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Georgios Pinitasd8734b52017-12-22 15:27:52 +00001/*
2 * Copyright (c) 2018 ARM Limited.
3 *
4 * SPDX-License-Identifier: MIT
5 *
6 * Permission is hereby granted, free of charge, to any person obtaining a copy
7 * of this software and associated documentation files (the "Software"), to
8 * deal in the Software without restriction, including without limitation the
9 * rights to use, copy, modify, merge, publish, distribute, sublicense, and/or
10 * sell copies of the Software, and to permit persons to whom the Software is
11 * furnished to do so, subject to the following conditions:
12 *
13 * The above copyright notice and this permission notice shall be included in all
14 * copies or substantial portions of the Software.
15 *
16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
19 * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
20 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
21 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
22 * SOFTWARE.
23 */
Georgios Pinitasd9eb2752018-04-03 13:44:29 +010024#include "arm_compute/graph/nodes/ConvolutionLayerNode.h"
Georgios Pinitasd8734b52017-12-22 15:27:52 +000025
26#include "arm_compute/core/Utils.h"
Georgios Pinitasd9eb2752018-04-03 13:44:29 +010027#include "arm_compute/graph/Graph.h"
28#include "arm_compute/graph/INodeVisitor.h"
Georgios Pinitascac13b12018-04-27 19:07:19 +010029#include "arm_compute/graph/Utils.h"
Georgios Pinitasd8734b52017-12-22 15:27:52 +000030
31namespace arm_compute
32{
Georgios Pinitasd9eb2752018-04-03 13:44:29 +010033namespace graph
Georgios Pinitasd8734b52017-12-22 15:27:52 +000034{
Giorgio Arena59631a12018-05-02 13:59:04 +010035ConvolutionLayerNode::ConvolutionLayerNode(PadStrideInfo info, ConvolutionMethod method, FastMathHint fast_math_hint, QuantizationInfo out_quant_info)
36 : _info(std::move(info)), _method(method), _fast_math_hint(fast_math_hint), _out_quant_info(out_quant_info)
Georgios Pinitasd8734b52017-12-22 15:27:52 +000037{
38 _input_edges.resize(3, EmptyEdgeID);
39 _outputs.resize(1, NullTensorID);
40}
41
42void ConvolutionLayerNode::set_convolution_method(ConvolutionMethod method)
43{
44 _method = method;
45}
46
47ConvolutionMethod ConvolutionLayerNode::convolution_method() const
48{
49 return _method;
50}
51
Giorgio Arena59631a12018-05-02 13:59:04 +010052void ConvolutionLayerNode::set_fast_math_hint(FastMathHint hint)
53{
54 _fast_math_hint = hint;
55}
56
57FastMathHint ConvolutionLayerNode::fast_math_hint() const
58{
59 return _fast_math_hint;
60}
61
Georgios Pinitasd8734b52017-12-22 15:27:52 +000062PadStrideInfo ConvolutionLayerNode::convolution_info() const
63{
64 return _info;
65}
66
Georgios Pinitascac13b12018-04-27 19:07:19 +010067TensorDescriptor ConvolutionLayerNode::compute_output_descriptor(const TensorDescriptor &input_descriptor,
68 const TensorDescriptor &weights_descriptor,
69 const PadStrideInfo &info)
Georgios Pinitasd8734b52017-12-22 15:27:52 +000070{
71 unsigned int output_width = 0;
72 unsigned int output_height = 0;
Georgios Pinitasd8734b52017-12-22 15:27:52 +000073
Georgios Pinitascac13b12018-04-27 19:07:19 +010074 const unsigned int input_width = get_dimension_size(input_descriptor, DataLayoutDimension::WIDTH);
75 const unsigned int input_height = get_dimension_size(input_descriptor, DataLayoutDimension::HEIGHT);
76 const unsigned int kernel_width = get_dimension_size(weights_descriptor, DataLayoutDimension::WIDTH);
77 const unsigned int kernel_height = get_dimension_size(weights_descriptor, DataLayoutDimension::HEIGHT);
Georgios Pinitasd8734b52017-12-22 15:27:52 +000078
Georgios Pinitascac13b12018-04-27 19:07:19 +010079 std::tie(output_width, output_height) = scaled_dimensions(input_width, input_height, kernel_width, kernel_height, info);
80
81 TensorDescriptor output_descriptor = input_descriptor;
82 output_descriptor.shape.set(get_dimension_idx(output_descriptor, DataLayoutDimension::WIDTH), output_width);
83 output_descriptor.shape.set(get_dimension_idx(output_descriptor, DataLayoutDimension::HEIGHT), output_height);
84 output_descriptor.shape.set(get_dimension_idx(output_descriptor, DataLayoutDimension::CHANNEL), weights_descriptor.shape[3]);
85
86 return output_descriptor;
Georgios Pinitasd8734b52017-12-22 15:27:52 +000087}
88
89bool ConvolutionLayerNode::forward_descriptors()
90{
91 if((input_id(0) != NullTensorID) && (input_id(1) != NullTensorID) && (output_id(0) != NullTensorID))
92 {
93 Tensor *dst = output(0);
94 ARM_COMPUTE_ERROR_ON(dst == nullptr);
95 dst->desc() = configure_output(0);
96 return true;
97 }
98 return false;
99}
100
101TensorDescriptor ConvolutionLayerNode::configure_output(size_t idx) const
102{
103 ARM_COMPUTE_UNUSED(idx);
104 const Tensor *src = input(0);
105 const Tensor *weights = input(1);
106
107 ARM_COMPUTE_ERROR_ON(src == nullptr || weights == nullptr);
108
Georgios Pinitascac13b12018-04-27 19:07:19 +0100109 TensorDescriptor output_info = compute_output_descriptor(src->desc(), weights->desc(), _info);
Giorgio Arenabb54e4e2018-04-05 17:20:34 +0100110 if(!_out_quant_info.empty())
111 {
112 output_info.quant_info = _out_quant_info;
113 }
114
Georgios Pinitasd8734b52017-12-22 15:27:52 +0000115 return output_info;
116}
117
Georgios Pinitasd8734b52017-12-22 15:27:52 +0000118NodeType ConvolutionLayerNode::type() const
119{
120 return NodeType::ConvolutionLayer;
121}
122
123void ConvolutionLayerNode::accept(INodeVisitor &v)
124{
125 v.visit(*this);
126}
Georgios Pinitasd9eb2752018-04-03 13:44:29 +0100127} // namespace graph
Gian Marco Iodice201cea12018-07-30 17:21:41 +0100128} // namespace arm_compute