ref_ops_nonstd_shape_test.cpp 9.6 KB
Newer Older
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
/*
 * The MIT License (MIT)
 *
 * Copyright (c) 2015-2022 Advanced Micro Devices, Inc. All rights reserved.
 *
 * Permission is hereby granted, free of charge, to any person obtaining a copy
 * of this software and associated documentation files (the "Software"), to deal
 * in the Software without restriction, including without limitation the rights
 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
 * copies of the Software, and to permit persons to whom the Software is
 * furnished to do so, subject to the following conditions:
 *
 * The above copyright notice and this permission notice shall be included in
 * all copies or substantial portions of the Software.
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL THE
 * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
 * THE SOFTWARE.
 */
24
25
26
27
28
#include <iostream>
#include <vector>
#include <migraphx/literal.hpp>
#include <migraphx/instruction.hpp>
#include <migraphx/ref/target.hpp>
29
#include <migraphx/generate.hpp>
30
31
32
33
34
35
36
37
#include <migraphx/verify.hpp>
#include <migraphx/make_op.hpp>
#include <migraphx/pass_manager.hpp>
#include "test.hpp"

TEST_CASE(argmax_test_nonstd_shape)
{
    migraphx::program p;
38
39
    auto* mm = p.get_main_module();
    auto dl = mm->add_literal(migraphx::generate_literal({migraphx::shape::float_type, {2, 3, 4}}));
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
    auto dl_trans =
        mm->add_instruction(migraphx::make_op("transpose", {{"permutation", {1, 2, 0}}}), dl);
    mm->add_instruction(migraphx::make_op("argmax", {{"axis", -3}}), dl_trans);
    auto p_uncompiled = p;
    p.compile(migraphx::ref::target{});
    auto result   = p.eval({}).back();
    auto res_gold = p_uncompiled.eval({}).back();
    std::vector<int64_t> result_vec;
    result.visit([&](auto output) { result_vec.assign(output.begin(), output.end()); });
    std::vector<int64_t> res_gold_vec;
    res_gold.visit([&](auto output) { res_gold_vec.assign(output.begin(), output.end()); });
    EXPECT(migraphx::verify_range(result_vec, res_gold_vec));
}

TEST_CASE(argmin_test_nonstd_shape)
{
    migraphx::program p;
57
58
    auto* mm = p.get_main_module();
    auto dl = mm->add_literal(migraphx::generate_literal({migraphx::shape::float_type, {2, 3, 4}}));
59
60
61
62
63
64
65
66
67
68
69
70
71
72
    auto dl_trans =
        mm->add_instruction(migraphx::make_op("transpose", {{"permutation", {1, 2, 0}}}), dl);
    mm->add_instruction(migraphx::make_op("argmin", {{"axis", -1}}), dl_trans);
    auto p_uncompiled = p;
    p.compile(migraphx::ref::target{});
    auto result   = p.eval({}).back();
    auto res_gold = p_uncompiled.eval({}).back();
    std::vector<int64_t> result_vec;
    result.visit([&](auto output) { result_vec.assign(output.begin(), output.end()); });
    std::vector<int64_t> res_gold_vec;
    res_gold.visit([&](auto output) { res_gold_vec.assign(output.begin(), output.end()); });
    EXPECT(migraphx::verify_range(result_vec, res_gold_vec));
}

Charlie Lin's avatar
Charlie Lin committed
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
TEST_CASE(isnan_broadcast_test)
{
    migraphx::program p;
    auto* mm = p.get_main_module();
    migraphx::shape s0{migraphx::shape::float_type, {3}};
    migraphx::shape s1{migraphx::shape::float_type, {3, 2}};
    auto nan_val             = std::numeric_limits<float>::quiet_NaN();
    std::vector<float> data0 = {1.2, 5.2, nan_val};
    auto l0                  = mm->add_literal(migraphx::literal{s0, data0});
    auto l1                  = mm->add_instruction(
        migraphx::make_op("broadcast", {{"axis", 0}, {"out_lens", s1.lens()}}), l0);
    mm->add_instruction(migraphx::make_op("isnan"), l1);
    p.compile(migraphx::ref::target{});
    auto result = p.eval({}).back();
    std::vector<float> results_vector;
    result.visit([&](auto output) { results_vector.assign(output.begin(), output.end()); });
    std::vector<float> correct = {0, 0, 0, 0, 1, 1};
    EXPECT(migraphx::verify_range(results_vector, correct));
}

93
94
95
96
97
98
99
100
101
102
TEST_CASE(squeeze_transpose_test)
{
    migraphx::program p;
    auto* mm = p.get_main_module();
    auto l0 =
        mm->add_literal(migraphx::generate_literal({migraphx::shape::float_type, {4, 1, 3, 1, 3}}));
    auto l0_trans =
        mm->add_instruction(migraphx::make_op("transpose", {{"permutation", {1, 2, 3, 0, 4}}}), l0);
    mm->add_instruction(migraphx::make_op("squeeze"), l0_trans);
    auto p_uncompiled = p;
103
104
105
106
    // contiguous is required to read the values in standard shaped order
    auto* mm_uncompiled = p_uncompiled.get_main_module();
    mm_uncompiled->add_instruction(migraphx::make_op("contiguous"),
                                   std::prev(mm_uncompiled->end()));
107
108
109
110
    p.compile(migraphx::ref::target{});
    auto result          = p.eval({}).back();
    auto expected_result = p_uncompiled.eval({}).back();
    EXPECT(result.get_shape() == migraphx::shape{migraphx::shape::float_type, {3, 4, 3}});
111
    EXPECT(result == expected_result);
112
113
114
115
116
117
118
119
120
121
122
}

TEST_CASE(squeeze_multibroadcast_test)
{
    migraphx::program p;
    auto* mm = p.get_main_module();
    auto l0 =
        mm->add_literal(migraphx::generate_literal({migraphx::shape::float_type, {1, 3, 1, 3}}));
    auto l0_brcst = mm->add_instruction(
        migraphx::make_op("multibroadcast", {{"out_lens", {4, 1, 3, 4, 3}}}), l0);
    mm->add_instruction(migraphx::make_op("squeeze"), l0_brcst);
123
124
125
126
    auto p_uncompiled   = p;
    auto* mm_uncompiled = p_uncompiled.get_main_module();
    mm_uncompiled->add_instruction(migraphx::make_op("contiguous"),
                                   std::prev(mm_uncompiled->end()));
127
    p.compile(migraphx::ref::target{});
128
129
    auto result          = p.eval({}).back();
    auto expected_result = p_uncompiled.eval({}).back();
130
    EXPECT(result.get_shape() == migraphx::shape{migraphx::shape::float_type, {4, 3, 4, 3}});
131
    EXPECT(result == expected_result);
132
133
134
135
136
137
138
139
140
141
142
}

TEST_CASE(squeeze_slice_test)
{
    migraphx::program p;
    auto* mm = p.get_main_module();
    auto l0 =
        mm->add_literal(migraphx::generate_literal({migraphx::shape::float_type, {1, 3, 4, 3}}));
    auto l0_slice = mm->add_instruction(
        migraphx::make_op("slice", {{"axes", {2}}, {"starts", {2}}, {"ends", {3}}}), l0);
    mm->add_instruction(migraphx::make_op("squeeze"), l0_slice);
143
144
145
146
    auto p_uncompiled   = p;
    auto* mm_uncompiled = p_uncompiled.get_main_module();
    mm_uncompiled->add_instruction(migraphx::make_op("contiguous"),
                                   std::prev(mm_uncompiled->end()));
147
    p.compile(migraphx::ref::target{});
148
149
    auto result          = p.eval({}).back();
    auto expected_result = p_uncompiled.eval({}).back();
150
    EXPECT(result.get_shape() == migraphx::shape{migraphx::shape::float_type, {3, 3}});
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
    EXPECT(result == expected_result);
}

TEST_CASE(unsqueeze_transpose_test)
{
    migraphx::program p;
    auto* mm = p.get_main_module();
    migraphx::shape s1{migraphx::shape::float_type, {4, 3, 3}};
    auto l0 = mm->add_literal(migraphx::generate_literal(s1));
    auto l0_trans =
        mm->add_instruction(migraphx::make_op("transpose", {{"permutation", {2, 0, 1}}}), l0);
    mm->add_instruction(migraphx::make_op("unsqueeze", {{"axes", {2}}}), l0_trans);
    auto p_uncompiled   = p;
    auto* mm_uncompiled = p_uncompiled.get_main_module();
    mm_uncompiled->add_instruction(migraphx::make_op("contiguous"),
                                   std::prev(mm_uncompiled->end()));
    p.compile(migraphx::ref::target{});
    auto result          = p.eval({}).back();
    auto expected_result = p_uncompiled.eval({}).back();
    EXPECT(result.get_shape() == migraphx::shape{migraphx::shape::float_type, {3, 4, 1, 3}});
    EXPECT(result == expected_result);
}

TEST_CASE(unsqueeze_multibroadcast_test)
{
    migraphx::program p;
    auto* mm = p.get_main_module();
    migraphx::shape s1{migraphx::shape::float_type, {4, 1, 3}};
    auto l0 = mm->add_literal(migraphx::generate_literal(s1));
    auto l0_brcst =
        mm->add_instruction(migraphx::make_op("multibroadcast", {{"out_lens", {4, 4, 3, 3}}}), l0);
    mm->add_instruction(migraphx::make_op("unsqueeze", {{"axes", {2}}}), l0_brcst);
    auto p_uncompiled   = p;
    auto* mm_uncompiled = p_uncompiled.get_main_module();
    mm_uncompiled->add_instruction(migraphx::make_op("contiguous"),
                                   std::prev(mm_uncompiled->end()));
    p.compile(migraphx::ref::target{});
    auto result          = p.eval({}).back();
    auto expected_result = p_uncompiled.eval({}).back();
    EXPECT(result.get_shape() == migraphx::shape{migraphx::shape::float_type, {4, 4, 1, 3, 3}});
    EXPECT(result == expected_result);
}

TEST_CASE(unsqueeze_slice_test)
{
    migraphx::program p;
    auto* mm = p.get_main_module();
    migraphx::shape s1{migraphx::shape::float_type, {2, 3, 4, 4}};
    auto l0       = mm->add_literal(migraphx::generate_literal(s1));
    auto l0_slice = mm->add_instruction(
        migraphx::make_op("slice", {{"axes", {3}}, {"starts", {2}}, {"ends", {3}}}), l0);
    mm->add_instruction(migraphx::make_op("unsqueeze", {{"axes", {1}}}), l0_slice);
    auto p_uncompiled   = p;
    auto* mm_uncompiled = p_uncompiled.get_main_module();
    mm_uncompiled->add_instruction(migraphx::make_op("contiguous"),
                                   std::prev(mm_uncompiled->end()));
    p.compile(migraphx::ref::target{});
    auto result          = p.eval({}).back();
    auto expected_result = p_uncompiled.eval({}).back();
    EXPECT(result.get_shape() == migraphx::shape{migraphx::shape::float_type, {2, 1, 3, 4, 1}});
    EXPECT(result == expected_result);
212
213
}

214
int main(int argc, const char* argv[]) { test::run(argc, argv); }