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Qin Kaijie
pdf-miner
Commits
831db2e0
Commit
831db2e0
authored
Jul 09, 2024
by
myhloli
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update:Complete the parsing logic of PEK
parent
1fac6aa7
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104 additions
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2 deletions
+104
-2
pdf_extract_kit.py
magic_pdf/model/pdf_extract_kit.py
+104
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magic_pdf/model/pdf_extract_kit.py
View file @
831db2e0
import
os
import
os
import
time
import
cv2
import
numpy
as
np
import
numpy
as
np
import
yaml
import
yaml
from
PIL
import
Image
from
ultralytics
import
YOLO
from
ultralytics
import
YOLO
from
loguru
import
logger
from
loguru
import
logger
from
magic_pdf.model.pek_sub_modules.layoutlmv3.model_init
import
Layoutlmv3_Predictor
from
magic_pdf.model.pek_sub_modules.layoutlmv3.model_init
import
Layoutlmv3_Predictor
...
@@ -9,7 +13,9 @@ import unimernet.tasks as tasks
...
@@ -9,7 +13,9 @@ import unimernet.tasks as tasks
from
unimernet.processors
import
load_processor
from
unimernet.processors
import
load_processor
import
argparse
import
argparse
from
torchvision
import
transforms
from
torchvision
import
transforms
from
torch.utils.data
import
Dataset
,
DataLoader
from
magic_pdf.model.pek_sub_modules.post_process
import
get_croped_image
,
latex_rm_whitespace
from
magic_pdf.model.pek_sub_modules.self_modify
import
ModifiedPaddleOCR
from
magic_pdf.model.pek_sub_modules.self_modify
import
ModifiedPaddleOCR
...
@@ -31,6 +37,25 @@ def mfr_model_init(weight_dir, cfg_path, device='cpu'):
...
@@ -31,6 +37,25 @@ def mfr_model_init(weight_dir, cfg_path, device='cpu'):
return
model
,
vis_processor
return
model
,
vis_processor
class
MathDataset
(
Dataset
):
def
__init__
(
self
,
image_paths
,
transform
=
None
):
self
.
image_paths
=
image_paths
self
.
transform
=
transform
def
__len__
(
self
):
return
len
(
self
.
image_paths
)
def
__getitem__
(
self
,
idx
):
# if not pil image, then convert to pil image
if
isinstance
(
self
.
image_paths
[
idx
],
str
):
raw_image
=
Image
.
open
(
self
.
image_paths
[
idx
])
else
:
raw_image
=
self
.
image_paths
[
idx
]
if
self
.
transform
:
image
=
self
.
transform
(
raw_image
)
return
image
class
CustomPEKModel
:
class
CustomPEKModel
:
def
__init__
(
self
,
ocr
:
bool
=
False
,
show_log
:
bool
=
False
,
**
kwargs
):
def
__init__
(
self
,
ocr
:
bool
=
False
,
show_log
:
bool
=
False
,
**
kwargs
):
"""
"""
...
@@ -82,6 +107,83 @@ class CustomPEKModel:
...
@@ -82,6 +107,83 @@ class CustomPEKModel:
logger
.
info
(
'DocAnalysis init done!'
)
logger
.
info
(
'DocAnalysis init done!'
)
def
__call__
(
self
,
images
):
# layout检测 + 公式检测
doc_layout_result
=
[]
latex_filling_list
=
[]
mf_image_list
=
[]
for
idx
,
img_dict
in
enumerate
(
images
):
image
=
img_dict
[
"img"
]
img_height
,
img_width
=
img_dict
[
"height"
],
img_dict
[
"width"
]
layout_res
=
self
.
layout_model
(
image
,
ignore_catids
=
[])
# 公式检测
mfd_res
=
self
.
mfd_model
.
predict
(
image
,
imgsz
=
1888
,
conf
=
0.25
,
iou
=
0.45
,
verbose
=
True
)[
0
]
for
xyxy
,
conf
,
cla
in
zip
(
mfd_res
.
boxes
.
xyxy
.
cpu
(),
mfd_res
.
boxes
.
conf
.
cpu
(),
mfd_res
.
boxes
.
cls
.
cpu
()):
xmin
,
ymin
,
xmax
,
ymax
=
[
int
(
p
.
item
())
for
p
in
xyxy
]
new_item
=
{
'category_id'
:
13
+
int
(
cla
.
item
()),
'poly'
:
[
xmin
,
ymin
,
xmax
,
ymin
,
xmax
,
ymax
,
xmin
,
ymax
],
'score'
:
round
(
float
(
conf
.
item
()),
2
),
'latex'
:
''
,
}
layout_res
[
'layout_dets'
]
.
append
(
new_item
)
latex_filling_list
.
append
(
new_item
)
bbox_img
=
get_croped_image
(
Image
.
fromarray
(
image
),
[
xmin
,
ymin
,
xmax
,
ymax
])
mf_image_list
.
append
(
bbox_img
)
layout_res
[
'page_info'
]
=
dict
(
page_no
=
idx
,
height
=
img_height
,
width
=
img_width
)
doc_layout_result
.
append
(
layout_res
)
# 公式识别,因为识别速度较慢,为了提速,把单个pdf的所有公式裁剪完,一起批量做识别。
a
=
time
.
time
()
dataset
=
MathDataset
(
mf_image_list
,
transform
=
self
.
mfr_transform
)
dataloader
=
DataLoader
(
dataset
,
batch_size
=
128
,
num_workers
=
0
)
mfr_res
=
[]
for
imgs
in
dataloader
:
imgs
=
imgs
.
to
(
self
.
device
)
output
=
self
.
mfr_model
.
generate
({
'image'
:
imgs
})
mfr_res
.
extend
(
output
[
'pred_str'
])
for
res
,
latex
in
zip
(
latex_filling_list
,
mfr_res
):
res
[
'latex'
]
=
latex_rm_whitespace
(
latex
)
b
=
time
.
time
()
logger
.
info
(
f
"formula nums: {len(mf_image_list)}, mfr time: {round(b - a, 2)}"
)
if
self
.
apply_ocr
:
# ocr识别
for
idx
,
img_dict
in
enumerate
(
images
):
image
=
img_dict
[
"img"
]
pil_img
=
Image
.
fromarray
(
image
)
single_page_res
=
doc_layout_result
[
idx
][
'layout_dets'
]
single_page_mfdetrec_res
=
[]
for
res
in
single_page_res
:
if
int
(
res
[
'category_id'
])
in
[
13
,
14
]:
xmin
,
ymin
=
int
(
res
[
'poly'
][
0
]),
int
(
res
[
'poly'
][
1
])
xmax
,
ymax
=
int
(
res
[
'poly'
][
4
]),
int
(
res
[
'poly'
][
5
])
single_page_mfdetrec_res
.
append
({
"bbox"
:
[
xmin
,
ymin
,
xmax
,
ymax
],
})
for
res
in
single_page_res
:
if
int
(
res
[
'category_id'
])
in
[
0
,
1
,
2
,
4
,
6
,
7
]:
# 需要进行ocr的类别
xmin
,
ymin
=
int
(
res
[
'poly'
][
0
]),
int
(
res
[
'poly'
][
1
])
xmax
,
ymax
=
int
(
res
[
'poly'
][
4
]),
int
(
res
[
'poly'
][
5
])
crop_box
=
[
xmin
,
ymin
,
xmax
,
ymax
]
cropped_img
=
Image
.
new
(
'RGB'
,
pil_img
.
size
,
'white'
)
cropped_img
.
paste
(
pil_img
.
crop
(
crop_box
),
crop_box
)
cropped_img
=
cv2
.
cvtColor
(
np
.
asarray
(
cropped_img
),
cv2
.
COLOR_RGB2BGR
)
ocr_res
=
self
.
ocr_model
.
ocr
(
cropped_img
,
mfd_res
=
single_page_mfdetrec_res
)[
0
]
if
ocr_res
:
for
box_ocr_res
in
ocr_res
:
p1
,
p2
,
p3
,
p4
=
box_ocr_res
[
0
]
text
,
score
=
box_ocr_res
[
1
]
doc_layout_result
[
idx
][
'layout_dets'
]
.
append
({
'category_id'
:
15
,
'poly'
:
p1
+
p2
+
p3
+
p4
,
'score'
:
round
(
score
,
2
),
'text'
:
text
,
})
def
__call__
(
self
,
image
):
return
doc_layout_result
pass
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