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TensorFlow.NET/src/TensorFlowNET.Core/Operations/Operation.cs at master · achyun/TensorFlow.NET · GitHub
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Operations
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Operation.cs
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TensorFlow.NET
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TensorFlowNET.Core
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Operations
/
Operation.cs
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/*****************************************************************************
Copyright 2018 The TensorFlow.NET Authors. All Rights Reserved.
Licensed under the Apache License, Version 2.0 (the "License");
you may not use this file except in compliance with the License.
You may obtain a copy of the License at
http://www.apache.org/licenses/LICENSE-2.0
Unless required by applicable law or agreed to in writing, software
distributed under the License is distributed on an "AS IS" BASIS,
WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
See the License for the specific language governing permissions and
limitations under the License.
******************************************************************************/
using
Tensorflow
.
NumPy
;
using
System
;
using
System
.
Collections
.
Generic
;
using
System
.
Linq
;
using
Tensorflow
.
Util
;
using
static
Tensorflow
.
Binding
;
namespace
Tensorflow
{
/// <summary>
/// Represents a graph node that performs computation on tensors.
///
/// An `Operation` is a node in a TensorFlow `Graph` that takes zero or
/// more `Tensor` objects as input, and produces zero or more `Tensor`
/// objects as output. Objects of type `Operation` are created by
/// calling an op constructor(such as `tf.matmul`)
/// or `tf.Graph.create_op`.
///
/// For example `c = tf.matmul(a, b)` creates an `Operation` of type
/// "MatMul" that takes tensors `a` and `b` as input, and produces `c`
/// as output.
///
/// After the graph has been launched in a session, an `Operation` can
/// be executed by passing it to
/// `tf.Session.run`.
/// `op.run()` is a shortcut for calling `tf.get_default_session().run(op)`.
/// </summary>
public
partial
class
Operation
:
ITensorOrOperation
{
private
readonly
IntPtr
_handle
;
// _c_op in python
private
readonly
Graph
_graph
;
private
NodeDef
_node_def
;
public
string
type
=>
OpType
;
public
Graph
graph
=>
_graph
;
public
int
_id
=>
_id_value
;
public
int
_id_value
{
get
;
set
;
}
public
Operation
op
=>
this
;
public
TF_DataType
dtype
=>
TF_DataType
.
DtInvalid
;
public
virtual
string
name
=>
_handle
==
IntPtr
.
Zero
?
null
:
c_api
.
StringPiece
(
c_api
.
TF_OperationName
(
_handle
)
)
;
public
string
OpType
=>
_handle
==
IntPtr
.
Zero
?
null
:
c_api
.
StringPiece
(
c_api
.
TF_OperationOpType
(
_handle
)
)
;
public
string
Device
=>
_handle
==
IntPtr
.
Zero
?
null
:
c_api
.
StringPiece
(
c_api
.
TF_OperationDevice
(
_handle
)
)
;
bool
_is_stateful
;
public
OperationDescription
OpDesc
{
get
;
set
;
}
public
NodeDef
node_def
{
get
{
if
(
_node_def
==
null
)
_node_def
=
GetNodeDef
(
)
;
return
_node_def
;
}
}
public
Operation
(
IntPtr
handle
,
Graph
g
=
null
)
{
if
(
handle
==
IntPtr
.
Zero
)
return
;
_handle
=
handle
;
_graph
=
g
??
ops
.
get_default_graph
(
)
;
_outputs
=
new
Tensor
[
NumOutputs
]
;
for
(
int
i
=
0
;
i
<
NumOutputs
;
i
++
)
_outputs
[
i
]
=
new
Tensor
(
this
,
i
,
OutputType
(
i
)
)
;
// Dict mapping op name to file and line information for op colocation
// context managers.
_control_flow_context
=
_graph
.
_get_control_flow_context
(
)
;
// Note: _control_flow_post_processing() must not be called here, the caller is responsible for calling it when using this constructor.
}
/*public Operation(Graph g, string opType, string oper_name)
{
_graph = g;
var _operDesc = c_api.TF_NewOperation(g, opType, oper_name);
c_api.TF_SetAttrType(_operDesc, "dtype", TF_DataType.TF_INT32);
lock (Locks.ProcessWide)
using (var status = new Status())
{
_handle = c_api.TF_FinishOperation(_operDesc, status);
status.Check(true);
}
// Dict mapping op name to file and line information for op colocation
// context managers.
_control_flow_context = graph._get_control_flow_context();
}*/
/// <summary>
/// Creates an `Operation`.
/// </summary>
/// <param name="node_def">`node_def_pb2.NodeDef`. `NodeDef` for the `Operation`.</param>
/// <param name="g">`Graph`. The parent graph.</param>
/// <param name="inputs">list of `Tensor` objects. The inputs to this `Operation`.</param>
/// <param name="output_types">list of `DType` objects.</param>
/// <param name="control_inputs">
/// list of operations or tensors from which to have a
/// control dependency.
/// </param>
/// <param name="input_types">
/// List of `DType` objects representing the
/// types of the tensors accepted by the `Operation`. By default
/// uses `[x.dtype.base_dtype for x in inputs]`. Operations that expect
/// reference-typed inputs must specify these explicitly.
/// </param>
/// <param name="original_op"></param>
/// <param name="op_def"></param>
public
Operation
(
NodeDef
node_def
,
Graph
g
,
Tensor
[
]
inputs
=
null
,
TF_DataType
[
]
output_types
=
null
,
ITensorOrOperation
[
]
control_inputs
=
null
,
TF_DataType
[
]
input_types
=
null
,
string
original_op
=
""
,
OpDef
op_def
=
null
)
{
_graph
=
g
;
// Build the list of control inputs.
var
control_input_ops
=
new
List
<
Operation
>
(
)
;
if
(
control_inputs
!=
null
)
{
foreach
(
var
c
in
control_inputs
)
{
switch
(
c
)
{
case
Operation
c1
:
control_input_ops
.
Add
(
c1
)
;
break
;
case
Tensor
tensor
:
control_input_ops
.
Add
(
tensor
.
op
)
;
break
;
// TODO: IndexedSlices don't yet exist, but once they do, this needs to be uncommented
//case IndexedSlices islices:
// control_input_ops.Add(islices.op);
// break;
default
:
throw
new
NotImplementedException
(
$
"Control input must be an Operation, a Tensor, or IndexedSlices:
{
c
}
"
)
;
}
}
}
_id_value
=
_graph
.
_next_id
(
)
;
// Dict mapping op name to file and line information for op colocation
// context managers.
_control_flow_context
=
graph
.
_get_control_flow_context
(
)
;
// This will be set by self.inputs.
if
(
op_def
==
null
)
op_def
=
g
.
GetOpDef
(
node_def
.
Op
)
;
(
_handle
,
OpDesc
)
=
ops
.
_create_c_op
(
g
,
node_def
,
inputs
,
control_input_ops
.
ToArray
(
)
,
op_def
)
;
_is_stateful
=
op_def
.
IsStateful
;
// Initialize self._outputs.
output_types
=
new
TF_DataType
[
NumOutputs
]
;
for
(
int
i
=
0
;
i
<
NumOutputs
;
i
++
)
output_types
[
i
]
=
OutputType
(
i
)
;
_outputs
=
new
Tensor
[
NumOutputs
]
;
for
(
int
i
=
0
;
i
<
NumOutputs
;
i
++
)
_outputs
[
i
]
=
new
Tensor
(
this
,
i
,
output_types
[
i
]
)
;
graph
.
_add_op
(
this
)
;
if
(
_handle
!=
IntPtr
.
Zero
)
_control_flow_post_processing
(
)
;
}
public
void
run
(
FeedItem
[
]
feed_dict
=
null
,
Session
session
=
null
)
{
ops
.
_run_using_default_session
(
this
,
feed_dict
,
graph
,
session
)
;
}
public
virtual
T
get_attr
<
T
>
(
string
name
)
=>
(
T
)
get_attr
(
name
)
;
public
virtual
T
[
]
get_attr_list
<
T
>
(
string
name
)
{
if
(
tf
.
executing_eagerly
(
)
)
return
(
T
[
]
)
get_attr
(
name
)
;
AttrValue
x
=
null
;
lock
(
Locks
.
ProcessWide
)
{
using
var
buf
=
new
Buffer
(
)
;
c_api
.
TF_OperationGetAttrValueProto
(
_handle
,
name
,
buf
.
Handle
,
tf
.
Status
.
Handle
)
;
tf
.
Status
.
Check
(
true
)
;
x
=
AttrValue
.
Parser
.
ParseFrom
(
buf
.
ToArray
(
)
)
;
}
string
oneof_value
=
x
.
ValueCase
.
ToString
(
)
;
if
(
string
.
IsNullOrEmpty
(
oneof_value
)
)
return
null
;
switch
(
typeof
(
T
)
.
Name
)
{
case
nameof
(
Int32
)
:
return
x
.
List
.
I
.
Select
(
x
=>
(
T
)
Convert
.
ChangeType
(
x
,
typeof
(
T
)
)
)
.
ToArray
(
)
;
case
nameof
(
Int64
)
:
return
x
.
List
.
I
.
Select
(
x
=>
(
T
)
Convert
.
ChangeType
(
x
,
typeof
(
T
)
)
)
.
ToArray
(
)
;
default
:
return
null
;
}
}
public
virtual
object
get_attr
(
string
name
)
{
AttrValue
x
=
null
;
lock
(
Locks
.
ProcessWide
)
{
using
var
buf
=
new
Buffer
(
)
;
c_api
.
TF_OperationGetAttrValueProto
(
_handle
,
name
,
buf
.
Handle
,
tf
.
Status
.
Handle
)
;
tf
.
Status
.
Check
(
true
)
;
x
=
AttrValue
.
Parser
.
ParseFrom
(
buf
.
ToArray
(
)
)
;
}
string
oneof_value
=
x
.
ValueCase
.
ToString
(
)
;
if
(
string
.
IsNullOrEmpty
(
oneof_value
)
)
return
null
;
switch
(
oneof_value
.
ToLower
(
)
)
{
case
"list"
:
throw
new
NotImplementedException
(
$
"Unsupported field type in
{
oneof_value
}
"
)
;
case
"type"
:
return
x
.
Type
;
case
"s"
:
return
x
.
S
.
ToStringUtf8
(
)
;
default
:
return
x
.
GetType
(
)
.
GetProperty
(
oneof_value
)
.
GetValue
(
x
)
;
}
}
public
TF_AttrMetadata
GetAttributeMetadata
(
string
attr_name
,
Status
s
)
{
return
c_api
.
TF_OperationGetAttrMetadata
(
_handle
,
attr_name
,
s
.
Handle
)
;
}
private
NodeDef
GetNodeDef
(
)
{
lock
(
Locks
.
ProcessWide
)
using
(
var
s
=
new
Status
(
)
)
using
(
var
buffer
=
new
Buffer
(
)
)
{
c_api
.
TF_OperationToNodeDef
(
_handle
,
buffer
.
Handle
,
s
.
Handle
)
;
s
.
Check
(
)
;
return
NodeDef
.
Parser
.
ParseFrom
(
buffer
.
ToArray
(
)
)
;
}
}
/// <summary>
/// Update the input to this operation at the given index.
///
/// NOTE: This is for TF internal use only.Please don't use it.
/// </summary>
/// <param name="index">the index of the input to update.</param>
/// <param name="tensor"> the Tensor to be used as the input at the given index.</param>
public
void
_update_input
(
int
index
,
Tensor
tensor
)
{
_assert_same_graph
(
tensor
)
;
var
input
=
_tf_input
(
index
)
;
var
output
=
tensor
.
_as_tf_output
(
)
;
// Reset cached inputs.
_inputs_val
=
null
;
_node_def
=
null
;
// after the c_api call next time _inputs is accessed
// the updated inputs are reloaded from the c_api
lock
(
Locks
.
ProcessWide
)
{
// disable
// c_api.TF_UpdateEdge(_graph, output, input, tf.Status.Handle);
//var updated_inputs = inputs;
tf
.
Status
.
Check
(
)
;
}
}
private
void
_assert_same_graph
(
Tensor
tensor
)
{
//TODO: implement
}
/// <summary>
/// Create and return a new TF_Output for output_idx'th output of this op.
/// </summary>
public
TF_Output
_tf_output
(
int
output_idx
)
{
return
new
TF_Output
(
op
,
output_idx
)
;
}
/// <summary>
/// Create and return a new TF_Input for input_idx'th input of this op.
/// </summary>
public
TF_Input
_tf_input
(
int
input_idx
)
{
return
new
TF_Input
(
op
,
input_idx
)
;
}
public
NDArray
numpy
(
)
=>
throw
new
NotImplementedException
(
""
)
;
}
}
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