int128_test.cc 48 KB

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  1. // Copyright 2017 The Abseil Authors.
  2. //
  3. // Licensed under the Apache License, Version 2.0 (the "License");
  4. // you may not use this file except in compliance with the License.
  5. // You may obtain a copy of the License at
  6. //
  7. // https://www.apache.org/licenses/LICENSE-2.0
  8. //
  9. // Unless required by applicable law or agreed to in writing, software
  10. // distributed under the License is distributed on an "AS IS" BASIS,
  11. // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  12. // See the License for the specific language governing permissions and
  13. // limitations under the License.
  14. #include "absl/numeric/int128.h"
  15. #include <algorithm>
  16. #include <limits>
  17. #include <random>
  18. #include <type_traits>
  19. #include <utility>
  20. #include <vector>
  21. #include "gtest/gtest.h"
  22. #include "absl/base/internal/cycleclock.h"
  23. #include "absl/hash/hash_testing.h"
  24. #include "absl/meta/type_traits.h"
  25. #if defined(_MSC_VER) && _MSC_VER == 1900
  26. // Disable "unary minus operator applied to unsigned type" warnings in Microsoft
  27. // Visual C++ 14 (2015).
  28. #pragma warning(disable:4146)
  29. #endif
  30. namespace {
  31. template <typename T>
  32. class Uint128IntegerTraitsTest : public ::testing::Test {};
  33. typedef ::testing::Types<bool, char, signed char, unsigned char, char16_t,
  34. char32_t, wchar_t,
  35. short, // NOLINT(runtime/int)
  36. unsigned short, // NOLINT(runtime/int)
  37. int, unsigned int,
  38. long, // NOLINT(runtime/int)
  39. unsigned long, // NOLINT(runtime/int)
  40. long long, // NOLINT(runtime/int)
  41. unsigned long long> // NOLINT(runtime/int)
  42. IntegerTypes;
  43. template <typename T>
  44. class Uint128FloatTraitsTest : public ::testing::Test {};
  45. typedef ::testing::Types<float, double, long double> FloatingPointTypes;
  46. TYPED_TEST_SUITE(Uint128IntegerTraitsTest, IntegerTypes);
  47. TYPED_TEST(Uint128IntegerTraitsTest, ConstructAssignTest) {
  48. static_assert(std::is_constructible<absl::uint128, TypeParam>::value,
  49. "absl::uint128 must be constructible from TypeParam");
  50. static_assert(std::is_assignable<absl::uint128&, TypeParam>::value,
  51. "absl::uint128 must be assignable from TypeParam");
  52. static_assert(!std::is_assignable<TypeParam&, absl::uint128>::value,
  53. "TypeParam must not be assignable from absl::uint128");
  54. }
  55. TYPED_TEST_SUITE(Uint128FloatTraitsTest, FloatingPointTypes);
  56. TYPED_TEST(Uint128FloatTraitsTest, ConstructAssignTest) {
  57. static_assert(std::is_constructible<absl::uint128, TypeParam>::value,
  58. "absl::uint128 must be constructible from TypeParam");
  59. static_assert(!std::is_assignable<absl::uint128&, TypeParam>::value,
  60. "absl::uint128 must not be assignable from TypeParam");
  61. static_assert(!std::is_assignable<TypeParam&, absl::uint128>::value,
  62. "TypeParam must not be assignable from absl::uint128");
  63. }
  64. #ifdef ABSL_HAVE_INTRINSIC_INT128
  65. // These type traits done separately as TYPED_TEST requires typeinfo, and not
  66. // all platforms have this for __int128 even though they define the type.
  67. TEST(Uint128, IntrinsicTypeTraitsTest) {
  68. static_assert(std::is_constructible<absl::uint128, __int128>::value,
  69. "absl::uint128 must be constructible from __int128");
  70. static_assert(std::is_assignable<absl::uint128&, __int128>::value,
  71. "absl::uint128 must be assignable from __int128");
  72. static_assert(!std::is_assignable<__int128&, absl::uint128>::value,
  73. "__int128 must not be assignable from absl::uint128");
  74. static_assert(std::is_constructible<absl::uint128, unsigned __int128>::value,
  75. "absl::uint128 must be constructible from unsigned __int128");
  76. static_assert(std::is_assignable<absl::uint128&, unsigned __int128>::value,
  77. "absl::uint128 must be assignable from unsigned __int128");
  78. static_assert(!std::is_assignable<unsigned __int128&, absl::uint128>::value,
  79. "unsigned __int128 must not be assignable from absl::uint128");
  80. }
  81. #endif // ABSL_HAVE_INTRINSIC_INT128
  82. TEST(Uint128, TrivialTraitsTest) {
  83. static_assert(absl::is_trivially_default_constructible<absl::uint128>::value,
  84. "");
  85. static_assert(absl::is_trivially_copy_constructible<absl::uint128>::value,
  86. "");
  87. static_assert(absl::is_trivially_copy_assignable<absl::uint128>::value, "");
  88. static_assert(std::is_trivially_destructible<absl::uint128>::value, "");
  89. }
  90. TEST(Uint128, AllTests) {
  91. absl::uint128 zero = 0;
  92. absl::uint128 one = 1;
  93. absl::uint128 one_2arg = absl::MakeUint128(0, 1);
  94. absl::uint128 two = 2;
  95. absl::uint128 three = 3;
  96. absl::uint128 big = absl::MakeUint128(2000, 2);
  97. absl::uint128 big_minus_one = absl::MakeUint128(2000, 1);
  98. absl::uint128 bigger = absl::MakeUint128(2001, 1);
  99. absl::uint128 biggest = absl::Uint128Max();
  100. absl::uint128 high_low = absl::MakeUint128(1, 0);
  101. absl::uint128 low_high =
  102. absl::MakeUint128(0, std::numeric_limits<uint64_t>::max());
  103. EXPECT_LT(one, two);
  104. EXPECT_GT(two, one);
  105. EXPECT_LT(one, big);
  106. EXPECT_LT(one, big);
  107. EXPECT_EQ(one, one_2arg);
  108. EXPECT_NE(one, two);
  109. EXPECT_GT(big, one);
  110. EXPECT_GE(big, two);
  111. EXPECT_GE(big, big_minus_one);
  112. EXPECT_GT(big, big_minus_one);
  113. EXPECT_LT(big_minus_one, big);
  114. EXPECT_LE(big_minus_one, big);
  115. EXPECT_NE(big_minus_one, big);
  116. EXPECT_LT(big, biggest);
  117. EXPECT_LE(big, biggest);
  118. EXPECT_GT(biggest, big);
  119. EXPECT_GE(biggest, big);
  120. EXPECT_EQ(big, ~~big);
  121. EXPECT_EQ(one, one | one);
  122. EXPECT_EQ(big, big | big);
  123. EXPECT_EQ(one, one | zero);
  124. EXPECT_EQ(one, one & one);
  125. EXPECT_EQ(big, big & big);
  126. EXPECT_EQ(zero, one & zero);
  127. EXPECT_EQ(zero, big & ~big);
  128. EXPECT_EQ(zero, one ^ one);
  129. EXPECT_EQ(zero, big ^ big);
  130. EXPECT_EQ(one, one ^ zero);
  131. // Shift operators.
  132. EXPECT_EQ(big, big << 0);
  133. EXPECT_EQ(big, big >> 0);
  134. EXPECT_GT(big << 1, big);
  135. EXPECT_LT(big >> 1, big);
  136. EXPECT_EQ(big, (big << 10) >> 10);
  137. EXPECT_EQ(big, (big >> 1) << 1);
  138. EXPECT_EQ(one, (one << 80) >> 80);
  139. EXPECT_EQ(zero, (one >> 80) << 80);
  140. // Shift assignments.
  141. absl::uint128 big_copy = big;
  142. EXPECT_EQ(big << 0, big_copy <<= 0);
  143. big_copy = big;
  144. EXPECT_EQ(big >> 0, big_copy >>= 0);
  145. big_copy = big;
  146. EXPECT_EQ(big << 1, big_copy <<= 1);
  147. big_copy = big;
  148. EXPECT_EQ(big >> 1, big_copy >>= 1);
  149. big_copy = big;
  150. EXPECT_EQ(big << 10, big_copy <<= 10);
  151. big_copy = big;
  152. EXPECT_EQ(big >> 10, big_copy >>= 10);
  153. big_copy = big;
  154. EXPECT_EQ(big << 64, big_copy <<= 64);
  155. big_copy = big;
  156. EXPECT_EQ(big >> 64, big_copy >>= 64);
  157. big_copy = big;
  158. EXPECT_EQ(big << 73, big_copy <<= 73);
  159. big_copy = big;
  160. EXPECT_EQ(big >> 73, big_copy >>= 73);
  161. EXPECT_EQ(absl::Uint128High64(biggest), std::numeric_limits<uint64_t>::max());
  162. EXPECT_EQ(absl::Uint128Low64(biggest), std::numeric_limits<uint64_t>::max());
  163. EXPECT_EQ(zero + one, one);
  164. EXPECT_EQ(one + one, two);
  165. EXPECT_EQ(big_minus_one + one, big);
  166. EXPECT_EQ(one - one, zero);
  167. EXPECT_EQ(one - zero, one);
  168. EXPECT_EQ(zero - one, biggest);
  169. EXPECT_EQ(big - big, zero);
  170. EXPECT_EQ(big - one, big_minus_one);
  171. EXPECT_EQ(big + std::numeric_limits<uint64_t>::max(), bigger);
  172. EXPECT_EQ(biggest + 1, zero);
  173. EXPECT_EQ(zero - 1, biggest);
  174. EXPECT_EQ(high_low - one, low_high);
  175. EXPECT_EQ(low_high + one, high_low);
  176. EXPECT_EQ(absl::Uint128High64((absl::uint128(1) << 64) - 1), 0);
  177. EXPECT_EQ(absl::Uint128Low64((absl::uint128(1) << 64) - 1),
  178. std::numeric_limits<uint64_t>::max());
  179. EXPECT_TRUE(!!one);
  180. EXPECT_TRUE(!!high_low);
  181. EXPECT_FALSE(!!zero);
  182. EXPECT_FALSE(!one);
  183. EXPECT_FALSE(!high_low);
  184. EXPECT_TRUE(!zero);
  185. EXPECT_TRUE(zero == 0); // NOLINT(readability/check)
  186. EXPECT_FALSE(zero != 0); // NOLINT(readability/check)
  187. EXPECT_FALSE(one == 0); // NOLINT(readability/check)
  188. EXPECT_TRUE(one != 0); // NOLINT(readability/check)
  189. EXPECT_FALSE(high_low == 0); // NOLINT(readability/check)
  190. EXPECT_TRUE(high_low != 0); // NOLINT(readability/check)
  191. absl::uint128 test = zero;
  192. EXPECT_EQ(++test, one);
  193. EXPECT_EQ(test, one);
  194. EXPECT_EQ(test++, one);
  195. EXPECT_EQ(test, two);
  196. EXPECT_EQ(test -= 2, zero);
  197. EXPECT_EQ(test, zero);
  198. EXPECT_EQ(test += 2, two);
  199. EXPECT_EQ(test, two);
  200. EXPECT_EQ(--test, one);
  201. EXPECT_EQ(test, one);
  202. EXPECT_EQ(test--, one);
  203. EXPECT_EQ(test, zero);
  204. EXPECT_EQ(test |= three, three);
  205. EXPECT_EQ(test &= one, one);
  206. EXPECT_EQ(test ^= three, two);
  207. EXPECT_EQ(test >>= 1, one);
  208. EXPECT_EQ(test <<= 1, two);
  209. EXPECT_EQ(big, +big);
  210. EXPECT_EQ(two, +two);
  211. EXPECT_EQ(absl::Uint128Max(), +absl::Uint128Max());
  212. EXPECT_EQ(zero, +zero);
  213. EXPECT_EQ(big, -(-big));
  214. EXPECT_EQ(two, -((-one) - 1));
  215. EXPECT_EQ(absl::Uint128Max(), -one);
  216. EXPECT_EQ(zero, -zero);
  217. EXPECT_EQ(absl::Uint128Max(), absl::kuint128max);
  218. }
  219. TEST(Int128, RightShiftOfNegativeNumbers) {
  220. absl::int128 minus_six = -6;
  221. absl::int128 minus_three = -3;
  222. absl::int128 minus_two = -2;
  223. absl::int128 minus_one = -1;
  224. if ((-6 >> 1) == -3) {
  225. // Right shift is arithmetic (sign propagates)
  226. EXPECT_EQ(minus_six >> 1, minus_three);
  227. EXPECT_EQ(minus_six >> 2, minus_two);
  228. EXPECT_EQ(minus_six >> 65, minus_one);
  229. } else {
  230. // Right shift is logical (zeros shifted in at MSB)
  231. EXPECT_EQ(minus_six >> 1, absl::int128(absl::uint128(minus_six) >> 1));
  232. EXPECT_EQ(minus_six >> 2, absl::int128(absl::uint128(minus_six) >> 2));
  233. EXPECT_EQ(minus_six >> 65, absl::int128(absl::uint128(minus_six) >> 65));
  234. }
  235. }
  236. TEST(Uint128, ConversionTests) {
  237. EXPECT_TRUE(absl::MakeUint128(1, 0));
  238. #ifdef ABSL_HAVE_INTRINSIC_INT128
  239. unsigned __int128 intrinsic =
  240. (static_cast<unsigned __int128>(0x3a5b76c209de76f6) << 64) +
  241. 0x1f25e1d63a2b46c5;
  242. absl::uint128 custom =
  243. absl::MakeUint128(0x3a5b76c209de76f6, 0x1f25e1d63a2b46c5);
  244. EXPECT_EQ(custom, absl::uint128(intrinsic));
  245. EXPECT_EQ(custom, absl::uint128(static_cast<__int128>(intrinsic)));
  246. EXPECT_EQ(intrinsic, static_cast<unsigned __int128>(custom));
  247. EXPECT_EQ(intrinsic, static_cast<__int128>(custom));
  248. #endif // ABSL_HAVE_INTRINSIC_INT128
  249. // verify that an integer greater than 2**64 that can be stored precisely
  250. // inside a double is converted to a absl::uint128 without loss of
  251. // information.
  252. double precise_double = 0x530e * std::pow(2.0, 64.0) + 0xda74000000000000;
  253. absl::uint128 from_precise_double(precise_double);
  254. absl::uint128 from_precise_ints =
  255. absl::MakeUint128(0x530e, 0xda74000000000000);
  256. EXPECT_EQ(from_precise_double, from_precise_ints);
  257. EXPECT_DOUBLE_EQ(static_cast<double>(from_precise_ints), precise_double);
  258. double approx_double = 0xffffeeeeddddcccc * std::pow(2.0, 64.0) +
  259. 0xbbbbaaaa99998888;
  260. absl::uint128 from_approx_double(approx_double);
  261. EXPECT_DOUBLE_EQ(static_cast<double>(from_approx_double), approx_double);
  262. double round_to_zero = 0.7;
  263. double round_to_five = 5.8;
  264. double round_to_nine = 9.3;
  265. EXPECT_EQ(static_cast<absl::uint128>(round_to_zero), 0);
  266. EXPECT_EQ(static_cast<absl::uint128>(round_to_five), 5);
  267. EXPECT_EQ(static_cast<absl::uint128>(round_to_nine), 9);
  268. absl::uint128 highest_precision_in_long_double =
  269. ~absl::uint128{} >> (128 - std::numeric_limits<long double>::digits);
  270. EXPECT_EQ(highest_precision_in_long_double,
  271. static_cast<absl::uint128>(
  272. static_cast<long double>(highest_precision_in_long_double)));
  273. // Apply a mask just to make sure all the bits are the right place.
  274. const absl::uint128 arbitrary_mask =
  275. absl::MakeUint128(0xa29f622677ded751, 0xf8ca66add076f468);
  276. EXPECT_EQ(highest_precision_in_long_double & arbitrary_mask,
  277. static_cast<absl::uint128>(static_cast<long double>(
  278. highest_precision_in_long_double & arbitrary_mask)));
  279. EXPECT_EQ(static_cast<absl::uint128>(-0.1L), 0);
  280. }
  281. TEST(Uint128, OperatorAssignReturnRef) {
  282. absl::uint128 v(1);
  283. (v += 4) -= 3;
  284. EXPECT_EQ(2, v);
  285. }
  286. TEST(Uint128, Multiply) {
  287. absl::uint128 a, b, c;
  288. // Zero test.
  289. a = 0;
  290. b = 0;
  291. c = a * b;
  292. EXPECT_EQ(0, c);
  293. // Max carries.
  294. a = absl::uint128(0) - 1;
  295. b = absl::uint128(0) - 1;
  296. c = a * b;
  297. EXPECT_EQ(1, c);
  298. // Self-operation with max carries.
  299. c = absl::uint128(0) - 1;
  300. c *= c;
  301. EXPECT_EQ(1, c);
  302. // 1-bit x 1-bit.
  303. for (int i = 0; i < 64; ++i) {
  304. for (int j = 0; j < 64; ++j) {
  305. a = absl::uint128(1) << i;
  306. b = absl::uint128(1) << j;
  307. c = a * b;
  308. EXPECT_EQ(absl::uint128(1) << (i + j), c);
  309. }
  310. }
  311. // Verified with dc.
  312. a = absl::MakeUint128(0xffffeeeeddddcccc, 0xbbbbaaaa99998888);
  313. b = absl::MakeUint128(0x7777666655554444, 0x3333222211110000);
  314. c = a * b;
  315. EXPECT_EQ(absl::MakeUint128(0x530EDA741C71D4C3, 0xBF25975319080000), c);
  316. EXPECT_EQ(0, c - b * a);
  317. EXPECT_EQ(a*a - b*b, (a+b) * (a-b));
  318. // Verified with dc.
  319. a = absl::MakeUint128(0x0123456789abcdef, 0xfedcba9876543210);
  320. b = absl::MakeUint128(0x02468ace13579bdf, 0xfdb97531eca86420);
  321. c = a * b;
  322. EXPECT_EQ(absl::MakeUint128(0x97a87f4f261ba3f2, 0x342d0bbf48948200), c);
  323. EXPECT_EQ(0, c - b * a);
  324. EXPECT_EQ(a*a - b*b, (a+b) * (a-b));
  325. }
  326. TEST(Uint128, AliasTests) {
  327. absl::uint128 x1 = absl::MakeUint128(1, 2);
  328. absl::uint128 x2 = absl::MakeUint128(2, 4);
  329. x1 += x1;
  330. EXPECT_EQ(x2, x1);
  331. absl::uint128 x3 = absl::MakeUint128(1, static_cast<uint64_t>(1) << 63);
  332. absl::uint128 x4 = absl::MakeUint128(3, 0);
  333. x3 += x3;
  334. EXPECT_EQ(x4, x3);
  335. }
  336. TEST(Uint128, DivideAndMod) {
  337. using std::swap;
  338. // a := q * b + r
  339. absl::uint128 a, b, q, r;
  340. // Zero test.
  341. a = 0;
  342. b = 123;
  343. q = a / b;
  344. r = a % b;
  345. EXPECT_EQ(0, q);
  346. EXPECT_EQ(0, r);
  347. a = absl::MakeUint128(0x530eda741c71d4c3, 0xbf25975319080000);
  348. q = absl::MakeUint128(0x4de2cab081, 0x14c34ab4676e4bab);
  349. b = absl::uint128(0x1110001);
  350. r = absl::uint128(0x3eb455);
  351. ASSERT_EQ(a, q * b + r); // Sanity-check.
  352. absl::uint128 result_q, result_r;
  353. result_q = a / b;
  354. result_r = a % b;
  355. EXPECT_EQ(q, result_q);
  356. EXPECT_EQ(r, result_r);
  357. // Try the other way around.
  358. swap(q, b);
  359. result_q = a / b;
  360. result_r = a % b;
  361. EXPECT_EQ(q, result_q);
  362. EXPECT_EQ(r, result_r);
  363. // Restore.
  364. swap(b, q);
  365. // Dividend < divisor; result should be q:0 r:<dividend>.
  366. swap(a, b);
  367. result_q = a / b;
  368. result_r = a % b;
  369. EXPECT_EQ(0, result_q);
  370. EXPECT_EQ(a, result_r);
  371. // Try the other way around.
  372. swap(a, q);
  373. result_q = a / b;
  374. result_r = a % b;
  375. EXPECT_EQ(0, result_q);
  376. EXPECT_EQ(a, result_r);
  377. // Restore.
  378. swap(q, a);
  379. swap(b, a);
  380. // Try a large remainder.
  381. b = a / 2 + 1;
  382. absl::uint128 expected_r =
  383. absl::MakeUint128(0x29876d3a0e38ea61, 0xdf92cba98c83ffff);
  384. // Sanity checks.
  385. ASSERT_EQ(a / 2 - 1, expected_r);
  386. ASSERT_EQ(a, b + expected_r);
  387. result_q = a / b;
  388. result_r = a % b;
  389. EXPECT_EQ(1, result_q);
  390. EXPECT_EQ(expected_r, result_r);
  391. }
  392. TEST(Uint128, DivideAndModRandomInputs) {
  393. const int kNumIters = 1 << 18;
  394. std::minstd_rand random(testing::UnitTest::GetInstance()->random_seed());
  395. std::uniform_int_distribution<uint64_t> uniform_uint64;
  396. for (int i = 0; i < kNumIters; ++i) {
  397. const absl::uint128 a =
  398. absl::MakeUint128(uniform_uint64(random), uniform_uint64(random));
  399. const absl::uint128 b =
  400. absl::MakeUint128(uniform_uint64(random), uniform_uint64(random));
  401. if (b == 0) {
  402. continue; // Avoid a div-by-zero.
  403. }
  404. const absl::uint128 q = a / b;
  405. const absl::uint128 r = a % b;
  406. ASSERT_EQ(a, b * q + r);
  407. }
  408. }
  409. TEST(Uint128, ConstexprTest) {
  410. constexpr absl::uint128 zero = absl::uint128();
  411. constexpr absl::uint128 one = 1;
  412. constexpr absl::uint128 minus_two = -2;
  413. EXPECT_EQ(zero, absl::uint128(0));
  414. EXPECT_EQ(one, absl::uint128(1));
  415. EXPECT_EQ(minus_two, absl::MakeUint128(-1, -2));
  416. }
  417. TEST(Uint128, NumericLimitsTest) {
  418. static_assert(std::numeric_limits<absl::uint128>::is_specialized, "");
  419. static_assert(!std::numeric_limits<absl::uint128>::is_signed, "");
  420. static_assert(std::numeric_limits<absl::uint128>::is_integer, "");
  421. EXPECT_EQ(static_cast<int>(128 * std::log10(2)),
  422. std::numeric_limits<absl::uint128>::digits10);
  423. EXPECT_EQ(0, std::numeric_limits<absl::uint128>::min());
  424. EXPECT_EQ(0, std::numeric_limits<absl::uint128>::lowest());
  425. EXPECT_EQ(absl::Uint128Max(), std::numeric_limits<absl::uint128>::max());
  426. }
  427. TEST(Uint128, Hash) {
  428. EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly({
  429. // Some simple values
  430. absl::uint128{0},
  431. absl::uint128{1},
  432. ~absl::uint128{},
  433. // 64 bit limits
  434. absl::uint128{std::numeric_limits<int64_t>::max()},
  435. absl::uint128{std::numeric_limits<uint64_t>::max()} + 0,
  436. absl::uint128{std::numeric_limits<uint64_t>::max()} + 1,
  437. absl::uint128{std::numeric_limits<uint64_t>::max()} + 2,
  438. // Keeping high same
  439. absl::uint128{1} << 62,
  440. absl::uint128{1} << 63,
  441. // Keeping low same
  442. absl::uint128{1} << 64,
  443. absl::uint128{1} << 65,
  444. // 128 bit limits
  445. std::numeric_limits<absl::uint128>::max(),
  446. std::numeric_limits<absl::uint128>::max() - 1,
  447. std::numeric_limits<absl::uint128>::min() + 1,
  448. std::numeric_limits<absl::uint128>::min(),
  449. }));
  450. }
  451. TEST(Int128Uint128, ConversionTest) {
  452. absl::int128 nonnegative_signed_values[] = {
  453. 0,
  454. 1,
  455. 0xffeeddccbbaa9988,
  456. absl::MakeInt128(0x7766554433221100, 0),
  457. absl::MakeInt128(0x1234567890abcdef, 0xfedcba0987654321),
  458. absl::Int128Max()};
  459. for (absl::int128 value : nonnegative_signed_values) {
  460. EXPECT_EQ(value, absl::int128(absl::uint128(value)));
  461. absl::uint128 assigned_value;
  462. assigned_value = value;
  463. EXPECT_EQ(value, absl::int128(assigned_value));
  464. }
  465. absl::int128 negative_values[] = {
  466. -1, -0x1234567890abcdef,
  467. absl::MakeInt128(-0x5544332211ffeedd, 0),
  468. -absl::MakeInt128(0x76543210fedcba98, 0xabcdef0123456789)};
  469. for (absl::int128 value : negative_values) {
  470. EXPECT_EQ(absl::uint128(-value), -absl::uint128(value));
  471. absl::uint128 assigned_value;
  472. assigned_value = value;
  473. EXPECT_EQ(absl::uint128(-value), -assigned_value);
  474. }
  475. }
  476. template <typename T>
  477. class Int128IntegerTraitsTest : public ::testing::Test {};
  478. TYPED_TEST_SUITE(Int128IntegerTraitsTest, IntegerTypes);
  479. TYPED_TEST(Int128IntegerTraitsTest, ConstructAssignTest) {
  480. static_assert(std::is_constructible<absl::int128, TypeParam>::value,
  481. "absl::int128 must be constructible from TypeParam");
  482. static_assert(std::is_assignable<absl::int128&, TypeParam>::value,
  483. "absl::int128 must be assignable from TypeParam");
  484. static_assert(!std::is_assignable<TypeParam&, absl::int128>::value,
  485. "TypeParam must not be assignable from absl::int128");
  486. }
  487. template <typename T>
  488. class Int128FloatTraitsTest : public ::testing::Test {};
  489. TYPED_TEST_SUITE(Int128FloatTraitsTest, FloatingPointTypes);
  490. TYPED_TEST(Int128FloatTraitsTest, ConstructAssignTest) {
  491. static_assert(std::is_constructible<absl::int128, TypeParam>::value,
  492. "absl::int128 must be constructible from TypeParam");
  493. static_assert(!std::is_assignable<absl::int128&, TypeParam>::value,
  494. "absl::int128 must not be assignable from TypeParam");
  495. static_assert(!std::is_assignable<TypeParam&, absl::int128>::value,
  496. "TypeParam must not be assignable from absl::int128");
  497. }
  498. #ifdef ABSL_HAVE_INTRINSIC_INT128
  499. // These type traits done separately as TYPED_TEST requires typeinfo, and not
  500. // all platforms have this for __int128 even though they define the type.
  501. TEST(Int128, IntrinsicTypeTraitsTest) {
  502. static_assert(std::is_constructible<absl::int128, __int128>::value,
  503. "absl::int128 must be constructible from __int128");
  504. static_assert(std::is_assignable<absl::int128&, __int128>::value,
  505. "absl::int128 must be assignable from __int128");
  506. static_assert(!std::is_assignable<__int128&, absl::int128>::value,
  507. "__int128 must not be assignable from absl::int128");
  508. static_assert(std::is_constructible<absl::int128, unsigned __int128>::value,
  509. "absl::int128 must be constructible from unsigned __int128");
  510. static_assert(!std::is_assignable<absl::int128&, unsigned __int128>::value,
  511. "absl::int128 must be assignable from unsigned __int128");
  512. static_assert(!std::is_assignable<unsigned __int128&, absl::int128>::value,
  513. "unsigned __int128 must not be assignable from absl::int128");
  514. }
  515. #endif // ABSL_HAVE_INTRINSIC_INT128
  516. TEST(Int128, TrivialTraitsTest) {
  517. static_assert(absl::is_trivially_default_constructible<absl::int128>::value,
  518. "");
  519. static_assert(absl::is_trivially_copy_constructible<absl::int128>::value, "");
  520. static_assert(absl::is_trivially_copy_assignable<absl::int128>::value, "");
  521. static_assert(std::is_trivially_destructible<absl::int128>::value, "");
  522. }
  523. TEST(Int128, BoolConversionTest) {
  524. EXPECT_FALSE(absl::int128(0));
  525. for (int i = 0; i < 64; ++i) {
  526. EXPECT_TRUE(absl::MakeInt128(0, uint64_t{1} << i));
  527. }
  528. for (int i = 0; i < 63; ++i) {
  529. EXPECT_TRUE(absl::MakeInt128(int64_t{1} << i, 0));
  530. }
  531. EXPECT_TRUE(absl::Int128Min());
  532. EXPECT_EQ(absl::int128(1), absl::int128(true));
  533. EXPECT_EQ(absl::int128(0), absl::int128(false));
  534. }
  535. template <typename T>
  536. class Int128IntegerConversionTest : public ::testing::Test {};
  537. TYPED_TEST_SUITE(Int128IntegerConversionTest, IntegerTypes);
  538. TYPED_TEST(Int128IntegerConversionTest, RoundTripTest) {
  539. EXPECT_EQ(TypeParam{0}, static_cast<TypeParam>(absl::int128(0)));
  540. EXPECT_EQ(std::numeric_limits<TypeParam>::min(),
  541. static_cast<TypeParam>(
  542. absl::int128(std::numeric_limits<TypeParam>::min())));
  543. EXPECT_EQ(std::numeric_limits<TypeParam>::max(),
  544. static_cast<TypeParam>(
  545. absl::int128(std::numeric_limits<TypeParam>::max())));
  546. }
  547. template <typename T>
  548. class Int128FloatConversionTest : public ::testing::Test {};
  549. TYPED_TEST_SUITE(Int128FloatConversionTest, FloatingPointTypes);
  550. TYPED_TEST(Int128FloatConversionTest, ConstructAndCastTest) {
  551. // Conversions where the floating point values should be exactly the same.
  552. // 0x9f5b is a randomly chosen small value.
  553. for (int i = 0; i < 110; ++i) { // 110 = 126 - #bits in 0x9f5b
  554. SCOPED_TRACE(::testing::Message() << "i = " << i);
  555. TypeParam float_value = std::ldexp(static_cast<TypeParam>(0x9f5b), i);
  556. absl::int128 int_value = absl::int128(0x9f5b) << i;
  557. EXPECT_EQ(float_value, static_cast<TypeParam>(int_value));
  558. EXPECT_EQ(-float_value, static_cast<TypeParam>(-int_value));
  559. EXPECT_EQ(int_value, absl::int128(float_value));
  560. EXPECT_EQ(-int_value, absl::int128(-float_value));
  561. }
  562. // Round trip conversions with a small sample of randomly generated uint64_t
  563. // values (less than int64_t max so that value * 2^64 fits into int128).
  564. uint64_t values[] = {0x6d4492c24fb86199, 0x26ead65e4cb359b5,
  565. 0x2c43407433ba3fd1, 0x3b574ec668df6b55,
  566. 0x1c750e55a29f4f0f};
  567. for (uint64_t value : values) {
  568. for (int i = 0; i <= 64; ++i) {
  569. SCOPED_TRACE(::testing::Message()
  570. << "value = " << value << "; i = " << i);
  571. TypeParam fvalue = std::ldexp(static_cast<TypeParam>(value), i);
  572. EXPECT_DOUBLE_EQ(fvalue, static_cast<TypeParam>(absl::int128(fvalue)));
  573. EXPECT_DOUBLE_EQ(-fvalue, static_cast<TypeParam>(-absl::int128(fvalue)));
  574. EXPECT_DOUBLE_EQ(-fvalue, static_cast<TypeParam>(absl::int128(-fvalue)));
  575. EXPECT_DOUBLE_EQ(fvalue, static_cast<TypeParam>(-absl::int128(-fvalue)));
  576. }
  577. }
  578. // Round trip conversions with a small sample of random large positive values.
  579. absl::int128 large_values[] = {
  580. absl::MakeInt128(0x5b0640d96c7b3d9f, 0xb7a7189e51d18622),
  581. absl::MakeInt128(0x34bed042c6f65270, 0x73b236570669a089),
  582. absl::MakeInt128(0x43deba9e6da12724, 0xf7f0f83da686797d),
  583. absl::MakeInt128(0x71e8d383be4e5589, 0x75c3f96fb00752b6)};
  584. for (absl::int128 value : large_values) {
  585. // Make value have as many significant bits as can be represented by
  586. // the mantissa, also making sure the highest and lowest bit in the range
  587. // are set.
  588. value >>= (127 - std::numeric_limits<TypeParam>::digits);
  589. value |= absl::int128(1) << (std::numeric_limits<TypeParam>::digits - 1);
  590. value |= 1;
  591. for (int i = 0; i < 127 - std::numeric_limits<TypeParam>::digits; ++i) {
  592. absl::int128 int_value = value << i;
  593. EXPECT_EQ(int_value,
  594. static_cast<absl::int128>(static_cast<TypeParam>(int_value)));
  595. EXPECT_EQ(-int_value,
  596. static_cast<absl::int128>(static_cast<TypeParam>(-int_value)));
  597. }
  598. }
  599. // Small sample of checks that rounding is toward zero
  600. EXPECT_EQ(0, absl::int128(TypeParam(0.1)));
  601. EXPECT_EQ(17, absl::int128(TypeParam(17.8)));
  602. EXPECT_EQ(0, absl::int128(TypeParam(-0.8)));
  603. EXPECT_EQ(-53, absl::int128(TypeParam(-53.1)));
  604. EXPECT_EQ(0, absl::int128(TypeParam(0.5)));
  605. EXPECT_EQ(0, absl::int128(TypeParam(-0.5)));
  606. TypeParam just_lt_one = std::nexttoward(TypeParam(1), TypeParam(0));
  607. EXPECT_EQ(0, absl::int128(just_lt_one));
  608. TypeParam just_gt_minus_one = std::nexttoward(TypeParam(-1), TypeParam(0));
  609. EXPECT_EQ(0, absl::int128(just_gt_minus_one));
  610. // Check limits
  611. EXPECT_DOUBLE_EQ(std::ldexp(static_cast<TypeParam>(1), 127),
  612. static_cast<TypeParam>(absl::Int128Max()));
  613. EXPECT_DOUBLE_EQ(-std::ldexp(static_cast<TypeParam>(1), 127),
  614. static_cast<TypeParam>(absl::Int128Min()));
  615. }
  616. TEST(Int128, FactoryTest) {
  617. EXPECT_EQ(absl::int128(-1), absl::MakeInt128(-1, -1));
  618. EXPECT_EQ(absl::int128(-31), absl::MakeInt128(-1, -31));
  619. EXPECT_EQ(absl::int128(std::numeric_limits<int64_t>::min()),
  620. absl::MakeInt128(-1, std::numeric_limits<int64_t>::min()));
  621. EXPECT_EQ(absl::int128(0), absl::MakeInt128(0, 0));
  622. EXPECT_EQ(absl::int128(1), absl::MakeInt128(0, 1));
  623. EXPECT_EQ(absl::int128(std::numeric_limits<int64_t>::max()),
  624. absl::MakeInt128(0, std::numeric_limits<int64_t>::max()));
  625. }
  626. TEST(Int128, HighLowTest) {
  627. struct HighLowPair {
  628. int64_t high;
  629. uint64_t low;
  630. };
  631. HighLowPair values[]{{0, 0}, {0, 1}, {1, 0}, {123, 456}, {-654, 321}};
  632. for (const HighLowPair& pair : values) {
  633. absl::int128 value = absl::MakeInt128(pair.high, pair.low);
  634. EXPECT_EQ(pair.low, absl::Int128Low64(value));
  635. EXPECT_EQ(pair.high, absl::Int128High64(value));
  636. }
  637. }
  638. TEST(Int128, LimitsTest) {
  639. EXPECT_EQ(absl::MakeInt128(0x7fffffffffffffff, 0xffffffffffffffff),
  640. absl::Int128Max());
  641. EXPECT_EQ(absl::Int128Max(), ~absl::Int128Min());
  642. }
  643. #if defined(ABSL_HAVE_INTRINSIC_INT128)
  644. TEST(Int128, IntrinsicConversionTest) {
  645. __int128 intrinsic =
  646. (static_cast<__int128>(0x3a5b76c209de76f6) << 64) + 0x1f25e1d63a2b46c5;
  647. absl::int128 custom =
  648. absl::MakeInt128(0x3a5b76c209de76f6, 0x1f25e1d63a2b46c5);
  649. EXPECT_EQ(custom, absl::int128(intrinsic));
  650. EXPECT_EQ(intrinsic, static_cast<__int128>(custom));
  651. }
  652. #endif // ABSL_HAVE_INTRINSIC_INT128
  653. TEST(Int128, ConstexprTest) {
  654. constexpr absl::int128 zero = absl::int128();
  655. constexpr absl::int128 one = 1;
  656. constexpr absl::int128 minus_two = -2;
  657. constexpr absl::int128 min = absl::Int128Min();
  658. constexpr absl::int128 max = absl::Int128Max();
  659. EXPECT_EQ(zero, absl::int128(0));
  660. EXPECT_EQ(one, absl::int128(1));
  661. EXPECT_EQ(minus_two, absl::MakeInt128(-1, -2));
  662. EXPECT_GT(max, one);
  663. EXPECT_LT(min, minus_two);
  664. }
  665. TEST(Int128, ComparisonTest) {
  666. struct TestCase {
  667. absl::int128 smaller;
  668. absl::int128 larger;
  669. };
  670. TestCase cases[] = {
  671. {absl::int128(0), absl::int128(123)},
  672. {absl::MakeInt128(-12, 34), absl::MakeInt128(12, 34)},
  673. {absl::MakeInt128(1, 1000), absl::MakeInt128(1000, 1)},
  674. {absl::MakeInt128(-1000, 1000), absl::MakeInt128(-1, 1)},
  675. };
  676. for (const TestCase& pair : cases) {
  677. SCOPED_TRACE(::testing::Message() << "pair.smaller = " << pair.smaller
  678. << "; pair.larger = " << pair.larger);
  679. EXPECT_TRUE(pair.smaller == pair.smaller); // NOLINT(readability/check)
  680. EXPECT_TRUE(pair.larger == pair.larger); // NOLINT(readability/check)
  681. EXPECT_FALSE(pair.smaller == pair.larger); // NOLINT(readability/check)
  682. EXPECT_TRUE(pair.smaller != pair.larger); // NOLINT(readability/check)
  683. EXPECT_FALSE(pair.smaller != pair.smaller); // NOLINT(readability/check)
  684. EXPECT_FALSE(pair.larger != pair.larger); // NOLINT(readability/check)
  685. EXPECT_TRUE(pair.smaller < pair.larger); // NOLINT(readability/check)
  686. EXPECT_FALSE(pair.larger < pair.smaller); // NOLINT(readability/check)
  687. EXPECT_TRUE(pair.larger > pair.smaller); // NOLINT(readability/check)
  688. EXPECT_FALSE(pair.smaller > pair.larger); // NOLINT(readability/check)
  689. EXPECT_TRUE(pair.smaller <= pair.larger); // NOLINT(readability/check)
  690. EXPECT_FALSE(pair.larger <= pair.smaller); // NOLINT(readability/check)
  691. EXPECT_TRUE(pair.smaller <= pair.smaller); // NOLINT(readability/check)
  692. EXPECT_TRUE(pair.larger <= pair.larger); // NOLINT(readability/check)
  693. EXPECT_TRUE(pair.larger >= pair.smaller); // NOLINT(readability/check)
  694. EXPECT_FALSE(pair.smaller >= pair.larger); // NOLINT(readability/check)
  695. EXPECT_TRUE(pair.smaller >= pair.smaller); // NOLINT(readability/check)
  696. EXPECT_TRUE(pair.larger >= pair.larger); // NOLINT(readability/check)
  697. }
  698. }
  699. TEST(Int128, UnaryPlusTest) {
  700. int64_t values64[] = {0, 1, 12345, 0x4000000000000000,
  701. std::numeric_limits<int64_t>::max()};
  702. for (int64_t value : values64) {
  703. SCOPED_TRACE(::testing::Message() << "value = " << value);
  704. EXPECT_EQ(absl::int128(value), +absl::int128(value));
  705. EXPECT_EQ(absl::int128(-value), +absl::int128(-value));
  706. EXPECT_EQ(absl::MakeInt128(value, 0), +absl::MakeInt128(value, 0));
  707. EXPECT_EQ(absl::MakeInt128(-value, 0), +absl::MakeInt128(-value, 0));
  708. }
  709. }
  710. TEST(Int128, UnaryNegationTest) {
  711. int64_t values64[] = {0, 1, 12345, 0x4000000000000000,
  712. std::numeric_limits<int64_t>::max()};
  713. for (int64_t value : values64) {
  714. SCOPED_TRACE(::testing::Message() << "value = " << value);
  715. EXPECT_EQ(absl::int128(-value), -absl::int128(value));
  716. EXPECT_EQ(absl::int128(value), -absl::int128(-value));
  717. EXPECT_EQ(absl::MakeInt128(-value, 0), -absl::MakeInt128(value, 0));
  718. EXPECT_EQ(absl::MakeInt128(value, 0), -absl::MakeInt128(-value, 0));
  719. }
  720. }
  721. TEST(Int128, LogicalNotTest) {
  722. EXPECT_TRUE(!absl::int128(0));
  723. for (int i = 0; i < 64; ++i) {
  724. EXPECT_FALSE(!absl::MakeInt128(0, uint64_t{1} << i));
  725. }
  726. for (int i = 0; i < 63; ++i) {
  727. EXPECT_FALSE(!absl::MakeInt128(int64_t{1} << i, 0));
  728. }
  729. }
  730. TEST(Int128, AdditionSubtractionTest) {
  731. // 64 bit pairs that will not cause overflow / underflow. These test negative
  732. // carry; positive carry must be checked separately.
  733. std::pair<int64_t, int64_t> cases[]{
  734. {0, 0}, // 0, 0
  735. {0, 2945781290834}, // 0, +
  736. {1908357619234, 0}, // +, 0
  737. {0, -1204895918245}, // 0, -
  738. {-2957928523560, 0}, // -, 0
  739. {89023982312461, 98346012567134}, // +, +
  740. {-63454234568239, -23456235230773}, // -, -
  741. {98263457263502, -21428561935925}, // +, -
  742. {-88235237438467, 15923659234573}, // -, +
  743. };
  744. for (const auto& pair : cases) {
  745. SCOPED_TRACE(::testing::Message()
  746. << "pair = {" << pair.first << ", " << pair.second << '}');
  747. EXPECT_EQ(absl::int128(pair.first + pair.second),
  748. absl::int128(pair.first) + absl::int128(pair.second));
  749. EXPECT_EQ(absl::int128(pair.second + pair.first),
  750. absl::int128(pair.second) += absl::int128(pair.first));
  751. EXPECT_EQ(absl::int128(pair.first - pair.second),
  752. absl::int128(pair.first) - absl::int128(pair.second));
  753. EXPECT_EQ(absl::int128(pair.second - pair.first),
  754. absl::int128(pair.second) -= absl::int128(pair.first));
  755. EXPECT_EQ(
  756. absl::MakeInt128(pair.second + pair.first, 0),
  757. absl::MakeInt128(pair.second, 0) + absl::MakeInt128(pair.first, 0));
  758. EXPECT_EQ(
  759. absl::MakeInt128(pair.first + pair.second, 0),
  760. absl::MakeInt128(pair.first, 0) += absl::MakeInt128(pair.second, 0));
  761. EXPECT_EQ(
  762. absl::MakeInt128(pair.second - pair.first, 0),
  763. absl::MakeInt128(pair.second, 0) - absl::MakeInt128(pair.first, 0));
  764. EXPECT_EQ(
  765. absl::MakeInt128(pair.first - pair.second, 0),
  766. absl::MakeInt128(pair.first, 0) -= absl::MakeInt128(pair.second, 0));
  767. }
  768. // check positive carry
  769. EXPECT_EQ(absl::MakeInt128(31, 0),
  770. absl::MakeInt128(20, 1) +
  771. absl::MakeInt128(10, std::numeric_limits<uint64_t>::max()));
  772. }
  773. TEST(Int128, IncrementDecrementTest) {
  774. absl::int128 value = 0;
  775. EXPECT_EQ(0, value++);
  776. EXPECT_EQ(1, value);
  777. EXPECT_EQ(1, value--);
  778. EXPECT_EQ(0, value);
  779. EXPECT_EQ(-1, --value);
  780. EXPECT_EQ(-1, value);
  781. EXPECT_EQ(0, ++value);
  782. EXPECT_EQ(0, value);
  783. }
  784. TEST(Int128, MultiplicationTest) {
  785. // 1 bit x 1 bit, and negative combinations
  786. for (int i = 0; i < 64; ++i) {
  787. for (int j = 0; j < 127 - i; ++j) {
  788. SCOPED_TRACE(::testing::Message() << "i = " << i << "; j = " << j);
  789. absl::int128 a = absl::int128(1) << i;
  790. absl::int128 b = absl::int128(1) << j;
  791. absl::int128 c = absl::int128(1) << (i + j);
  792. EXPECT_EQ(c, a * b);
  793. EXPECT_EQ(-c, -a * b);
  794. EXPECT_EQ(-c, a * -b);
  795. EXPECT_EQ(c, -a * -b);
  796. EXPECT_EQ(c, absl::int128(a) *= b);
  797. EXPECT_EQ(-c, absl::int128(-a) *= b);
  798. EXPECT_EQ(-c, absl::int128(a) *= -b);
  799. EXPECT_EQ(c, absl::int128(-a) *= -b);
  800. }
  801. }
  802. // Pairs of random values that will not overflow signed 64-bit multiplication
  803. std::pair<int64_t, int64_t> small_values[] = {
  804. {0x5e61, 0xf29f79ca14b4}, // +, +
  805. {0x3e033b, -0x612c0ee549}, // +, -
  806. {-0x052ce7e8, 0x7c728f0f}, // -, +
  807. {-0x3af7054626, -0xfb1e1d}, // -, -
  808. };
  809. for (const std::pair<int64_t, int64_t>& pair : small_values) {
  810. SCOPED_TRACE(::testing::Message()
  811. << "pair = {" << pair.first << ", " << pair.second << '}');
  812. EXPECT_EQ(absl::int128(pair.first * pair.second),
  813. absl::int128(pair.first) * absl::int128(pair.second));
  814. EXPECT_EQ(absl::int128(pair.first * pair.second),
  815. absl::int128(pair.first) *= absl::int128(pair.second));
  816. EXPECT_EQ(absl::MakeInt128(pair.first * pair.second, 0),
  817. absl::MakeInt128(pair.first, 0) * absl::int128(pair.second));
  818. EXPECT_EQ(absl::MakeInt128(pair.first * pair.second, 0),
  819. absl::MakeInt128(pair.first, 0) *= absl::int128(pair.second));
  820. }
  821. // Pairs of positive random values that will not overflow 64-bit
  822. // multiplication and can be left shifted by 32 without overflow
  823. std::pair<int64_t, int64_t> small_values2[] = {
  824. {0x1bb0a110, 0x31487671},
  825. {0x4792784e, 0x28add7d7},
  826. {0x7b66553a, 0x11dff8ef},
  827. };
  828. for (const std::pair<int64_t, int64_t>& pair : small_values2) {
  829. SCOPED_TRACE(::testing::Message()
  830. << "pair = {" << pair.first << ", " << pair.second << '}');
  831. absl::int128 a = absl::int128(pair.first << 32);
  832. absl::int128 b = absl::int128(pair.second << 32);
  833. absl::int128 c = absl::MakeInt128(pair.first * pair.second, 0);
  834. EXPECT_EQ(c, a * b);
  835. EXPECT_EQ(-c, -a * b);
  836. EXPECT_EQ(-c, a * -b);
  837. EXPECT_EQ(c, -a * -b);
  838. EXPECT_EQ(c, absl::int128(a) *= b);
  839. EXPECT_EQ(-c, absl::int128(-a) *= b);
  840. EXPECT_EQ(-c, absl::int128(a) *= -b);
  841. EXPECT_EQ(c, absl::int128(-a) *= -b);
  842. }
  843. // check 0, 1, and -1 behavior with large values
  844. absl::int128 large_values[] = {
  845. {absl::MakeInt128(0xd66f061af02d0408, 0x727d2846cb475b53)},
  846. {absl::MakeInt128(0x27b8d5ed6104452d, 0x03f8a33b0ee1df4f)},
  847. {-absl::MakeInt128(0x621b6626b9e8d042, 0x27311ac99df00938)},
  848. {-absl::MakeInt128(0x34e0656f1e95fb60, 0x4281cfd731257a47)},
  849. };
  850. for (absl::int128 value : large_values) {
  851. EXPECT_EQ(0, 0 * value);
  852. EXPECT_EQ(0, value * 0);
  853. EXPECT_EQ(0, absl::int128(0) *= value);
  854. EXPECT_EQ(0, value *= 0);
  855. EXPECT_EQ(value, 1 * value);
  856. EXPECT_EQ(value, value * 1);
  857. EXPECT_EQ(value, absl::int128(1) *= value);
  858. EXPECT_EQ(value, value *= 1);
  859. EXPECT_EQ(-value, -1 * value);
  860. EXPECT_EQ(-value, value * -1);
  861. EXPECT_EQ(-value, absl::int128(-1) *= value);
  862. EXPECT_EQ(-value, value *= -1);
  863. }
  864. // Manually calculated random large value cases
  865. EXPECT_EQ(absl::MakeInt128(0xcd0efd3442219bb, 0xde47c05bcd9df6e1),
  866. absl::MakeInt128(0x7c6448, 0x3bc4285c47a9d253) * 0x1a6037537b);
  867. EXPECT_EQ(-absl::MakeInt128(0x1f8f149850b1e5e6, 0x1e50d6b52d272c3e),
  868. -absl::MakeInt128(0x23, 0x2e68a513ca1b8859) * 0xe5a434cd14866e);
  869. EXPECT_EQ(-absl::MakeInt128(0x55cae732029d1fce, 0xca6474b6423263e4),
  870. 0xa9b98a8ddf66bc * -absl::MakeInt128(0x81, 0x672e58231e2469d7));
  871. EXPECT_EQ(absl::MakeInt128(0x19c8b7620b507dc4, 0xfec042b71a5f29a4),
  872. -0x3e39341147 * -absl::MakeInt128(0x6a14b2, 0x5ed34cca42327b3c));
  873. EXPECT_EQ(absl::MakeInt128(0xcd0efd3442219bb, 0xde47c05bcd9df6e1),
  874. absl::MakeInt128(0x7c6448, 0x3bc4285c47a9d253) *= 0x1a6037537b);
  875. EXPECT_EQ(-absl::MakeInt128(0x1f8f149850b1e5e6, 0x1e50d6b52d272c3e),
  876. -absl::MakeInt128(0x23, 0x2e68a513ca1b8859) *= 0xe5a434cd14866e);
  877. EXPECT_EQ(-absl::MakeInt128(0x55cae732029d1fce, 0xca6474b6423263e4),
  878. absl::int128(0xa9b98a8ddf66bc) *=
  879. -absl::MakeInt128(0x81, 0x672e58231e2469d7));
  880. EXPECT_EQ(absl::MakeInt128(0x19c8b7620b507dc4, 0xfec042b71a5f29a4),
  881. absl::int128(-0x3e39341147) *=
  882. -absl::MakeInt128(0x6a14b2, 0x5ed34cca42327b3c));
  883. }
  884. TEST(Int128, DivisionAndModuloTest) {
  885. // Check against 64 bit division and modulo operators with a sample of
  886. // randomly generated pairs.
  887. std::pair<int64_t, int64_t> small_pairs[] = {
  888. {0x15f2a64138, 0x67da05}, {0x5e56d194af43045f, 0xcf1543fb99},
  889. {0x15e61ed052036a, -0xc8e6}, {0x88125a341e85, -0xd23fb77683},
  890. {-0xc06e20, 0x5a}, {-0x4f100219aea3e85d, 0xdcc56cb4efe993},
  891. {-0x168d629105, -0xa7}, {-0x7b44e92f03ab2375, -0x6516},
  892. };
  893. for (const std::pair<int64_t, int64_t>& pair : small_pairs) {
  894. SCOPED_TRACE(::testing::Message()
  895. << "pair = {" << pair.first << ", " << pair.second << '}');
  896. absl::int128 dividend = pair.first;
  897. absl::int128 divisor = pair.second;
  898. int64_t quotient = pair.first / pair.second;
  899. int64_t remainder = pair.first % pair.second;
  900. EXPECT_EQ(quotient, dividend / divisor);
  901. EXPECT_EQ(quotient, absl::int128(dividend) /= divisor);
  902. EXPECT_EQ(remainder, dividend % divisor);
  903. EXPECT_EQ(remainder, absl::int128(dividend) %= divisor);
  904. }
  905. // Test behavior with 0, 1, and -1 with a sample of randomly generated large
  906. // values.
  907. absl::int128 values[] = {
  908. absl::MakeInt128(0x63d26ee688a962b2, 0x9e1411abda5c1d70),
  909. absl::MakeInt128(0x152f385159d6f986, 0xbf8d48ef63da395d),
  910. -absl::MakeInt128(0x3098d7567030038c, 0x14e7a8a098dc2164),
  911. -absl::MakeInt128(0x49a037aca35c809f, 0xa6a87525480ef330),
  912. };
  913. for (absl::int128 value : values) {
  914. SCOPED_TRACE(::testing::Message() << "value = " << value);
  915. EXPECT_EQ(0, 0 / value);
  916. EXPECT_EQ(0, absl::int128(0) /= value);
  917. EXPECT_EQ(0, 0 % value);
  918. EXPECT_EQ(0, absl::int128(0) %= value);
  919. EXPECT_EQ(value, value / 1);
  920. EXPECT_EQ(value, absl::int128(value) /= 1);
  921. EXPECT_EQ(0, value % 1);
  922. EXPECT_EQ(0, absl::int128(value) %= 1);
  923. EXPECT_EQ(-value, value / -1);
  924. EXPECT_EQ(-value, absl::int128(value) /= -1);
  925. EXPECT_EQ(0, value % -1);
  926. EXPECT_EQ(0, absl::int128(value) %= -1);
  927. }
  928. // Min and max values
  929. EXPECT_EQ(0, absl::Int128Max() / absl::Int128Min());
  930. EXPECT_EQ(absl::Int128Max(), absl::Int128Max() % absl::Int128Min());
  931. EXPECT_EQ(-1, absl::Int128Min() / absl::Int128Max());
  932. EXPECT_EQ(-1, absl::Int128Min() % absl::Int128Max());
  933. // Power of two division and modulo of random large dividends
  934. absl::int128 positive_values[] = {
  935. absl::MakeInt128(0x21e1a1cc69574620, 0xe7ac447fab2fc869),
  936. absl::MakeInt128(0x32c2ff3ab89e66e8, 0x03379a613fd1ce74),
  937. absl::MakeInt128(0x6f32ca786184dcaf, 0x046f9c9ecb3a9ce1),
  938. absl::MakeInt128(0x1aeb469dd990e0ee, 0xda2740f243cd37eb),
  939. };
  940. for (absl::int128 value : positive_values) {
  941. for (int i = 0; i < 127; ++i) {
  942. SCOPED_TRACE(::testing::Message()
  943. << "value = " << value << "; i = " << i);
  944. absl::int128 power_of_two = absl::int128(1) << i;
  945. EXPECT_EQ(value >> i, value / power_of_two);
  946. EXPECT_EQ(value >> i, absl::int128(value) /= power_of_two);
  947. EXPECT_EQ(value & (power_of_two - 1), value % power_of_two);
  948. EXPECT_EQ(value & (power_of_two - 1),
  949. absl::int128(value) %= power_of_two);
  950. }
  951. }
  952. // Manually calculated cases with random large dividends
  953. struct DivisionModCase {
  954. absl::int128 dividend;
  955. absl::int128 divisor;
  956. absl::int128 quotient;
  957. absl::int128 remainder;
  958. };
  959. DivisionModCase manual_cases[] = {
  960. {absl::MakeInt128(0x6ada48d489007966, 0x3c9c5c98150d5d69),
  961. absl::MakeInt128(0x8bc308fb, 0x8cb9cc9a3b803344), 0xc3b87e08,
  962. absl::MakeInt128(0x1b7db5e1, 0xd9eca34b7af04b49)},
  963. {absl::MakeInt128(0xd6946511b5b, 0x4886c5c96546bf5f),
  964. -absl::MakeInt128(0x263b, 0xfd516279efcfe2dc), -0x59cbabf0,
  965. absl::MakeInt128(0x622, 0xf462909155651d1f)},
  966. {-absl::MakeInt128(0x33db734f9e8d1399, 0x8447ac92482bca4d), 0x37495078240,
  967. -absl::MakeInt128(0xf01f1, 0xbc0368bf9a77eae8), -0x21a508f404d},
  968. {-absl::MakeInt128(0x13f837b409a07e7d, 0x7fc8e248a7d73560), -0x1b9f,
  969. absl::MakeInt128(0xb9157556d724, 0xb14f635714d7563e), -0x1ade},
  970. };
  971. for (const DivisionModCase test_case : manual_cases) {
  972. EXPECT_EQ(test_case.quotient, test_case.dividend / test_case.divisor);
  973. EXPECT_EQ(test_case.quotient,
  974. absl::int128(test_case.dividend) /= test_case.divisor);
  975. EXPECT_EQ(test_case.remainder, test_case.dividend % test_case.divisor);
  976. EXPECT_EQ(test_case.remainder,
  977. absl::int128(test_case.dividend) %= test_case.divisor);
  978. }
  979. }
  980. TEST(Int128, BitwiseLogicTest) {
  981. EXPECT_EQ(absl::int128(-1), ~absl::int128(0));
  982. absl::int128 values[]{
  983. 0, -1, 0xde400bee05c3ff6b, absl::MakeInt128(0x7f32178dd81d634a, 0),
  984. absl::MakeInt128(0xaf539057055613a9, 0x7d104d7d946c2e4d)};
  985. for (absl::int128 value : values) {
  986. EXPECT_EQ(value, ~~value);
  987. EXPECT_EQ(value, value | value);
  988. EXPECT_EQ(value, value & value);
  989. EXPECT_EQ(0, value ^ value);
  990. EXPECT_EQ(value, absl::int128(value) |= value);
  991. EXPECT_EQ(value, absl::int128(value) &= value);
  992. EXPECT_EQ(0, absl::int128(value) ^= value);
  993. EXPECT_EQ(value, value | 0);
  994. EXPECT_EQ(0, value & 0);
  995. EXPECT_EQ(value, value ^ 0);
  996. EXPECT_EQ(absl::int128(-1), value | absl::int128(-1));
  997. EXPECT_EQ(value, value & absl::int128(-1));
  998. EXPECT_EQ(~value, value ^ absl::int128(-1));
  999. }
  1000. // small sample of randomly generated int64_t's
  1001. std::pair<int64_t, int64_t> pairs64[]{
  1002. {0x7f86797f5e991af4, 0x1ee30494fb007c97},
  1003. {0x0b278282bacf01af, 0x58780e0a57a49e86},
  1004. {0x059f266ccb93a666, 0x3d5b731bae9286f5},
  1005. {0x63c0c4820f12108c, 0x58166713c12e1c3a},
  1006. {0x381488bb2ed2a66e, 0x2220a3eb76a3698c},
  1007. {0x2a0a0dfb81e06f21, 0x4b60585927f5523c},
  1008. {0x555b1c3a03698537, 0x25478cd19d8e53cb},
  1009. {0x4750f6f27d779225, 0x16397553c6ff05fc},
  1010. };
  1011. for (const std::pair<int64_t, int64_t>& pair : pairs64) {
  1012. SCOPED_TRACE(::testing::Message()
  1013. << "pair = {" << pair.first << ", " << pair.second << '}');
  1014. EXPECT_EQ(absl::MakeInt128(~pair.first, ~pair.second),
  1015. ~absl::MakeInt128(pair.first, pair.second));
  1016. EXPECT_EQ(absl::int128(pair.first & pair.second),
  1017. absl::int128(pair.first) & absl::int128(pair.second));
  1018. EXPECT_EQ(absl::int128(pair.first | pair.second),
  1019. absl::int128(pair.first) | absl::int128(pair.second));
  1020. EXPECT_EQ(absl::int128(pair.first ^ pair.second),
  1021. absl::int128(pair.first) ^ absl::int128(pair.second));
  1022. EXPECT_EQ(absl::int128(pair.first & pair.second),
  1023. absl::int128(pair.first) &= absl::int128(pair.second));
  1024. EXPECT_EQ(absl::int128(pair.first | pair.second),
  1025. absl::int128(pair.first) |= absl::int128(pair.second));
  1026. EXPECT_EQ(absl::int128(pair.first ^ pair.second),
  1027. absl::int128(pair.first) ^= absl::int128(pair.second));
  1028. EXPECT_EQ(
  1029. absl::MakeInt128(pair.first & pair.second, 0),
  1030. absl::MakeInt128(pair.first, 0) & absl::MakeInt128(pair.second, 0));
  1031. EXPECT_EQ(
  1032. absl::MakeInt128(pair.first | pair.second, 0),
  1033. absl::MakeInt128(pair.first, 0) | absl::MakeInt128(pair.second, 0));
  1034. EXPECT_EQ(
  1035. absl::MakeInt128(pair.first ^ pair.second, 0),
  1036. absl::MakeInt128(pair.first, 0) ^ absl::MakeInt128(pair.second, 0));
  1037. EXPECT_EQ(
  1038. absl::MakeInt128(pair.first & pair.second, 0),
  1039. absl::MakeInt128(pair.first, 0) &= absl::MakeInt128(pair.second, 0));
  1040. EXPECT_EQ(
  1041. absl::MakeInt128(pair.first | pair.second, 0),
  1042. absl::MakeInt128(pair.first, 0) |= absl::MakeInt128(pair.second, 0));
  1043. EXPECT_EQ(
  1044. absl::MakeInt128(pair.first ^ pair.second, 0),
  1045. absl::MakeInt128(pair.first, 0) ^= absl::MakeInt128(pair.second, 0));
  1046. }
  1047. }
  1048. TEST(Int128, BitwiseShiftTest) {
  1049. for (int i = 0; i < 64; ++i) {
  1050. for (int j = 0; j <= i; ++j) {
  1051. // Left shift from j-th bit to i-th bit.
  1052. SCOPED_TRACE(::testing::Message() << "i = " << i << "; j = " << j);
  1053. EXPECT_EQ(uint64_t{1} << i, absl::int128(uint64_t{1} << j) << (i - j));
  1054. EXPECT_EQ(uint64_t{1} << i, absl::int128(uint64_t{1} << j) <<= (i - j));
  1055. }
  1056. }
  1057. for (int i = 0; i < 63; ++i) {
  1058. for (int j = 0; j < 64; ++j) {
  1059. // Left shift from j-th bit to (i + 64)-th bit.
  1060. SCOPED_TRACE(::testing::Message() << "i = " << i << "; j = " << j);
  1061. EXPECT_EQ(absl::MakeInt128(uint64_t{1} << i, 0),
  1062. absl::int128(uint64_t{1} << j) << (i + 64 - j));
  1063. EXPECT_EQ(absl::MakeInt128(uint64_t{1} << i, 0),
  1064. absl::int128(uint64_t{1} << j) <<= (i + 64 - j));
  1065. }
  1066. for (int j = 0; j <= i; ++j) {
  1067. // Left shift from (j + 64)-th bit to (i + 64)-th bit.
  1068. SCOPED_TRACE(::testing::Message() << "i = " << i << "; j = " << j);
  1069. EXPECT_EQ(absl::MakeInt128(uint64_t{1} << i, 0),
  1070. absl::MakeInt128(uint64_t{1} << j, 0) << (i - j));
  1071. EXPECT_EQ(absl::MakeInt128(uint64_t{1} << i, 0),
  1072. absl::MakeInt128(uint64_t{1} << j, 0) <<= (i - j));
  1073. }
  1074. }
  1075. for (int i = 0; i < 64; ++i) {
  1076. for (int j = i; j < 64; ++j) {
  1077. // Right shift from j-th bit to i-th bit.
  1078. SCOPED_TRACE(::testing::Message() << "i = " << i << "; j = " << j);
  1079. EXPECT_EQ(uint64_t{1} << i, absl::int128(uint64_t{1} << j) >> (j - i));
  1080. EXPECT_EQ(uint64_t{1} << i, absl::int128(uint64_t{1} << j) >>= (j - i));
  1081. }
  1082. for (int j = 0; j < 63; ++j) {
  1083. // Right shift from (j + 64)-th bit to i-th bit.
  1084. SCOPED_TRACE(::testing::Message() << "i = " << i << "; j = " << j);
  1085. EXPECT_EQ(uint64_t{1} << i,
  1086. absl::MakeInt128(uint64_t{1} << j, 0) >> (j + 64 - i));
  1087. EXPECT_EQ(uint64_t{1} << i,
  1088. absl::MakeInt128(uint64_t{1} << j, 0) >>= (j + 64 - i));
  1089. }
  1090. }
  1091. for (int i = 0; i < 63; ++i) {
  1092. for (int j = i; j < 63; ++j) {
  1093. // Right shift from (j + 64)-th bit to (i + 64)-th bit.
  1094. SCOPED_TRACE(::testing::Message() << "i = " << i << "; j = " << j);
  1095. EXPECT_EQ(absl::MakeInt128(uint64_t{1} << i, 0),
  1096. absl::MakeInt128(uint64_t{1} << j, 0) >> (j - i));
  1097. EXPECT_EQ(absl::MakeInt128(uint64_t{1} << i, 0),
  1098. absl::MakeInt128(uint64_t{1} << j, 0) >>= (j - i));
  1099. }
  1100. }
  1101. }
  1102. TEST(Int128, NumericLimitsTest) {
  1103. static_assert(std::numeric_limits<absl::int128>::is_specialized, "");
  1104. static_assert(std::numeric_limits<absl::int128>::is_signed, "");
  1105. static_assert(std::numeric_limits<absl::int128>::is_integer, "");
  1106. EXPECT_EQ(static_cast<int>(127 * std::log10(2)),
  1107. std::numeric_limits<absl::int128>::digits10);
  1108. EXPECT_EQ(absl::Int128Min(), std::numeric_limits<absl::int128>::min());
  1109. EXPECT_EQ(absl::Int128Min(), std::numeric_limits<absl::int128>::lowest());
  1110. EXPECT_EQ(absl::Int128Max(), std::numeric_limits<absl::int128>::max());
  1111. }
  1112. } // namespace