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testgroup
pytensor
Commits
81369296
提交
81369296
authored
11月 06, 2014
作者:
Pascal Lamblin
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电子邮件补丁
差异文件
Remove stale code for reusing output buffer in elemwise perform
上级
4b374abe
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
11 行增加
和
47 行删除
+11
-47
basic.py
theano/tensor/basic.py
+5
-5
elemwise.py
theano/tensor/elemwise.py
+6
-42
没有找到文件。
theano/tensor/basic.py
浏览文件 @
81369296
...
@@ -1812,7 +1812,7 @@ def round(a, mode="half_away_from_zero"):
...
@@ -1812,7 +1812,7 @@ def round(a, mode="half_away_from_zero"):
raise
Exception
(
"round mode
%
s is not implemented."
%
mode
)
raise
Exception
(
"round mode
%
s is not implemented."
%
mode
)
@_scal_elemwise_with_nfunc
(
'around'
,
1
,
-
1
)
@_scal_elemwise_with_nfunc
(
'around'
,
1
,
1
)
def
round_half_to_even
(
a
):
def
round_half_to_even
(
a
):
"""round_half_to_even(a)"""
"""round_half_to_even(a)"""
...
@@ -1952,20 +1952,20 @@ def chi2sf(x, k):
...
@@ -1952,20 +1952,20 @@ def chi2sf(x, k):
#numpy.real(float32) return a view on the inputs.
#numpy.real(float32) return a view on the inputs.
#@_scal_elemwise_with_nfunc('real', 1,
-
1)
#@_scal_elemwise_with_nfunc('real', 1, 1)
@_scal_elemwise
@_scal_elemwise
def
real
(
z
):
def
real
(
z
):
"""Return real component of complex-valued tensor `z`"""
"""Return real component of complex-valued tensor `z`"""
_tensor_py_operators
.
real
=
property
(
real
)
_tensor_py_operators
.
real
=
property
(
real
)
@_scal_elemwise_with_nfunc
(
'imag'
,
1
,
-
1
)
@_scal_elemwise_with_nfunc
(
'imag'
,
1
,
1
)
def
imag
(
z
):
def
imag
(
z
):
"""Return imaginary component of complex-valued tensor `z`"""
"""Return imaginary component of complex-valued tensor `z`"""
_tensor_py_operators
.
imag
=
property
(
imag
)
_tensor_py_operators
.
imag
=
property
(
imag
)
@_scal_elemwise_with_nfunc
(
'angle'
,
1
,
-
1
)
@_scal_elemwise_with_nfunc
(
'angle'
,
1
,
1
)
def
angle
(
z
):
def
angle
(
z
):
"""Return polar-coordinate angle of complex-valued tensor `z`"""
"""Return polar-coordinate angle of complex-valued tensor `z`"""
...
@@ -1975,7 +1975,7 @@ def complex(real, imag):
...
@@ -1975,7 +1975,7 @@ def complex(real, imag):
"""Return complex-valued tensor with `real` and `imag` components"""
"""Return complex-valued tensor with `real` and `imag` components"""
@_scal_elemwise_with_nfunc
(
'conj'
,
1
,
-
1
)
@_scal_elemwise_with_nfunc
(
'conj'
,
1
,
1
)
def
conj
(
z
):
def
conj
(
z
):
"""Return the complex conjugate of `z`."""
"""Return the complex conjugate of `z`."""
...
...
theano/tensor/elemwise.py
浏览文件 @
81369296
...
@@ -473,14 +473,11 @@ class Elemwise(OpenMPOp):
...
@@ -473,14 +473,11 @@ class Elemwise(OpenMPOp):
the input's storage. (Just like destroymap, but without the lists.)
the input's storage. (Just like destroymap, but without the lists.)
* nfunc_spec: either None or a tuple of three elements,
* nfunc_spec: either None or a tuple of three elements,
(nfunc_name, nin, nout) such that getattr(numpy, nfunc_name)
(nfunc_name, nin, nout) such that getattr(numpy, nfunc_name)
implements this operation, takes nin inputs and abs(nout) outputs
implements this operation, takes nin inputs and nout outputs.
(nout < 0 if the numpy function does not provide the option of
Note that nin cannot always be inferred from the scalar op's
providing a numpy array to store the results in). Note that nin
own nin field because that value is sometimes 0 (meaning a
cannot always be inferred from the scalar op's own nin field
variable number of inputs), whereas the numpy function may
because that value is sometimes 0 (meaning a variable number of
not have varargs.
inputs), whereas the numpy function may not have varargs.
NOTE: as of now, the sign of the nout field is ignored (some work
needs to be done to resize the destinations when needed).
"""
"""
if
inplace_pattern
is
None
:
if
inplace_pattern
is
None
:
inplace_pattern
=
{}
inplace_pattern
=
{}
...
@@ -820,44 +817,11 @@ class Elemwise(OpenMPOp):
...
@@ -820,44 +817,11 @@ class Elemwise(OpenMPOp):
out_shape
.
append
(
max
(
values
))
out_shape
.
append
(
max
(
values
))
out_shape
=
tuple
(
out_shape
)
out_shape
=
tuple
(
out_shape
)
# Commented as we don't reuse outputs now.
ufunc_args
=
inputs
#
# if not self.inplace_pattern:
# for output, storage in izip(node.outputs, output_storage):
# odat = storage[0]
# if odat is not None:
# if odat.shape != out_shape:
# # It is unsafe to try to resize odat,
# # we have to allocate output storage.
# odat = None
# if odat is None:
# odat = numpy.ndarray(out_shape, dtype=output.type.dtype)
# storage[0] = odat
# else:
# for i, (output, storage) in enumerate(
# izip(node.outputs, output_storage)):
# #i is an output idx
# if i in self.inplace_pattern:
# odat = inputs[self.inplace_pattern[i]]
# else:
# odat = storage[0]
# if odat is not None:
# if odat.shape != out_shape:
# # It is unsafe to try to resize odat,
# # we have to allocate output storage.
# odat = None
# if odat is None:
# odat = numpy.ndarray(out_shape,
# dtype=output.type.dtype)
# storage[0] = odat
ufunc_args
=
inputs
# + output_storage
ufunc_kwargs
=
{}
ufunc_kwargs
=
{}
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
]
if
nout
<
0
:
nout
=
-
nout
# Numpy ufuncs will sometimes perform operations in
# Numpy ufuncs will sometimes perform operations in
# float16, in particular when the input is int8.
# float16, in particular when the input is int8.
# This is not something that we want, and we do not
# This is not something that we want, and we do not
...
...
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