ArmNN
 26.01
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FullyConnectedLayer.cpp
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1//
2// Copyright © 2017-2024 Arm Ltd and Contributors. All rights reserved.
3// SPDX-License-Identifier: MIT
4//
6
7#include "LayerCloneBase.hpp"
8
13
14namespace armnn
15{
16
21
22std::unique_ptr<IWorkload> FullyConnectedLayer::CreateWorkload(const IWorkloadFactory& factory) const
23{
25 SetAdditionalInfo(descriptor);
26 return factory.CreateWorkload(LayerType::FullyConnected, descriptor, PrepInfoAndDesc(descriptor));
27}
28
30{
31 auto layer = CloneBase<FullyConnectedLayer>(graph, m_Param, GetName());
32 return std::move(layer);
33}
34
35std::vector<TensorShape> FullyConnectedLayer::InferOutputShapes(const std::vector<TensorShape>& inputShapes) const
36{
37 if (inputShapes.size() != 2)
38 {
39 throw armnn::Exception("inputShapes' size is \"" + std::to_string(inputShapes.size()) +
40 "\" - should be \"2\".");
41 }
42
43 const TensorShape& inputShape = inputShapes[0];
44 const TensorShape weightShape = inputShapes[1];
45
46 // Output for FC is [1, w[1]].
47 unsigned int batches = inputShape[0];
48 unsigned int dimIdx = m_Param.m_TransposeWeightMatrix ? 0 : 1;
49
50 return std::vector<TensorShape>({ TensorShape({batches, weightShape[dimIdx]})});
51}
52
54{
55 const TensorShape& outputShape = GetOutputSlot(0).GetTensorInfo().GetShape();
56
58
59 std::vector<TensorShape> inferredShapes = InferOutputShapes(
62
63 if (inferredShapes.size() != 1)
64 {
65 throw armnn::LayerValidationException("inferredShapes has "
66 + std::to_string(inferredShapes.size()) +
67 " elements - should only have 1.");
68 }
69
70 if (inferredShapes[0].GetDimensionality() != Dimensionality::Specified)
71 {
72 throw armnn::LayerValidationException("inferredShapes' dimensionality has not been specified.");
73 }
74
75 ValidateAndCopyShape(outputShape, inferredShapes[0], m_ShapeInferenceMethod, "FullyConnectedLayer");
76}
77
83
85{
86 strategy.ExecuteStrategy(this, GetParameters(), {}, GetName());
87}
88
89} // namespace armnn
Base class for all ArmNN exceptions so that users can filter to just those.
This layer represents a fully connected operation.
ImmutableConstantTensors GetConstantTensorsByRef() const override
Retrieve the handles to the constant values stored by the layer.
void ExecuteStrategy(IStrategy &strategy) const override
Apply a visitor to this layer.
std::vector< TensorShape > InferOutputShapes(const std::vector< TensorShape > &inputShapes) const override
By default returns inputShapes if the number of inputs are equal to number of outputs,...
FullyConnectedLayer(const FullyConnectedDescriptor &param, const char *name)
Constructor to create a FullyConnectedLayer.
void ValidateTensorShapesFromInputs() override
Check if the input tensor shape(s) will lead to a valid configuration of FullyConnectedLayer.
virtual std::unique_ptr< IWorkload > CreateWorkload(const IWorkloadFactory &factory) const override
Makes a workload for the FullyConnected type.
FullyConnectedLayer * Clone(Graph &graph) const override
Creates a dynamically-allocated copy of this layer.
std::vector< std::reference_wrapper< const std::shared_ptr< ConstTensorHandle > > > ImmutableConstantTensors
Definition INetwork.hpp:141
virtual void ExecuteStrategy(const IConnectableLayer *layer, const armnn::BaseDescriptor &descriptor, const std::vector< armnn::ConstTensor > &constants, const char *name, const armnn::LayerBindingId id=0)=0
virtual std::unique_ptr< IWorkload > CreateWorkload(LayerType type, const QueueDescriptor &descriptor, const WorkloadInfo &info) const =0
Backends should implement their own CreateWorkload function with a switch statement.
const TensorInfo & GetTensorInfo() const override
Gets the TensorInfo for this InputSlot.
Definition Layer.cpp:614
const InputSlot & GetInputSlot(unsigned int index) const override
Get a const input slot handle by slot index.
Definition Layer.hpp:337
void VerifyShapeInferenceType(const TensorShape &outputShape, ShapeInferenceMethod shapeInferenceMethod)
Definition Layer.cpp:526
const OutputSlot & GetOutputSlot(unsigned int index=0) const override
Get the const output slot handle by slot index.
Definition Layer.hpp:339
const char * GetName() const override
Returns the name of the layer.
Definition Layer.hpp:332
void ValidateAndCopyShape(const TensorShape &outputShape, const TensorShape &inferredShape, const ShapeInferenceMethod shapeInferenceMethod, const std::string &layerName, const unsigned int outputSlotIndex=0)
Definition Layer.cpp:457
void SetAdditionalInfo(QueueDescriptor &descriptor) const
Definition Layer.cpp:303
ShapeInferenceMethod m_ShapeInferenceMethod
Definition Layer.hpp:441
WorkloadInfo PrepInfoAndDesc(QueueDescriptor &descriptor) const
Helper function to reduce duplication in *LayerCreateWorkload.
const FullyConnectedDescriptor & GetParameters() const override
FullyConnectedDescriptor m_Param
The parameters for the layer (not including tensor-valued weights etc.).
Layer::ImmutableConstantTensors GetConnectedConstantAsInputTensors() const
const TensorInfo & GetTensorInfo() const override
Definition Layer.cpp:100
const TensorShape & GetShape() const
Definition Tensor.hpp:193
Copyright (c) 2021 ARM Limited and Contributors.
uint32_t GetNumInputs(bool biasEnabled)
LayerType
When adding a new layer, adapt also the LastLayer enum value in the enum class LayerType below.
Definition Types.hpp:494
A FullyConnectedDescriptor for the FullyConnectedLayer.
bool m_TransposeWeightMatrix
Enable/disable transpose weight matrix.