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testgroup
pytensor
Commits
d91c1d5f
提交
d91c1d5f
authored
6月 12, 2014
作者:
Tanjay94
浏览文件
操作
浏览文件
下载
电子邮件补丁
差异文件
Fixed norm function.
上级
ce197453
隐藏空白字符变更
内嵌
并排
正在显示
2 个修改的文件
包含
20 行增加
和
34 行删除
+20
-34
ops.py
theano/sandbox/linalg/ops.py
+1
-0
test_linalg.py
theano/sandbox/linalg/tests/test_linalg.py
+19
-34
没有找到文件。
theano/sandbox/linalg/ops.py
浏览文件 @
d91c1d5f
...
...
@@ -1215,6 +1215,7 @@ def eigvalsh(a, b, lower=True):
return
Eigvalsh
(
lower
)(
a
,
b
)
<<<<<<<
HEAD
def
matrix_power
(
M
,
n
):
result
=
1
for
i
in
xrange
(
n
):
...
...
theano/sandbox/linalg/tests/test_linalg.py
浏览文件 @
d91c1d5f
...
...
@@ -640,53 +640,38 @@ class T_NormTests(unittest.TestCase):
def
test_wrong_type_of_ord_for_vector
(
self
):
self
.
assertRaises
(
ValueError
,
norm
,
[
2
,
1
],
'fro'
,
0
)
def
test_wrong_type_of_ord_for_vector_in_matrix
(
self
):
self
.
assertRaises
(
ValueError
,
norm
,
[[
2
,
1
],
[
3
,
4
]],
'fro'
,
0
)
def
test_wrong_type_of_ord_for_vector_in_tensor
(
self
):
self
.
assertRaises
(
ValueError
,
norm
,
[[[
2
,
1
],
[
3
,
4
]],
[[
6
,
5
],
[
7
,
8
]]],
'fro'
,
0
)
def
test_wrong_type_of_ord_for_matrix
(
self
):
self
.
assertRaises
(
ValueError
,
norm
,
[[
2
,
1
],
[
3
,
4
]],
0
,
None
)
def
test_wrong_type_of_ord_for_matrix_in_tensor
(
self
):
self
.
assertRaises
(
ValueError
,
norm
,
[[[
2
,
1
],
[
3
,
4
]],
[[
6
,
5
],
[
7
,
8
]]],
0
,
None
)
def
test_non_tensorial_input
(
self
):
self
.
assertRaises
(
ValueError
,
norm
,
3
,
None
,
None
)
def
test_
no_enough_dimensions
(
self
):
self
.
assertRaises
(
ValueError
,
norm
,
[[
2
,
1
],
[
3
,
4
]],
None
,
3
)
def
test_
tensor_input
(
self
):
self
.
assertRaises
(
NotImplementedError
,
norm
,
numpy
.
random
.
rand
(
3
,
4
,
5
),
None
,
None
)
def
test_numpy_compare
(
self
):
f
=
[]
t_n
=
[]
n_n
=
[]
try
:
rng
=
numpy
.
random
.
RandomState
(
utt
.
fetch_seed
())
M
=
tensor
.
matrix
(
"A"
,
dtype
=
theano
.
config
.
floatX
)
V
=
tensor
.
vector
(
"V"
,
dtype
=
theano
.
config
.
floatX
)
N
=
tensor
.
tensor3
(
"N"
,
dtype
=
theano
.
config
.
floatX
)
a
=
rng
.
rand
(
4
,
4
)
.
astype
(
theano
.
config
.
floatX
)
b
=
rng
.
rand
(
4
)
.
astype
(
theano
.
config
.
floatX
)
c
=
rng
.
rand
(
4
,
4
,
4
)
.
astype
(
theano
.
config
.
floatX
)
A
=
(
[
None
,
'fro'
,
'inf'
,
'-inf'
,
1
,
-
1
,
None
,
'inf'
,
'-inf'
,
0
,
1
,
-
1
,
2
,
-
2
,
None
,
'fro'
,
'inf'
,
'-inf'
,
1
,
-
1
,
None
,
'inf'
,
'-inf'
,
0
,
1
,
-
1
,
2
,
-
2
],
[
M
,
M
,
M
,
M
,
M
,
M
,
V
,
V
,
V
,
V
,
V
,
V
,
V
,
V
,
N
,
N
,
N
,
N
,
N
,
N
,
N
,
N
,
N
,
N
,
N
,
N
,
N
,
N
],
[
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
[
0
,
1
],
[
0
,
1
],
[
0
,
1
],
[
0
,
1
],
[
0
,
1
],
[
0
,
1
],
0
,
0
,
0
,
0
,
0
,
0
,
0
,
0
],
[
a
,
a
,
a
,
a
,
a
,
a
,
b
,
b
,
b
,
b
,
b
,
b
,
b
,
b
,
c
,
c
,
c
,
c
,
c
,
c
,
c
,
c
,
c
,
c
,
c
,
c
,
c
,
c
],
[
None
,
'fro'
,
inf
,
-
inf
,
1
,
-
1
,
None
,
inf
,
-
inf
,
0
,
1
,
-
1
,
2
,
-
2
,
None
,
'fro'
,
inf
,
-
inf
,
1
,
-
1
,
None
,
inf
,
-
inf
,
0
,
1
,
-
1
,
2
,
-
2
])
rng
=
numpy
.
random
.
RandomState
(
utt
.
fetch_seed
())
for
i
in
range
(
0
,
28
):
f
.
append
(
function
([
A
[
1
][
i
]],
[
norm
(
A
[
1
][
i
],
A
[
0
][
i
],
A
[
2
][
i
])]))
t_n
.
append
(
f
[
i
](
A
[
3
][
i
]))
n_n
.
append
(
numpy
.
linalg
.
norm
(
A
[
3
][
i
],
A
[
4
][
i
],
A
[
2
][
i
]))
assert
_allclose
(
n_n
[
i
],
t_n
[
i
])
M
=
tensor
.
matrix
(
"A"
,
dtype
=
theano
.
config
.
floatX
)
V
=
tensor
.
vector
(
"V"
,
dtype
=
theano
.
config
.
floatX
)
except
TypeError
:
raise
SkipTest
(
'Your numpy version is outdated.'
)
a
=
rng
.
rand
(
4
,
4
)
.
astype
(
theano
.
config
.
floatX
)
b
=
rng
.
rand
(
4
)
.
astype
(
theano
.
config
.
floatX
)
A
=
(
[
None
,
'fro'
,
'inf'
,
'-inf'
,
1
,
-
1
,
None
,
'inf'
,
'-inf'
,
0
,
1
,
-
1
,
2
,
-
2
],
[
M
,
M
,
M
,
M
,
M
,
M
,
V
,
V
,
V
,
V
,
V
,
V
,
V
,
V
],
[
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
,
None
],
[
a
,
a
,
a
,
a
,
a
,
a
,
b
,
b
,
b
,
b
,
b
,
b
,
b
,
b
],
[
None
,
'fro'
,
inf
,
-
inf
,
1
,
-
1
,
None
,
inf
,
-
inf
,
0
,
1
,
-
1
,
2
,
-
2
])
for
i
in
range
(
0
,
14
):
f
.
append
(
function
([
A
[
1
][
i
]],
[
norm
(
A
[
1
][
i
],
A
[
0
][
i
],
A
[
2
][
i
])]))
t_n
.
append
(
f
[
i
](
A
[
3
][
i
]))
n_n
.
append
(
numpy
.
linalg
.
norm
(
A
[
3
][
i
],
A
[
4
][
i
],
A
[
2
][
i
]))
assert
_allclose
(
n_n
[
i
],
t_n
[
i
])
class
T_lstsq
(
unittest
.
TestCase
):
...
...
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