In some cases the license-identification header was missing, so I added that as well. Replaced the remaining headers that specifically identified "Versions 3.13.7 and higher". Makefiles and the build system were deliberately excluded.
290 lines
9.1 KiB
C++
290 lines
9.1 KiB
C++
/*************************************************************************\
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* Copyright (c) 2006 UChicago Argonne LLC, as Operator of Argonne
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* National Laboratory.
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* Copyright (c) 2002 The Regents of the University of California, as
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* Operator of Los Alamos National Laboratory.
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* SPDX-License-Identifier: EPICS
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* EPICS BASE is distributed subject to a Software License Agreement found
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* in file LICENSE that is included with this distribution.
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\*************************************************************************/
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/*
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* Authors: Jeff Hill, Marty Kraimer and Andrew Johnson
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*/
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#include <cstddef>
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#include <cstdio>
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#include <ctime>
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#include <cmath>
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#include <climits>
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#include <cstring>
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#include "epicsTime.h"
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#include "epicsThread.h"
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#include "errlog.h"
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#include "epicsUnitTest.h"
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#include "testMain.h"
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using namespace std;
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/* The functionality of the old invalidFormatTest () and badNanosecTest ()
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* routines is incorporated into epicsTimeTest () below.
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*/
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struct l_fp { /* NTP time stamp */
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epicsUInt32 l_ui; /* sec past NTP epoch */
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epicsUInt32 l_uf; /* fractional seconds */
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};
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static const unsigned mSecPerSec = 1000u;
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static const unsigned uSecPerSec = 1000u * mSecPerSec;
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static const unsigned nSecPerSec = 1000u * uSecPerSec;
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static const double precisionEPICS = 1.0 / nSecPerSec;
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static void crossCheck(double delay)
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{
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double mindelta = 2*epicsMonotonicResolution()*1e-9,
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tres = epicsThreadSleepQuantum();
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epicsUInt64 A = epicsMonotonicGet();
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epicsThreadSleep(delay);
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epicsUInt64 B = epicsMonotonicGet();
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double actual = (B-A)*1e-9, percent;
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if(mindelta<tres*2)
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mindelta = tres*2;
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if(delay<mindelta)
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delay = mindelta;
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percent = (delay-actual)/delay*100.0;
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testOk(fabs(percent)<1000.0, "crossCheck(%f) actual %f (%f %%)",
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delay, actual, percent);
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}
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static void testMonotonic()
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{
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crossCheck(2.1); /* greater than 2 so that seconds value is different */
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crossCheck(0.1);
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crossCheck(0.01);
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crossCheck(0.001);
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crossCheck(epicsThreadSleepQuantum());
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testDiag("Resolution %u ns", (unsigned)epicsMonotonicResolution());
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epicsUInt64 A = epicsMonotonicGet();
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epicsThreadSleep(0.0);
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epicsUInt64 B = epicsMonotonicGet();
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testDiag("epicsThreadSleep(0.0) Delta %u ns", (unsigned)(B-A));
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A = epicsMonotonicGet();
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B = epicsMonotonicGet();
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testDiag("Small Delta %u ns", (unsigned)(B-A));
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}
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MAIN(epicsTimeTest)
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{
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const int wasteTime = 100000;
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const int nTimes = 10;
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testPlan(22 + nTimes * 19);
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try {
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const epicsTimeStamp epochTS = {0, 0};
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epicsTime epochET = epochTS;
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struct gm_tm_nano_sec epicsEpoch = epochET;
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testOk(epicsEpoch.ansi_tm.tm_sec == 0 &&
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epicsEpoch.ansi_tm.tm_min == 0 &&
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epicsEpoch.ansi_tm.tm_hour == 0 &&
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epicsEpoch.ansi_tm.tm_yday == 0 &&
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epicsEpoch.ansi_tm.tm_year == 90,
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"epicsTime_gmtime() for EPICS epoch");
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}
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catch ( ... ) {
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testFail("epicsTime_gmtime() failed");
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testAbort("Can't continue, check your OS!");
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}
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{ // badNanosecTest
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static const char * pFormat = "%a %b %d %Y %H:%M:%S.%4f";
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try {
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const epicsTimeStamp badTS = {1, 1000000000};
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epicsTime ts(badTS);
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char buf [32];
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ts.strftime(buf, sizeof(buf), pFormat);
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testFail("nanosecond overflow returned \"%s\"", buf);
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}
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catch ( ... ) {
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testPass("nanosecond overflow throws");
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}
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}
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{ // strftime() output
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char buf[80];
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epicsTime et;
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const char * pFormat = "%Y-%m-%d %H:%M:%S.%f";
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et.strftime(buf, sizeof(buf), pFormat);
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testOk(strcmp(buf, "<undefined>") == 0, "undefined => '%s'", buf);
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// This is Noon GMT, when all timezones have the same date
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const epicsTimeStamp tTS = {12*60*60, 98765432};
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et = tTS;
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pFormat = "%Y-%m-%d %S.%09f"; // %H and %M change with timezone
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et.strftime(buf, sizeof(buf), pFormat);
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testOk(strcmp(buf, "1990-01-01 00.098765432") == 0, "'%s' => '%s'", pFormat, buf);
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pFormat = "%S.%03f";
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et.strftime(buf, sizeof(buf), pFormat);
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testOk(strcmp(buf, "00.099") == 0, "'%s' => '%s'", pFormat, buf);
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pFormat = "%S.%04f";
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et.strftime(buf, sizeof(buf), pFormat);
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testOk(strcmp(buf, "00.0988") == 0, "'%s' => '%s'", pFormat, buf);
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pFormat = "%S.%05f";
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et.strftime(buf, sizeof(buf), pFormat);
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testOk(strcmp(buf, "00.09877") == 0, "'%s' => '%s'", pFormat, buf);
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pFormat = "%S.%05f %S.%05f";
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et.strftime(buf, sizeof(buf), pFormat);
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testOk(strcmp(buf, "00.09877 00.09877") == 0, "'%s' => '%s'", pFormat, buf);
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char smbuf[5];
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pFormat = "%S.%05f";
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et.strftime(smbuf, sizeof(smbuf), pFormat);
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testOk(strcmp(smbuf, "00.*") == 0, "'%s' => '%s'", pFormat, smbuf);
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pFormat = "%S.%03f";
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(et + 0.9).strftime(buf, sizeof(buf), pFormat);
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testOk(strcmp(buf, "00.999") == 0, "0.998765 => '%s'", buf);
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pFormat = "%S.%03f";
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(et + 0.901).strftime(buf, sizeof(buf), pFormat);
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testOk(strcmp(buf, "00.999") == 0, "0.999765 => '%s'", buf);
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pFormat = "%%S.%%05f";
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et.strftime(buf, sizeof(buf), pFormat);
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testOk(strcmp(buf, "%S.%05f") == 0, "'%s' => '%s'", pFormat, buf);
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char bigBuf [512];
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memset(bigBuf, '\a', sizeof(bigBuf));
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bigBuf[ sizeof(bigBuf) - 1] = '\0';
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et.strftime(buf, sizeof(buf), bigBuf);
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testOk(strcmp(buf, "<invalid format>") == 0, "bad format => '%s'", buf);
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}
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epicsTime now;
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try {
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now = epicsTime::getCurrent();
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testPass("default time provider");
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}
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catch ( ... ) {
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testFail("epicsTime::getCurrent() throws");
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testAbort("Can't continue, check your time provider");
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}
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{
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l_fp ntp = now;
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epicsTime tsf = ntp;
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const double diff = fabs(tsf - now);
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// the difference in the precision of the two time formats
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static const double precisionNTP = 1.0 / (1.0 + 0xffffffff);
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testOk1(diff <= precisionEPICS + precisionNTP);
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}
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testDiag("Running %d loops", nTimes);
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const epicsTime begin = epicsTime::getCurrent();
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for (int loop = 0; loop < nTimes; ++loop) {
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for (int i = 0; i < wasteTime; ++i) {
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now = epicsTime::getCurrent();
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}
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const double diff = now - begin;
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if (loop == 0) {
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testDiag ("%d calls to epicsTime::getCurrent() "
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"averaged %6.3f usec each", wasteTime,
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diff * 1e6 / wasteTime);
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}
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epicsTime copy = now;
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testOk1(copy == now);
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testOk1(copy <= now);
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testOk1(copy >= now);
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testOk1(now > begin);
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testOk1(now >= begin);
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testOk1(begin != now);
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testOk1(begin < now);
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testOk1(begin <= now);
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testOk1(now - now == 0);
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testOk(fabs((now - begin) - diff) < precisionEPICS * 0.01,
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"now - begin ~= diff");
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testOk1(begin + 0 == begin);
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testOk1(begin + diff == now);
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testOk1(now - 0 == now);
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testOk1(now - diff == begin);
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epicsTime end = begin;
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end += diff;
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testOk(end == now, "(begin += diff) == now");
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end = now;
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end -= diff;
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testOk(end == begin, "(now -= diff) == begin");
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// test struct tm round-trip conversion
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local_tm_nano_sec ansiDate = begin;
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epicsTime beginANSI = ansiDate;
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testOk1(beginANSI + diff == now);
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// test struct gmtm round-trip conversion
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gm_tm_nano_sec ansiGmDate = begin;
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epicsTime beginGMANSI = ansiGmDate;
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testOk1(beginGMANSI + diff == now);
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// test struct timespec round-trip conversion
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struct timespec ts = begin;
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epicsTime beginTS = ts;
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testOk1(beginTS + diff == now);
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}
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epicsTime ten_years_hence;
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try {
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now = epicsTime::getCurrent();
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ten_years_hence = now + 60 * 60 * 24 * 3652.5;
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testPass("epicsTime can represent 10 years hence");
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}
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catch ( ... ) {
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testFail("epicsTime exception for value 10 years hence");
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}
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try {
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/* This test exists because in libCom/osi/os/posix/osdTime.cpp
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* the convertDoubleToWakeTime() routine limits the timeout delay
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* to 10 years. libCom/timer/timerQueue.cpp returns DBL_MAX for
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* queues with no timers present, and convertDoubleToWakeTime()
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* has to return an absolute Posix timestamp. On 2028-01-19 any
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* systems that still implement time_t as a signed 32-bit integer
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* will be unable to represent that timestamp, so this will fail.
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*/
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time_t_wrapper os_time_t = ten_years_hence;
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epicsTime then = os_time_t; // No fractional seconds
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double delta = ten_years_hence - then;
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testOk(delta >= 0 && delta < 1.0,
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"OS time_t can represent 10 years hence");
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}
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catch ( ... ) {
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testFail("OS time_t conversion exception for value 10 years hence");
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}
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testMonotonic();
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return testDone();
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}
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