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randombit / botan / 21399359864

27 Jan 2026 01:38PM UTC coverage: 90.071% (-0.002%) from 90.073%
21399359864

Pull #5266

github

web-flow
Merge 5406dd818 into 0d718b146
Pull Request #5266: Avoid compiling test_simd.cpp with -m enabling flags

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98.25
/src/tests/test_simd.cpp
1
/*
2
* (C) 2017 Jack Lloyd
3
*
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* Botan is released under the Simplified BSD License (see license.txt)
5
*/
6

7
#include "tests.h"
8

9
#include <botan/internal/bswap.h>
10
#include <botan/internal/isa_extn.h>
11
#include <botan/internal/loadstor.h>
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#include <botan/internal/rotate.h>
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#include <botan/internal/stl_util.h>
14

15
#if defined(BOTAN_HAS_SIMD_4X32)
16
   #include <botan/internal/simd_4x32.h>
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#endif
18

19
#if defined(BOTAN_HAS_SIMD_2X64)
20
   #include <botan/internal/simd_2x64.h>
21
#endif
22

23
#if defined(BOTAN_HAS_CPUID)
24
   #include <botan/internal/cpuid.h>
25
#endif
26

27
namespace Botan_Tests {
28

29
#if defined(BOTAN_HAS_SIMD_4X32)
30

31
class SIMD_4X32_Tests final : public Test {
1✔
32
   public:
33
      std::vector<Test::Result> BOTAN_FN_ISA_SIMD_4X32 run() override {
1✔
34
         Test::Result result("SIMD_4x32");
1✔
35

36
   #if defined(BOTAN_HAS_CPUID)
37
         if(!Botan::CPUID::has(Botan::CPUID::Feature::SIMD_4X32)) {
1✔
38
            result.test_note("Skipping SIMD_4x32 tests due to missing CPU support at runtime");
×
39
            return {result};
×
40
         }
41
   #endif
42

43
         const uint32_t pat1 = 0xAABBCCDD;
1✔
44
         const uint32_t pat2 = 0x87654321;
1✔
45
         const uint32_t pat3 = 0x01234567;
1✔
46
         const uint32_t pat4 = 0xC0D0E0F0;
1✔
47

48
         // pat1 + pat{1,2,3,4}
49
         // precomputed to avoid integer overflow warnings
50
         const uint32_t pat1_1 = 0x557799BA;
1✔
51
         const uint32_t pat1_2 = 0x32210FFE;
1✔
52
         const uint32_t pat1_3 = 0xABDF1244;
1✔
53
         const uint32_t pat1_4 = 0x6B8CADCD;
1✔
54

55
         test_eq(result, "default init", Botan::SIMD_4x32(), 0, 0, 0, 0);
1✔
56
         test_eq(result, "SIMD scalar constructor", Botan::SIMD_4x32(1, 2, 3, 4), 1, 2, 3, 4);
1✔
57

58
         const Botan::SIMD_4x32 splat = Botan::SIMD_4x32::splat(pat1);
1✔
59

60
         test_eq(result, "splat", splat, pat1, pat1, pat1, pat1);
1✔
61

62
         const Botan::SIMD_4x32 input(pat1, pat2, pat3, pat4);
1✔
63

64
         const Botan::SIMD_4x32 rol = input.rotl<3>();
1✔
65

66
         test_eq(result,
1✔
67
                 "rotl",
68
                 rol,
69
                 Botan::rotl<3>(pat1),
70
                 Botan::rotl<3>(pat2),
71
                 Botan::rotl<3>(pat3),
72
                 Botan::rotl<3>(pat4));
73

74
         const Botan::SIMD_4x32 ror = input.rotr<9>();
1✔
75

76
         test_eq(result,
1✔
77
                 "rotr",
78
                 ror,
79
                 Botan::rotr<9>(pat1),
80
                 Botan::rotr<9>(pat2),
81
                 Botan::rotr<9>(pat3),
82
                 Botan::rotr<9>(pat4));
83

84
         Botan::SIMD_4x32 add = input + splat;
1✔
85
         test_eq(result, "add +", add, pat1_1, pat1_2, pat1_3, pat1_4);
1✔
86

87
         add -= splat;
1✔
88
         test_eq(result, "sub -=", add, pat1, pat2, pat3, pat4);
1✔
89

90
         add += splat;
1✔
91
         test_eq(result, "add +=", add, pat1_1, pat1_2, pat1_3, pat1_4);
1✔
92

93
         test_eq(result, "xor", input ^ splat, 0, pat2 ^ pat1, pat3 ^ pat1, pat4 ^ pat1);
1✔
94
         test_eq(result, "or", input | splat, pat1, pat2 | pat1, pat3 | pat1, pat4 | pat1);
1✔
95
         test_eq(result, "and", input & splat, pat1, pat2 & pat1, pat3 & pat1, pat4 & pat1);
1✔
96

97
         Botan::SIMD_4x32 blender = input;
1✔
98
         blender |= splat;
1✔
99
         test_eq(result, "|=", blender, pat1, pat2 | pat1, pat3 | pat1, pat4 | pat1);
1✔
100
         blender &= splat;
1✔
101
         test_eq(result, "&=", blender, pat1, pat1, pat1, pat1);
1✔
102
         blender ^= splat;
1✔
103
         test_eq(result, "^=", blender, 0, 0, 0, 0);
1✔
104

105
         blender = ~blender;
1✔
106
         test_eq(result, "~", blender, 0xFFFFFFFF, 0xFFFFFFFF, 0xFFFFFFFF, 0xFFFFFFFF);
1✔
107

108
         blender = blender.shr<23>();
1✔
109
         test_eq(result, ">>", blender, 0x1FF, 0x1FF, 0x1FF, 0x1FF);
1✔
110

111
         blender = blender.shl<27>();
1✔
112
         test_eq(result, "<<", blender, 0xF8000000, 0xF8000000, 0xF8000000, 0xF8000000);
1✔
113

114
         blender = ~blender;
1✔
115
         test_eq(result, "~", blender, 0x7FFFFFF, 0x7FFFFFF, 0x7FFFFFF, 0x7FFFFFF);
1✔
116

117
         blender = input.andc(~blender);
1✔
118
         test_eq(
1✔
119
            result, "andc", blender, ~pat1 & 0xF8000000, ~pat2 & 0xF8000000, ~pat3 & 0xF8000000, ~pat4 & 0xF8000000);
120

121
         test_eq(result,
1✔
122
                 "bswap",
123
                 input.bswap(),
1✔
124
                 Botan::reverse_bytes(pat1),
125
                 Botan::reverse_bytes(pat2),
126
                 Botan::reverse_bytes(pat3),
127
                 Botan::reverse_bytes(pat4));
128

129
         Botan::SIMD_4x32 t1(pat1, pat2, pat3, pat4);
1✔
130
         Botan::SIMD_4x32 t2(pat1 + 1, pat2 + 1, pat3 + 1, pat4 + 1);
1✔
131
         Botan::SIMD_4x32 t3(pat1 + 2, pat2 + 2, pat3 + 2, pat4 + 2);
1✔
132
         Botan::SIMD_4x32 t4(pat1 + 3, pat2 + 3, pat3 + 3, pat4 + 3);
1✔
133

134
         Botan::SIMD_4x32::transpose(t1, t2, t3, t4);
1✔
135

136
         test_eq(result, "transpose t1", t1, pat1, pat1 + 1, pat1 + 2, pat1 + 3);
1✔
137
         test_eq(result, "transpose t2", t2, pat2, pat2 + 1, pat2 + 2, pat2 + 3);
1✔
138
         test_eq(result, "transpose t3", t3, pat3, pat3 + 1, pat3 + 2, pat3 + 3);
1✔
139
         test_eq(result, "transpose t4", t4, pat4, pat4 + 1, pat4 + 2, pat4 + 3);
1✔
140

141
         test_eq(result, "shift left 1", input.shift_elems_left<1>(), 0, pat1, pat2, pat3);
1✔
142
         test_eq(result, "shift left 2", input.shift_elems_left<2>(), 0, 0, pat1, pat2);
1✔
143
         test_eq(result, "shift left 3", input.shift_elems_left<3>(), 0, 0, 0, pat1);
1✔
144

145
         test_eq(result, "shift right 1", input.shift_elems_right<1>(), pat2, pat3, pat4, 0);
1✔
146
         test_eq(result, "shift right 2", input.shift_elems_right<2>(), pat3, pat4, 0, 0);
1✔
147
         test_eq(result, "shift right 3", input.shift_elems_right<3>(), pat4, 0, 0, 0);
1✔
148

149
         // Test load/stores SIMD wrapper types
150
         const auto simd_le_in = Botan::hex_decode("ABCDEF01234567890123456789ABCDEF");
1✔
151
         const auto simd_be_in = Botan::hex_decode("0123456789ABCDEFABCDEF0123456789");
1✔
152
         const auto simd_le_array_in = Botan::concat(simd_le_in, simd_be_in);
1✔
153
         const auto simd_be_array_in = Botan::concat(simd_be_in, simd_le_in);
1✔
154

155
         auto simd_le = Botan::load_le<Botan::SIMD_4x32>(simd_le_in);
1✔
156
         auto simd_be = Botan::load_be<Botan::SIMD_4x32>(simd_be_in);
1✔
157
         auto simd_le_array = Botan::load_le<std::array<Botan::SIMD_4x32, 2>>(simd_le_array_in);
1✔
158
         auto simd_be_array = Botan::load_be<std::array<Botan::SIMD_4x32, 2>>(simd_be_array_in);
1✔
159

160
         auto simd_le_vec = Botan::store_le<std::vector<uint8_t>>(simd_le);
1✔
161
         auto simd_be_vec = Botan::store_be(simd_be);
1✔
162
         auto simd_le_array_vec = Botan::store_le<std::vector<uint8_t>>(simd_le_array);
1✔
163
         auto simd_be_array_vec = Botan::store_be(simd_be_array);
1✔
164

165
         result.test_is_eq("roundtrip SIMD little-endian", simd_le_vec, simd_le_in);
1✔
166
         result.test_is_eq(
2✔
167
            "roundtrip SIMD big-endian", std::vector(simd_be_vec.begin(), simd_be_vec.end()), simd_be_in);
1✔
168
         result.test_is_eq("roundtrip SIMD array little-endian", simd_le_array_vec, simd_le_array_in);
1✔
169
         result.test_is_eq("roundtrip SIMD array big-endian",
2✔
170
                           std::vector(simd_be_array_vec.begin(), simd_be_array_vec.end()),
1✔
171
                           simd_be_array_in);
172

173
         using StrongSIMD = Botan::Strong<Botan::SIMD_4x32, struct StrongSIMD_>;
1✔
174
         const auto simd_le_strong = Botan::load_le<StrongSIMD>(simd_le_in);
1✔
175
         const auto simd_be_strong = Botan::load_be<StrongSIMD>(simd_be_in);
1✔
176

177
         result.test_is_eq(
2✔
178
            "roundtrip SIMD strong little-endian", Botan::store_le<std::vector<uint8_t>>(simd_le_strong), simd_le_in);
1✔
179
         result.test_is_eq(
2✔
180
            "roundtrip SIMD strong big-endian", Botan::store_be<std::vector<uint8_t>>(simd_be_strong), simd_be_in);
1✔
181

182
         return {result};
2✔
183
      }
7✔
184

185
   private:
186
      static void test_eq(Test::Result& result,
30✔
187
                          const std::string& op,
188
                          const Botan::SIMD_4x32& simd,
189
                          uint32_t exp0,
190
                          uint32_t exp1,
191
                          uint32_t exp2,
192
                          uint32_t exp3) {
193
         uint8_t arr_be[16 + 15];
30✔
194
         uint8_t arr_be2[16 + 15];
30✔
195
         uint8_t arr_le[16 + 15];
30✔
196
         uint8_t arr_le2[16 + 15];
30✔
197

198
         for(size_t misalignment = 0; misalignment != 16; ++misalignment) {
510✔
199
            uint8_t* mem_be = arr_be + misalignment;
480✔
200
            uint8_t* mem_be2 = arr_be2 + misalignment;
480✔
201
            uint8_t* mem_le = arr_le + misalignment;
480✔
202
            uint8_t* mem_le2 = arr_le2 + misalignment;
480✔
203

204
            simd.store_be(mem_be);
480✔
205

206
            result.test_int_eq(
480✔
207
               "SIMD_4x32 " + op + " elem0 BE", Botan::make_uint32(mem_be[0], mem_be[1], mem_be[2], mem_be[3]), exp0);
1,440✔
208
            result.test_int_eq(
480✔
209
               "SIMD_4x32 " + op + " elem1 BE", Botan::make_uint32(mem_be[4], mem_be[5], mem_be[6], mem_be[7]), exp1);
1,440✔
210
            result.test_int_eq(
480✔
211
               "SIMD_4x32 " + op + " elem2 BE", Botan::make_uint32(mem_be[8], mem_be[9], mem_be[10], mem_be[11]), exp2);
1,440✔
212
            result.test_int_eq("SIMD_4x32 " + op + " elem3 BE",
480✔
213
                               Botan::make_uint32(mem_be[12], mem_be[13], mem_be[14], mem_be[15]),
480✔
214
                               exp3);
215

216
            // Check load_be+store_be results in same value
217
            const Botan::SIMD_4x32 reloaded_be = Botan::SIMD_4x32::load_be(mem_be);
480✔
218
            reloaded_be.store_be(mem_be2);
480✔
219
            result.test_eq(nullptr, "SIMD_4x32 load_be", mem_be, 16, mem_be2, 16);
480✔
220

221
            simd.store_le(mem_le);
480✔
222

223
            result.test_int_eq(
480✔
224
               "SIMD_4x32 " + op + " elem0 LE", Botan::make_uint32(mem_le[3], mem_le[2], mem_le[1], mem_le[0]), exp0);
1,440✔
225
            result.test_int_eq(
480✔
226
               "SIMD_4x32 " + op + " elem1 LE", Botan::make_uint32(mem_le[7], mem_le[6], mem_le[5], mem_le[4]), exp1);
1,440✔
227
            result.test_int_eq(
480✔
228
               "SIMD_4x32 " + op + " elem2 LE", Botan::make_uint32(mem_le[11], mem_le[10], mem_le[9], mem_le[8]), exp2);
1,440✔
229
            result.test_int_eq("SIMD_4x32 " + op + " elem3 LE",
480✔
230
                               Botan::make_uint32(mem_le[15], mem_le[14], mem_le[13], mem_le[12]),
480✔
231
                               exp3);
232

233
            // Check load_le+store_le results in same value
234
            const Botan::SIMD_4x32 reloaded_le = Botan::SIMD_4x32::load_le(mem_le);
480✔
235
            reloaded_le.store_le(mem_le2);
480✔
236
            result.test_eq(nullptr, "SIMD_4x32 load_le", mem_le, 16, mem_le2, 16);
960✔
237
         }
238
      }
30✔
239
};
240

241
BOTAN_REGISTER_TEST("utils", "simd_4x32", SIMD_4X32_Tests);
242
#endif
243

244
#if defined(BOTAN_HAS_SIMD_2X64)
245

246
class SIMD_2X64_Tests final : public Test {
1✔
247
   public:
248
      std::vector<Test::Result> BOTAN_FN_ISA_SIMD_2X64 run() override {
1✔
249
         Test::Result result("SIMD_2x64");
1✔
250

251
   #if defined(BOTAN_HAS_CPUID)
252
         if(!Botan::CPUID::has(Botan::CPUID::Feature::SIMD_2X64)) {
1✔
253
            result.test_note("Skipping SIMD_2x64 tests due to missing CPU support at runtime");
×
254
            return {result};
×
255
         }
256
   #endif
257

258
         const uint64_t pat1 = 0x2F8C91D4A37E5C10;
1✔
259
         const uint64_t pat2 = 0x1B74A6F8C29D1345;
1✔
260

261
         const uint64_t pat1_1 = pat1 + pat1;
1✔
262
         const uint64_t pat1_2 = pat1 + pat2;
1✔
263

264
         test_eq(result, "default init", Botan::SIMD_2x64(), 0, 0);
1✔
265
         test_eq(result, "SIMD scalar constructor", Botan::SIMD_2x64(1, 2), 1, 2);
1✔
266

267
         const auto input = Botan::SIMD_2x64(pat1, pat2);
1✔
268
         const auto splat = Botan::SIMD_2x64(pat1, pat1);
1✔
269

270
         const auto rotl = input.rotl<3>();
1✔
271
         test_eq(result, "rotl", rotl, Botan::rotl<3>(pat1), Botan::rotl<3>(pat2));
1✔
272

273
         const auto rotr = input.rotr<9>();
1✔
274
         test_eq(result, "rotr", rotr, Botan::rotr<9>(pat1), Botan::rotr<9>(pat2));
1✔
275

276
         test_eq(result, "rotr<8>", input.rotr<8>(), Botan::rotr<8>(pat1), Botan::rotr<8>(pat2));
1✔
277
         test_eq(result, "rotr<16>", input.rotr<16>(), Botan::rotr<16>(pat1), Botan::rotr<16>(pat2));
1✔
278
         test_eq(result, "rotr<24>", input.rotr<24>(), Botan::rotr<24>(pat1), Botan::rotr<24>(pat2));
1✔
279
         test_eq(result, "rotr<32>", input.rotr<32>(), Botan::rotr<32>(pat1), Botan::rotr<32>(pat2));
1✔
280

281
         const auto add = input + splat;
1✔
282
         test_eq(result, "add +", add, pat1_1, pat1_2);
1✔
283

284
         test_eq(result, "xor", input ^ splat, 0, pat2 ^ pat1);
1✔
285

286
         auto shifter = Botan::SIMD_2x64(0xFFFFFFFFFFFFFFFF, 0xFFFFFFFFFFFFFFFF);
1✔
287
         shifter = shifter.shr<23>();
1✔
288
         test_eq(result, ">>", shifter, 0x1FFFFFFFFFF, 0x1FFFFFFFFFF);
1✔
289

290
         shifter = shifter.shl<27>();
1✔
291
         test_eq(result, "<<", shifter, 0xFFFFFFFFF8000000, 0xFFFFFFFFF8000000);
1✔
292

293
         shifter = input.andc(shifter);
1✔
294
         test_eq(result, "andc", shifter, ~pat1 & 0xFFFFFFFFF8000000, ~pat2 & 0xFFFFFFFFF8000000);
1✔
295

296
         test_eq(result, "bswap", input.bswap(), Botan::reverse_bytes(pat1), Botan::reverse_bytes(pat2));
1✔
297

298
         test_eq(result,
1✔
299
                 "reverse_all_bytes",
300
                 Botan::SIMD_2x64(0x0001020304050607, 0x08090a0b0c0d0e0f).reverse_all_bytes(),
1✔
301
                 0x0f0e0d0c0b0a0908,
302
                 0x0706050403020100);
303

304
         test_eq(result, "swap_lanes", Botan::SIMD_2x64(pat1, pat2).swap_lanes(), pat2, pat1);
1✔
305

306
         const auto interleave_a = Botan::SIMD_2x64(0x1111111122222222, 0x3333333344444444);
1✔
307
         const auto interleave_b = Botan::SIMD_2x64(0x5555555566666666, 0x7777777788888888);
1✔
308
         test_eq(result,
1✔
309
                 "interleave_high",
310
                 Botan::SIMD_2x64::interleave_high(interleave_a, interleave_b),
1✔
311
                 0x3333333344444444,
312
                 0x7777777788888888);
313

314
         test_eq(result,
1✔
315
                 "interleave_low",
316
                 Botan::SIMD_2x64::interleave_low(interleave_a, interleave_b),
1✔
317
                 0x1111111122222222,
318
                 0x5555555566666666);
319

320
         test_eq(result, "all_ones", Botan::SIMD_2x64::all_ones(), 0xFFFFFFFFFFFFFFFF, 0xFFFFFFFFFFFFFFFF);
1✔
321

322
         // Test load/stores SIMD wrapper types
323
         const auto simd_le_in = Botan::hex_decode("ABCDEF01234567890123456789ABCDEF");
1✔
324
         const auto simd_be_in = Botan::hex_decode("0123456789ABCDEFABCDEF0123456789");
1✔
325
         const auto simd_le_array_in = Botan::concat(simd_le_in, simd_be_in);
1✔
326
         const auto simd_be_array_in = Botan::concat(simd_be_in, simd_le_in);
1✔
327

328
         auto simd_le = Botan::load_le<Botan::SIMD_2x64>(simd_le_in);
1✔
329
         auto simd_be = Botan::load_be<Botan::SIMD_2x64>(simd_be_in);
1✔
330
         auto simd_le_array = Botan::load_le<std::array<Botan::SIMD_2x64, 2>>(simd_le_array_in);
1✔
331
         auto simd_be_array = Botan::load_be<std::array<Botan::SIMD_2x64, 2>>(simd_be_array_in);
1✔
332

333
         auto simd_le_vec = Botan::store_le<std::vector<uint8_t>>(simd_le);
1✔
334
         auto simd_be_vec = Botan::store_be(simd_be);
1✔
335
         auto simd_le_array_vec = Botan::store_le<std::vector<uint8_t>>(simd_le_array);
1✔
336
         auto simd_be_array_vec = Botan::store_be(simd_be_array);
1✔
337

338
         result.test_is_eq("roundtrip SIMD little-endian", simd_le_vec, simd_le_in);
1✔
339
         result.test_is_eq(
2✔
340
            "roundtrip SIMD big-endian", std::vector(simd_be_vec.begin(), simd_be_vec.end()), simd_be_in);
1✔
341
         result.test_is_eq("roundtrip SIMD array little-endian", simd_le_array_vec, simd_le_array_in);
1✔
342
         result.test_is_eq("roundtrip SIMD array big-endian",
2✔
343
                           std::vector(simd_be_array_vec.begin(), simd_be_array_vec.end()),
1✔
344
                           simd_be_array_in);
345

346
         using StrongSIMD = Botan::Strong<Botan::SIMD_2x64, struct StrongSIMD_>;
1✔
347
         const auto simd_le_strong = Botan::load_le<StrongSIMD>(simd_le_in);
1✔
348
         const auto simd_be_strong = Botan::load_be<StrongSIMD>(simd_be_in);
1✔
349

350
         result.test_is_eq(
2✔
351
            "roundtrip SIMD strong little-endian", Botan::store_le<std::vector<uint8_t>>(simd_le_strong), simd_le_in);
1✔
352
         result.test_is_eq(
2✔
353
            "roundtrip SIMD strong big-endian", Botan::store_be<std::vector<uint8_t>>(simd_be_strong), simd_be_in);
1✔
354

355
         return {result};
2✔
356
      }
7✔
357

358
   private:
359
      static void test_eq(
19✔
360
         Test::Result& result, const std::string& op, const Botan::SIMD_2x64& simd, uint64_t exp0, uint64_t exp1) {
361
         uint8_t arr_be[16 + 15];
19✔
362
         uint8_t arr_be2[16 + 15];
19✔
363
         uint8_t arr_le[16 + 15];
19✔
364
         uint8_t arr_le2[16 + 15];
19✔
365

366
         for(size_t misalignment = 0; misalignment != 16; ++misalignment) {
323✔
367
            uint8_t* mem_be = arr_be + misalignment;
304✔
368
            uint8_t* mem_be2 = arr_be2 + misalignment;
304✔
369
            uint8_t* mem_le = arr_le + misalignment;
304✔
370
            uint8_t* mem_le2 = arr_le2 + misalignment;
304✔
371

372
            simd.store_be(mem_be);
304✔
373

374
            result.test_int_eq(
304✔
375
               "SIMD_2x64 " + op + " elem0 BE",
912✔
376
               Botan::make_uint64(
377
                  mem_be[0], mem_be[1], mem_be[2], mem_be[3], mem_be[4], mem_be[5], mem_be[6], mem_be[7]),
304✔
378
               exp0);
379
            result.test_int_eq(
304✔
380
               "SIMD_2x64 " + op + " elem1 BE",
912✔
381
               Botan::make_uint64(
382
                  mem_be[8], mem_be[9], mem_be[10], mem_be[11], mem_be[12], mem_be[13], mem_be[14], mem_be[15]),
304✔
383
               exp1);
384

385
            // Check load_be+store_be results in same value
386
            const Botan::SIMD_2x64 reloaded_be = Botan::SIMD_2x64::load_be(mem_be);
304✔
387
            reloaded_be.store_be(mem_be2);
304✔
388
            result.test_eq(nullptr, "SIMD_2x64 load_be", mem_be, 16, mem_be2, 16);
304✔
389

390
            simd.store_le(mem_le);
304✔
391

392
            result.test_int_eq(
304✔
393
               "SIMD_2x64 " + op + " elem0 LE",
912✔
394
               Botan::make_uint64(
395
                  mem_le[7], mem_le[6], mem_le[5], mem_le[4], mem_le[3], mem_le[2], mem_le[1], mem_le[0]),
304✔
396
               exp0);
397
            result.test_int_eq(
304✔
398
               "SIMD_2x64 " + op + " elem1 LE",
912✔
399
               Botan::make_uint64(
400
                  mem_le[15], mem_le[14], mem_le[13], mem_le[12], mem_le[11], mem_le[10], mem_le[9], mem_le[8]),
304✔
401
               exp1);
402

403
            // Check load_le+store_le results in same value
404
            const Botan::SIMD_2x64 reloaded_le = Botan::SIMD_2x64::load_le(mem_le);
304✔
405
            reloaded_le.store_le(mem_le2);
304✔
406
            result.test_eq(nullptr, "SIMD_2x64 load_le", mem_le, 16, mem_le2, 16);
608✔
407
         }
408
      }
19✔
409
};
410

411
BOTAN_REGISTER_TEST("utils", "simd_2x64", SIMD_2X64_Tests);
412
#endif
413

414
}  // namespace Botan_Tests
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