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Jenkinsb9abeae2018-11-22 11:58:08 +00001/*
Jenkins36ccc902020-02-21 11:10:48 +00002 * Copyright (c) 2018-2020 ARM Limited.
Jenkinsb9abeae2018-11-22 11:58:08 +00003 *
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 */
24#include "arm_compute/runtime/CL/functions/CLReduceMean.h"
25
Jenkins4ba87db2019-05-23 17:11:51 +010026#include "arm_compute/core/CL/CLValidate.h"
Jenkinsb9abeae2018-11-22 11:58:08 +000027#include "arm_compute/core/CL/ICLTensor.h"
28#include "arm_compute/core/CL/kernels/CLReductionOperationKernel.h"
Jenkins7f09cf72020-01-22 18:08:16 +000029#include "arm_compute/core/Error.h"
Jenkinsb9abeae2018-11-22 11:58:08 +000030#include "arm_compute/core/Types.h"
Jenkins7f09cf72020-01-22 18:08:16 +000031#include "arm_compute/core/utils/misc/ShapeCalculator.h"
Jenkinsb9abeae2018-11-22 11:58:08 +000032
33namespace arm_compute
34{
Jenkins7f09cf72020-01-22 18:08:16 +000035namespace
36{
37Status validate_config(const ITensorInfo *input, const Coordinates &reduction_axis, bool keep_dims, const ITensorInfo *output)
38{
39 ARM_COMPUTE_UNUSED(keep_dims);
40 ARM_COMPUTE_RETURN_ERROR_ON_NULLPTR(input, output);
41 ARM_COMPUTE_RETURN_ERROR_ON_F16_UNSUPPORTED(input);
Jenkins36ccc902020-02-21 11:10:48 +000042 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(input, 1, DataType::QASYMM8, DataType::QASYMM8_SIGNED, DataType::F16, DataType::F32);
Jenkins7f09cf72020-01-22 18:08:16 +000043 ARM_COMPUTE_RETURN_ERROR_ON(reduction_axis.num_dimensions() < 1);
44 ARM_COMPUTE_RETURN_ERROR_ON(reduction_axis.num_dimensions() > input->num_dimensions());
45
46 const unsigned int reduction_ops = reduction_axis.num_dimensions();
47 const int input_dims = input->num_dimensions();
48 Coordinates axis_local = reduction_axis;
49
50 for(unsigned int i = 0; i < axis_local.num_dimensions(); ++i)
51 {
52 //axis: The dimensions to reduce. Must be in the range [-rank(input_tensor), rank(input_tensor)).
53 ARM_COMPUTE_RETURN_ERROR_ON(axis_local[i] < (-static_cast<int>(input->num_dimensions())));
54 ARM_COMPUTE_RETURN_ERROR_ON(axis_local[i] >= static_cast<int>(input->num_dimensions()));
55 }
56
57 if(output->tensor_shape().total_size() != 0)
58 {
59 // Only validate if not using auto_init for the output tensor
60 TensorShape out_shape = input->tensor_shape();
61 // Validate output_shape only if not using auto_init
62 convert_negative_axis(axis_local, input_dims);
63 std::sort(axis_local.begin(), axis_local.begin() + reduction_ops);
64 for(unsigned int i = 0; i < reduction_ops; ++i)
65 {
66 ARM_COMPUTE_RETURN_ERROR_ON(axis_local[i] > 3);
67 ARM_COMPUTE_RETURN_ERROR_ON(static_cast<unsigned int>(axis_local[i]) > input->num_dimensions() - 1);
68 if(output->total_size() > 0 && keep_dims)
69 {
70 ARM_COMPUTE_RETURN_ERROR_ON(output->dimension(axis_local[i]) != 1);
71 }
72 if(keep_dims)
73 {
74 out_shape.set(axis_local[i], 1);
75 }
76 else
77 {
78 ARM_COMPUTE_RETURN_ERROR_ON(i > static_cast<unsigned int>(axis_local[i]));
79 const unsigned int remove_index = axis_local[i] - i;
80 ARM_COMPUTE_RETURN_ERROR_ON(remove_index >= out_shape.num_dimensions());
81 out_shape.remove_dimension(remove_index);
82 }
83 }
84 const TensorInfo out_info = input->clone()->set_tensor_shape(out_shape);
85 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_SHAPES(output, &out_info);
Jenkins6a7771e2020-05-28 11:28:36 +010086 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_QUANTIZATION_INFO(input, output);
Jenkins7f09cf72020-01-22 18:08:16 +000087 }
88 return Status{};
89}
90}
Jenkinsb9abeae2018-11-22 11:58:08 +000091CLReduceMean::CLReduceMean(std::shared_ptr<IMemoryManager> memory_manager)
92 : _memory_group(std::move(memory_manager)), _reduction_kernels(), _reduced_outs(), _reshape(), _reduction_ops(), _keep_dims()
93{
94}
95void CLReduceMean::configure(ICLTensor *input, const Coordinates &reduction_axis, bool keep_dims, ICLTensor *output)
96{
Jenkins6a7771e2020-05-28 11:28:36 +010097 configure(CLKernelLibrary::get().get_compile_context(), input, reduction_axis, keep_dims, output);
98}
99
100void CLReduceMean::configure(const CLCompileContext &compile_context, ICLTensor *input, const Coordinates &reduction_axis, bool keep_dims, ICLTensor *output)
101{
Jenkins7f09cf72020-01-22 18:08:16 +0000102 // Perform validate step
103 ARM_COMPUTE_ERROR_THROW_ON(CLReduceMean::validate(input->info(), reduction_axis, keep_dims, output->info()));
104 // Output auto inizialitation if not yet initialized
105 const TensorShape output_shape = arm_compute::misc::shape_calculator::calculate_reduce_mean_shape(input, reduction_axis, keep_dims);
106 auto_init_if_empty(*output->info(), input->info()->clone()->set_tensor_shape(output_shape));
Jenkinsb9abeae2018-11-22 11:58:08 +0000107
Jenkins4ba87db2019-05-23 17:11:51 +0100108 _reduction_ops = reduction_axis.num_dimensions();
109 _reduction_kernels.resize(_reduction_ops);
110 _reduced_outs.resize(_reduction_ops - (keep_dims ? 1 : 0));
111 _keep_dims = keep_dims;
Jenkinsb9abeae2018-11-22 11:58:08 +0000112
Jenkins514be652019-02-28 12:25:18 +0000113 Coordinates axis_local = reduction_axis;
114 const int input_dims = input->info()->num_dimensions();
115
Jenkins7f09cf72020-01-22 18:08:16 +0000116 convert_negative_axis(axis_local, input_dims);
Jenkins514be652019-02-28 12:25:18 +0000117
Jenkinsb9abeae2018-11-22 11:58:08 +0000118 // Perform reduction for every axis
Jenkins7f09cf72020-01-22 18:08:16 +0000119 for(int i = 0; i < _reduction_ops; ++i)
Jenkinsb9abeae2018-11-22 11:58:08 +0000120 {
Jenkins4ba87db2019-05-23 17:11:51 +0100121 TensorShape out_shape = i == 0 ? input->info()->tensor_shape() : (&_reduced_outs[i - 1])->info()->tensor_shape();
Jenkins514be652019-02-28 12:25:18 +0000122 out_shape.set(axis_local[i], 1);
Jenkins4ba87db2019-05-23 17:11:51 +0100123 auto in = (i == 0) ? input : (&_reduced_outs[i - 1]);
Jenkinsb9abeae2018-11-22 11:58:08 +0000124
125 if(i == _reduction_ops - 1 && keep_dims)
126 {
Jenkins6a7771e2020-05-28 11:28:36 +0100127 _reduction_kernels[i].configure(compile_context, in, output, axis_local[i], ReductionOperation::MEAN_SUM);
Jenkinsb9abeae2018-11-22 11:58:08 +0000128 }
129 else
130 {
131 _reduced_outs[i].allocator()->init(TensorInfo(out_shape, input->info()->num_channels(), input->info()->data_type(), input->info()->quantization_info()));
Jenkins4ba87db2019-05-23 17:11:51 +0100132 _memory_group.manage(&_reduced_outs[i]);
Jenkins6a7771e2020-05-28 11:28:36 +0100133 _reduction_kernels[i].configure(compile_context, in, &_reduced_outs[i], axis_local[i], ReductionOperation::MEAN_SUM);
Jenkinsb9abeae2018-11-22 11:58:08 +0000134 }
135 }
136
137 // Allocate intermediate tensors
Jenkins7f09cf72020-01-22 18:08:16 +0000138 for(int i = 0; i < _reduction_ops - (keep_dims ? 1 : 0); ++i)
Jenkinsb9abeae2018-11-22 11:58:08 +0000139 {
140 _reduced_outs[i].allocator()->allocate();
141 }
142
143 // Configure reshape layer if we want to drop the dimensions
144 if(!keep_dims)
145 {
146 TensorShape out_shape = input->info()->tensor_shape();
147
148 // We have to sort the reduction axis vectors in order for remove_dimension
149 // to work properly
Jenkins514be652019-02-28 12:25:18 +0000150 std::sort(axis_local.begin(), axis_local.begin() + _reduction_ops);
Jenkins7f09cf72020-01-22 18:08:16 +0000151 for(int i = 0; i < _reduction_ops; ++i)
Jenkinsb9abeae2018-11-22 11:58:08 +0000152 {
Jenkins514be652019-02-28 12:25:18 +0000153 out_shape.remove_dimension(axis_local[i] - i);
Jenkinsb9abeae2018-11-22 11:58:08 +0000154 }
155 auto_init_if_empty(*output->info(), input->info()->clone()->set_tensor_shape(out_shape));
Jenkins6a7771e2020-05-28 11:28:36 +0100156 _reshape.configure(compile_context, &_reduced_outs[_reduction_ops - 1], output);
Jenkinsb9abeae2018-11-22 11:58:08 +0000157 }
158}
159
160Status CLReduceMean::validate(const ITensorInfo *input, const Coordinates &reduction_axis, bool keep_dims, const ITensorInfo *output)
161{
Jenkins7f09cf72020-01-22 18:08:16 +0000162 return validate_config(input, reduction_axis, keep_dims, output);
Jenkinsb9abeae2018-11-22 11:58:08 +0000163}
164
165void CLReduceMean::run()
166{
Jenkins4ba87db2019-05-23 17:11:51 +0100167 MemoryGroupResourceScope scope_mg(_memory_group);
Jenkinsb9abeae2018-11-22 11:58:08 +0000168
Jenkins7f09cf72020-01-22 18:08:16 +0000169 for(auto &kernel : _reduction_kernels)
Jenkinsb9abeae2018-11-22 11:58:08 +0000170 {
Jenkins7f09cf72020-01-22 18:08:16 +0000171 kernel.run();
Jenkinsb9abeae2018-11-22 11:58:08 +0000172 }
173
174 if(!_keep_dims)
175 {
176 _reshape.run();
177 }
Jenkinsb9abeae2018-11-22 11:58:08 +0000178}
179} // namespace arm_compute