fixed reused_input_tensors&&reused_output_tensors Co-authored-by: Jason <928090362@qq.com>
		
			
				
	
	
		
			28 lines
		
	
	
		
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			28 lines
		
	
	
		
			1.7 KiB
		
	
	
	
		
			Markdown
		
	
	
	
	
	
| # YOLOv5Cls准备部署模型
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| 
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| - YOLOv5Cls v6.2部署模型实现来自[YOLOv5](https://github.com/ultralytics/yolov5/tree/v6.2),和[基于ImageNet的预训练模型](https://github.com/ultralytics/yolov5/releases/tag/v6.2)
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|   - (1)[官方库](https://github.com/ultralytics/yolov5/releases/tag/v6.2)提供的*-cls.pt模型,使用[YOLOv5](https://github.com/ultralytics/yolov5)中的`export.py`导出ONNX文件后,可直接进行部署;
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|   - (2)开发者基于自己数据训练的YOLOv5Cls v6.2模型,可使用[YOLOv5](https://github.com/ultralytics/yolov5)中的`export.py`导出ONNX文件后,完成部署。
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| 
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| 
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| ## 下载预训练ONNX模型
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| 
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| 为了方便开发者的测试,下面提供了YOLOv5Cls导出的各系列模型,开发者可直接下载使用。(下表中模型的精度来源于源官方库)
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| | 模型                                                               | 大小    | 精度(top1)  | 精度(top5)    |
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| |:---------------------------------------------------------------- |:----- |:----- |:----- |
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| | [YOLOv5n-cls](https://bj.bcebos.com/paddlehub/fastdeploy/yolov5n-cls.onnx) | 9.6MB | 64.6% | 85.4% |
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| | [YOLOv5s-cls](https://bj.bcebos.com/paddlehub/fastdeploy/yolov5s-cls.onnx) | 21MB | 71.5% | 90.2% |
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| | [YOLOv5m-cls](https://bj.bcebos.com/paddlehub/fastdeploy/yolov5m-cls.onnx) | 50MB | 75.9% | 92.9% |
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| | [YOLOv5l-cls](https://bj.bcebos.com/paddlehub/fastdeploy/yolov5l-cls.onnx) | 102MB | 78.0% | 94.0% |
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| | [YOLOv5x-cls](https://bj.bcebos.com/paddlehub/fastdeploy/yolov5x-cls.onnx) | 184MB | 79.0% | 94.4% |
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| 
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| 
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| ## 详细部署文档
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| 
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| - [Python部署](python)
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| - [C++部署](cpp)
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| 
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| ## 版本说明
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| 
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| - 本版本文档和代码基于[YOLOv5 v6.2](https://github.com/ultralytics/yolov5/tree/v6.2) 编写
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