106

How do I get a uint unix timestamp in C++? I've googled a bit and it seems that most methods are looking for more convoluted ways to represent time. Can't I just get it as a uint?

8 Answers 8

147

C++20 introduced a guarantee that time_since_epoch is relative to the UNIX epoch, and cppreference.com gives an example that I've distilled to the relevant code, and changed to units of seconds rather than hours:

#include <iostream>
#include <chrono>
 
int main()
{
    const auto p1 = std::chrono::system_clock::now();
 
    std::cout << "seconds since epoch: "
              << std::chrono::duration_cast<std::chrono::seconds>(
                   p1.time_since_epoch()).count() << '\n';
}

Using C++17 or earlier, time() is the simplest function - seconds since Epoch, which for Linux and UNIX at least would be the UNIX epoch. Linux manpage here.

The cppreference page linked above gives this example:

#include <ctime>
#include <iostream>
 
int main()
{
    std::time_t result = std::time(nullptr);
    std::cout << std::asctime(std::localtime(&result))
              << result << " seconds since the Epoch\n";
}
6
  • 6
    "Epoch" is of course the Unix eproch on Unix and Linux, but that's not universal.
    – MSalters
    May 17, 2011 at 8:09
  • 2
    Note that std::chrono::seconds is defined as duration</*signed integer type of at least 35 bits*/>. So e.g. a 32-bit int might not be enough.
    – Paul
    Jul 14, 2021 at 9:01
  • please change c++20 to c++11.
    – socketpair
    Mar 26, 2023 at 20:25
  • @socketpair: do you have any documentation to support the change? Mar 27, 2023 at 0:28
  • 3
    @socketpair: the function is supported since C++11, but it was originally relative to an unspecified epoch (cppreference just says "the clock's epoch"). Since C++20 it's been required to be relative to the UNIX epoch (0 UTC 1 Jan 1970). This distinction isn't discussed on the cppreference page. Oct 17, 2023 at 0:30
54
#include <iostream>
#include <ctime>

int main()
{
    std::time_t t = std::time(0);  // t is an integer type
    std::cout << t << " seconds since 01-Jan-1970\n";
    return 0;
}
1
  • 4
    This assumes that std::time() gives you seconds since 1970. That's true on a lot of systems (POSIX and Windows, I believe), but it's not guaranteed by the language standard. Jun 24, 2016 at 2:44
19

The most common advice is wrong, you can't just rely on time(). That's used for relative timing: ISO C++ doesn't specify that 1970-01-01T00:00Z is time_t(0)

What's worse is that you can't easily figure it out, either. Sure, you can find the calendar date of time_t(0) with gmtime, but what are you going to do if that's 2000-01-01T00:00Z ? How many seconds were there between 1970-01-01T00:00Z and 2000-01-01T00:00Z? It's certainly no multiple of 60, due to leap seconds.

5
  • 1
    "How do I get a uint unix timestamp in C++?" - given - as you've said - you can call gmtime() later to get a readable representation of whatever that timestamp encodes, what functionality requested in the question isn't satisfied by time(), regardless of the reference date or suitability for interval calculations? Aug 23, 2012 at 6:58
  • 3
    To get a UNIX timestamp on a non-UNIX system, you have to know the difference (in seconds) between the local epoch and 1970-01-01T00:00Z. There's just no method which does that.
    – MSalters
    Aug 23, 2012 at 7:48
  • For some reason I got the impression the question was for code on a UNIX (or Linux etc) machine, but now I see where you're coming from. Curious: have you found any actual system where time_t(0) wasn't 1970-01-01T00:00Z? Would be but a couple minutes work to work out an offset on any given system (take the non-UNIX time_t(0) and get a time_t for it on a UNIX system), but thanks for explaining your concern. Aug 23, 2012 at 23:35
  • 7
    For VS its UNIX time; MSDN states: The time function returns the number of seconds elapsed since midnight (00:00:00), January 1, 1970, Coordinated Universal Time (UTC), according to the system clock. msdn.microsoft.com/en-us/library/1f4c8f33.aspx Mar 8, 2014 at 8:15
  • 2
    @TonyD: IBM systems apparently are an exception. Not really a surprise since they were in the computer business well before 1-1-1970.
    – MSalters
    May 8, 2015 at 12:02
14

As this is the first result on google and there's no C++20 answer yet, here's how to use std::chrono to do this:

#include <chrono>

//...

using namespace std::chrono;
int64_t timestamp = duration_cast<milliseconds>(system_clock::now().time_since_epoch()).count();

In versions of C++ before 20, system_clock's epoch being Unix epoch is a de-facto convention, but it's not standardized. If you're not on C++20, use at your own risk.

1
12

I created a global define with more information:

#include <iostream>
#include <ctime>
#include <iomanip>
    
#define __FILENAME__ (__builtin_strrchr(__FILE__, '/') ? __builtin_strrchr(__FILE__, '/') + 1 : __FILE__)    // only show filename and not it's path (less clutter)
#define INFO std::cout << std::put_time(std::localtime(&time_now), "%y-%m-%d %OH:%OM:%OS") << " [INFO] " << __FILENAME__ << "(" << __FUNCTION__ << ":" << __LINE__ << ") >> "
#define ERROR std::cout << std::put_time(std::localtime(&time_now), "%y-%m-%d %OH:%OM:%OS") << " [ERROR] " << __FILENAME__ << "(" << __FUNCTION__ << ":" << __LINE__ << ") >> "
    
static std::time_t time_now = std::time(nullptr);

Use it like this:

INFO << "Hello world" << std::endl;
ERROR << "Goodbye world" << std::endl;

Sample output:

16-06-23 21:33:19 [INFO] main.cpp(main:6) >> Hello world
16-06-23 21:33:19 [ERROR] main.cpp(main:7) >> Goodbye world

Put these lines in your header file. I find this very useful for debugging, etc.

4
  • Why #define and not a function? Function would be more flexible, overloadable, more obvious hoe to use...
    – Troyseph
    Sep 21, 2017 at 15:41
  • 4
    @Troyseph Because then __FILE__``__FUNCTION__``__LINE__ would not work as intended. This is a macro.
    – xinthose
    Sep 22, 2017 at 4:28
  • 1
    Fair enough! Shame there isn't a more modern alternative =]
    – Troyseph
    Sep 22, 2017 at 10:53
  • 2
    To save some effort, you can use "%F %T" to replace "%y-%m-%d %OH:%OM:%OS".
    – Zhang
    Oct 15, 2022 at 8:28
9
#include <iostream>
#include <sys/time.h>

using namespace std;

int main ()
{
  unsigned long int sec= time(NULL);
  cout<<sec<<endl;
}
2
  • time() returns a result of type time_t, which can in principle be either signed, unsigned, or even floating-point. Why store the result in a long int? And why use <sys/time.h> rather than the standard <time.h>? Jun 24, 2016 at 2:43
  • I understand but I think in any posix compliant OS both time.h & sys/time.h are present. Also you are completely correct that time_t can be negative value too as it is represented as seconds elapsed from 1970-01-01T00:00Z.
    – anijhaw
    Jun 27, 2016 at 20:20
5

Windows uses a different epoch and time units: see Convert Windows Filetime to second in Unix/Linux

What std::time() returns on Windows is (as yet) unknown to me (;-))

1
  • you're referencing filetime, which is handled differently than 'system time'
    – AntonK
    Dec 11, 2022 at 22:21
3

This works for me, just convert nanoseconds to whatever you like, and convert uint64_t to whatever you like.

#include <chrono>
uint64_t unix_time()
{
    return std::chrono::duration_cast<std::chrono::nanoseconds>
    (
        std::chrono::system_clock::now().time_since_epoch()
    ).count();
}

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