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4f892dd9
编写于
4月 07, 2021
作者:
S
SunAhong1993
浏览文件
操作
浏览文件
下载
电子邮件补丁
差异文件
fix the gru
上级
78d96bbf
变更
2
显示空白变更内容
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Showing
2 changed file
with
110 addition
and
2 deletion
+110
-2
x2paddle/op_mapper/dygraph/pytorch2paddle/aten.py
x2paddle/op_mapper/dygraph/pytorch2paddle/aten.py
+99
-0
x2paddle/op_mapper/dygraph/pytorch2paddle/prim.py
x2paddle/op_mapper/dygraph/pytorch2paddle/prim.py
+11
-2
未找到文件。
x2paddle/op_mapper/dygraph/pytorch2paddle/aten.py
浏览文件 @
4f892dd9
...
...
@@ -804,6 +804,47 @@ def aten_clamp(mapper, graph, node):
return
current_inputs
,
current_outputs
def
aten_clamp_min
(
mapper
,
graph
,
node
):
""" 构造元素剪裁的PaddleLayer。
TorchScript示例:
%56 : Tensor = aten::clamp_min(%input.1, %46)
参数含义:
%56 (Tensor): 输出,累加后的结果。
%input.1 (Tensor): 输入,需要剪裁的Tensor。
%46 (float/Tensor): 最小值。
"""
scope_name
=
mapper
.
normalize_scope_name
(
node
)
output_name
=
mapper
.
_get_outputs_name
(
node
)[
0
]
layer_outputs
=
[
output_name
]
layer_inputs
=
{}
layer_attrs
=
{}
inputs_name
,
inputs_node
=
mapper
.
_get_inputs_name
(
node
)
# 获取当前节点输出的list
current_outputs
=
[
output_name
]
# 处理输入0,即%input.1
mapper
.
_check_input
(
graph
,
inputs_node
[
0
],
inputs_name
[
0
],
current_outputs
,
scope_name
)
layer_inputs
[
"x"
]
=
inputs_name
[
0
]
# 获取当前节点输入、输出的list
current_inputs
=
list
(
layer_inputs
.
values
())
# 处理输入1,即%46
if
inputs_name
[
1
]
in
mapper
.
attrs
:
layer_attrs
[
"min"
]
=
mapper
.
attrs
[
inputs_name
[
1
]]
else
:
mapper
.
_check_input
(
graph
,
inputs_node
[
1
],
inputs_name
[
1
],
current_outputs
,
scope_name
)
layer_inputs
[
"min"
]
=
inputs_name
[
1
]
current_inputs
.
append
(
inputs_name
[
1
])
graph
.
add_layer
(
"paddle.clip"
,
inputs
=
layer_inputs
,
outputs
=
layer_outputs
,
scope_name
=
scope_name
,
**
layer_attrs
)
return
current_inputs
,
current_outputs
def
aten___contains__
(
mapper
,
graph
,
node
):
""" 构造in的PaddleLayer。
...
...
@@ -3322,6 +3363,64 @@ def aten_neg(mapper, graph, node):
return
current_inputs
,
current_outputs
def
aten_norm
(
mapper
,
graph
,
node
):
""" 构造计算范数的PaddleLayer。
TorchScript示例:
%25 = aten::norm(%input, %21, %58, %24)
参数含义:
%25 (Tensor): 取范数后的结果。
%input (Tensor): 输入。
%21 (int): 范数的种类。
%58 (int): 使用范数计算的轴。
%24 (bool): 是否在输出的Tensor中保留和输入一样的维度。
"""
scope_name
=
mapper
.
normalize_scope_name
(
node
)
output_name
=
mapper
.
_get_outputs_name
(
node
)[
0
]
layer_outputs
=
[
output_name
]
layer_inputs
=
{}
layer_attrs
=
{}
inputs_name
,
inputs_node
=
mapper
.
_get_inputs_name
(
node
)
# 获取当前节点输出的list
current_outputs
=
[
output_name
]
# 处理输入0,即%input
mapper
.
_check_input
(
graph
,
inputs_node
[
0
],
inputs_name
[
0
],
current_outputs
,
scope_name
)
layer_inputs
[
"x"
]
=
inputs_name
[
0
]
current_inputs
=
list
(
layer_inputs
.
values
())
# 处理输入1,即%21
if
inputs_name
[
1
]
in
mapper
.
attrs
:
layer_attrs
[
"p"
]
=
mapper
.
attrs
[
inputs_name
[
1
]]
else
:
mapper
.
_check_input
(
graph
,
inputs_node
[
1
],
inputs_name
[
1
],
current_outputs
,
scope_name
)
layer_inputs
[
"p"
]
=
inputs_name
[
1
]
current_inputs
.
append
(
inputs_name
[
1
])
# 处理输入2,即%58
if
inputs_name
[
1
]
in
mapper
.
attrs
:
layer_attrs
[
"axis"
]
=
mapper
.
attrs
[
inputs_name
[
2
]]
else
:
mapper
.
_check_input
(
graph
,
inputs_node
[
2
],
inputs_name
[
2
],
current_outputs
,
scope_name
)
layer_inputs
[
"axis"
]
=
inputs_name
[
2
]
current_inputs
.
append
(
inputs_name
[
2
])
# 处理输入3,即%24
if
inputs_name
[
1
]
in
mapper
.
attrs
:
layer_attrs
[
"keepdim"
]
=
mapper
.
attrs
[
inputs_name
[
3
]]
else
:
mapper
.
_check_input
(
graph
,
inputs_node
[
3
],
inputs_name
[
3
],
current_outputs
,
scope_name
)
layer_inputs
[
"keepdim"
]
=
inputs_name
[
3
]
current_inputs
.
append
(
inputs_name
[
3
])
graph
.
add_layer
(
"paddle.norm"
,
inputs
=
layer_inputs
,
outputs
=
layer_outputs
,
scope_name
=
scope_name
,
**
layer_attrs
)
return
current_inputs
,
current_outputs
def
aten___not__
(
mapper
,
graph
,
node
):
""" 构造对bool型取负的PaddleLayer。
...
...
x2paddle/op_mapper/dygraph/pytorch2paddle/prim.py
浏览文件 @
4f892dd9
...
...
@@ -59,8 +59,17 @@ def prim_Constant(mapper, graph, node):
scope_name
=
scope_name
)
return
[],
[
output_name
]
else
:
mapper
.
pytorch_params
[
output_name
]
=
tensor_value
.
cpu
().
detach
().
numpy
()
# mapper.pytorch_params[output_name] = tensor_value.cpu().detach().numpy()
mapper
.
paddle_params
[
output_name
]
=
tensor_value
.
cpu
().
detach
().
numpy
()
graph
.
add_layer
(
"self.create_parameter"
,
inputs
=
{},
outputs
=
[
output_name
],
scope_name
=
scope_name
,
dtype
=
string
(
str
(
mapper
.
paddle_params
[
output_name
].
dtype
)),
shape
=
mapper
.
paddle_params
[
output_name
].
shape
,
default_initializer
=
"paddle.nn.initializer.Constant(value=0.0)"
)
return
[],
[
output_name
]
if
"inf"
in
str
(
value
):
t
=
str
(
type
(
value
)).
split
(
"'"
)[
1
]
if
str
(
value
).
startswith
(
"-"
):
...
...
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