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@ -73,12 +73,15 @@ tar -xf ./pretrain_models/MobileNetV3_large_x0_5_pretrained.tar ./pretrain_model
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*如果您安装的是cpu版本,请将配置文件中的 `use_gpu` 字段修改为false*
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```shell
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# 训练 mv3_db 模型,并将训练日志保存为 tain_det.log
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# 单机单卡训练 mv3_db 模型
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python3 tools/train.py -c configs/det/det_mv3_db.yml \
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-o Global.pretrain_weights=./pretrain_models/MobileNetV3_large_x0_5_pretrained/ \
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2>&1 | tee train_det.log
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-o Global.pretrain_weights=./pretrain_models/MobileNetV3_large_x0_5_pretrained/
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# 单机多卡训练,通过 --select_gpus 参数设置使用的GPU ID;
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python3 -m paddle.distributed.launch --selected_gpus '0,1,2,3' tools/train.py -c configs/det/det_mv3_db.yml \
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-o Global.pretrain_weights=./pretrain_models/MobileNetV3_large_x0_5_pretrained/
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```
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上述指令中,通过-c 选择训练使用configs/det/det_db_mv3.yml配置文件。
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有关配置文件的详细解释,请参考[链接](./config.md)。
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@ -92,6 +95,8 @@ python3 tools/train.py -c configs/det/det_mv3_db.yml -o Optimizer.base_lr=0.0001
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如果训练程序中断,如果希望加载训练中断的模型从而恢复训练,可以通过指定Global.checkpoints指定要加载的模型路径:
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```shell
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python3 tools/train.py -c configs/det/det_mv3_db.yml -o Global.checkpoints=./your/trained/model
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```
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**注意**:`Global.checkpoints`的优先级高于`Global.pretrain_weights`的优先级,即同时指定两个参数时,优先加载`Global.checkpoints`指定的模型,如果`Global.checkpoints`指定的模型路径有误,会加载`Global.pretrain_weights`指定的模型。
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@ -64,7 +64,7 @@ tar -xf ./pretrain_models/MobileNetV3_large_x0_5_pretrained.tar ./pretrain_model
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#### START TRAINING
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*If CPU version installed, please set the parameter `use_gpu` to `false` in the configuration.*
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```shell
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python3 tools/train.py -c configs/det/det_mv3_db.yml 2>&1 | tee train_det.log
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python3 tools/train.py -c configs/det/det_mv3_db.yml
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```
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In the above instruction, use `-c` to select the training to use the `configs/det/det_db_mv3.yml` configuration file.
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@ -72,7 +72,12 @@ For a detailed explanation of the configuration file, please refer to [config](.
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You can also use `-o` to change the training parameters without modifying the yml file. For example, adjust the training learning rate to 0.0001
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```shell
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# single GPU training
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python3 tools/train.py -c configs/det/det_mv3_db.yml -o Optimizer.base_lr=0.0001
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# multi-GPU training
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# Set the GPU ID used by the '--select_gpus' parameter;
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python3 -m paddle.distributed.launch --selected_gpus '0,1,2,3' tools/train.py -c configs/det/det_mv3_db.yml -o Optimizer.base_lr=0.0001
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```
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#### load trained model and continue training
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