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pytensor
Commits
30b78913
提交
30b78913
authored
5月 24, 2017
作者:
abergeron
提交者:
GitHub
5月 24, 2017
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差异文件
Merge pull request #5974 from nouiz/outdim
outdim -> ndim leftover and the same to is_flat
上级
d18ce33b
556778f0
隐藏空白字符变更
内嵌
并排
正在显示
6 个修改的文件
包含
24 行增加
和
16 行删除
+24
-16
basic.txt
doc/library/tensor/basic.txt
+6
-6
scan_opt.py
theano/scan_module/scan_opt.py
+1
-1
basic.py
theano/tensor/basic.py
+10
-2
conv.py
theano/tensor/signal/conv.py
+2
-2
test_basic.py
theano/tensor/tests/test_basic.py
+4
-4
test_opt.py
theano/tensor/tests/test_opt.py
+1
-1
没有找到文件。
doc/library/tensor/basic.txt
浏览文件 @
30b78913
...
@@ -629,23 +629,23 @@ dimensions, see :meth:`_tensor_py_operators.dimshuffle`.
...
@@ -629,23 +629,23 @@ dimensions, see :meth:`_tensor_py_operators.dimshuffle`.
.. autofunction:: patternbroadcast(x, broadcastable)
.. autofunction:: patternbroadcast(x, broadcastable)
.. function:: flatten(x,
out
dim=1)
.. function:: flatten(x,
n
dim=1)
Similar to :func:`reshape`, but the shape is inferred from the shape of `x`.
Similar to :func:`reshape`, but the shape is inferred from the shape of `x`.
:param x: variable to be flattened
:param x: variable to be flattened
:type x: any TensorVariable (or compatible)
:type x: any TensorVariable (or compatible)
:type
out
dim: int
:type
n
dim: int
:param
out
dim: the number of dimensions in the returned variable
:param
n
dim: the number of dimensions in the returned variable
:rtype: variable with same dtype as `x` and `
out
dim` dimensions
:rtype: variable with same dtype as `x` and `
n
dim` dimensions
:returns: variable with the same shape as `x` in the leading `
out
dim-1`
:returns: variable with the same shape as `x` in the leading `
n
dim-1`
dimensions, but with all remaining dimensions of `x` collapsed into
dimensions, but with all remaining dimensions of `x` collapsed into
the last dimension.
the last dimension.
For example, if we flatten a tensor of shape (2, 3, 4, 5) with flatten(x,
For example, if we flatten a tensor of shape (2, 3, 4, 5) with flatten(x,
out
dim=2), then we'll have the same (2-1=1) leading dimensions (2,), and the
n
dim=2), then we'll have the same (2-1=1) leading dimensions (2,), and the
remaining dimensions are collapsed. So the output in this example would
remaining dimensions are collapsed. So the output in this example would
have shape (2, 60).
have shape (2, 60).
...
...
theano/scan_module/scan_opt.py
浏览文件 @
30b78913
...
@@ -749,7 +749,7 @@ class PushOutScanOutput(gof.Optimizer):
...
@@ -749,7 +749,7 @@ class PushOutScanOutput(gof.Optimizer):
# dot is usually faster on two large matrices than
# dot is usually faster on two large matrices than
# a bunch of small ones
# a bunch of small ones
outer_dot_inputs
[
0
]
=
theano
.
tensor
.
flatten
(
outer_dot_inputs
[
0
]
=
theano
.
tensor
.
flatten
(
outer_dot_inputs
[
0
]
.
dimshuffle
(
1
,
0
,
2
),
out
dim
=
2
)
outer_dot_inputs
[
0
]
.
dimshuffle
(
1
,
0
,
2
),
n
dim
=
2
)
shape_input1
=
theano
.
tensor
.
shape
(
outer_dot_inputs
[
1
])
shape_input1
=
theano
.
tensor
.
shape
(
outer_dot_inputs
[
1
])
outer_dot_inputs
[
1
]
=
\
outer_dot_inputs
[
1
]
=
\
...
...
theano/tensor/basic.py
浏览文件 @
30b78913
...
@@ -5073,7 +5073,7 @@ class Flatten(Op):
...
@@ -5073,7 +5073,7 @@ class Flatten(Op):
"""
%
locals
()
"""
%
locals
()
def
is_flat
(
var
,
outdim
=
1
):
def
is_flat
(
var
,
ndim
=
None
,
outdim
=
None
):
"""
"""
Verifies the dimensionality of the var is equal to
Verifies the dimensionality of the var is equal to
outdim. This method is usually called after flatten method on a
outdim. This method is usually called after flatten method on a
...
@@ -5096,7 +5096,15 @@ def is_flat(var, outdim=1):
...
@@ -5096,7 +5096,15 @@ def is_flat(var, outdim=1):
the comparison result of var's dim
the comparison result of var's dim
and the expected outdim.
and the expected outdim.
"""
"""
return
var
.
ndim
==
outdim
if
outdim
is
None
and
ndim
is
None
:
ndim
=
1
elif
outdim
is
not
None
and
ndim
is
not
None
:
raise
ValueError
(
"You should only specify ndim"
)
elif
outdim
is
not
None
:
warnings
.
warn
(
"flatten outdim parameter is deprecated, use ndim instead."
)
ndim
=
outdim
return
var
.
ndim
==
ndim
def
flatten
(
x
,
ndim
=
None
,
outdim
=
None
):
def
flatten
(
x
,
ndim
=
None
,
outdim
=
None
):
...
...
theano/tensor/signal/conv.py
浏览文件 @
30b78913
...
@@ -105,8 +105,8 @@ def conv2d(input, filters, image_shape=None, filter_shape=None,
...
@@ -105,8 +105,8 @@ def conv2d(input, filters, image_shape=None, filter_shape=None,
" warn.signal_conv2d_interface to False"
,
" warn.signal_conv2d_interface to False"
,
stacklevel
=
3
)
stacklevel
=
3
)
output
=
tensor
.
flatten
(
output
.
T
,
out
dim
=
2
)
.
T
output
=
tensor
.
flatten
(
output
.
T
,
n
dim
=
2
)
.
T
elif
input
.
ndim
==
2
or
filters
.
ndim
==
2
:
elif
input
.
ndim
==
2
or
filters
.
ndim
==
2
:
output
=
tensor
.
flatten
(
output
.
T
,
out
dim
=
3
)
.
T
output
=
tensor
.
flatten
(
output
.
T
,
n
dim
=
3
)
.
T
return
output
return
output
theano/tensor/tests/test_basic.py
浏览文件 @
30b78913
...
@@ -5613,25 +5613,25 @@ def test_is_flat():
...
@@ -5613,25 +5613,25 @@ def test_is_flat():
# Constant variable
# Constant variable
assert
tensor
.
is_flat
(
tensor
.
as_tensor_variable
(
np
.
zeros
((
10
))))
assert
tensor
.
is_flat
(
tensor
.
as_tensor_variable
(
np
.
zeros
((
10
))))
assert
tensor
.
is_flat
(
tensor
.
as_tensor_variable
(
np
.
zeros
((
10
,
10
,
10
))),
assert
tensor
.
is_flat
(
tensor
.
as_tensor_variable
(
np
.
zeros
((
10
,
10
,
10
))),
out
dim
=
3
)
n
dim
=
3
)
assert
not
tensor
.
is_flat
(
assert
not
tensor
.
is_flat
(
tensor
.
as_tensor_variable
(
np
.
zeros
((
10
,
10
,
10
))))
tensor
.
as_tensor_variable
(
np
.
zeros
((
10
,
10
,
10
))))
# Symbolic variable
# Symbolic variable
assert
tensor
.
is_flat
(
tensor
.
vector
())
assert
tensor
.
is_flat
(
tensor
.
vector
())
assert
tensor
.
is_flat
(
tensor
.
tensor3
(),
out
dim
=
3
)
assert
tensor
.
is_flat
(
tensor
.
tensor3
(),
n
dim
=
3
)
assert
not
tensor
.
is_flat
(
tensor
.
tensor3
())
assert
not
tensor
.
is_flat
(
tensor
.
tensor3
())
# Reshape with constant shape
# Reshape with constant shape
X
=
tensor
.
tensor4
()
X
=
tensor
.
tensor4
()
assert
tensor
.
is_flat
(
X
.
reshape
((
-
1
,
)))
assert
tensor
.
is_flat
(
X
.
reshape
((
-
1
,
)))
assert
tensor
.
is_flat
(
X
.
reshape
((
10
,
10
,
-
1
)),
out
dim
=
3
)
assert
tensor
.
is_flat
(
X
.
reshape
((
10
,
10
,
-
1
)),
n
dim
=
3
)
assert
not
tensor
.
is_flat
(
X
.
reshape
((
10
,
10
,
-
1
)))
assert
not
tensor
.
is_flat
(
X
.
reshape
((
10
,
10
,
-
1
)))
# Reshape with symbolic shape
# Reshape with symbolic shape
X
=
tensor
.
tensor4
()
X
=
tensor
.
tensor4
()
assert
tensor
.
is_flat
(
X
.
reshape
((
tensor
.
iscalar
(),
)))
assert
tensor
.
is_flat
(
X
.
reshape
((
tensor
.
iscalar
(),
)))
assert
tensor
.
is_flat
(
X
.
reshape
((
tensor
.
iscalar
(),
)
*
3
),
out
dim
=
3
)
assert
tensor
.
is_flat
(
X
.
reshape
((
tensor
.
iscalar
(),
)
*
3
),
n
dim
=
3
)
assert
not
tensor
.
is_flat
(
X
.
reshape
((
tensor
.
iscalar
(),
)
*
3
))
assert
not
tensor
.
is_flat
(
X
.
reshape
((
tensor
.
iscalar
(),
)
*
3
))
...
...
theano/tensor/tests/test_opt.py
浏览文件 @
30b78913
...
@@ -6222,7 +6222,7 @@ def test_local_flatten_lift():
...
@@ -6222,7 +6222,7 @@ def test_local_flatten_lift():
reshape_nodes
=
[
n
for
n
in
topo
if
isinstance
(
n
.
op
,
tensor
.
Reshape
)]
reshape_nodes
=
[
n
for
n
in
topo
if
isinstance
(
n
.
op
,
tensor
.
Reshape
)]
assert
(
len
(
reshape_nodes
)
==
1
and
assert
(
len
(
reshape_nodes
)
==
1
and
tensor
.
is_flat
(
reshape_nodes
[
0
]
.
outputs
[
0
],
out
dim
=
i
))
tensor
.
is_flat
(
reshape_nodes
[
0
]
.
outputs
[
0
],
n
dim
=
i
))
assert
isinstance
(
topo
[
-
1
]
.
op
,
tensor
.
Elemwise
)
assert
isinstance
(
topo
[
-
1
]
.
op
,
tensor
.
Elemwise
)
...
...
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