119

I'm trying to get a date that is one year from the date I specify.

My code looks like this:

$futureDate=date('Y-m-d', strtotime('+one year', $startDate));

It's returning the wrong date. Any ideas why?

4
  • 9
    You forgot to tell about the error.
    – BalusC
    Dec 15, 2009 at 3:49
  • Frank Farmer: are you so certain? I would rather wait for OP's retifications/comments.
    – BalusC
    Dec 15, 2009 at 4:12
  • In my haste to post this last night I forgot to clarify - it was returning the wrong date. Sorry! Thanks for your help.
    – Matt
    Dec 15, 2009 at 16:05
  • 1
    Use it like this instead strtotime('+1 year', $startDate)); Jul 14, 2015 at 14:49

15 Answers 15

258
$futureDate=date('Y-m-d', strtotime('+1 year'));

$futureDate is one year from now!

$futureDate=date('Y-m-d', strtotime('+1 year', strtotime($startDate)) );

$futureDate is one year from $startDate!

1
  • 1
    Please note that if $startDate is already a timestamp (such as one created earlier with the time() or mktime() function) and not a string, you should not wrap it in strtotime or it will not work. Instead, do $futureDate=date('Y-m-d',strtotime('+1 year',$startDate)); as K Prime mentioned below.
    – dallin
    Sep 4, 2018 at 4:11
113

To add one year to todays date use the following:

$oneYearOn = date('Y-m-d',strtotime(date("Y-m-d", mktime()) . " + 365 day"));

For the other examples you must initialize $StartingDate with a timestamp value for example:

$StartingDate = mktime();  // todays date as a timestamp

Try this

$newEndingDate = date("Y-m-d", strtotime(date("Y-m-d", strtotime($StaringDate)) . " + 365 day"));

or

$newEndingDate = date("Y-m-d", strtotime(date("Y-m-d", strtotime($StaringDate)) . " + 1 year"));
9
  • 1
    Adding "+365" instead of "+1 year" did it. Thanks!
    – Matt
    Dec 15, 2009 at 16:01
  • 22
    Wouldn't this break in the event of a leap year? Jan 25, 2013 at 15:46
  • 1
    As of PHP 5.1, when called with no arguments, mktime() throws an E_STRICT notice: use the time() function instead.
    – svandragt
    Jan 29, 2014 at 13:54
  • Downvoted here too. The number of seconds in a day, days in a year, seconds in a year, etc. are all variable. If you're interested in 'one year from now', you have to pass in an interval of 'one year'. Subdividing on your own is what leads to errors around leap days and leap seconds and daylight savings changes. Worse, it causes flappy unit tests.
    – drobert
    Aug 15, 2014 at 18:10
  • why my answer is downvoted ?? $addedoneyear=date("y")+1; //for adding one year whats wrong with it ? May 11, 2015 at 9:47
15
//1 year from today's date
echo date('d-m-Y', strtotime('+1 year'));

//1 year from from specific date
echo date('22-09-Y', strtotime('+1 year'));

hope this simpler bit of code helps someone in future :)

9

Try: $futureDate=date('Y-m-d',strtotime('+1 year',$startDate));

4
  • While that does return the right answer, the other one does not actually return an error either... just the wrong date.
    – SeanJA
    Dec 15, 2009 at 3:56
  • 1
    strtotime doesn't throw errors. It returns false in the case of an error. Dec 15, 2009 at 4:01
  • PHP will throw warnings if the default timezone is not set... though apparently that is not what he meant
    – SeanJA
    Dec 18, 2009 at 12:32
  • I was getting error on your code I changed , to . and it worked date("Y-m-d",strtotime('+1 year '.$startDate)); Jan 14, 2020 at 5:10
7
// Declare a variable for this year 
$this_year = date("Y");
// Add 1 to the variable
$next_year = $this_year + 1;
$year_after = $this_year + 2;

// Check your code
    echo "This year is ";
    echo $this_year;
    echo "<br />";
    echo "Next year is ";
    echo $next_year;
    echo "<br />";
    echo "The year after that is ";
    echo $year_after;
7

I prefer the OO approach:

$date = new \DateTimeImmutable('today'); //'today' gives midnight, leave blank for current time.
$futureDate = $date->add(\DateInterval::createFromDateString('+1 Year'))

Use DateTimeImmutable otherwise you will modify the original date too! more on DateTimeImmutable: http://php.net/manual/en/class.datetimeimmutable.php


If you just want from todays date then you can always do:

new \DateTimeImmutable('-1 Month');
7

I just had the same problem, however calling date() twice and incrementing the year seems simplest solution to me.

echo (date('Y') + 1) . date('-m-d');
1
  • Great, I use it to get the next year: $next_year = (date('Y')+1).
    – Martin
    Oct 14, 2017 at 16:09
3

If you are using PHP 5.3, it is because you need to set the default time zone:

date_default_timezone_set()
3

strtotime() is returning bool(false), because it can't parse the string '+one year' (it doesn't understand "one"). false is then being implicitly cast to the integer timestamp 0. It's a good idea to verify strtotime()'s output isn't bool(false) before you go shoving it in other functions.

From the docs:

Return Values

Returns a timestamp on success, FALSE otherwise. Previous to PHP 5.1.0, this function would return -1 on failure.

1
  • Yeah, good point. My production code will have that, but I was tearing my hair out trying to get this to work, so stripped it down to as little code as possible. Thanks!
    – Matt
    Dec 15, 2009 at 16:02
2

Try This

$nextyear  = date("M d,Y",mktime(0, 0, 0, date("m",strtotime($startDate)),   date("d",strtotime($startDate)),   date("Y",strtotime($startDate))+1));
2

There is also a simpler and less sophisticated solution:

$monthDay = date('m/d');
$year = date('Y')+1;
$oneYearFuture = "".$monthDay."/".$year."";
echo"The date one year in the future is: ".$oneYearFuture."";
2

You can use strtotime() to get future time.

//strtotime('+1 day');
//strtotime('+1 week');
//strtotime('+1 month');

 $now = date('Y-m-d'); 
 $oneYearLaterFromNow = date('Y-m-d', strtotime('+1 year'));
 $oneYearLaterFromAnyDate = date('Y-m-d', strtotime('+1 year', strtotime($anyValidDateString)));
1

In my case (i want to add 3 years to current date) the solution was:

$future_date = date('Y-m-d', strtotime("now + 3 years"));

To Gardenee, Treby and Daniel Lima: what will happen with 29th February? Sometimes February has only 28 days :)

1

My solution is: date('Y-m-d', time()-60*60*24*365);

You can make it more "readable" with defines:

define('ONE_SECOND', 1);
define('ONE_MINUTE', 60 * ONE_SECOND);
define('ONE_HOUR',   60 * ONE_MINUTE);
define('ONE_DAY',    24 * ONE_HOUR);
define('ONE_YEAR',  365 * ONE_DAY);

date('Y-m-d', time()-ONE_YEAR);
-1

I wanted 1 year range only for an HTML5 Date input. This is what worked for me:

   <input type="date"

           min="<?php echo date("Y-m-d"); ?>"

           max="<?php echo date((intval(date("Y"))+1)."-m-d"); ?>"
    />

1 Year from now:

date((intval(date("Y"))+1)."-m-d");
4
  • 2
    This advice was given on this page in 2013. Please only post a new answer if you have something unique and valuable to share. Jan 27 at 22:27
  • 1
    I didn't see that. Not sure why this deserves a negative comment. The latter code actually gives a programming mistake warning of "Wrong string concatenation operator ". I believe adding intval is the proper way of doing it. Jan 27 at 23:18
  • 1
    My comment was not a negative comment -- it was a clear and educational comment. I wonder if you'd have been happier for me to dv without any kind of feedback at all -- I consider that to be trollish/unhelpful behaviour. intval() is not needed in the other answer. 3v4l.org/UINRv Jan 28 at 0:40
  • Without adding intval it actually affects performace. If you are writing bad code then yes its not needed lol. Jan 28 at 1:00

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