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
15 #include "absl/time/time.h"
16 #include "absl/time/civil_time.h"
17
18 #if defined(_MSC_VER)
19 #include <winsock2.h> // for timeval
20 #endif
21
22 #include "absl/base/config.h"
23
24 // For feature testing and determining which headers can be included.
25 #if ABSL_INTERNAL_CPLUSPLUS_LANG >= 202002L
26 #include <version>
27 #endif
28
29 #include <chrono> // NOLINT(build/c++11)
30 #ifdef __cpp_lib_three_way_comparison
31 #include <compare>
32 #endif // __cpp_lib_three_way_comparison
33 #include <cstdint>
34 #include <cstring>
35 #include <ctime>
36 #include <iomanip>
37 #include <ios>
38 #include <limits>
39 #include <string>
40 #include <type_traits>
41
42 #include "gmock/gmock.h"
43 #include "gtest/gtest.h"
44 #include "absl/hash/hash_testing.h"
45 #include "absl/numeric/int128.h"
46 #include "absl/strings/str_format.h"
47 #include "absl/time/clock.h"
48 #include "absl/time/internal/test_util.h"
49
50 namespace {
51
52 #if defined(GTEST_USES_SIMPLE_RE) && GTEST_USES_SIMPLE_RE
53 const char kZoneAbbrRE[] = ".*"; // just punt
54 #else
55 const char kZoneAbbrRE[] = "[A-Za-z]{3,4}|[-+][0-9]{2}([0-9]{2})?";
56 #endif
57
58 // This helper is a macro so that failed expectations show up with the
59 // correct line numbers.
60 #define EXPECT_CIVIL_INFO(ci, y, m, d, h, min, s, off, isdst) \
61 do { \
62 EXPECT_EQ(y, ci.cs.year()); \
63 EXPECT_EQ(m, ci.cs.month()); \
64 EXPECT_EQ(d, ci.cs.day()); \
65 EXPECT_EQ(h, ci.cs.hour()); \
66 EXPECT_EQ(min, ci.cs.minute()); \
67 EXPECT_EQ(s, ci.cs.second()); \
68 EXPECT_EQ(off, ci.offset); \
69 EXPECT_EQ(isdst, ci.is_dst); \
70 EXPECT_THAT(ci.zone_abbr, testing::MatchesRegex(kZoneAbbrRE)); \
71 } while (0)
72
73 // A gMock matcher to match timespec values. Use this matcher like:
74 // timespec ts1, ts2;
75 // EXPECT_THAT(ts1, TimespecMatcher(ts2));
76 MATCHER_P(TimespecMatcher, ts, "") {
77 if (ts.tv_sec == arg.tv_sec && ts.tv_nsec == arg.tv_nsec) return true;
78 *result_listener << "expected: {" << ts.tv_sec << ", " << ts.tv_nsec << "} ";
79 *result_listener << "actual: {" << arg.tv_sec << ", " << arg.tv_nsec << "}";
80 return false;
81 }
82
83 // A gMock matcher to match timeval values. Use this matcher like:
84 // timeval tv1, tv2;
85 // EXPECT_THAT(tv1, TimevalMatcher(tv2));
86 MATCHER_P(TimevalMatcher, tv, "") {
87 if (tv.tv_sec == arg.tv_sec && tv.tv_usec == arg.tv_usec) return true;
88 *result_listener << "expected: {" << tv.tv_sec << ", " << tv.tv_usec << "} ";
89 *result_listener << "actual: {" << arg.tv_sec << ", " << arg.tv_usec << "}";
90 return false;
91 }
92
TEST(Time,ConstExpr)93 TEST(Time, ConstExpr) {
94 static_assert(std::is_trivially_destructible<absl::Time>::value,
95 "Time is documented as being trivially destructible");
96 constexpr absl::Time t0 = absl::UnixEpoch();
97 static_assert(t0 == absl::UnixEpoch(), "UnixEpoch");
98 constexpr absl::Time t1 = absl::InfiniteFuture();
99 static_assert(t1 != absl::UnixEpoch(), "InfiniteFuture");
100 constexpr absl::Time t2 = absl::InfinitePast();
101 static_assert(t2 != absl::UnixEpoch(), "InfinitePast");
102 constexpr absl::Time t3 = absl::FromUnixNanos(0);
103 static_assert(t3 == absl::UnixEpoch(), "FromUnixNanos");
104 constexpr absl::Time t4 = absl::FromUnixMicros(0);
105 static_assert(t4 == absl::UnixEpoch(), "FromUnixMicros");
106 constexpr absl::Time t5 = absl::FromUnixMillis(0);
107 static_assert(t5 == absl::UnixEpoch(), "FromUnixMillis");
108 constexpr absl::Time t6 = absl::FromUnixSeconds(0);
109 static_assert(t6 == absl::UnixEpoch(), "FromUnixSeconds");
110 constexpr absl::Time t7 = absl::FromTimeT(0);
111 static_assert(t7 == absl::UnixEpoch(), "FromTimeT");
112 }
113
TEST(Time,ValueSemantics)114 TEST(Time, ValueSemantics) {
115 absl::Time a; // Default construction
116 absl::Time b = a; // Copy construction
117 EXPECT_EQ(a, b);
118 absl::Time c(a); // Copy construction (again)
119 EXPECT_EQ(a, b);
120 EXPECT_EQ(a, c);
121 EXPECT_EQ(b, c);
122 b = c; // Assignment
123 EXPECT_EQ(a, b);
124 EXPECT_EQ(a, c);
125 EXPECT_EQ(b, c);
126 }
127
TEST(Time,UnixEpoch)128 TEST(Time, UnixEpoch) {
129 const auto ci = absl::UTCTimeZone().At(absl::UnixEpoch());
130 EXPECT_EQ(absl::CivilSecond(1970, 1, 1, 0, 0, 0), ci.cs);
131 EXPECT_EQ(absl::ZeroDuration(), ci.subsecond);
132 EXPECT_EQ(absl::Weekday::thursday, absl::GetWeekday(ci.cs));
133 }
134
TEST(Time,Breakdown)135 TEST(Time, Breakdown) {
136 absl::TimeZone tz = absl::time_internal::LoadTimeZone("America/New_York");
137 absl::Time t = absl::UnixEpoch();
138
139 // The Unix epoch as seen in NYC.
140 auto ci = tz.At(t);
141 EXPECT_CIVIL_INFO(ci, 1969, 12, 31, 19, 0, 0, -18000, false);
142 EXPECT_EQ(absl::ZeroDuration(), ci.subsecond);
143 EXPECT_EQ(absl::Weekday::wednesday, absl::GetWeekday(ci.cs));
144
145 // Just before the epoch.
146 t -= absl::Nanoseconds(1);
147 ci = tz.At(t);
148 EXPECT_CIVIL_INFO(ci, 1969, 12, 31, 18, 59, 59, -18000, false);
149 EXPECT_EQ(absl::Nanoseconds(999999999), ci.subsecond);
150 EXPECT_EQ(absl::Weekday::wednesday, absl::GetWeekday(ci.cs));
151
152 // Some time later.
153 t += absl::Hours(24) * 2735;
154 t += absl::Hours(18) + absl::Minutes(30) + absl::Seconds(15) +
155 absl::Nanoseconds(9);
156 ci = tz.At(t);
157 EXPECT_CIVIL_INFO(ci, 1977, 6, 28, 14, 30, 15, -14400, true);
158 EXPECT_EQ(8, ci.subsecond / absl::Nanoseconds(1));
159 EXPECT_EQ(absl::Weekday::tuesday, absl::GetWeekday(ci.cs));
160 }
161
TEST(Time,AdditiveOperators)162 TEST(Time, AdditiveOperators) {
163 const absl::Duration d = absl::Nanoseconds(1);
164 const absl::Time t0;
165 const absl::Time t1 = t0 + d;
166
167 EXPECT_EQ(d, t1 - t0);
168 EXPECT_EQ(-d, t0 - t1);
169 EXPECT_EQ(t0, t1 - d);
170
171 absl::Time t(t0);
172 EXPECT_EQ(t0, t);
173 t += d;
174 EXPECT_EQ(t0 + d, t);
175 EXPECT_EQ(d, t - t0);
176 t -= d;
177 EXPECT_EQ(t0, t);
178
179 // Tests overflow between subseconds and seconds.
180 t = absl::UnixEpoch();
181 t += absl::Milliseconds(500);
182 EXPECT_EQ(absl::UnixEpoch() + absl::Milliseconds(500), t);
183 t += absl::Milliseconds(600);
184 EXPECT_EQ(absl::UnixEpoch() + absl::Milliseconds(1100), t);
185 t -= absl::Milliseconds(600);
186 EXPECT_EQ(absl::UnixEpoch() + absl::Milliseconds(500), t);
187 t -= absl::Milliseconds(500);
188 EXPECT_EQ(absl::UnixEpoch(), t);
189 }
190
TEST(Time,RelationalOperators)191 TEST(Time, RelationalOperators) {
192 constexpr absl::Time t1 = absl::FromUnixNanos(0);
193 constexpr absl::Time t2 = absl::FromUnixNanos(1);
194 constexpr absl::Time t3 = absl::FromUnixNanos(2);
195
196 static_assert(absl::UnixEpoch() == t1, "");
197 static_assert(t1 == t1, "");
198 static_assert(t2 == t2, "");
199 static_assert(t3 == t3, "");
200
201 static_assert(t1 < t2, "");
202 static_assert(t2 < t3, "");
203 static_assert(t1 < t3, "");
204
205 static_assert(t1 <= t1, "");
206 static_assert(t1 <= t2, "");
207 static_assert(t2 <= t2, "");
208 static_assert(t2 <= t3, "");
209 static_assert(t3 <= t3, "");
210 static_assert(t1 <= t3, "");
211
212 static_assert(t2 > t1, "");
213 static_assert(t3 > t2, "");
214 static_assert(t3 > t1, "");
215
216 static_assert(t2 >= t2, "");
217 static_assert(t2 >= t1, "");
218 static_assert(t3 >= t3, "");
219 static_assert(t3 >= t2, "");
220 static_assert(t1 >= t1, "");
221 static_assert(t3 >= t1, "");
222
223 #ifdef ABSL_INTERNAL_TIME_HAS_THREE_WAY_COMPARISON
224
225 static_assert((t1 <=> t1) == std::strong_ordering::equal, "");
226 static_assert((t2 <=> t2) == std::strong_ordering::equal, "");
227 static_assert((t3 <=> t3) == std::strong_ordering::equal, "");
228
229 static_assert((t1 <=> t2) == std::strong_ordering::less, "");
230 static_assert((t2 <=> t3) == std::strong_ordering::less, "");
231 static_assert((t1 <=> t3) == std::strong_ordering::less, "");
232
233 static_assert((t2 <=> t1) == std::strong_ordering::greater, "");
234 static_assert((t3 <=> t2) == std::strong_ordering::greater, "");
235 static_assert((t3 <=> t1) == std::strong_ordering::greater, "");
236
237 #endif // ABSL_INTERNAL_TIME_HAS_THREE_WAY_COMPARISON
238 }
239
TEST(Time,Infinity)240 TEST(Time, Infinity) {
241 constexpr absl::Time ifuture = absl::InfiniteFuture();
242 constexpr absl::Time ipast = absl::InfinitePast();
243
244 static_assert(ifuture == ifuture, "");
245 static_assert(ipast == ipast, "");
246 static_assert(ipast < ifuture, "");
247 static_assert(ifuture > ipast, "");
248
249 #ifdef ABSL_INTERNAL_TIME_HAS_THREE_WAY_COMPARISON
250
251 static_assert((ifuture <=> ifuture) == std::strong_ordering::equal, "");
252 static_assert((ipast <=> ipast) == std::strong_ordering::equal, "");
253 static_assert((ipast <=> ifuture) == std::strong_ordering::less, "");
254 static_assert((ifuture <=> ipast) == std::strong_ordering::greater, "");
255
256 #endif // ABSL_INTERNAL_TIME_HAS_THREE_WAY_COMPARISON
257
258 // Arithmetic saturates
259 EXPECT_EQ(ifuture, ifuture + absl::Seconds(1));
260 EXPECT_EQ(ifuture, ifuture - absl::Seconds(1));
261 EXPECT_EQ(ipast, ipast + absl::Seconds(1));
262 EXPECT_EQ(ipast, ipast - absl::Seconds(1));
263
264 EXPECT_EQ(absl::InfiniteDuration(), ifuture - ifuture);
265 EXPECT_EQ(absl::InfiniteDuration(), ifuture - ipast);
266 EXPECT_EQ(-absl::InfiniteDuration(), ipast - ifuture);
267 EXPECT_EQ(-absl::InfiniteDuration(), ipast - ipast);
268
269 constexpr absl::Time t = absl::UnixEpoch(); // Any finite time.
270 static_assert(t < ifuture, "");
271 static_assert(t > ipast, "");
272
273 #ifdef ABSL_INTERNAL_TIME_HAS_THREE_WAY_COMPARISON
274
275 static_assert((t <=> ifuture) == std::strong_ordering::less, "");
276 static_assert((t <=> ipast) == std::strong_ordering::greater, "");
277 static_assert((ipast <=> t) == std::strong_ordering::less, "");
278 static_assert((ifuture <=> t) == std::strong_ordering::greater, "");
279
280 #endif // ABSL_INTERNAL_TIME_HAS_THREE_WAY_COMPARISON
281
282 EXPECT_EQ(ifuture, t + absl::InfiniteDuration());
283 EXPECT_EQ(ipast, t - absl::InfiniteDuration());
284 }
285
TEST(Time,FloorConversion)286 TEST(Time, FloorConversion) {
287 #define TEST_FLOOR_CONVERSION(TO, FROM) \
288 EXPECT_EQ(1, TO(FROM(1001))); \
289 EXPECT_EQ(1, TO(FROM(1000))); \
290 EXPECT_EQ(0, TO(FROM(999))); \
291 EXPECT_EQ(0, TO(FROM(1))); \
292 EXPECT_EQ(0, TO(FROM(0))); \
293 EXPECT_EQ(-1, TO(FROM(-1))); \
294 EXPECT_EQ(-1, TO(FROM(-999))); \
295 EXPECT_EQ(-1, TO(FROM(-1000))); \
296 EXPECT_EQ(-2, TO(FROM(-1001)));
297
298 TEST_FLOOR_CONVERSION(absl::ToUnixMicros, absl::FromUnixNanos);
299 TEST_FLOOR_CONVERSION(absl::ToUnixMillis, absl::FromUnixMicros);
300 TEST_FLOOR_CONVERSION(absl::ToUnixSeconds, absl::FromUnixMillis);
301 TEST_FLOOR_CONVERSION(absl::ToTimeT, absl::FromUnixMillis);
302
303 #undef TEST_FLOOR_CONVERSION
304
305 // Tests ToUnixNanos.
306 EXPECT_EQ(1, absl::ToUnixNanos(absl::UnixEpoch() + absl::Nanoseconds(3) / 2));
307 EXPECT_EQ(1, absl::ToUnixNanos(absl::UnixEpoch() + absl::Nanoseconds(1)));
308 EXPECT_EQ(0, absl::ToUnixNanos(absl::UnixEpoch() + absl::Nanoseconds(1) / 2));
309 EXPECT_EQ(0, absl::ToUnixNanos(absl::UnixEpoch() + absl::ZeroDuration()));
310 EXPECT_EQ(-1,
311 absl::ToUnixNanos(absl::UnixEpoch() - absl::Nanoseconds(1) / 2));
312 EXPECT_EQ(-1, absl::ToUnixNanos(absl::UnixEpoch() - absl::Nanoseconds(1)));
313 EXPECT_EQ(-2,
314 absl::ToUnixNanos(absl::UnixEpoch() - absl::Nanoseconds(3) / 2));
315
316 // Tests ToUniversal, which uses a different epoch than the tests above.
317 EXPECT_EQ(1,
318 absl::ToUniversal(absl::UniversalEpoch() + absl::Nanoseconds(101)));
319 EXPECT_EQ(1,
320 absl::ToUniversal(absl::UniversalEpoch() + absl::Nanoseconds(100)));
321 EXPECT_EQ(0,
322 absl::ToUniversal(absl::UniversalEpoch() + absl::Nanoseconds(99)));
323 EXPECT_EQ(0,
324 absl::ToUniversal(absl::UniversalEpoch() + absl::Nanoseconds(1)));
325 EXPECT_EQ(0,
326 absl::ToUniversal(absl::UniversalEpoch() + absl::ZeroDuration()));
327 EXPECT_EQ(-1,
328 absl::ToUniversal(absl::UniversalEpoch() + absl::Nanoseconds(-1)));
329 EXPECT_EQ(-1,
330 absl::ToUniversal(absl::UniversalEpoch() + absl::Nanoseconds(-99)));
331 EXPECT_EQ(
332 -1, absl::ToUniversal(absl::UniversalEpoch() + absl::Nanoseconds(-100)));
333 EXPECT_EQ(
334 -2, absl::ToUniversal(absl::UniversalEpoch() + absl::Nanoseconds(-101)));
335
336 // Tests ToTimespec()/TimeFromTimespec()
337 const struct {
338 absl::Time t;
339 timespec ts;
340 } to_ts[] = {
341 {absl::FromUnixSeconds(1) + absl::Nanoseconds(1), {1, 1}},
342 {absl::FromUnixSeconds(1) + absl::Nanoseconds(1) / 2, {1, 0}},
343 {absl::FromUnixSeconds(1) + absl::ZeroDuration(), {1, 0}},
344 {absl::FromUnixSeconds(0) + absl::ZeroDuration(), {0, 0}},
345 {absl::FromUnixSeconds(0) - absl::Nanoseconds(1) / 2, {-1, 999999999}},
346 {absl::FromUnixSeconds(0) - absl::Nanoseconds(1), {-1, 999999999}},
347 {absl::FromUnixSeconds(-1) + absl::Nanoseconds(1), {-1, 1}},
348 {absl::FromUnixSeconds(-1) + absl::Nanoseconds(1) / 2, {-1, 0}},
349 {absl::FromUnixSeconds(-1) + absl::ZeroDuration(), {-1, 0}},
350 {absl::FromUnixSeconds(-1) - absl::Nanoseconds(1) / 2, {-2, 999999999}},
351 };
352 for (const auto& test : to_ts) {
353 EXPECT_THAT(absl::ToTimespec(test.t), TimespecMatcher(test.ts));
354 }
355 const struct {
356 timespec ts;
357 absl::Time t;
358 } from_ts[] = {
359 {{1, 1}, absl::FromUnixSeconds(1) + absl::Nanoseconds(1)},
360 {{1, 0}, absl::FromUnixSeconds(1) + absl::ZeroDuration()},
361 {{0, 0}, absl::FromUnixSeconds(0) + absl::ZeroDuration()},
362 {{0, -1}, absl::FromUnixSeconds(0) - absl::Nanoseconds(1)},
363 {{-1, 999999999}, absl::FromUnixSeconds(0) - absl::Nanoseconds(1)},
364 {{-1, 1}, absl::FromUnixSeconds(-1) + absl::Nanoseconds(1)},
365 {{-1, 0}, absl::FromUnixSeconds(-1) + absl::ZeroDuration()},
366 {{-1, -1}, absl::FromUnixSeconds(-1) - absl::Nanoseconds(1)},
367 {{-2, 999999999}, absl::FromUnixSeconds(-1) - absl::Nanoseconds(1)},
368 };
369 for (const auto& test : from_ts) {
370 EXPECT_EQ(test.t, absl::TimeFromTimespec(test.ts));
371 }
372
373 // Tests absl::ToTimeval()/TimeFromTimeval() (same as timespec above)
374 const struct {
375 absl::Time t;
376 timeval tv;
377 } to_tv[] = {
378 {absl::FromUnixSeconds(1) + absl::Microseconds(1), {1, 1}},
379 {absl::FromUnixSeconds(1) + absl::Microseconds(1) / 2, {1, 0}},
380 {absl::FromUnixSeconds(1) + absl::ZeroDuration(), {1, 0}},
381 {absl::FromUnixSeconds(0) + absl::ZeroDuration(), {0, 0}},
382 {absl::FromUnixSeconds(0) - absl::Microseconds(1) / 2, {-1, 999999}},
383 {absl::FromUnixSeconds(0) - absl::Microseconds(1), {-1, 999999}},
384 {absl::FromUnixSeconds(-1) + absl::Microseconds(1), {-1, 1}},
385 {absl::FromUnixSeconds(-1) + absl::Microseconds(1) / 2, {-1, 0}},
386 {absl::FromUnixSeconds(-1) + absl::ZeroDuration(), {-1, 0}},
387 {absl::FromUnixSeconds(-1) - absl::Microseconds(1) / 2, {-2, 999999}},
388 };
389 for (const auto& test : to_tv) {
390 EXPECT_THAT(absl::ToTimeval(test.t), TimevalMatcher(test.tv));
391 }
392 const struct {
393 timeval tv;
394 absl::Time t;
395 } from_tv[] = {
396 {{1, 1}, absl::FromUnixSeconds(1) + absl::Microseconds(1)},
397 {{1, 0}, absl::FromUnixSeconds(1) + absl::ZeroDuration()},
398 {{0, 0}, absl::FromUnixSeconds(0) + absl::ZeroDuration()},
399 {{0, -1}, absl::FromUnixSeconds(0) - absl::Microseconds(1)},
400 {{-1, 999999}, absl::FromUnixSeconds(0) - absl::Microseconds(1)},
401 {{-1, 1}, absl::FromUnixSeconds(-1) + absl::Microseconds(1)},
402 {{-1, 0}, absl::FromUnixSeconds(-1) + absl::ZeroDuration()},
403 {{-1, -1}, absl::FromUnixSeconds(-1) - absl::Microseconds(1)},
404 {{-2, 999999}, absl::FromUnixSeconds(-1) - absl::Microseconds(1)},
405 };
406 for (const auto& test : from_tv) {
407 EXPECT_EQ(test.t, absl::TimeFromTimeval(test.tv));
408 }
409
410 // Tests flooring near negative infinity.
411 const int64_t min_plus_1 = std::numeric_limits<int64_t>::min() + 1;
412 EXPECT_EQ(min_plus_1, absl::ToUnixSeconds(absl::FromUnixSeconds(min_plus_1)));
413 EXPECT_EQ(std::numeric_limits<int64_t>::min(),
414 absl::ToUnixSeconds(absl::FromUnixSeconds(min_plus_1) -
415 absl::Nanoseconds(1) / 2));
416
417 // Tests flooring near positive infinity.
418 EXPECT_EQ(std::numeric_limits<int64_t>::max(),
419 absl::ToUnixSeconds(
420 absl::FromUnixSeconds(std::numeric_limits<int64_t>::max()) +
421 absl::Nanoseconds(1) / 2));
422 EXPECT_EQ(std::numeric_limits<int64_t>::max(),
423 absl::ToUnixSeconds(
424 absl::FromUnixSeconds(std::numeric_limits<int64_t>::max())));
425 EXPECT_EQ(std::numeric_limits<int64_t>::max() - 1,
426 absl::ToUnixSeconds(
427 absl::FromUnixSeconds(std::numeric_limits<int64_t>::max()) -
428 absl::Nanoseconds(1) / 2));
429 }
430
TEST(Time,RoundtripConversion)431 TEST(Time, RoundtripConversion) {
432 #define TEST_CONVERSION_ROUND_TRIP(SOURCE, FROM, TO, MATCHER) \
433 EXPECT_THAT(TO(FROM(SOURCE)), MATCHER(SOURCE))
434
435 // FromUnixNanos() and ToUnixNanos()
436 int64_t now_ns = absl::GetCurrentTimeNanos();
437 TEST_CONVERSION_ROUND_TRIP(-1, absl::FromUnixNanos, absl::ToUnixNanos,
438 testing::Eq);
439 TEST_CONVERSION_ROUND_TRIP(0, absl::FromUnixNanos, absl::ToUnixNanos,
440 testing::Eq);
441 TEST_CONVERSION_ROUND_TRIP(1, absl::FromUnixNanos, absl::ToUnixNanos,
442 testing::Eq);
443 TEST_CONVERSION_ROUND_TRIP(now_ns, absl::FromUnixNanos, absl::ToUnixNanos,
444 testing::Eq)
445 << now_ns;
446
447 // FromUnixMicros() and ToUnixMicros()
448 int64_t now_us = absl::GetCurrentTimeNanos() / 1000;
449 TEST_CONVERSION_ROUND_TRIP(-1, absl::FromUnixMicros, absl::ToUnixMicros,
450 testing::Eq);
451 TEST_CONVERSION_ROUND_TRIP(0, absl::FromUnixMicros, absl::ToUnixMicros,
452 testing::Eq);
453 TEST_CONVERSION_ROUND_TRIP(1, absl::FromUnixMicros, absl::ToUnixMicros,
454 testing::Eq);
455 TEST_CONVERSION_ROUND_TRIP(now_us, absl::FromUnixMicros, absl::ToUnixMicros,
456 testing::Eq)
457 << now_us;
458
459 // FromUnixMillis() and ToUnixMillis()
460 int64_t now_ms = absl::GetCurrentTimeNanos() / 1000000;
461 TEST_CONVERSION_ROUND_TRIP(-1, absl::FromUnixMillis, absl::ToUnixMillis,
462 testing::Eq);
463 TEST_CONVERSION_ROUND_TRIP(0, absl::FromUnixMillis, absl::ToUnixMillis,
464 testing::Eq);
465 TEST_CONVERSION_ROUND_TRIP(1, absl::FromUnixMillis, absl::ToUnixMillis,
466 testing::Eq);
467 TEST_CONVERSION_ROUND_TRIP(now_ms, absl::FromUnixMillis, absl::ToUnixMillis,
468 testing::Eq)
469 << now_ms;
470
471 // FromUnixSeconds() and ToUnixSeconds()
472 int64_t now_s = std::time(nullptr);
473 TEST_CONVERSION_ROUND_TRIP(-1, absl::FromUnixSeconds, absl::ToUnixSeconds,
474 testing::Eq);
475 TEST_CONVERSION_ROUND_TRIP(0, absl::FromUnixSeconds, absl::ToUnixSeconds,
476 testing::Eq);
477 TEST_CONVERSION_ROUND_TRIP(1, absl::FromUnixSeconds, absl::ToUnixSeconds,
478 testing::Eq);
479 TEST_CONVERSION_ROUND_TRIP(now_s, absl::FromUnixSeconds, absl::ToUnixSeconds,
480 testing::Eq)
481 << now_s;
482
483 // FromTimeT() and ToTimeT()
484 time_t now_time_t = std::time(nullptr);
485 TEST_CONVERSION_ROUND_TRIP(-1, absl::FromTimeT, absl::ToTimeT, testing::Eq);
486 TEST_CONVERSION_ROUND_TRIP(0, absl::FromTimeT, absl::ToTimeT, testing::Eq);
487 TEST_CONVERSION_ROUND_TRIP(1, absl::FromTimeT, absl::ToTimeT, testing::Eq);
488 TEST_CONVERSION_ROUND_TRIP(now_time_t, absl::FromTimeT, absl::ToTimeT,
489 testing::Eq)
490 << now_time_t;
491
492 // TimeFromTimeval() and absl::ToTimeval()
493 timeval tv;
494 tv.tv_sec = -1;
495 tv.tv_usec = 0;
496 TEST_CONVERSION_ROUND_TRIP(tv, absl::TimeFromTimeval, absl::ToTimeval,
497 TimevalMatcher);
498 tv.tv_sec = -1;
499 tv.tv_usec = 999999;
500 TEST_CONVERSION_ROUND_TRIP(tv, absl::TimeFromTimeval, absl::ToTimeval,
501 TimevalMatcher);
502 tv.tv_sec = 0;
503 tv.tv_usec = 0;
504 TEST_CONVERSION_ROUND_TRIP(tv, absl::TimeFromTimeval, absl::ToTimeval,
505 TimevalMatcher);
506 tv.tv_sec = 0;
507 tv.tv_usec = 1;
508 TEST_CONVERSION_ROUND_TRIP(tv, absl::TimeFromTimeval, absl::ToTimeval,
509 TimevalMatcher);
510 tv.tv_sec = 1;
511 tv.tv_usec = 0;
512 TEST_CONVERSION_ROUND_TRIP(tv, absl::TimeFromTimeval, absl::ToTimeval,
513 TimevalMatcher);
514
515 // TimeFromTimespec() and ToTimespec()
516 timespec ts;
517 ts.tv_sec = -1;
518 ts.tv_nsec = 0;
519 TEST_CONVERSION_ROUND_TRIP(ts, absl::TimeFromTimespec, absl::ToTimespec,
520 TimespecMatcher);
521 ts.tv_sec = -1;
522 ts.tv_nsec = 999999999;
523 TEST_CONVERSION_ROUND_TRIP(ts, absl::TimeFromTimespec, absl::ToTimespec,
524 TimespecMatcher);
525 ts.tv_sec = 0;
526 ts.tv_nsec = 0;
527 TEST_CONVERSION_ROUND_TRIP(ts, absl::TimeFromTimespec, absl::ToTimespec,
528 TimespecMatcher);
529 ts.tv_sec = 0;
530 ts.tv_nsec = 1;
531 TEST_CONVERSION_ROUND_TRIP(ts, absl::TimeFromTimespec, absl::ToTimespec,
532 TimespecMatcher);
533 ts.tv_sec = 1;
534 ts.tv_nsec = 0;
535 TEST_CONVERSION_ROUND_TRIP(ts, absl::TimeFromTimespec, absl::ToTimespec,
536 TimespecMatcher);
537
538 // FromUDate() and ToUDate()
539 double now_ud = absl::GetCurrentTimeNanos() / 1000000;
540 TEST_CONVERSION_ROUND_TRIP(-1.5, absl::FromUDate, absl::ToUDate,
541 testing::DoubleEq);
542 TEST_CONVERSION_ROUND_TRIP(-1, absl::FromUDate, absl::ToUDate,
543 testing::DoubleEq);
544 TEST_CONVERSION_ROUND_TRIP(-0.5, absl::FromUDate, absl::ToUDate,
545 testing::DoubleEq);
546 TEST_CONVERSION_ROUND_TRIP(0, absl::FromUDate, absl::ToUDate,
547 testing::DoubleEq);
548 TEST_CONVERSION_ROUND_TRIP(0.5, absl::FromUDate, absl::ToUDate,
549 testing::DoubleEq);
550 TEST_CONVERSION_ROUND_TRIP(1, absl::FromUDate, absl::ToUDate,
551 testing::DoubleEq);
552 TEST_CONVERSION_ROUND_TRIP(1.5, absl::FromUDate, absl::ToUDate,
553 testing::DoubleEq);
554 TEST_CONVERSION_ROUND_TRIP(now_ud, absl::FromUDate, absl::ToUDate,
555 testing::DoubleEq)
556 << std::fixed << std::setprecision(17) << now_ud;
557
558 // FromUniversal() and ToUniversal()
559 int64_t now_uni = ((719162LL * (24 * 60 * 60)) * (1000 * 1000 * 10)) +
560 (absl::GetCurrentTimeNanos() / 100);
561 TEST_CONVERSION_ROUND_TRIP(-1, absl::FromUniversal, absl::ToUniversal,
562 testing::Eq);
563 TEST_CONVERSION_ROUND_TRIP(0, absl::FromUniversal, absl::ToUniversal,
564 testing::Eq);
565 TEST_CONVERSION_ROUND_TRIP(1, absl::FromUniversal, absl::ToUniversal,
566 testing::Eq);
567 TEST_CONVERSION_ROUND_TRIP(now_uni, absl::FromUniversal, absl::ToUniversal,
568 testing::Eq)
569 << now_uni;
570
571 #undef TEST_CONVERSION_ROUND_TRIP
572 }
573
574 template <typename Duration>
MakeChronoUnixTime(const Duration & d)575 std::chrono::system_clock::time_point MakeChronoUnixTime(const Duration& d) {
576 return std::chrono::system_clock::from_time_t(0) + d;
577 }
578
TEST(Time,FromChrono)579 TEST(Time, FromChrono) {
580 EXPECT_EQ(absl::FromTimeT(-1),
581 absl::FromChrono(std::chrono::system_clock::from_time_t(-1)));
582 EXPECT_EQ(absl::FromTimeT(0),
583 absl::FromChrono(std::chrono::system_clock::from_time_t(0)));
584 EXPECT_EQ(absl::FromTimeT(1),
585 absl::FromChrono(std::chrono::system_clock::from_time_t(1)));
586
587 EXPECT_EQ(
588 absl::FromUnixMillis(-1),
589 absl::FromChrono(MakeChronoUnixTime(std::chrono::milliseconds(-1))));
590 EXPECT_EQ(absl::FromUnixMillis(0),
591 absl::FromChrono(MakeChronoUnixTime(std::chrono::milliseconds(0))));
592 EXPECT_EQ(absl::FromUnixMillis(1),
593 absl::FromChrono(MakeChronoUnixTime(std::chrono::milliseconds(1))));
594
595 // Chrono doesn't define exactly its range and precision (neither does
596 // absl::Time), so let's simply test +/- ~100 years to make sure things work.
597 const auto century_sec = 60 * 60 * 24 * 365 * int64_t{100};
598 const auto century = std::chrono::seconds(century_sec);
599 const auto chrono_future = MakeChronoUnixTime(century);
600 const auto chrono_past = MakeChronoUnixTime(-century);
601 EXPECT_EQ(absl::FromUnixSeconds(century_sec),
602 absl::FromChrono(chrono_future));
603 EXPECT_EQ(absl::FromUnixSeconds(-century_sec), absl::FromChrono(chrono_past));
604
605 // Roundtrip them both back to chrono.
606 EXPECT_EQ(chrono_future,
607 absl::ToChronoTime(absl::FromUnixSeconds(century_sec)));
608 EXPECT_EQ(chrono_past,
609 absl::ToChronoTime(absl::FromUnixSeconds(-century_sec)));
610 }
611
TEST(Time,ToChronoTime)612 TEST(Time, ToChronoTime) {
613 EXPECT_EQ(std::chrono::system_clock::from_time_t(-1),
614 absl::ToChronoTime(absl::FromTimeT(-1)));
615 EXPECT_EQ(std::chrono::system_clock::from_time_t(0),
616 absl::ToChronoTime(absl::FromTimeT(0)));
617 EXPECT_EQ(std::chrono::system_clock::from_time_t(1),
618 absl::ToChronoTime(absl::FromTimeT(1)));
619
620 EXPECT_EQ(MakeChronoUnixTime(std::chrono::milliseconds(-1)),
621 absl::ToChronoTime(absl::FromUnixMillis(-1)));
622 EXPECT_EQ(MakeChronoUnixTime(std::chrono::milliseconds(0)),
623 absl::ToChronoTime(absl::FromUnixMillis(0)));
624 EXPECT_EQ(MakeChronoUnixTime(std::chrono::milliseconds(1)),
625 absl::ToChronoTime(absl::FromUnixMillis(1)));
626
627 // Time before the Unix epoch should floor, not trunc.
628 const auto tick = absl::Nanoseconds(1) / 4;
629 EXPECT_EQ(std::chrono::system_clock::from_time_t(0) -
630 std::chrono::system_clock::duration(1),
631 absl::ToChronoTime(absl::UnixEpoch() - tick));
632 }
633
634 // Check that absl::int128 works as a std::chrono::duration representation.
TEST(Time,Chrono128)635 TEST(Time, Chrono128) {
636 // Define a std::chrono::time_point type whose time[sic]_since_epoch() is
637 // a signed 128-bit count of attoseconds. This has a range and resolution
638 // (currently) beyond those of absl::Time, and undoubtedly also beyond those
639 // of std::chrono::system_clock::time_point.
640 //
641 // Note: The to/from-chrono support should probably be updated to handle
642 // such wide representations.
643 using Timestamp =
644 std::chrono::time_point<std::chrono::system_clock,
645 std::chrono::duration<absl::int128, std::atto>>;
646
647 // Expect that we can round-trip the std::chrono::system_clock::time_point
648 // extremes through both absl::Time and Timestamp, and that Timestamp can
649 // handle the (current) absl::Time extremes.
650 //
651 // Note: We should use std::chrono::floor() instead of time_point_cast(),
652 // but floor() is only available since c++17.
653 for (const auto tp : {std::chrono::system_clock::time_point::min(),
654 std::chrono::system_clock::time_point::max()}) {
655 EXPECT_EQ(tp, absl::ToChronoTime(absl::FromChrono(tp)));
656 EXPECT_EQ(tp, std::chrono::time_point_cast<
657 std::chrono::system_clock::time_point::duration>(
658 std::chrono::time_point_cast<Timestamp::duration>(tp)));
659 }
660 Timestamp::duration::rep v = std::numeric_limits<int64_t>::min();
661 v *= Timestamp::duration::period::den;
662 auto ts = Timestamp(Timestamp::duration(v));
663 ts += std::chrono::duration<int64_t, std::atto>(0);
664 EXPECT_EQ(std::numeric_limits<int64_t>::min(),
665 ts.time_since_epoch().count() / Timestamp::duration::period::den);
666 EXPECT_EQ(0,
667 ts.time_since_epoch().count() % Timestamp::duration::period::den);
668 v = std::numeric_limits<int64_t>::max();
669 v *= Timestamp::duration::period::den;
670 ts = Timestamp(Timestamp::duration(v));
671 ts += std::chrono::duration<int64_t, std::atto>(999999999750000000);
672 EXPECT_EQ(std::numeric_limits<int64_t>::max(),
673 ts.time_since_epoch().count() / Timestamp::duration::period::den);
674 EXPECT_EQ(999999999750000000,
675 ts.time_since_epoch().count() % Timestamp::duration::period::den);
676 }
677
TEST(Time,TimeZoneAt)678 TEST(Time, TimeZoneAt) {
679 const absl::TimeZone nyc =
680 absl::time_internal::LoadTimeZone("America/New_York");
681 const std::string fmt = "%a, %e %b %Y %H:%M:%S %z (%Z)";
682
683 // A non-transition where the civil time is unique.
684 absl::CivilSecond nov01(2013, 11, 1, 8, 30, 0);
685 const auto nov01_ci = nyc.At(nov01);
686 EXPECT_EQ(absl::TimeZone::TimeInfo::UNIQUE, nov01_ci.kind);
687 EXPECT_EQ("Fri, 1 Nov 2013 08:30:00 -0400 (EDT)",
688 absl::FormatTime(fmt, nov01_ci.pre, nyc));
689 EXPECT_EQ(nov01_ci.pre, nov01_ci.trans);
690 EXPECT_EQ(nov01_ci.pre, nov01_ci.post);
691 EXPECT_EQ(nov01_ci.pre, absl::FromCivil(nov01, nyc));
692
693 // A Spring DST transition, when there is a gap in civil time
694 // and we prefer the later of the possible interpretations of a
695 // non-existent time.
696 absl::CivilSecond mar13(2011, 3, 13, 2, 15, 0);
697 const auto mar_ci = nyc.At(mar13);
698 EXPECT_EQ(absl::TimeZone::TimeInfo::SKIPPED, mar_ci.kind);
699 EXPECT_EQ("Sun, 13 Mar 2011 03:15:00 -0400 (EDT)",
700 absl::FormatTime(fmt, mar_ci.pre, nyc));
701 EXPECT_EQ("Sun, 13 Mar 2011 03:00:00 -0400 (EDT)",
702 absl::FormatTime(fmt, mar_ci.trans, nyc));
703 EXPECT_EQ("Sun, 13 Mar 2011 01:15:00 -0500 (EST)",
704 absl::FormatTime(fmt, mar_ci.post, nyc));
705 EXPECT_EQ(mar_ci.trans, absl::FromCivil(mar13, nyc));
706
707 // A Fall DST transition, when civil times are repeated and
708 // we prefer the earlier of the possible interpretations of an
709 // ambiguous time.
710 absl::CivilSecond nov06(2011, 11, 6, 1, 15, 0);
711 const auto nov06_ci = nyc.At(nov06);
712 EXPECT_EQ(absl::TimeZone::TimeInfo::REPEATED, nov06_ci.kind);
713 EXPECT_EQ("Sun, 6 Nov 2011 01:15:00 -0400 (EDT)",
714 absl::FormatTime(fmt, nov06_ci.pre, nyc));
715 EXPECT_EQ("Sun, 6 Nov 2011 01:00:00 -0500 (EST)",
716 absl::FormatTime(fmt, nov06_ci.trans, nyc));
717 EXPECT_EQ("Sun, 6 Nov 2011 01:15:00 -0500 (EST)",
718 absl::FormatTime(fmt, nov06_ci.post, nyc));
719 EXPECT_EQ(nov06_ci.pre, absl::FromCivil(nov06, nyc));
720
721 // Check that (time_t) -1 is handled correctly.
722 absl::CivilSecond minus1(1969, 12, 31, 18, 59, 59);
723 const auto minus1_cl = nyc.At(minus1);
724 EXPECT_EQ(absl::TimeZone::TimeInfo::UNIQUE, minus1_cl.kind);
725 EXPECT_EQ(-1, absl::ToTimeT(minus1_cl.pre));
726 EXPECT_EQ("Wed, 31 Dec 1969 18:59:59 -0500 (EST)",
727 absl::FormatTime(fmt, minus1_cl.pre, nyc));
728 EXPECT_EQ("Wed, 31 Dec 1969 23:59:59 +0000 (UTC)",
729 absl::FormatTime(fmt, minus1_cl.pre, absl::UTCTimeZone()));
730 }
731
732 // FromCivil(CivilSecond(year, mon, day, hour, min, sec), UTCTimeZone())
733 // has a specialized fastpath implementation, which we exercise here.
TEST(Time,FromCivilUTC)734 TEST(Time, FromCivilUTC) {
735 const absl::TimeZone utc = absl::UTCTimeZone();
736 const std::string fmt = "%a, %e %b %Y %H:%M:%S %z (%Z)";
737 const int kMax = std::numeric_limits<int>::max();
738 const int kMin = std::numeric_limits<int>::min();
739 absl::Time t;
740
741 // 292091940881 is the last positive year to use the fastpath.
742 t = absl::FromCivil(
743 absl::CivilSecond(292091940881, kMax, kMax, kMax, kMax, kMax), utc);
744 EXPECT_EQ("Fri, 25 Nov 292277026596 12:21:07 +0000 (UTC)",
745 absl::FormatTime(fmt, t, utc));
746 t = absl::FromCivil(
747 absl::CivilSecond(292091940882, kMax, kMax, kMax, kMax, kMax), utc);
748 EXPECT_EQ("infinite-future", absl::FormatTime(fmt, t, utc)); // no overflow
749
750 // -292091936940 is the last negative year to use the fastpath.
751 t = absl::FromCivil(
752 absl::CivilSecond(-292091936940, kMin, kMin, kMin, kMin, kMin), utc);
753 EXPECT_EQ("Fri, 1 Nov -292277022657 10:37:52 +0000 (UTC)",
754 absl::FormatTime(fmt, t, utc));
755 t = absl::FromCivil(
756 absl::CivilSecond(-292091936941, kMin, kMin, kMin, kMin, kMin), utc);
757 EXPECT_EQ("infinite-past", absl::FormatTime(fmt, t, utc)); // no underflow
758
759 // Check that we're counting leap years correctly.
760 t = absl::FromCivil(absl::CivilSecond(1900, 2, 28, 23, 59, 59), utc);
761 EXPECT_EQ("Wed, 28 Feb 1900 23:59:59 +0000 (UTC)",
762 absl::FormatTime(fmt, t, utc));
763 t = absl::FromCivil(absl::CivilSecond(1900, 3, 1, 0, 0, 0), utc);
764 EXPECT_EQ("Thu, 1 Mar 1900 00:00:00 +0000 (UTC)",
765 absl::FormatTime(fmt, t, utc));
766 t = absl::FromCivil(absl::CivilSecond(2000, 2, 29, 23, 59, 59), utc);
767 EXPECT_EQ("Tue, 29 Feb 2000 23:59:59 +0000 (UTC)",
768 absl::FormatTime(fmt, t, utc));
769 t = absl::FromCivil(absl::CivilSecond(2000, 3, 1, 0, 0, 0), utc);
770 EXPECT_EQ("Wed, 1 Mar 2000 00:00:00 +0000 (UTC)",
771 absl::FormatTime(fmt, t, utc));
772 }
773
TEST(Time,ToTM)774 TEST(Time, ToTM) {
775 const absl::TimeZone utc = absl::UTCTimeZone();
776
777 // Compares the results of absl::ToTM() to gmtime_r() for lots of times over
778 // the course of a few days.
779 const absl::Time start =
780 absl::FromCivil(absl::CivilSecond(2014, 1, 2, 3, 4, 5), utc);
781 const absl::Time end =
782 absl::FromCivil(absl::CivilSecond(2014, 1, 5, 3, 4, 5), utc);
783 for (absl::Time t = start; t < end; t += absl::Seconds(30)) {
784 const struct tm tm_bt = absl::ToTM(t, utc);
785 const time_t tt = absl::ToTimeT(t);
786 struct tm tm_lc;
787 #ifdef _WIN32
788 gmtime_s(&tm_lc, &tt);
789 #else
790 gmtime_r(&tt, &tm_lc);
791 #endif
792 EXPECT_EQ(tm_lc.tm_year, tm_bt.tm_year);
793 EXPECT_EQ(tm_lc.tm_mon, tm_bt.tm_mon);
794 EXPECT_EQ(tm_lc.tm_mday, tm_bt.tm_mday);
795 EXPECT_EQ(tm_lc.tm_hour, tm_bt.tm_hour);
796 EXPECT_EQ(tm_lc.tm_min, tm_bt.tm_min);
797 EXPECT_EQ(tm_lc.tm_sec, tm_bt.tm_sec);
798 EXPECT_EQ(tm_lc.tm_wday, tm_bt.tm_wday);
799 EXPECT_EQ(tm_lc.tm_yday, tm_bt.tm_yday);
800 EXPECT_EQ(tm_lc.tm_isdst, tm_bt.tm_isdst);
801
802 ASSERT_FALSE(HasFailure());
803 }
804
805 // Checks that the tm_isdst field is correct when in standard time.
806 const absl::TimeZone nyc =
807 absl::time_internal::LoadTimeZone("America/New_York");
808 absl::Time t = absl::FromCivil(absl::CivilSecond(2014, 3, 1, 0, 0, 0), nyc);
809 struct tm tm = absl::ToTM(t, nyc);
810 EXPECT_FALSE(tm.tm_isdst);
811
812 // Checks that the tm_isdst field is correct when in daylight time.
813 t = absl::FromCivil(absl::CivilSecond(2014, 4, 1, 0, 0, 0), nyc);
814 tm = absl::ToTM(t, nyc);
815 EXPECT_TRUE(tm.tm_isdst);
816
817 // Checks overflow.
818 tm = absl::ToTM(absl::InfiniteFuture(), nyc);
819 EXPECT_EQ(std::numeric_limits<int>::max() - 1900, tm.tm_year);
820 EXPECT_EQ(11, tm.tm_mon);
821 EXPECT_EQ(31, tm.tm_mday);
822 EXPECT_EQ(23, tm.tm_hour);
823 EXPECT_EQ(59, tm.tm_min);
824 EXPECT_EQ(59, tm.tm_sec);
825 EXPECT_EQ(4, tm.tm_wday);
826 EXPECT_EQ(364, tm.tm_yday);
827 EXPECT_FALSE(tm.tm_isdst);
828
829 // Checks underflow.
830 tm = absl::ToTM(absl::InfinitePast(), nyc);
831 EXPECT_EQ(std::numeric_limits<int>::min(), tm.tm_year);
832 EXPECT_EQ(0, tm.tm_mon);
833 EXPECT_EQ(1, tm.tm_mday);
834 EXPECT_EQ(0, tm.tm_hour);
835 EXPECT_EQ(0, tm.tm_min);
836 EXPECT_EQ(0, tm.tm_sec);
837 EXPECT_EQ(0, tm.tm_wday);
838 EXPECT_EQ(0, tm.tm_yday);
839 EXPECT_FALSE(tm.tm_isdst);
840 }
841
TEST(Time,FromTM)842 TEST(Time, FromTM) {
843 const absl::TimeZone nyc =
844 absl::time_internal::LoadTimeZone("America/New_York");
845
846 // Verifies that tm_isdst doesn't affect anything when the time is unique.
847 struct tm tm;
848 std::memset(&tm, 0, sizeof(tm));
849 tm.tm_year = 2014 - 1900;
850 tm.tm_mon = 6 - 1;
851 tm.tm_mday = 28;
852 tm.tm_hour = 1;
853 tm.tm_min = 2;
854 tm.tm_sec = 3;
855 tm.tm_isdst = -1;
856 absl::Time t = absl::FromTM(tm, nyc);
857 EXPECT_EQ("2014-06-28T01:02:03-04:00", absl::FormatTime(t, nyc)); // DST
858 tm.tm_isdst = 0;
859 t = absl::FromTM(tm, nyc);
860 EXPECT_EQ("2014-06-28T01:02:03-04:00", absl::FormatTime(t, nyc)); // DST
861 tm.tm_isdst = 1;
862 t = absl::FromTM(tm, nyc);
863 EXPECT_EQ("2014-06-28T01:02:03-04:00", absl::FormatTime(t, nyc)); // DST
864
865 // Adjusts tm to refer to an ambiguous time.
866 tm.tm_year = 2014 - 1900;
867 tm.tm_mon = 11 - 1;
868 tm.tm_mday = 2;
869 tm.tm_hour = 1;
870 tm.tm_min = 30;
871 tm.tm_sec = 42;
872 tm.tm_isdst = -1;
873 t = absl::FromTM(tm, nyc);
874 EXPECT_EQ("2014-11-02T01:30:42-04:00", absl::FormatTime(t, nyc)); // DST
875 tm.tm_isdst = 0;
876 t = absl::FromTM(tm, nyc);
877 EXPECT_EQ("2014-11-02T01:30:42-05:00", absl::FormatTime(t, nyc)); // STD
878 tm.tm_isdst = 1;
879 t = absl::FromTM(tm, nyc);
880 EXPECT_EQ("2014-11-02T01:30:42-04:00", absl::FormatTime(t, nyc)); // DST
881
882 // Adjusts tm to refer to a skipped time.
883 tm.tm_year = 2014 - 1900;
884 tm.tm_mon = 3 - 1;
885 tm.tm_mday = 9;
886 tm.tm_hour = 2;
887 tm.tm_min = 30;
888 tm.tm_sec = 42;
889 tm.tm_isdst = -1;
890 t = absl::FromTM(tm, nyc);
891 EXPECT_EQ("2014-03-09T03:30:42-04:00", absl::FormatTime(t, nyc)); // DST
892 tm.tm_isdst = 0;
893 t = absl::FromTM(tm, nyc);
894 EXPECT_EQ("2014-03-09T01:30:42-05:00", absl::FormatTime(t, nyc)); // STD
895 tm.tm_isdst = 1;
896 t = absl::FromTM(tm, nyc);
897 EXPECT_EQ("2014-03-09T03:30:42-04:00", absl::FormatTime(t, nyc)); // DST
898
899 // Adjusts tm to refer to a time with a year larger than 2147483647.
900 tm.tm_year = 2147483647 - 1900 + 1;
901 tm.tm_mon = 6 - 1;
902 tm.tm_mday = 28;
903 tm.tm_hour = 1;
904 tm.tm_min = 2;
905 tm.tm_sec = 3;
906 tm.tm_isdst = -1;
907 t = absl::FromTM(tm, absl::UTCTimeZone());
908 EXPECT_EQ("2147483648-06-28T01:02:03+00:00",
909 absl::FormatTime(t, absl::UTCTimeZone()));
910
911 // Adjusts tm to refer to a time with a very large month.
912 tm.tm_year = 2019 - 1900;
913 tm.tm_mon = 2147483647;
914 tm.tm_mday = 28;
915 tm.tm_hour = 1;
916 tm.tm_min = 2;
917 tm.tm_sec = 3;
918 tm.tm_isdst = -1;
919 t = absl::FromTM(tm, absl::UTCTimeZone());
920 EXPECT_EQ("178958989-08-28T01:02:03+00:00",
921 absl::FormatTime(t, absl::UTCTimeZone()));
922 }
923
TEST(Time,TMRoundTrip)924 TEST(Time, TMRoundTrip) {
925 const absl::TimeZone nyc =
926 absl::time_internal::LoadTimeZone("America/New_York");
927
928 // Test round-tripping across a skipped transition
929 absl::Time start = absl::FromCivil(absl::CivilHour(2014, 3, 9, 0), nyc);
930 absl::Time end = absl::FromCivil(absl::CivilHour(2014, 3, 9, 4), nyc);
931 for (absl::Time t = start; t < end; t += absl::Minutes(1)) {
932 struct tm tm = absl::ToTM(t, nyc);
933 absl::Time rt = absl::FromTM(tm, nyc);
934 EXPECT_EQ(rt, t);
935 }
936
937 // Test round-tripping across an ambiguous transition
938 start = absl::FromCivil(absl::CivilHour(2014, 11, 2, 0), nyc);
939 end = absl::FromCivil(absl::CivilHour(2014, 11, 2, 4), nyc);
940 for (absl::Time t = start; t < end; t += absl::Minutes(1)) {
941 struct tm tm = absl::ToTM(t, nyc);
942 absl::Time rt = absl::FromTM(tm, nyc);
943 EXPECT_EQ(rt, t);
944 }
945
946 // Test round-tripping of unique instants crossing a day boundary
947 start = absl::FromCivil(absl::CivilHour(2014, 6, 27, 22), nyc);
948 end = absl::FromCivil(absl::CivilHour(2014, 6, 28, 4), nyc);
949 for (absl::Time t = start; t < end; t += absl::Minutes(1)) {
950 struct tm tm = absl::ToTM(t, nyc);
951 absl::Time rt = absl::FromTM(tm, nyc);
952 EXPECT_EQ(rt, t);
953 }
954 }
955
TEST(Time,Range)956 TEST(Time, Range) {
957 // The API's documented range is +/- 100 billion years.
958 const absl::Duration range = absl::Hours(24) * 365.2425 * 100000000000;
959
960 // Arithmetic and comparison still works at +/-range around base values.
961 absl::Time bases[2] = {absl::UnixEpoch(), absl::Now()};
962 for (const auto base : bases) {
963 absl::Time bottom = base - range;
964 EXPECT_GT(bottom, bottom - absl::Nanoseconds(1));
965 EXPECT_LT(bottom, bottom + absl::Nanoseconds(1));
966 absl::Time top = base + range;
967 EXPECT_GT(top, top - absl::Nanoseconds(1));
968 EXPECT_LT(top, top + absl::Nanoseconds(1));
969 absl::Duration full_range = 2 * range;
970 EXPECT_EQ(full_range, top - bottom);
971 EXPECT_EQ(-full_range, bottom - top);
972 }
973 }
974
TEST(Time,Limits)975 TEST(Time, Limits) {
976 // It is an implementation detail that Time().rep_ == ZeroDuration(),
977 // and that the resolution of a Duration is 1/4 of a nanosecond.
978 const absl::Time zero;
979 const absl::Time max =
980 zero + absl::Seconds(std::numeric_limits<int64_t>::max()) +
981 absl::Nanoseconds(999999999) + absl::Nanoseconds(3) / 4;
982 const absl::Time min =
983 zero + absl::Seconds(std::numeric_limits<int64_t>::min());
984
985 // Some simple max/min bounds checks.
986 EXPECT_LT(max, absl::InfiniteFuture());
987 EXPECT_GT(min, absl::InfinitePast());
988 EXPECT_LT(zero, max);
989 EXPECT_GT(zero, min);
990 EXPECT_GE(absl::UnixEpoch(), min);
991 EXPECT_LT(absl::UnixEpoch(), max);
992
993 // Check sign of Time differences.
994 EXPECT_LT(absl::ZeroDuration(), max - zero);
995 EXPECT_LT(absl::ZeroDuration(),
996 zero - absl::Nanoseconds(1) / 4 - min); // avoid zero - min
997
998 // Arithmetic works at max - 0.25ns and min + 0.25ns.
999 EXPECT_GT(max, max - absl::Nanoseconds(1) / 4);
1000 EXPECT_LT(min, min + absl::Nanoseconds(1) / 4);
1001 }
1002
TEST(Time,ConversionSaturation)1003 TEST(Time, ConversionSaturation) {
1004 const absl::TimeZone utc = absl::UTCTimeZone();
1005 absl::Time t;
1006
1007 const auto max_time_t = std::numeric_limits<time_t>::max();
1008 const auto min_time_t = std::numeric_limits<time_t>::min();
1009 time_t tt = max_time_t - 1;
1010 t = absl::FromTimeT(tt);
1011 tt = absl::ToTimeT(t);
1012 EXPECT_EQ(max_time_t - 1, tt);
1013 t += absl::Seconds(1);
1014 tt = absl::ToTimeT(t);
1015 EXPECT_EQ(max_time_t, tt);
1016 t += absl::Seconds(1); // no effect
1017 tt = absl::ToTimeT(t);
1018 EXPECT_EQ(max_time_t, tt);
1019
1020 tt = min_time_t + 1;
1021 t = absl::FromTimeT(tt);
1022 tt = absl::ToTimeT(t);
1023 EXPECT_EQ(min_time_t + 1, tt);
1024 t -= absl::Seconds(1);
1025 tt = absl::ToTimeT(t);
1026 EXPECT_EQ(min_time_t, tt);
1027 t -= absl::Seconds(1); // no effect
1028 tt = absl::ToTimeT(t);
1029 EXPECT_EQ(min_time_t, tt);
1030
1031 const auto max_timeval_sec =
1032 std::numeric_limits<decltype(timeval::tv_sec)>::max();
1033 const auto min_timeval_sec =
1034 std::numeric_limits<decltype(timeval::tv_sec)>::min();
1035 timeval tv;
1036 tv.tv_sec = max_timeval_sec;
1037 tv.tv_usec = 999998;
1038 t = absl::TimeFromTimeval(tv);
1039 tv = absl::ToTimeval(t);
1040 EXPECT_EQ(max_timeval_sec, tv.tv_sec);
1041 EXPECT_EQ(999998, tv.tv_usec);
1042 t += absl::Microseconds(1);
1043 tv = absl::ToTimeval(t);
1044 EXPECT_EQ(max_timeval_sec, tv.tv_sec);
1045 EXPECT_EQ(999999, tv.tv_usec);
1046 t += absl::Microseconds(1); // no effect
1047 tv = absl::ToTimeval(t);
1048 EXPECT_EQ(max_timeval_sec, tv.tv_sec);
1049 EXPECT_EQ(999999, tv.tv_usec);
1050
1051 tv.tv_sec = min_timeval_sec;
1052 tv.tv_usec = 1;
1053 t = absl::TimeFromTimeval(tv);
1054 tv = absl::ToTimeval(t);
1055 EXPECT_EQ(min_timeval_sec, tv.tv_sec);
1056 EXPECT_EQ(1, tv.tv_usec);
1057 t -= absl::Microseconds(1);
1058 tv = absl::ToTimeval(t);
1059 EXPECT_EQ(min_timeval_sec, tv.tv_sec);
1060 EXPECT_EQ(0, tv.tv_usec);
1061 t -= absl::Microseconds(1); // no effect
1062 tv = absl::ToTimeval(t);
1063 EXPECT_EQ(min_timeval_sec, tv.tv_sec);
1064 EXPECT_EQ(0, tv.tv_usec);
1065
1066 const auto max_timespec_sec =
1067 std::numeric_limits<decltype(timespec::tv_sec)>::max();
1068 const auto min_timespec_sec =
1069 std::numeric_limits<decltype(timespec::tv_sec)>::min();
1070 timespec ts;
1071 ts.tv_sec = max_timespec_sec;
1072 ts.tv_nsec = 999999998;
1073 t = absl::TimeFromTimespec(ts);
1074 ts = absl::ToTimespec(t);
1075 EXPECT_EQ(max_timespec_sec, ts.tv_sec);
1076 EXPECT_EQ(999999998, ts.tv_nsec);
1077 t += absl::Nanoseconds(1);
1078 ts = absl::ToTimespec(t);
1079 EXPECT_EQ(max_timespec_sec, ts.tv_sec);
1080 EXPECT_EQ(999999999, ts.tv_nsec);
1081 t += absl::Nanoseconds(1); // no effect
1082 ts = absl::ToTimespec(t);
1083 EXPECT_EQ(max_timespec_sec, ts.tv_sec);
1084 EXPECT_EQ(999999999, ts.tv_nsec);
1085
1086 ts.tv_sec = min_timespec_sec;
1087 ts.tv_nsec = 1;
1088 t = absl::TimeFromTimespec(ts);
1089 ts = absl::ToTimespec(t);
1090 EXPECT_EQ(min_timespec_sec, ts.tv_sec);
1091 EXPECT_EQ(1, ts.tv_nsec);
1092 t -= absl::Nanoseconds(1);
1093 ts = absl::ToTimespec(t);
1094 EXPECT_EQ(min_timespec_sec, ts.tv_sec);
1095 EXPECT_EQ(0, ts.tv_nsec);
1096 t -= absl::Nanoseconds(1); // no effect
1097 ts = absl::ToTimespec(t);
1098 EXPECT_EQ(min_timespec_sec, ts.tv_sec);
1099 EXPECT_EQ(0, ts.tv_nsec);
1100
1101 // Checks how TimeZone::At() saturates on infinities.
1102 auto ci = utc.At(absl::InfiniteFuture());
1103 EXPECT_CIVIL_INFO(ci, std::numeric_limits<int64_t>::max(), 12, 31, 23, 59, 59,
1104 0, false);
1105 EXPECT_EQ(absl::InfiniteDuration(), ci.subsecond);
1106 EXPECT_EQ(absl::Weekday::thursday, absl::GetWeekday(ci.cs));
1107 EXPECT_EQ(365, absl::GetYearDay(ci.cs));
1108 EXPECT_STREQ("-00", ci.zone_abbr); // artifact of TimeZone::At()
1109 ci = utc.At(absl::InfinitePast());
1110 EXPECT_CIVIL_INFO(ci, std::numeric_limits<int64_t>::min(), 1, 1, 0, 0, 0, 0,
1111 false);
1112 EXPECT_EQ(-absl::InfiniteDuration(), ci.subsecond);
1113 EXPECT_EQ(absl::Weekday::sunday, absl::GetWeekday(ci.cs));
1114 EXPECT_EQ(1, absl::GetYearDay(ci.cs));
1115 EXPECT_STREQ("-00", ci.zone_abbr); // artifact of TimeZone::At()
1116
1117 // Approach the maximal Time value from below.
1118 t = absl::FromCivil(absl::CivilSecond(292277026596, 12, 4, 15, 30, 6), utc);
1119 EXPECT_EQ("292277026596-12-04T15:30:06+00:00",
1120 absl::FormatTime(absl::RFC3339_full, t, utc));
1121 t = absl::FromCivil(absl::CivilSecond(292277026596, 12, 4, 15, 30, 7), utc);
1122 EXPECT_EQ("292277026596-12-04T15:30:07+00:00",
1123 absl::FormatTime(absl::RFC3339_full, t, utc));
1124 EXPECT_EQ(
1125 absl::UnixEpoch() + absl::Seconds(std::numeric_limits<int64_t>::max()),
1126 t);
1127
1128 // Checks that we can also get the maximal Time value for a far-east zone.
1129 const absl::TimeZone plus14 = absl::FixedTimeZone(14 * 60 * 60);
1130 t = absl::FromCivil(absl::CivilSecond(292277026596, 12, 5, 5, 30, 7), plus14);
1131 EXPECT_EQ("292277026596-12-05T05:30:07+14:00",
1132 absl::FormatTime(absl::RFC3339_full, t, plus14));
1133 EXPECT_EQ(
1134 absl::UnixEpoch() + absl::Seconds(std::numeric_limits<int64_t>::max()),
1135 t);
1136
1137 // One second later should push us to infinity.
1138 t = absl::FromCivil(absl::CivilSecond(292277026596, 12, 4, 15, 30, 8), utc);
1139 EXPECT_EQ("infinite-future", absl::FormatTime(absl::RFC3339_full, t, utc));
1140
1141 // Approach the minimal Time value from above.
1142 t = absl::FromCivil(absl::CivilSecond(-292277022657, 1, 27, 8, 29, 53), utc);
1143 EXPECT_EQ("-292277022657-01-27T08:29:53+00:00",
1144 absl::FormatTime(absl::RFC3339_full, t, utc));
1145 t = absl::FromCivil(absl::CivilSecond(-292277022657, 1, 27, 8, 29, 52), utc);
1146 EXPECT_EQ("-292277022657-01-27T08:29:52+00:00",
1147 absl::FormatTime(absl::RFC3339_full, t, utc));
1148 EXPECT_EQ(
1149 absl::UnixEpoch() + absl::Seconds(std::numeric_limits<int64_t>::min()),
1150 t);
1151
1152 // Checks that we can also get the minimal Time value for a far-west zone.
1153 const absl::TimeZone minus12 = absl::FixedTimeZone(-12 * 60 * 60);
1154 t = absl::FromCivil(absl::CivilSecond(-292277022657, 1, 26, 20, 29, 52),
1155 minus12);
1156 EXPECT_EQ("-292277022657-01-26T20:29:52-12:00",
1157 absl::FormatTime(absl::RFC3339_full, t, minus12));
1158 EXPECT_EQ(
1159 absl::UnixEpoch() + absl::Seconds(std::numeric_limits<int64_t>::min()),
1160 t);
1161
1162 // One second before should push us to -infinity.
1163 t = absl::FromCivil(absl::CivilSecond(-292277022657, 1, 27, 8, 29, 51), utc);
1164 EXPECT_EQ("infinite-past", absl::FormatTime(absl::RFC3339_full, t, utc));
1165 }
1166
1167 // In zones with POSIX-style recurring rules we use special logic to
1168 // handle conversions in the distant future. Here we check the limits
1169 // of those conversions, particularly with respect to integer overflow.
TEST(Time,ExtendedConversionSaturation)1170 TEST(Time, ExtendedConversionSaturation) {
1171 const absl::TimeZone syd =
1172 absl::time_internal::LoadTimeZone("Australia/Sydney");
1173 const absl::TimeZone nyc =
1174 absl::time_internal::LoadTimeZone("America/New_York");
1175 const absl::Time max =
1176 absl::FromUnixSeconds(std::numeric_limits<int64_t>::max());
1177 absl::TimeZone::CivilInfo ci;
1178 absl::Time t;
1179
1180 // The maximal time converted in each zone.
1181 ci = syd.At(max);
1182 EXPECT_CIVIL_INFO(ci, 292277026596, 12, 5, 2, 30, 7, 39600, true);
1183 t = absl::FromCivil(absl::CivilSecond(292277026596, 12, 5, 2, 30, 7), syd);
1184 EXPECT_EQ(max, t);
1185 ci = nyc.At(max);
1186 EXPECT_CIVIL_INFO(ci, 292277026596, 12, 4, 10, 30, 7, -18000, false);
1187 t = absl::FromCivil(absl::CivilSecond(292277026596, 12, 4, 10, 30, 7), nyc);
1188 EXPECT_EQ(max, t);
1189
1190 // One second later should push us to infinity.
1191 t = absl::FromCivil(absl::CivilSecond(292277026596, 12, 5, 2, 30, 8), syd);
1192 EXPECT_EQ(absl::InfiniteFuture(), t);
1193 t = absl::FromCivil(absl::CivilSecond(292277026596, 12, 4, 10, 30, 8), nyc);
1194 EXPECT_EQ(absl::InfiniteFuture(), t);
1195
1196 // And we should stick there.
1197 t = absl::FromCivil(absl::CivilSecond(292277026596, 12, 5, 2, 30, 9), syd);
1198 EXPECT_EQ(absl::InfiniteFuture(), t);
1199 t = absl::FromCivil(absl::CivilSecond(292277026596, 12, 4, 10, 30, 9), nyc);
1200 EXPECT_EQ(absl::InfiniteFuture(), t);
1201
1202 // All the way up to a saturated date/time, without overflow.
1203 t = absl::FromCivil(absl::CivilSecond::max(), syd);
1204 EXPECT_EQ(absl::InfiniteFuture(), t);
1205 t = absl::FromCivil(absl::CivilSecond::max(), nyc);
1206 EXPECT_EQ(absl::InfiniteFuture(), t);
1207 }
1208
TEST(Time,FromCivilAlignment)1209 TEST(Time, FromCivilAlignment) {
1210 const absl::TimeZone utc = absl::UTCTimeZone();
1211 const absl::CivilSecond cs(2015, 2, 3, 4, 5, 6);
1212 absl::Time t = absl::FromCivil(cs, utc);
1213 EXPECT_EQ("2015-02-03T04:05:06+00:00", absl::FormatTime(t, utc));
1214 t = absl::FromCivil(absl::CivilMinute(cs), utc);
1215 EXPECT_EQ("2015-02-03T04:05:00+00:00", absl::FormatTime(t, utc));
1216 t = absl::FromCivil(absl::CivilHour(cs), utc);
1217 EXPECT_EQ("2015-02-03T04:00:00+00:00", absl::FormatTime(t, utc));
1218 t = absl::FromCivil(absl::CivilDay(cs), utc);
1219 EXPECT_EQ("2015-02-03T00:00:00+00:00", absl::FormatTime(t, utc));
1220 t = absl::FromCivil(absl::CivilMonth(cs), utc);
1221 EXPECT_EQ("2015-02-01T00:00:00+00:00", absl::FormatTime(t, utc));
1222 t = absl::FromCivil(absl::CivilYear(cs), utc);
1223 EXPECT_EQ("2015-01-01T00:00:00+00:00", absl::FormatTime(t, utc));
1224 }
1225
TEST(Time,LegacyDateTime)1226 TEST(Time, LegacyDateTime) {
1227 const absl::TimeZone utc = absl::UTCTimeZone();
1228 const std::string ymdhms = "%Y-%m-%d %H:%M:%S";
1229 const int kMax = std::numeric_limits<int>::max();
1230 const int kMin = std::numeric_limits<int>::min();
1231 absl::Time t;
1232
1233 t = absl::FromDateTime(std::numeric_limits<absl::civil_year_t>::max(), kMax,
1234 kMax, kMax, kMax, kMax, utc);
1235 EXPECT_EQ("infinite-future",
1236 absl::FormatTime(ymdhms, t, utc)); // no overflow
1237 t = absl::FromDateTime(std::numeric_limits<absl::civil_year_t>::min(), kMin,
1238 kMin, kMin, kMin, kMin, utc);
1239 EXPECT_EQ("infinite-past", absl::FormatTime(ymdhms, t, utc)); // no overflow
1240
1241 // Check normalization.
1242 EXPECT_TRUE(absl::ConvertDateTime(2013, 10, 32, 8, 30, 0, utc).normalized);
1243 t = absl::FromDateTime(2015, 1, 1, 0, 0, 60, utc);
1244 EXPECT_EQ("2015-01-01 00:01:00", absl::FormatTime(ymdhms, t, utc));
1245 t = absl::FromDateTime(2015, 1, 1, 0, 60, 0, utc);
1246 EXPECT_EQ("2015-01-01 01:00:00", absl::FormatTime(ymdhms, t, utc));
1247 t = absl::FromDateTime(2015, 1, 1, 24, 0, 0, utc);
1248 EXPECT_EQ("2015-01-02 00:00:00", absl::FormatTime(ymdhms, t, utc));
1249 t = absl::FromDateTime(2015, 1, 32, 0, 0, 0, utc);
1250 EXPECT_EQ("2015-02-01 00:00:00", absl::FormatTime(ymdhms, t, utc));
1251 t = absl::FromDateTime(2015, 13, 1, 0, 0, 0, utc);
1252 EXPECT_EQ("2016-01-01 00:00:00", absl::FormatTime(ymdhms, t, utc));
1253 t = absl::FromDateTime(2015, 13, 32, 60, 60, 60, utc);
1254 EXPECT_EQ("2016-02-03 13:01:00", absl::FormatTime(ymdhms, t, utc));
1255 t = absl::FromDateTime(2015, 1, 1, 0, 0, -1, utc);
1256 EXPECT_EQ("2014-12-31 23:59:59", absl::FormatTime(ymdhms, t, utc));
1257 t = absl::FromDateTime(2015, 1, 1, 0, -1, 0, utc);
1258 EXPECT_EQ("2014-12-31 23:59:00", absl::FormatTime(ymdhms, t, utc));
1259 t = absl::FromDateTime(2015, 1, 1, -1, 0, 0, utc);
1260 EXPECT_EQ("2014-12-31 23:00:00", absl::FormatTime(ymdhms, t, utc));
1261 t = absl::FromDateTime(2015, 1, -1, 0, 0, 0, utc);
1262 EXPECT_EQ("2014-12-30 00:00:00", absl::FormatTime(ymdhms, t, utc));
1263 t = absl::FromDateTime(2015, -1, 1, 0, 0, 0, utc);
1264 EXPECT_EQ("2014-11-01 00:00:00", absl::FormatTime(ymdhms, t, utc));
1265 t = absl::FromDateTime(2015, -1, -1, -1, -1, -1, utc);
1266 EXPECT_EQ("2014-10-29 22:58:59", absl::FormatTime(ymdhms, t, utc));
1267 }
1268
TEST(Time,NextTransitionUTC)1269 TEST(Time, NextTransitionUTC) {
1270 const auto tz = absl::UTCTimeZone();
1271 absl::TimeZone::CivilTransition trans;
1272
1273 auto t = absl::InfinitePast();
1274 EXPECT_FALSE(tz.NextTransition(t, &trans));
1275
1276 t = absl::InfiniteFuture();
1277 EXPECT_FALSE(tz.NextTransition(t, &trans));
1278 }
1279
TEST(Time,PrevTransitionUTC)1280 TEST(Time, PrevTransitionUTC) {
1281 const auto tz = absl::UTCTimeZone();
1282 absl::TimeZone::CivilTransition trans;
1283
1284 auto t = absl::InfiniteFuture();
1285 EXPECT_FALSE(tz.PrevTransition(t, &trans));
1286
1287 t = absl::InfinitePast();
1288 EXPECT_FALSE(tz.PrevTransition(t, &trans));
1289 }
1290
TEST(Time,NextTransitionNYC)1291 TEST(Time, NextTransitionNYC) {
1292 const auto tz = absl::time_internal::LoadTimeZone("America/New_York");
1293 absl::TimeZone::CivilTransition trans;
1294
1295 auto t = absl::FromCivil(absl::CivilSecond(2018, 6, 30, 0, 0, 0), tz);
1296 EXPECT_TRUE(tz.NextTransition(t, &trans));
1297 EXPECT_EQ(absl::CivilSecond(2018, 11, 4, 2, 0, 0), trans.from);
1298 EXPECT_EQ(absl::CivilSecond(2018, 11, 4, 1, 0, 0), trans.to);
1299
1300 t = absl::InfiniteFuture();
1301 EXPECT_FALSE(tz.NextTransition(t, &trans));
1302
1303 t = absl::InfinitePast();
1304 EXPECT_TRUE(tz.NextTransition(t, &trans));
1305 if (trans.from == absl::CivilSecond(1918, 03, 31, 2, 0, 0)) {
1306 // It looks like the tzdata is only 32 bit (probably macOS),
1307 // which bottoms out at 1901-12-13T20:45:52+00:00.
1308 EXPECT_EQ(absl::CivilSecond(1918, 3, 31, 3, 0, 0), trans.to);
1309 } else {
1310 EXPECT_EQ(absl::CivilSecond(1883, 11, 18, 12, 3, 58), trans.from);
1311 EXPECT_EQ(absl::CivilSecond(1883, 11, 18, 12, 0, 0), trans.to);
1312 }
1313 }
1314
TEST(Time,PrevTransitionNYC)1315 TEST(Time, PrevTransitionNYC) {
1316 const auto tz = absl::time_internal::LoadTimeZone("America/New_York");
1317 absl::TimeZone::CivilTransition trans;
1318
1319 auto t = absl::FromCivil(absl::CivilSecond(2018, 6, 30, 0, 0, 0), tz);
1320 EXPECT_TRUE(tz.PrevTransition(t, &trans));
1321 EXPECT_EQ(absl::CivilSecond(2018, 3, 11, 2, 0, 0), trans.from);
1322 EXPECT_EQ(absl::CivilSecond(2018, 3, 11, 3, 0, 0), trans.to);
1323
1324 t = absl::InfinitePast();
1325 EXPECT_FALSE(tz.PrevTransition(t, &trans));
1326
1327 t = absl::InfiniteFuture();
1328 EXPECT_TRUE(tz.PrevTransition(t, &trans));
1329 // We have a transition but we don't know which one.
1330 }
1331
TEST(Time,AbslStringify)1332 TEST(Time, AbslStringify) {
1333 // FormatTime is already well tested, so just use one test case here to
1334 // verify that StrFormat("%v", t) works as expected.
1335 absl::Time t = absl::Now();
1336 EXPECT_EQ(absl::StrFormat("%v", t), absl::FormatTime(t));
1337 }
1338
TEST(Time,SupportsHash)1339 TEST(Time, SupportsHash) {
1340 EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly({
1341 absl::UTCTimeZone(),
1342 absl::FixedTimeZone(-8 * 60 * 60),
1343 absl::UTCTimeZone(),
1344 }));
1345
1346 EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly({
1347 absl::Now(),
1348 absl::UnixEpoch(),
1349 absl::UnixEpoch() + absl::Seconds(60),
1350 absl::UnixEpoch() + absl::Minutes(1),
1351 absl::InfiniteFuture(),
1352 absl::InfinitePast(),
1353 }));
1354
1355 EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly({
1356 absl::Seconds(1),
1357 absl::Seconds(60),
1358 absl::Minutes(1),
1359 absl::InfiniteDuration(),
1360 -absl::InfiniteDuration(),
1361 }));
1362 }
1363
1364 } // namespace
1365