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testgroup
pytensor
Commits
06b1fb7b
提交
06b1fb7b
authored
8月 18, 2016
作者:
Pascal Lamblin
提交者:
GitHub
8月 18, 2016
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差异文件
Merge pull request #4873 from nouiz/grad_assert
Grad assert
上级
f70948ab
b01f8a62
显示空白字符变更
内嵌
并排
正在显示
2 个修改的文件
包含
6 行增加
和
4 行删除
+6
-4
gradient.py
theano/gradient.py
+5
-2
test_gradient.py
theano/tests/test_gradient.py
+1
-2
没有找到文件。
theano/gradient.py
浏览文件 @
06b1fb7b
...
@@ -390,8 +390,8 @@ def grad(cost, wrt, consider_constant=None,
...
@@ -390,8 +390,8 @@ def grad(cost, wrt, consider_constant=None,
If True, variables generated by grad will be named
If True, variables generated by grad will be named
(d<cost.name>/d<wrt.name>) provided that both cost and wrt
(d<cost.name>/d<wrt.name>) provided that both cost and wrt
have names
have names
known_grads :
d
ict, optional
known_grads :
OrderedD
ict, optional
A dictionary mapping variables to their gradients. This is
A
ordered
dictionary mapping variables to their gradients. This is
useful in the case where you know the gradient on some
useful in the case where you know the gradient on some
variables but do not know the original cost.
variables but do not know the original cost.
return_disconnected : {'zero', 'None', 'Disconnected'}
return_disconnected : {'zero', 'None', 'Disconnected'}
...
@@ -462,6 +462,9 @@ def grad(cost, wrt, consider_constant=None,
...
@@ -462,6 +462,9 @@ def grad(cost, wrt, consider_constant=None,
if
known_grads
is
None
:
if
known_grads
is
None
:
known_grads
=
OrderedDict
()
known_grads
=
OrderedDict
()
else
:
m
=
"known_grads must be an OrderedDict. "
assert
isinstance
(
known_grads
,
OrderedDict
)
or
len
(
known_grads
)
<=
1
,
m
# The gradient of the cost is 1 unless specified otherwise by known_grads.
# The gradient of the cost is 1 unless specified otherwise by known_grads.
if
cost
is
not
None
:
if
cost
is
not
None
:
...
...
theano/tests/test_gradient.py
浏览文件 @
06b1fb7b
...
@@ -472,9 +472,8 @@ def test_known_grads():
...
@@ -472,9 +472,8 @@ def test_known_grads():
true_grads
=
true_grads
(
*
values
)
true_grads
=
true_grads
(
*
values
)
for
layer
in
layers
:
for
layer
in
layers
:
print
(
'Testing by separately computing '
,
layer
)
first
=
theano
.
tensor
.
grad
(
cost
,
layer
,
disconnected_inputs
=
'ignore'
)
first
=
theano
.
tensor
.
grad
(
cost
,
layer
,
disconnected_inputs
=
'ignore'
)
known
=
d
ict
(
izip
(
layer
,
first
))
known
=
OrderedD
ict
(
izip
(
layer
,
first
))
full
=
theano
.
tensor
.
grad
(
cost
=
None
,
known_grads
=
known
,
wrt
=
inputs
,
disconnected_inputs
=
'ignore'
)
full
=
theano
.
tensor
.
grad
(
cost
=
None
,
known_grads
=
known
,
wrt
=
inputs
,
disconnected_inputs
=
'ignore'
)
full
=
theano
.
function
(
inputs
,
full
)
full
=
theano
.
function
(
inputs
,
full
)
full
=
full
(
*
values
)
full
=
full
(
*
values
)
...
...
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