83

The date string looks like this

2011-08-19 17:14:40

(year-month-day hours:minutes:seconds)

How can I find out if the date is older than the current date with more than 30 days?

5 Answers 5

179

Try using something like this:

 if(strtotime('2011-08-19 17:14:40') < strtotime('-30 days')) {
     // this is true
 }

Besides, this string looks like it is stored in SQL as datetime/timestamp field. You can directly select all entries from your database with old dates using:

SELECT ... WHERE `datetime` + INTERVAL 30 DAY < NOW()
2
  • Note that months may have 4 combination of days: 28, 29 30 and 31.
    – rafark
    Apr 19, 2020 at 4:19
  • 3
    Note that neither question nor answer use word month (except in description pf format)
    – RiaD
    Apr 22, 2020 at 18:20
51

If you are on PHP 5.3 or higher you can do:

$someDate = new \DateTime('2011-08-19 17:14:40');
$now = new \DateTime();

if($someDate->diff($now)->days > 30) {
   echo 'The date was more than 30 days ago.';
}
5
  • can you link to the documentation for diff($now)->days? i would like to tweak it for hours not days. thanks.
    – Jay42
    Jul 26, 2017 at 18:49
  • diff returns a DateInterval. DateInterval has an h property for 'hours' but it is actually a fragment of the difference (as it relates to y (years), m (months), d (days), etc). To get hours, I'd do ($now->getTimestamp() - $someDate->getTimestamp()) / 3600. This would return a decimal. You could then optionally use round(), intval(), etc. if you want it as an integer. Jul 28, 2017 at 16:21
  • 2
    I like this answer much better than the accepted one. The diff method looks very elegant.
    – cezar
    Feb 17, 2019 at 12:23
  • One liner: (new DateTime('2021-08-10'))->diff(new DateTime())->days > 30 Oct 8, 2021 at 13:22
  • Even better with $now = new \DateTimeImmutable();
    – Erdal G.
    Jul 1 at 20:07
7

You can use Carbon as follows

if (30 - ((new \Carbon\Carbon($given_date, 'UTC'))->diffInDays()) < 0) {
    echo "The date is older than 30 days";
}
1
strtotime('2011-08-19 17:14:40') + 30 * 24 * 60 * 60 < time();
9
  • It should be strtotime('2011-08-19 17:14:40') + 30 * 24 * 60 * 60 < time(); correct it.
    – nobody
    Aug 20, 2011 at 8:58
  • 3
    @nobody You have >2000 rep. You could correct it yourself, like I did. :) Aug 20, 2011 at 9:00
  • 3
    @gion_13 It's generally a bad idea to do those sorts of 24 * 60 * 60 calculations, because they can become inaccurate when dealing with things like daylight savings time. It's better to use something like RiaD suggests, and let strtotime() handle the relative time calculations. Aug 20, 2011 at 9:02
  • 1
    strtotime('2011-08-19 17:14:40')+(30 * 86400) < time();
    – tetris
    Aug 20, 2011 at 9:05
  • @Agent I disagree with your point above, 30 * 24 * 60 * 60 is always exactly 30 days no matter where in the universe you are.
    – nobody
    Aug 20, 2011 at 9:08
0

With the meringue library, this can be done in at least two ways.

The first one looks like the following:

(new Future(
    new DateTimeParsedFromISO8601String('2011-08-19 17:14:40'),
    new NDays(30)
))
    ->earlierThan(
        new Now()
    );

The semantics is the following: first, you parse a date from an ISO8601 string, then create a future date which is thirty days later than that, and finally compare it with current datetime, that is, now.

The second way is creating an interval from a datetime range and counting the days it consists of. It looks like that:

(new TotalFullDays(
    new FromRange(
        new FromISO8601('2011-08-19 17:14:40'),
        new Now()
    )
))
    ->value();

Both approaches are quite intuitive and don't make you remember special php datetime expressions. Instead, every implementation is autocompleted; you just need to build a correct object that suits your needs.

1
  • 1
    This looks like a overkill for this question in my opionion. There are way more simpler plain php options
    – Timberman
    Aug 24, 2020 at 10:11

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