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b913f664
编写于
9月 19, 2022
作者:
文幕地方
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电子邮件补丁
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Showing
2 changed file
with
160 addition
and
9 deletion
+160
-9
deploy/cpp_infer/readme.md
deploy/cpp_infer/readme.md
+79
-4
deploy/cpp_infer/readme_ch.md
deploy/cpp_infer/readme_ch.md
+81
-5
未找到文件。
deploy/cpp_infer/readme.md
浏览文件 @
b913f664
...
...
@@ -174,6 +174,9 @@ inference/
|-- table
| |--inference.pdiparams
| |--inference.pdmodel
|-- layout
| |--inference.pdiparams
| |--inference.pdmodel
```
...
...
@@ -278,8 +281,30 @@ Specifically,
--cls
=
true
\
```
##### 7. layout+table
```
shell
./build/ppocr
--det_model_dir
=
inference/det_db
\
--rec_model_dir
=
inference/rec_rcnn
\
--table_model_dir
=
inference/table
\
--image_dir
=
../../ppstructure/docs/table/table.jpg
\
--layout_model_dir
=
inference/layout
\
--type
=
structure
\
--table
=
true
\
--layout
=
true
```
##### 8. layout
```
shell
./build/ppocr
--layout_model_dir
=
inference/layout
\
--image_dir
=
../../ppstructure/docs/table/1.png
\
--type
=
structure
\
--table
=
false
\
--layout
=
true
\
--det
=
false
\
--rec
=
false
```
#####
7
. table
#####
9
. table
```
shell
./build/ppocr
--det_model_dir
=
inference/det_db
\
--rec_model_dir
=
inference/rec_rcnn
\
...
...
@@ -343,6 +368,16 @@ More parameters are as follows,
|rec_img_h|int|48|image height of recognition|
|rec_img_w|int|320|image width of recognition|
-
Layout related parameters
|parameter|data type|default|meaning|
| :---: | :---: | :---: | :---: |
|layout_model_dir|string|-| Address of layout inference model|
|layout_dict_path|string|../../ppocr/utils/dict/layout_dict/layout_publaynet_dict.txt|dictionary file|
|layout_score_threshold|float|0.5|Threshold of score.|
|layout_nms_threshold|float|0.5|Threshold of nms.|
-
Table recognition related parameters
|parameter|data type|default|meaning|
...
...
@@ -368,11 +403,51 @@ predict img: ../../doc/imgs/12.jpg
The detection visualized image saved
in
./output//12.jpg
```
-
table
-
layout+
table
```
bash
predict img: ../../ppstructure/docs/table/table.jpg
0
type
: table, region:
[
0,0,371,293], res: <html><body><table><thead><
tr
>
<td>Methods</td><td>R</td><td>P</td><td>F</td><td>FPS</td></tr></thead><tbody><
tr
>
<td>SegLink
[
26]</td><td>70.0</td><td>86.0</td><td>77.0</td><td>8.9</td></tr><
tr
>
<td>PixelLink
[
4]</td><td>73.2</td><td>83.0</td><td>77.8</td><td>-</td></tr><
tr
>
<td>TextSnake
[
18]</td><td>73.9</td><td>83.2</td><td>78.3</td><td>1.1</td></tr><
tr
>
<td>TextField
[
37]</td><td>75.9</td><td>87.4</td><td>81.3</td><td>5.2 </td></tr><
tr
>
<td>MSR[38]</td><td>76.7</td><td>87.4</td><td>81.7</td><td>-</td></tr><
tr
>
<td>FTSN
[
3]</td><td>77.1</td><td>87.6</td><td>82.0</td><td>-</td></tr><
tr
>
<td>LSE[30]</td><td>81.7</td><td>84.2</td><td>82.9</td><td>-</td></tr><
tr
>
<td>CRAFT
[
2]</td><td>78.2</td><td>88.2</td><td>82.9</td><td>8.6</td></tr><
tr
>
<td>MCN
[
16]</td><td>79</td><td>88</td><td>83</td><td>-</td></tr><
tr
>
<td>ATRR[35]</td><td>82.1</td><td>85.2</td><td>83.6</td><td>-</td></tr><
tr
>
<td>PAN
[
34]</td><td>83.8</td><td>84.4</td><td>84.1</td><td>30.2</td></tr><
tr
>
<td>DB[12]</td><td>79.2</td><td>91.5</td><td>84.9</td><td>32.0</td></tr><
tr
>
<td>DRRG
[
41]</td><td>82.30</td><td>88.05</td><td>85.08</td><td>-</td></tr><
tr
>
<td>Ours
(
SynText
)
</td><td>80.68</td><td>85.40</td><td>82.97</td><td>12.68</td></tr><
tr
>
<td>Ours
(
MLT-17
)
</td><td>84.54</td><td>86.62</td><td>85.57</td><td>12.31</td></tr></tbody></table></body></html>
predict img: ../../ppstructure/docs/table/1.png
0
type
: text, region:
[
12,729,410,848], score: 0.781044, res: count of ocr result is : 7
**********
print ocr result
**********
0 det boxes:
[[
4,1],[79,1],[79,12],[4,12]] rec text: CTW1500. rec score: 0.769472
...
6 det boxes:
[[
4,99],[391,99],[391,112],[4,112]] rec text: sate-of-the-artmethods[12.34.36l.ourapproachachieves rec score: 0.90414
**********
end print ocr result
**********
1
type
: text, region:
[
69,342,342,359], score: 0.703666, res: count of ocr result is : 1
**********
print ocr result
**********
0 det boxes:
[[
8,2],[269,2],[269,13],[8,13]] rec text: Table6.Experimentalresults on CTW-1500 rec score: 0.890454
**********
end print ocr result
**********
2
type
: text, region:
[
70,316,706,332], score: 0.659738, res: count of ocr result is : 2
**********
print ocr result
**********
0 det boxes:
[[
373,2],[630,2],[630,11],[373,11]] rec text: oroposals.andthegreencontoursarefinal rec score: 0.919729
1 det boxes:
[[
8,3],[357,3],[357,11],[8,11]] rec text: Visualexperimentalresultshebluecontoursareboundar rec score: 0.915963
**********
end print ocr result
**********
3
type
: text, region:
[
489,342,789,359], score: 0.630538, res: count of ocr result is : 1
**********
print ocr result
**********
0 det boxes:
[[
8,2],[294,2],[294,14],[8,14]] rec text: Table7.Experimentalresults onMSRA-TD500 rec score: 0.942251
**********
end print ocr result
**********
4
type
: text, region:
[
444,751,841,848], score: 0.607345, res: count of ocr result is : 5
**********
print ocr result
**********
0 det boxes:
[[
19,3],[389,3],[389,17],[19,17]] rec text: Inthispaper,weproposeanovel adaptivebound rec score: 0.941031
1 det boxes:
[[
4,22],[390,22],[390,36],[4,36]] rec text: aryproposalnetworkforarbitraryshapetextdetection rec score: 0.960172
2 det boxes:
[[
4,42],[392,42],[392,56],[4,56]] rec text: whichadoptanboundaryproposalmodeltogeneratecoarse rec score: 0.934647
3 det boxes:
[[
4,61],[389,61],[389,75],[4,75]] rec text: ooundaryproposals,andthenadoptanadaptiveboundary rec score: 0.946296
4 det boxes:
[[
5,80],[387,80],[387,93],[5,93]] rec text: leformationmodelcombinedwithGCNandRNNtoper rec score: 0.952401
**********
end print ocr result
**********
5
type
: title, region:
[
444,705,564,724], score: 0.785429, res: count of ocr result is : 1
**********
print ocr result
**********
0 det boxes:
[[
6,2],[113,2],[113,14],[6,14]] rec text: 5.Conclusion rec score: 0.856903
**********
end print ocr result
**********
6
type
: table, region:
[
14,360,402,711], score: 0.963643, res: <html><body><table><thead><
tr
>
<td>Methods</td><td>Ext</td><td>R</td><td>P</td><td>F</td><td>FPS</td></tr></thead><tbody><
tr
>
<td>TextSnake
[
18]</td><td>Syn</td><td>85.3</td><td>67.9</td><td>75.6</td><td></td></tr><
tr
>
<td>CSE
[
17]</td><td>MiLT</td><td>76.1</td><td>78.7</td><td>77.4</td><td>0.38</td></tr><
tr
>
<td>LOMO[40]</td><td>Syn</td><td>76.5</td><td>85.7</td><td>80.8</td><td>4.4</td></tr><
tr
>
<td>ATRR[35]</td><td>Sy-</td><td>80.2</td><td>80.1</td><td>80.1</td><td>-</td></tr><
tr
>
<td>SegLink++
[
28]</td><td>Syn</td><td>79.8</td><td>82.8</td><td>81.3</td><td>-</td></tr><
tr
>
<td>TextField
[
37]</td><td>Syn</td><td>79.8</td><td>83.0</td><td>81.4</td><td>6.0</td></tr><
tr
>
<td>MSR[38]</td><td>Syn</td><td>79.0</td><td>84.1</td><td>81.5</td><td>4.3</td></tr><
tr
>
<td>PSENet-1s
[
33]</td><td>MLT</td><td>79.7</td><td>84.8</td><td>82.2</td><td>3.9</td></tr><
tr
>
<td>DB
[
12]</td><td>Syn</td><td>80.2</td><td>86.9</td><td>83.4</td><td>22.0</td></tr><
tr
>
<td>CRAFT
[
2]</td><td>Syn</td><td>81.1</td><td>86.0</td><td>83.5</td><td>-</td></tr><
tr
>
<td>TextDragon
[
5]</td><td>MLT+</td><td>82.8</td><td>84.5</td><td>83.6</td><td></td></tr><
tr
>
<td>PAN
[
34]</td><td>Syn</td><td>81.2</td><td>86.4</td><td>83.7</td><td>39.8</td></tr><
tr
>
<td>ContourNet
[
36]</td><td></td><td>84.1</td><td>83.7</td><td>83.9</td><td>4.5</td></tr><
tr
>
<td>DRRG
[
41]</td><td>MLT</td><td>83.02</td><td>85.93</td><td>84.45</td><td>-</td></tr><
tr
>
<td>TextPerception[23]</td><td>Syn</td><td>81.9</td><td>87.5</td><td>84.6</td><td></td></tr><
tr
>
<td>Ours</td><td> Syn</td><td>80.57</td><td>87.66</td><td>83.97</td><td>12.08</td></tr><
tr
>
<td>Ours</td><td></td><td>81.45</td><td>87.81</td><td>84.51</td><td>12.15</td></tr><
tr
>
<td>Ours</td><td>MLT</td><td>83.60</td><td>86.45</td><td>85.00</td><td>12.21</td></tr></tbody></table></body></html>
The table visualized image saved
in
./output//6_1.png
7
type
: table, region:
[
462,359,820,657], score: 0.953917, res: <html><body><table><thead><
tr
>
<td>Methods</td><td>R</td><td>P</td><td>F</td><td>FPS</td></tr></thead><tbody><
tr
>
<td>SegLink
[
26]</td><td>70.0</td><td>86.0</td><td>77.0</td><td>8.9</td></tr><
tr
>
<td>PixelLink
[
4]</td><td>73.2</td><td>83.0</td><td>77.8</td><td>-</td></tr><
tr
>
<td>TextSnake
[
18]</td><td>73.9</td><td>83.2</td><td>78.3</td><td>1.1</td></tr><
tr
>
<td>TextField
[
37]</td><td>75.9</td><td>87.4</td><td>81.3</td><td>5.2 </td></tr><
tr
>
<td>MSR[38]</td><td>76.7</td><td>87.4</td><td>81.7</td><td>-</td></tr><
tr
>
<td>FTSN[3]</td><td>77.1</td><td>87.6</td><td>82.0</td><td>:</td></tr><
tr
>
<td>LSE[30]</td><td>81.7</td><td>84.2</td><td>82.9</td><td></td></tr><
tr
>
<td>CRAFT
[
2]</td><td>78.2</td><td>88.2</td><td>82.9</td><td>8.6</td></tr><
tr
>
<td>MCN
[
16]</td><td>79</td><td>88</td><td>83</td><td>-</td></tr><
tr
>
<td>ATRR[35]</td><td>82.1</td><td>85.2</td><td>83.6</td><td>-</td></tr><
tr
>
<td>PAN
[
34]</td><td>83.8</td><td>84.4</td><td>84.1</td><td>30.2</td></tr><
tr
>
<td>DB[12]</td><td>79.2</td><td>91.5</td><td>84.9</td><td>32.0</td></tr><
tr
>
<td>DRRG
[
41]</td><td>82.30</td><td>88.05</td><td>85.08</td><td>-</td></tr><
tr
>
<td>Ours
(
SynText
)
</td><td>80.68</td><td>85.40</td><td>82.97</td><td>12.68</td></tr><
tr
>
<td>Ours
(
MLT-17
)
</td><td>84.54</td><td>86.62</td><td>85.57</td><td>12.31</td></tr></tbody></table></body></html>
The table visualized image saved
in
./output//7_1.png
8
type
: figure, region:
[
14,3,836,310], score: 0.969443, res: count of ocr result is : 26
**********
print ocr result
**********
0 det boxes:
[[
506,14],[539,15],[539,22],[506,21]] rec text: E rec score: 0.318073
...
25 det boxes:
[[
680,290],[759,288],[759,303],[680,305]] rec text:
(
d
)
CTW1500 rec score: 0.95911
**********
end print ocr result
**********
```
<a
name=
"3"
></a>
...
...
deploy/cpp_infer/readme_ch.md
浏览文件 @
b913f664
...
...
@@ -184,6 +184,9 @@ inference/
|-- table
| |--inference.pdiparams
| |--inference.pdmodel
|-- layout
| |--inference.pdiparams
| |--inference.pdmodel
```
<a
name=
"22"
></a>
...
...
@@ -288,7 +291,30 @@ CUDNN_LIB_DIR=/your_cudnn_lib_dir
--cls
=
true
\
```
##### 7. 表格识别
##### 7. 版面分析+表格识别
```
shell
./build/ppocr
--det_model_dir
=
inference/det_db
\
--rec_model_dir
=
inference/rec_rcnn
\
--table_model_dir
=
inference/table
\
--image_dir
=
../../ppstructure/docs/table/table.jpg
\
--layout_model_dir
=
inference/layout
\
--type
=
structure
\
--table
=
true
\
--layout
=
true
```
##### 8. 版面分析
```
shell
./build/ppocr
--layout_model_dir
=
inference/layout
\
--image_dir
=
../../ppstructure/docs/table/1.png
\
--type
=
structure
\
--table
=
false
\
--layout
=
true
\
--det
=
false
\
--rec
=
false
```
##### 9. 表格识别
```
shell
./build/ppocr
--det_model_dir
=
inference/det_db
\
--rec_model_dir
=
inference/rec_rcnn
\
...
...
@@ -352,12 +378,22 @@ CUDNN_LIB_DIR=/your_cudnn_lib_dir
|rec_img_w|int|320|文字识别模型输入图像宽度|
-
版面分析模型相关
|参数名称|类型|默认参数|意义|
| :---: | :---: | :---: | :---: |
|layout_model_dir|string|-|版面分析模型inference model地址|
|layout_dict_path|string|../../ppocr/utils/dict/layout_dict/layout_publaynet_dict.txt|字典文件|
|layout_score_threshold|float|0.5|检测框的分数阈值|
|layout_nms_threshold|float|0.5|nms的阈值|
-
表格识别模型相关
|参数名称|类型|默认参数|意义|
| :---: | :---: | :---: | :---: |
|table_model_dir|string|-|表格识别模型inference model地址|
|table_char_dict_path|string|../../ppocr/utils/dict/table_structure_dict.txt|字典文件|
|table_char_dict_path|string|../../ppocr/utils/dict/table_structure_dict
_ch
.txt|字典文件|
|table_max_len|int|488|表格识别模型输入图像长边大小,最终网络输入图像大小为(table_max_len,table_max_len)|
|merge_no_span_structure|bool|true|是否合并
<td>
和
</td>
为
<td></td>
|
...
...
@@ -378,11 +414,51 @@ predict img: ../../doc/imgs/12.jpg
The detection visualized image saved
in
./output//12.jpg
```
-
table
-
layout+
table
```
bash
predict img: ../../ppstructure/docs/table/table.jpg
0
type
: table, region:
[
0,0,371,293], res: <html><body><table><thead><
tr
>
<td>Methods</td><td>R</td><td>P</td><td>F</td><td>FPS</td></tr></thead><tbody><
tr
>
<td>SegLink
[
26]</td><td>70.0</td><td>86.0</td><td>77.0</td><td>8.9</td></tr><
tr
>
<td>PixelLink
[
4]</td><td>73.2</td><td>83.0</td><td>77.8</td><td>-</td></tr><
tr
>
<td>TextSnake
[
18]</td><td>73.9</td><td>83.2</td><td>78.3</td><td>1.1</td></tr><
tr
>
<td>TextField
[
37]</td><td>75.9</td><td>87.4</td><td>81.3</td><td>5.2 </td></tr><
tr
>
<td>MSR[38]</td><td>76.7</td><td>87.4</td><td>81.7</td><td>-</td></tr><
tr
>
<td>FTSN
[
3]</td><td>77.1</td><td>87.6</td><td>82.0</td><td>-</td></tr><
tr
>
<td>LSE[30]</td><td>81.7</td><td>84.2</td><td>82.9</td><td>-</td></tr><
tr
>
<td>CRAFT
[
2]</td><td>78.2</td><td>88.2</td><td>82.9</td><td>8.6</td></tr><
tr
>
<td>MCN
[
16]</td><td>79</td><td>88</td><td>83</td><td>-</td></tr><
tr
>
<td>ATRR[35]</td><td>82.1</td><td>85.2</td><td>83.6</td><td>-</td></tr><
tr
>
<td>PAN
[
34]</td><td>83.8</td><td>84.4</td><td>84.1</td><td>30.2</td></tr><
tr
>
<td>DB[12]</td><td>79.2</td><td>91.5</td><td>84.9</td><td>32.0</td></tr><
tr
>
<td>DRRG
[
41]</td><td>82.30</td><td>88.05</td><td>85.08</td><td>-</td></tr><
tr
>
<td>Ours
(
SynText
)
</td><td>80.68</td><td>85.40</td><td>82.97</td><td>12.68</td></tr><
tr
>
<td>Ours
(
MLT-17
)
</td><td>84.54</td><td>86.62</td><td>85.57</td><td>12.31</td></tr></tbody></table></body></html>
predict img: ../../ppstructure/docs/table/1.png
0
type
: text, region:
[
12,729,410,848], score: 0.781044, res: count of ocr result is : 7
**********
print ocr result
**********
0 det boxes:
[[
4,1],[79,1],[79,12],[4,12]] rec text: CTW1500. rec score: 0.769472
...
6 det boxes:
[[
4,99],[391,99],[391,112],[4,112]] rec text: sate-of-the-artmethods[12.34.36l.ourapproachachieves rec score: 0.90414
**********
end print ocr result
**********
1
type
: text, region:
[
69,342,342,359], score: 0.703666, res: count of ocr result is : 1
**********
print ocr result
**********
0 det boxes:
[[
8,2],[269,2],[269,13],[8,13]] rec text: Table6.Experimentalresults on CTW-1500 rec score: 0.890454
**********
end print ocr result
**********
2
type
: text, region:
[
70,316,706,332], score: 0.659738, res: count of ocr result is : 2
**********
print ocr result
**********
0 det boxes:
[[
373,2],[630,2],[630,11],[373,11]] rec text: oroposals.andthegreencontoursarefinal rec score: 0.919729
1 det boxes:
[[
8,3],[357,3],[357,11],[8,11]] rec text: Visualexperimentalresultshebluecontoursareboundar rec score: 0.915963
**********
end print ocr result
**********
3
type
: text, region:
[
489,342,789,359], score: 0.630538, res: count of ocr result is : 1
**********
print ocr result
**********
0 det boxes:
[[
8,2],[294,2],[294,14],[8,14]] rec text: Table7.Experimentalresults onMSRA-TD500 rec score: 0.942251
**********
end print ocr result
**********
4
type
: text, region:
[
444,751,841,848], score: 0.607345, res: count of ocr result is : 5
**********
print ocr result
**********
0 det boxes:
[[
19,3],[389,3],[389,17],[19,17]] rec text: Inthispaper,weproposeanovel adaptivebound rec score: 0.941031
1 det boxes:
[[
4,22],[390,22],[390,36],[4,36]] rec text: aryproposalnetworkforarbitraryshapetextdetection rec score: 0.960172
2 det boxes:
[[
4,42],[392,42],[392,56],[4,56]] rec text: whichadoptanboundaryproposalmodeltogeneratecoarse rec score: 0.934647
3 det boxes:
[[
4,61],[389,61],[389,75],[4,75]] rec text: ooundaryproposals,andthenadoptanadaptiveboundary rec score: 0.946296
4 det boxes:
[[
5,80],[387,80],[387,93],[5,93]] rec text: leformationmodelcombinedwithGCNandRNNtoper rec score: 0.952401
**********
end print ocr result
**********
5
type
: title, region:
[
444,705,564,724], score: 0.785429, res: count of ocr result is : 1
**********
print ocr result
**********
0 det boxes:
[[
6,2],[113,2],[113,14],[6,14]] rec text: 5.Conclusion rec score: 0.856903
**********
end print ocr result
**********
6
type
: table, region:
[
14,360,402,711], score: 0.963643, res: <html><body><table><thead><
tr
>
<td>Methods</td><td>Ext</td><td>R</td><td>P</td><td>F</td><td>FPS</td></tr></thead><tbody><
tr
>
<td>TextSnake
[
18]</td><td>Syn</td><td>85.3</td><td>67.9</td><td>75.6</td><td></td></tr><
tr
>
<td>CSE
[
17]</td><td>MiLT</td><td>76.1</td><td>78.7</td><td>77.4</td><td>0.38</td></tr><
tr
>
<td>LOMO[40]</td><td>Syn</td><td>76.5</td><td>85.7</td><td>80.8</td><td>4.4</td></tr><
tr
>
<td>ATRR[35]</td><td>Sy-</td><td>80.2</td><td>80.1</td><td>80.1</td><td>-</td></tr><
tr
>
<td>SegLink++
[
28]</td><td>Syn</td><td>79.8</td><td>82.8</td><td>81.3</td><td>-</td></tr><
tr
>
<td>TextField
[
37]</td><td>Syn</td><td>79.8</td><td>83.0</td><td>81.4</td><td>6.0</td></tr><
tr
>
<td>MSR[38]</td><td>Syn</td><td>79.0</td><td>84.1</td><td>81.5</td><td>4.3</td></tr><
tr
>
<td>PSENet-1s
[
33]</td><td>MLT</td><td>79.7</td><td>84.8</td><td>82.2</td><td>3.9</td></tr><
tr
>
<td>DB
[
12]</td><td>Syn</td><td>80.2</td><td>86.9</td><td>83.4</td><td>22.0</td></tr><
tr
>
<td>CRAFT
[
2]</td><td>Syn</td><td>81.1</td><td>86.0</td><td>83.5</td><td>-</td></tr><
tr
>
<td>TextDragon
[
5]</td><td>MLT+</td><td>82.8</td><td>84.5</td><td>83.6</td><td></td></tr><
tr
>
<td>PAN
[
34]</td><td>Syn</td><td>81.2</td><td>86.4</td><td>83.7</td><td>39.8</td></tr><
tr
>
<td>ContourNet
[
36]</td><td></td><td>84.1</td><td>83.7</td><td>83.9</td><td>4.5</td></tr><
tr
>
<td>DRRG
[
41]</td><td>MLT</td><td>83.02</td><td>85.93</td><td>84.45</td><td>-</td></tr><
tr
>
<td>TextPerception[23]</td><td>Syn</td><td>81.9</td><td>87.5</td><td>84.6</td><td></td></tr><
tr
>
<td>Ours</td><td> Syn</td><td>80.57</td><td>87.66</td><td>83.97</td><td>12.08</td></tr><
tr
>
<td>Ours</td><td></td><td>81.45</td><td>87.81</td><td>84.51</td><td>12.15</td></tr><
tr
>
<td>Ours</td><td>MLT</td><td>83.60</td><td>86.45</td><td>85.00</td><td>12.21</td></tr></tbody></table></body></html>
The table visualized image saved
in
./output//6_1.png
7
type
: table, region:
[
462,359,820,657], score: 0.953917, res: <html><body><table><thead><
tr
>
<td>Methods</td><td>R</td><td>P</td><td>F</td><td>FPS</td></tr></thead><tbody><
tr
>
<td>SegLink
[
26]</td><td>70.0</td><td>86.0</td><td>77.0</td><td>8.9</td></tr><
tr
>
<td>PixelLink
[
4]</td><td>73.2</td><td>83.0</td><td>77.8</td><td>-</td></tr><
tr
>
<td>TextSnake
[
18]</td><td>73.9</td><td>83.2</td><td>78.3</td><td>1.1</td></tr><
tr
>
<td>TextField
[
37]</td><td>75.9</td><td>87.4</td><td>81.3</td><td>5.2 </td></tr><
tr
>
<td>MSR[38]</td><td>76.7</td><td>87.4</td><td>81.7</td><td>-</td></tr><
tr
>
<td>FTSN[3]</td><td>77.1</td><td>87.6</td><td>82.0</td><td>:</td></tr><
tr
>
<td>LSE[30]</td><td>81.7</td><td>84.2</td><td>82.9</td><td></td></tr><
tr
>
<td>CRAFT
[
2]</td><td>78.2</td><td>88.2</td><td>82.9</td><td>8.6</td></tr><
tr
>
<td>MCN
[
16]</td><td>79</td><td>88</td><td>83</td><td>-</td></tr><
tr
>
<td>ATRR[35]</td><td>82.1</td><td>85.2</td><td>83.6</td><td>-</td></tr><
tr
>
<td>PAN
[
34]</td><td>83.8</td><td>84.4</td><td>84.1</td><td>30.2</td></tr><
tr
>
<td>DB[12]</td><td>79.2</td><td>91.5</td><td>84.9</td><td>32.0</td></tr><
tr
>
<td>DRRG
[
41]</td><td>82.30</td><td>88.05</td><td>85.08</td><td>-</td></tr><
tr
>
<td>Ours
(
SynText
)
</td><td>80.68</td><td>85.40</td><td>82.97</td><td>12.68</td></tr><
tr
>
<td>Ours
(
MLT-17
)
</td><td>84.54</td><td>86.62</td><td>85.57</td><td>12.31</td></tr></tbody></table></body></html>
The table visualized image saved
in
./output//7_1.png
8
type
: figure, region:
[
14,3,836,310], score: 0.969443, res: count of ocr result is : 26
**********
print ocr result
**********
0 det boxes:
[[
506,14],[539,15],[539,22],[506,21]] rec text: E rec score: 0.318073
...
25 det boxes:
[[
680,290],[759,288],[759,303],[680,305]] rec text:
(
d
)
CTW1500 rec score: 0.95911
**********
end print ocr result
**********
```
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