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?
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()
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1Note that neither question nor answer use word month (except in description pf format) – RiaD Apr 22 '20 at 18:20
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($now)->days > 30) {
echo 'The date was more than 30 days ago.';
}
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can you link to the documentation for diff($now)->days? i would like to tweak it for hours not days. thanks. – Jay42 Jul 26 '17 at 18:49
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diff returns a DateInterval. DateInterval has an
hproperty 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() - $someDate->getTimestamp()) / 3600. This would return a decimal. You could then optionally use round(), intval(), etc. if you want it as an integer. – Collin Krawll Jul 28 '17 at 16:21 -
1I like this answer much better than the accepted one. The
diffmethod looks very elegant. – cezar Feb 17 '19 at 12:23
You can use Carbon as follows
if (30 - ((new \Carbon\Carbon($given_date, 'UTC'))->diffInDays()) < 0) {
echo "The date is older than 30 days";
}
answered Jul 2 '15 at 22:27
strtotime('2011-08-19 17:14:40') + 30 * 24 * 60 * 60 < time();
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It should be
strtotime('2011-08-19 17:14:40') + 30 * 24 * 60 * 60 < time();correct it. – nobody Aug 20 '11 at 8:58 -
3@nobody You have >2000 rep. You could correct it yourself, like I did. :) – AgentConundrum Aug 20 '11 at 9:00
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3@gion_13 It's generally a bad idea to do those sorts of
24 * 60 * 60calculations, because they can become inaccurate when dealing with things like daylight savings time. It's better to use something like RiaD suggests, and letstrtotime()handle the relative time calculations. – AgentConundrum Aug 20 '11 at 9:02 -
1
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@Agent I disagree with your point above,
30 * 24 * 60 * 60is always exactly30 daysno matter where in the universe you are. – nobody Aug 20 '11 at 9:08
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.
answered May 10 '20 at 15:22
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This looks like a overkill for this question in my opionion. There are way more simpler plain php options – Timberman Aug 24 '20 at 10:11
