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1af833e2
编写于
9月 23, 2020
作者:
L
LDOUBLEV
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电子邮件补丁
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fix doc typo
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doc/doc_ch/inference.md
doc/doc_ch/inference.md
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doc/doc_en/inference_en.md
doc/doc_en/inference_en.md
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doc/doc_ch/inference.md
浏览文件 @
1af833e2
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@@ -95,7 +95,7 @@ python3 tools/export_model.py -c configs/rec/ch_ppocr_v1.1/rec_chinese_lite_trai
下载方向分类模型:
```
wget -P ./ch_lite/ https://paddleocr.bj.bcebos.com/20-09-22/cls/ch_ppocr_mobile
-v1.1.cls_pre.tar && tar xf ./ch_lite/ch_ppocr_mobile-v1.1.cls_pre
.tar -C ./ch_lite/
wget -P ./ch_lite/ https://paddleocr.bj.bcebos.com/20-09-22/cls/ch_ppocr_mobile
_v1.1_cls_train.tar && tar xf ./ch_lite/ch_ppocr_mobile_v1.1_cls_train
.tar -C ./ch_lite/
```
方向分类模型转inference模型与检测的方式相同,如下:
...
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@@ -105,7 +105,7 @@ wget -P ./ch_lite/ https://paddleocr.bj.bcebos.com/20-09-22/cls/ch_ppocr_mobile-
# Global.checkpoints参数设置待转换的训练模型地址,不用添加文件后缀.pdmodel,.pdopt或.pdparams。
# Global.save_inference_dir参数设置转换的模型将保存的地址。
python3 tools/export_model.py -c configs/cls/cls_mv3.yml -o Global.checkpoints=./ch_lite/c
ls_model
/best_accuracy \
python3 tools/export_model.py -c configs/cls/cls_mv3.yml -o Global.checkpoints=./ch_lite/c
h_ppocr_mobile_v1.1_cls_train
/best_accuracy \
Global.save_inference_dir=./inference/cls/
```
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doc/doc_en/inference_en.md
浏览文件 @
1af833e2
...
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@@ -29,7 +29,7 @@ Next, we first introduce how to convert a trained model into an inference model,
-
[
4. SRN-BASED TEXT RECOGNITION MODEL INFERENCE
](
#SRN-BASED_RECOGNITION
)
-
[
5. TEXT RECOGNITION MODEL INFERENCE USING CUSTOM CHARACTERS DICTIONARY
](
#USING_CUSTOM_CHARACTERS
)
-
[
6. MULTILINGUAL MODEL INFERENCE
](
MULTILINGUAL_MODEL_INFERENCE
)
-
[
ANGLE CLASSIFICATION MODEL INFERENCE
](
#ANGLE_CLASS_MODEL_INFERENCE
)
-
[
1. ANGLE CLASSIFICATION MODEL INFERENCE
](
#ANGLE_CLASS_MODEL_INFERENCE
)
...
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@@ -98,7 +98,7 @@ After the conversion is successful, there are two files in the directory:
Download the angle classification model:
```
wget -P ./ch_lite/ https://paddleocr.bj.bcebos.com/20-09-22/cls/ch_ppocr_mobile
-v1.1.cls_pre.tar && tar xf ./ch_lite/ch_ppocr_mobile-v1.1.cls_pre
.tar -C ./ch_lite/
wget -P ./ch_lite/ https://paddleocr.bj.bcebos.com/20-09-22/cls/ch_ppocr_mobile
_v1.1_cls_train.tar && tar xf ./ch_lite/ch_ppocr_mobile_v1.1_cls_train
.tar -C ./ch_lite/
```
The angle classification model is converted to the inference model in the same way as the detection, as follows:
...
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@@ -108,7 +108,7 @@ The angle classification model is converted to the inference model in the same w
# Global.checkpoints parameter Set the training model address to be converted without adding the file suffix .pdmodel, .pdopt or .pdparams.
# Global.save_inference_dir Set the address where the converted model will be saved.
python3 tools/export_model.py -c configs/cls/cls_mv3.yml -o Global.checkpoints=./ch_lite/c
ls_model
/best_accuracy \
python3 tools/export_model.py -c configs/cls/cls_mv3.yml -o Global.checkpoints=./ch_lite/c
h_ppocr_mobile_v1.1_cls_train
/best_accuracy \
Global.save_inference_dir=./inference/cls/
```
...
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@@ -304,7 +304,7 @@ dict_character = list(self.character_str)
<a
name=
"SRN-BASED_RECOGNITION"
></a>
### 4. SRN-BASED TEXT RECOGNITION MODEL INFERENCE
The recognition model based on SRN requires additional setting of the recognition algorithm parameter --rec_algorithm="SRN".
The recognition model based on SRN requires additional setting of the recognition algorithm parameter --rec_algorithm="SRN".
At the same time, it is necessary to ensure that the predicted shape is consistent with the training, such as: --rec_image_shape="1, 64, 256"
```
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