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testgroup
pytensor
Commits
82284b21
提交
82284b21
authored
9月 12, 2017
作者:
abergeron
提交者:
GitHub
9月 12, 2017
浏览文件
操作
浏览文件
下载
差异文件
Merge pull request #6396 from nouiz/scipy_nfunc
Scipy nfunc
上级
404cea07
b45337b5
隐藏空白字符变更
内嵌
并排
正在显示
3 个修改的文件
包含
59 行增加
和
18 行删除
+59
-18
basic_scipy.py
theano/scalar/basic_scipy.py
+23
-0
elemwise.py
theano/tensor/elemwise.py
+28
-15
test_basic.py
theano/tensor/tests/test_basic.py
+8
-3
没有找到文件。
theano/scalar/basic_scipy.py
浏览文件 @
82284b21
...
@@ -26,6 +26,8 @@ except (ImportError, ValueError):
...
@@ -26,6 +26,8 @@ except (ImportError, ValueError):
class
Erf
(
UnaryScalarOp
):
class
Erf
(
UnaryScalarOp
):
nfunc_spec
=
(
'scipy.special.erf'
,
1
,
1
)
def
impl
(
self
,
x
):
def
impl
(
self
,
x
):
if
imported_scipy_special
:
if
imported_scipy_special
:
return
scipy
.
special
.
erf
(
x
)
return
scipy
.
special
.
erf
(
x
)
...
@@ -58,6 +60,8 @@ erf = Erf(upgrade_to_float, name='erf')
...
@@ -58,6 +60,8 @@ erf = Erf(upgrade_to_float, name='erf')
class
Erfc
(
UnaryScalarOp
):
class
Erfc
(
UnaryScalarOp
):
nfunc_spec
=
(
'scipy.special.erfc'
,
1
,
1
)
def
impl
(
self
,
x
):
def
impl
(
self
,
x
):
if
imported_scipy_special
:
if
imported_scipy_special
:
return
scipy
.
special
.
erfc
(
x
)
return
scipy
.
special
.
erfc
(
x
)
...
@@ -105,6 +109,8 @@ class Erfcx(UnaryScalarOp):
...
@@ -105,6 +109,8 @@ class Erfcx(UnaryScalarOp):
running on GPU an optimization will replace it with a gpu version.
running on GPU an optimization will replace it with a gpu version.
"""
"""
nfunc_spec
=
(
'scipy.special.erfcx'
,
1
,
1
)
def
impl
(
self
,
x
):
def
impl
(
self
,
x
):
if
imported_scipy_special
:
if
imported_scipy_special
:
return
scipy
.
special
.
erfcx
(
x
)
return
scipy
.
special
.
erfcx
(
x
)
...
@@ -140,6 +146,8 @@ class Erfinv(UnaryScalarOp):
...
@@ -140,6 +146,8 @@ class Erfinv(UnaryScalarOp):
(TODO) Find a C implementation of erfinv for CPU.
(TODO) Find a C implementation of erfinv for CPU.
"""
"""
nfunc_spec
=
(
'scipy.special.erfinv'
,
1
,
1
)
def
impl
(
self
,
x
):
def
impl
(
self
,
x
):
if
imported_scipy_special
:
if
imported_scipy_special
:
return
scipy
.
special
.
erfinv
(
x
)
return
scipy
.
special
.
erfinv
(
x
)
...
@@ -173,6 +181,8 @@ erfinv = Erfinv(upgrade_to_float_no_complex, name='erfinv')
...
@@ -173,6 +181,8 @@ erfinv = Erfinv(upgrade_to_float_no_complex, name='erfinv')
class
Erfcinv
(
UnaryScalarOp
):
class
Erfcinv
(
UnaryScalarOp
):
nfunc_spec
=
(
'scipy.special.erfcinv'
,
1
,
1
)
def
impl
(
self
,
x
):
def
impl
(
self
,
x
):
if
imported_scipy_special
:
if
imported_scipy_special
:
return
scipy
.
special
.
erfcinv
(
x
)
return
scipy
.
special
.
erfcinv
(
x
)
...
@@ -206,6 +216,8 @@ erfcinv = Erfcinv(upgrade_to_float_no_complex, name='erfcinv')
...
@@ -206,6 +216,8 @@ erfcinv = Erfcinv(upgrade_to_float_no_complex, name='erfcinv')
class
Gamma
(
UnaryScalarOp
):
class
Gamma
(
UnaryScalarOp
):
nfunc_spec
=
(
'scipy.special.gamma'
,
1
,
1
)
@staticmethod
@staticmethod
def
st_impl
(
x
):
def
st_impl
(
x
):
return
scipy
.
special
.
gamma
(
x
)
return
scipy
.
special
.
gamma
(
x
)
...
@@ -243,6 +255,8 @@ class GammaLn(UnaryScalarOp):
...
@@ -243,6 +255,8 @@ class GammaLn(UnaryScalarOp):
Log gamma function.
Log gamma function.
"""
"""
nfunc_spec
=
(
'scipy.special.gammaln'
,
1
,
1
)
@staticmethod
@staticmethod
def
st_impl
(
x
):
def
st_impl
(
x
):
return
scipy
.
special
.
gammaln
(
x
)
return
scipy
.
special
.
gammaln
(
x
)
...
@@ -287,6 +301,8 @@ class Psi(UnaryScalarOp):
...
@@ -287,6 +301,8 @@ class Psi(UnaryScalarOp):
Derivative of log gamma function.
Derivative of log gamma function.
"""
"""
nfunc_spec
=
(
'scipy.special.psi'
,
1
,
1
)
@staticmethod
@staticmethod
def
st_impl
(
x
):
def
st_impl
(
x
):
return
scipy
.
special
.
psi
(
x
)
return
scipy
.
special
.
psi
(
x
)
...
@@ -472,6 +488,7 @@ class Chi2SF(BinaryScalarOp):
...
@@ -472,6 +488,7 @@ class Chi2SF(BinaryScalarOp):
https://github.com/Theano/Theano_lgpl.git
https://github.com/Theano/Theano_lgpl.git
"""
"""
nfunc_spec
=
(
'scipy.stats.chi2.sf'
,
2
,
1
)
@staticmethod
@staticmethod
def
st_impl
(
x
,
k
):
def
st_impl
(
x
,
k
):
...
@@ -489,6 +506,7 @@ class Jv(BinaryScalarOp):
...
@@ -489,6 +506,7 @@ class Jv(BinaryScalarOp):
"""
"""
Bessel function of the first kind of order v (real).
Bessel function of the first kind of order v (real).
"""
"""
nfunc_spec
=
(
'scipy.special.jv'
,
2
,
1
)
@staticmethod
@staticmethod
def
st_impl
(
v
,
x
):
def
st_impl
(
v
,
x
):
...
@@ -513,6 +531,7 @@ class J1(UnaryScalarOp):
...
@@ -513,6 +531,7 @@ class J1(UnaryScalarOp):
"""
"""
Bessel function of the first kind of order 1.
Bessel function of the first kind of order 1.
"""
"""
nfunc_spec
=
(
'scipy.special.j1'
,
1
,
1
)
@staticmethod
@staticmethod
def
st_impl
(
x
):
def
st_impl
(
x
):
...
@@ -544,6 +563,7 @@ class J0(UnaryScalarOp):
...
@@ -544,6 +563,7 @@ class J0(UnaryScalarOp):
"""
"""
Bessel function of the first kind of order 0.
Bessel function of the first kind of order 0.
"""
"""
nfunc_spec
=
(
'scipy.special.j0'
,
1
,
1
)
@staticmethod
@staticmethod
def
st_impl
(
x
):
def
st_impl
(
x
):
...
@@ -575,6 +595,7 @@ class Iv(BinaryScalarOp):
...
@@ -575,6 +595,7 @@ class Iv(BinaryScalarOp):
"""
"""
Modified Bessel function of the first kind of order v (real).
Modified Bessel function of the first kind of order v (real).
"""
"""
nfunc_spec
=
(
'scipy.special.iv'
,
2
,
1
)
@staticmethod
@staticmethod
def
st_impl
(
v
,
x
):
def
st_impl
(
v
,
x
):
...
@@ -599,6 +620,7 @@ class I1(UnaryScalarOp):
...
@@ -599,6 +620,7 @@ class I1(UnaryScalarOp):
"""
"""
Modified Bessel function of the first kind of order 1.
Modified Bessel function of the first kind of order 1.
"""
"""
nfunc_spec
=
(
'scipy.special.i1'
,
1
,
1
)
@staticmethod
@staticmethod
def
st_impl
(
x
):
def
st_impl
(
x
):
...
@@ -622,6 +644,7 @@ class I0(UnaryScalarOp):
...
@@ -622,6 +644,7 @@ class I0(UnaryScalarOp):
"""
"""
Modified Bessel function of the first kind of order 0.
Modified Bessel function of the first kind of order 0.
"""
"""
nfunc_spec
=
(
'scipy.special.i0'
,
1
,
1
)
@staticmethod
@staticmethod
def
st_impl
(
x
):
def
st_impl
(
x
):
...
...
theano/tensor/elemwise.py
浏览文件 @
82284b21
...
@@ -392,17 +392,13 @@ second dimension
...
@@ -392,17 +392,13 @@ second dimension
inplace_pattern
=
frozendict
({})
inplace_pattern
=
frozendict
({})
self
.
name
=
name
self
.
name
=
name
self
.
scalar_op
=
scalar_op
self
.
scalar_op
=
scalar_op
self
.
inplace_pattern
=
frozendict
(
inplace_pattern
)
self
.
inplace_pattern
=
inplace_pattern
self
.
destroy_map
=
dict
((
o
,
[
i
])
for
o
,
i
in
self
.
inplace_pattern
.
items
())
self
.
destroy_map
=
dict
((
o
,
[
i
])
for
o
,
i
in
self
.
inplace_pattern
.
items
())
self
.
ufunc
=
None
self
.
nfunc
=
None
if
nfunc_spec
is
None
:
if
nfunc_spec
is
None
:
nfunc_spec
=
getattr
(
scalar_op
,
'nfunc_spec'
,
None
)
nfunc_spec
=
getattr
(
scalar_op
,
'nfunc_spec'
,
None
)
self
.
nfunc_spec
=
nfunc_spec
self
.
nfunc_spec
=
nfunc_spec
if
nfunc_spec
:
self
.
__setstate__
(
self
.
__dict__
)
self
.
nfunc
=
getattr
(
np
,
nfunc_spec
[
0
])
super
(
Elemwise
,
self
)
.
__init__
(
openmp
=
openmp
)
super
(
Elemwise
,
self
)
.
__init__
(
openmp
=
openmp
)
def
__getstate__
(
self
):
def
__getstate__
(
self
):
...
@@ -417,12 +413,6 @@ second dimension
...
@@ -417,12 +413,6 @@ second dimension
self
.
ufunc
=
None
self
.
ufunc
=
None
self
.
nfunc
=
None
self
.
nfunc
=
None
self
.
inplace_pattern
=
frozendict
(
self
.
inplace_pattern
)
self
.
inplace_pattern
=
frozendict
(
self
.
inplace_pattern
)
if
getattr
(
self
,
'nfunc_spec'
,
None
):
self
.
nfunc
=
getattr
(
np
,
self
.
nfunc_spec
[
0
])
elif
0
<
self
.
scalar_op
.
nin
<
32
:
self
.
ufunc
=
np
.
frompyfunc
(
self
.
scalar_op
.
impl
,
self
.
scalar_op
.
nin
,
self
.
scalar_op
.
nout
)
def
get_output_info
(
self
,
dim_shuffle
,
*
inputs
):
def
get_output_info
(
self
,
dim_shuffle
,
*
inputs
):
"""Return the outputs dtype and broadcastable pattern and the
"""Return the outputs dtype and broadcastable pattern and the
...
@@ -655,9 +645,28 @@ second dimension
...
@@ -655,9 +645,28 @@ second dimension
return
ret
return
ret
def
prepare_node
(
self
,
node
,
storage_map
,
compute_map
,
impl
):
def
prepare_node
(
self
,
node
,
storage_map
,
compute_map
,
impl
):
# Postpone the ufunc building to the last minutes
# Postpone the ufunc building to the last minutes due to:
# NumPy ufunc support only up to 31 inputs.
# - NumPy ufunc support only up to 31 inputs.
# But our c code support more.
# But our c code support more.
# - nfunc is reused for scipy and scipy is optional
if
getattr
(
self
,
'nfunc_spec'
,
None
):
self
.
nfunc
=
getattr
(
np
,
self
.
nfunc_spec
[
0
],
None
)
if
self
.
nfunc
is
None
:
# Not inside NumPy. So probably another package like scipy.
symb
=
self
.
nfunc_spec
[
0
]
.
split
(
"."
)
for
idx
in
range
(
1
,
len
(
self
.
nfunc_spec
[
0
])):
try
:
module
=
__import__
(
'.'
.
join
(
symb
[:
idx
]))
except
ImportError
:
break
for
sub
in
symb
[
1
:]:
try
:
module
=
getattr
(
module
,
sub
)
except
AttributeError
:
module
=
None
break
self
.
nfunc
=
module
if
(
len
(
node
.
inputs
)
<
32
and
if
(
len
(
node
.
inputs
)
<
32
and
(
self
.
nfunc
is
None
or
(
self
.
nfunc
is
None
or
self
.
scalar_op
.
nin
!=
len
(
node
.
inputs
))
and
self
.
scalar_op
.
nin
!=
len
(
node
.
inputs
))
and
...
@@ -743,6 +752,10 @@ second dimension
...
@@ -743,6 +752,10 @@ second dimension
ufunc_args
=
inputs
ufunc_args
=
inputs
ufunc_kwargs
=
{}
ufunc_kwargs
=
{}
# We supported in the past calling manually op.perform.
# To keep that support we need to sometimes call self.prepare_node
if
self
.
nfunc
is
None
and
self
.
ufunc
is
None
:
self
.
prepare_node
(
node
,
None
,
None
,
'py'
)
if
self
.
nfunc
and
len
(
inputs
)
==
self
.
nfunc_spec
[
1
]:
if
self
.
nfunc
and
len
(
inputs
)
==
self
.
nfunc_spec
[
1
]:
ufunc
=
self
.
nfunc
ufunc
=
self
.
nfunc
nout
=
self
.
nfunc_spec
[
2
]
nout
=
self
.
nfunc_spec
[
2
]
...
...
theano/tensor/tests/test_basic.py
浏览文件 @
82284b21
...
@@ -1782,14 +1782,16 @@ ErfcxTester = makeBroadcastTester(
...
@@ -1782,14 +1782,16 @@ ErfcxTester = makeBroadcastTester(
good
=
_good_broadcast_unary_normal_float_no_complex_small_neg_range
,
good
=
_good_broadcast_unary_normal_float_no_complex_small_neg_range
,
grad
=
_grad_broadcast_unary_normal_small_neg_range
,
grad
=
_grad_broadcast_unary_normal_small_neg_range
,
eps
=
2e-10
,
eps
=
2e-10
,
mode
=
mode_no_scipy
)
mode
=
mode_no_scipy
,
skip
=
skip_scipy
)
ErfcxInplaceTester
=
makeBroadcastTester
(
ErfcxInplaceTester
=
makeBroadcastTester
(
op
=
inplace
.
erfcx_inplace
,
op
=
inplace
.
erfcx_inplace
,
expected
=
expected_erfcx
,
expected
=
expected_erfcx
,
good
=
_good_broadcast_unary_normal_float_no_complex_small_neg_range
,
good
=
_good_broadcast_unary_normal_float_no_complex_small_neg_range
,
eps
=
2e-10
,
eps
=
2e-10
,
mode
=
mode_no_scipy
,
mode
=
mode_no_scipy
,
inplace
=
True
)
inplace
=
True
,
skip
=
skip_scipy
)
ErfinvTester
=
makeBroadcastTester
(
ErfinvTester
=
makeBroadcastTester
(
op
=
tensor
.
erfinv
,
op
=
tensor
.
erfinv
,
...
@@ -2015,7 +2017,8 @@ def test_verify_jv_grad():
...
@@ -2015,7 +2017,8 @@ def test_verify_jv_grad():
# Verify Jv gradient.
# Verify Jv gradient.
# Implemented separately due to need to fix first input for which grad is
# Implemented separately due to need to fix first input for which grad is
# not defined.
# not defined.
if
skip_scipy
:
raise
SkipTest
(
"SciPy needed"
)
v_val
,
x_val
=
_grad_broadcast_binary_bessel
[
'normal'
]
v_val
,
x_val
=
_grad_broadcast_binary_bessel
[
'normal'
]
def
fixed_first_input_jv
(
x
):
def
fixed_first_input_jv
(
x
):
...
@@ -2082,6 +2085,8 @@ def test_verify_iv_grad():
...
@@ -2082,6 +2085,8 @@ def test_verify_iv_grad():
# Verify Iv gradient.
# Verify Iv gradient.
# Implemented separately due to need to fix first input for which grad is
# Implemented separately due to need to fix first input for which grad is
# not defined.
# not defined.
if
skip_scipy
:
raise
SkipTest
(
"SciPy needed"
)
v_val
,
x_val
=
_grad_broadcast_binary_bessel
[
'normal'
]
v_val
,
x_val
=
_grad_broadcast_binary_bessel
[
'normal'
]
...
...
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