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testgroup
pytensor
Commits
3e2b234f
提交
3e2b234f
authored
8月 18, 2014
作者:
Frederic
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Remove detail about as_op and make it clear this isn't recommand.
上级
19cb8885
隐藏空白字符变更
内嵌
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2 个修改的文件
包含
48 行增加
和
26 行删除
+48
-26
extending_theano.txt
doc/tutorial/extending_theano.txt
+16
-26
test_tutorial.py
theano/tests/test_tutorial.py
+32
-0
没有找到文件。
doc/tutorial/extending_theano.txt
浏览文件 @
3e2b234f
...
@@ -418,10 +418,14 @@ have to be jointly optimized explicitly in the code.)
...
@@ -418,10 +418,14 @@ have to be jointly optimized explicitly in the code.)
as_op
as_op
=====
=====
- Decorator that converts a python function into a basic Theano op
as_op is a python decorator that converts a python function into a
that will call the supplied function as its implementation.
basic Theano op that will call the supplied function during execution.
- Takes an optional infer_shape parameter that should be a
callable with this signature:
This isn't the recommand way way to build an op, but allow quick
implementation.
It takes an optional :func:`infer_shape` parameter that must have this
signature:
.. code-block:: python
.. code-block:: python
...
@@ -434,34 +438,20 @@ as_op
...
@@ -434,34 +438,20 @@ as_op
.. note::
.. note::
This should not be used when performance is a concern since
Not providing the `infer_shape` method cause shapes related
the very basic nature of the resulting Op may interfere with
optimization to don't work with that op. For example
certain graph optimizations. WHY?!?!? I think it need more detail or should be removed.!?!?!
`you_op(inputs, ...).shape` will need the op to be executed just
to get the shape.
.. note::
.. note::
Returns FromFunctionOp(fn, itypes, otypes, infer_shape)
As no grad is defined, this mean you won't be able to
differenciate path that include this op.
FromFunctionOp
--------------
- Build a basic Theano Op around a python function.
.. note::
.. note::
Since the resulting Op is very basic and is missing most
It convert the python function to a callable object that take as
of the optional functionalities, some optimizations may not
inputs Theano variable that was declared.
apply.
If you want to help, you can supply an infer_shape function
that computes the shapes of the output given the shapes of
the inputs.
Also the gradient is undefined in the resulting op and
Theano will raise an error if you attempt to get the
gradient of a graph containing this op.
as_op Example
as_op Example
-------------
-------------
...
...
theano/tests/test_tutorial.py
浏览文件 @
3e2b234f
...
@@ -453,6 +453,38 @@ class T_extending(unittest.TestCase):
...
@@ -453,6 +453,38 @@ class T_extending(unittest.TestCase):
simplify
=
gof
.
TopoOptimizer
(
local_simplify
)
simplify
=
gof
.
TopoOptimizer
(
local_simplify
)
simplify
.
optimize
(
e
)
simplify
.
optimize
(
e
)
def
test_as_op
(
self
):
import
theano
import
numpy
from
theano.compile.ops
import
as_op
def
infer_shape_numpy_dot
(
node
,
input_shapes
):
ashp
,
bshp
=
input_shapes
return
[
ashp
[:
-
1
]
+
bshp
[
-
1
:]]
@as_op
(
itypes
=
[
theano
.
tensor
.
fmatrix
,
theano
.
tensor
.
fmatrix
],
otypes
=
[
theano
.
tensor
.
fmatrix
],
infer_shape
=
infer_shape_numpy_dot
)
def
numpy_add
(
a
,
b
):
return
numpy
.
add
(
a
,
b
)
def
infer_shape_numpy_add_sub
(
node
,
input_shapes
):
ashp
,
bshp
=
input_shapes
# Both inputs should have that same shape, so we just
# return one of them.
return
[
ashp
[
0
]]
@as_op
(
itypes
=
[
theano
.
tensor
.
fmatrix
,
theano
.
tensor
.
fmatrix
],
otypes
=
[
theano
.
tensor
.
fmatrix
],
infer_shape
=
infer_shape_numpy_add_sub
)
def
numpy_add
(
a
,
b
):
return
numpy
.
add
(
a
,
b
)
@as_op
(
itypes
=
[
theano
.
tensor
.
fmatrix
,
theano
.
tensor
.
fmatrix
],
otypes
=
[
theano
.
tensor
.
fmatrix
],
infer_shape
=
infer_shape_numpy_add_sub
)
def
numpy_sub
(
a
,
b
):
return
numpy
.
sub
(
a
,
b
)
class
T_introduction
(
unittest
.
TestCase
):
class
T_introduction
(
unittest
.
TestCase
):
...
...
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