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Michalis Spyrou649962c2019-05-22 11:11:55 +01001/*
Michele Di Giorgiod9eaf612020-07-08 11:12:57 +01002 * Copyright (c) 2019-2020 Arm Limited.
Michalis Spyrou649962c2019-05-22 11:11:55 +01003 *
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 "helpers.h"
25
26#if defined(DATA_TYPE) && defined(BLOCK_SHAPE) && defined(CHANNEL_SIZE)
27/** Batch to space transformation. (NCHW)
28 *
29 * @note Datatype should be given as a preprocessor argument using -DDATA_TYPE=type. e.g. -DDATA_TYPE=float
30 * @note The input tensor batch size must be passed at compile time using -DCHANNEL_SIZE. e.g. -DCHANNEL_SIZE=2
31 * @note The block shape must be passed at compile time using -DBLOCK_SHAPE. e.g. -DBLOCK_SHAPE=2
32 *
Michele Di Giorgiocbbed282019-12-20 13:26:08 +000033 * @param[in] input_ptr Pointer to the source tensor. Supported data types: All.
Michalis Spyrou649962c2019-05-22 11:11:55 +010034 * @param[in] input_stride_x Stride of the source tensor in X dimension (in bytes)
35 * @param[in] input_step_x input_stride_x * number of elements along X processed per workitem(in bytes)
36 * @param[in] input_stride_y Stride of the source tensor in Y dimension (in bytes)
37 * @param[in] input_step_y input_stride_y * number of elements along Y processed per workitem(in bytes)
38 * @param[in] input_stride_z Stride of the source tensor in Z dimension (in bytes)
39 * @param[in] input_step_z input_stride_z * number of elements along Z processed per workitem(in bytes)
40 * @param[in] input_offset_first_element_in_bytes The offset of the first element in the first source tensor
41 * @param[in] batch_id The input tensor batch id
42 * @param[out] output_ptr Pointer to the destination tensor. Supported data types: same as @p input_ptr
43 * @param[in] output_stride_x Stride of the destination tensor in X dimension (in bytes)
44 * @param[in] output_step_x output_stride_x * number of elements along X processed per workitem(in bytes)
45 * @param[in] output_stride_y Stride of the destination tensor in Y dimension (in bytes)
46 * @param[in] output_step_y output_stride_y * number of elements along Y processed per workitem(in bytes)
47 * @param[in] output_stride_z Stride of the source tensor in Z dimension (in bytes)
48 * @param[in] output_step_z output_stride_z * number of elements along Z processed per workitem(in bytes)
49 * @param[in] output_offset_first_element_in_bytes The offset of the first element in the destination tensor
50 */
51__kernel void depth_to_space_nchw(
52 TENSOR3D_DECLARATION(input),
53 const int batch_id,
54 TENSOR4D_DECLARATION(output))
55{
56 Tensor3D in = CONVERT_TO_TENSOR3D_STRUCT(input);
57 Tensor4D out = CONVERT_TO_TENSOR4D_STRUCT_NO_STEP(output, 0);
58
59 const int r = (CHANNEL_SIZE / (BLOCK_SHAPE * BLOCK_SHAPE));
60 const int x = get_global_id(0);
61 const int y = get_global_id(1);
62 const int z = get_global_id(2) % r;
63
64 const int out_x = x * BLOCK_SHAPE + (get_global_id(2) / r) % BLOCK_SHAPE;
65 const int out_y = y * BLOCK_SHAPE + (get_global_id(2) / r) / BLOCK_SHAPE;
66
67 *((__global DATA_TYPE *)tensor4D_offset(&out, out_x, out_y, z, batch_id)) = *((__global DATA_TYPE *)in.ptr);
68}
69/** Batch to space transformation. (NHWC)
70 *
71 * @note Datatype should be given as a preprocessor argument using -DDATA_TYPE=type. e.g. -DDATA_TYPE=float
72 * @note The input tensor batch size must be passed at compile time using -DCHANNEL_SIZE. e.g. -DCHANNEL_SIZE=2
73 * @note The block shape must be passed at compile time using -DBLOCK_SHAPE. e.g. -DBLOCK_SHAPE=2
74 *
Michele Di Giorgiocbbed282019-12-20 13:26:08 +000075 * @param[in] input_ptr Pointer to the source tensor. Supported data types: All.
Michalis Spyrou649962c2019-05-22 11:11:55 +010076 * @param[in] input_stride_x Stride of the source tensor in X dimension (in bytes)
77 * @param[in] input_step_x input_stride_x * number of elements along X processed per workitem(in bytes)
78 * @param[in] input_stride_y Stride of the source tensor in Y dimension (in bytes)
79 * @param[in] input_step_y input_stride_y * number of elements along Y processed per workitem(in bytes)
80 * @param[in] input_stride_z Stride of the source tensor in Z dimension (in bytes)
81 * @param[in] input_step_z input_stride_z * number of elements along Z processed per workitem(in bytes)
82 * @param[in] input_offset_first_element_in_bytes The offset of the first element in the first source tensor
83 * @param[in] batch_id The input tensor batch id
84 * @param[out] output_ptr Pointer to the destination tensor. Supported data types: same as @p input_ptr
85 * @param[in] output_stride_x Stride of the destination tensor in X dimension (in bytes)
86 * @param[in] output_step_x output_stride_x * number of elements along X processed per workitem(in bytes)
87 * @param[in] output_stride_y Stride of the destination tensor in Y dimension (in bytes)
88 * @param[in] output_step_y output_stride_y * number of elements along Y processed per workitem(in bytes)
89 * @param[in] output_stride_z Stride of the source tensor in Z dimension (in bytes)
90 * @param[in] output_step_z output_stride_z * number of elements along Z processed per workitem(in bytes)
91 * @param[in] output_offset_first_element_in_bytes The offset of the first element in the destination tensor
92 */
93__kernel void depth_to_space_nhwc(
94 TENSOR3D_DECLARATION(input),
95 const int batch_id,
96 TENSOR4D_DECLARATION(output))
97{
98 Tensor3D in = CONVERT_TO_TENSOR3D_STRUCT(input);
99 Tensor4D out = CONVERT_TO_TENSOR4D_STRUCT_NO_STEP(output, 0);
100
101 const int r = (CHANNEL_SIZE / (BLOCK_SHAPE * BLOCK_SHAPE));
102 const int x = get_global_id(1);
103 const int y = get_global_id(2);
104 const int z = get_global_id(0) % r;
105
106 const int out_x = x * BLOCK_SHAPE + (get_global_id(0) / r) % BLOCK_SHAPE;
107 const int out_y = y * BLOCK_SHAPE + (get_global_id(0) / r) / BLOCK_SHAPE;
108
109 *((__global DATA_TYPE *)tensor4D_offset(&out, z, out_x, out_y, batch_id)) = *((__global DATA_TYPE *)in.ptr);
110}
111#endif // defined(DATA_TYPE) && defined(BLOCK_SHAPE) && defined(CHANNEL_SIZE)