126

If I've got a $date YYYY-mm-dd and want to get a specific $day (specified by 0 (sunday) to 6 (saturday)) of the week that YYYY-mm-dd is in.

For example, if I got 2012-10-11 as $date and 5 as $day, I want to get 2012-10-12, if I've got 0 as $day, 2012-10-14

EDIT:
Most of you misunderstood it. I got some date, $date and want to get a day specified by 0-6 of the same week $date is in.

So no, I don't want the day of $date...

Improve this question
3
  • When does your week start? Monday or Sunday? I know it's Monday for most people but I'm just making sure :p
    – keyser
    Oct 11, 2012 at 8:20
  • 4
    I don't think the people who answered understood the question properly. He does not want to get a number of the day by date (which would be date('w')), but he wants to specify date AND the day number and receive corresponding date from the same week as the specified date is...
    – Vafliik
    Oct 11, 2012 at 8:30
  • The title made me think the misunderstanding too. I think it would be clearer with "as an offset" before "from"
    – zsalya
    Aug 7 at 12:12

9 Answers 9

Reset to default
168

I think this is what you want.

$dayofweek = date('w', strtotime($date));
$result    = date('Y-m-d', strtotime(($day - $dayofweek).' day', strtotime($date)));
Improve this answer
0
134

You can use the date() function:

date('w'); // day of week

or 

date('l'); // dayname

Example function to get the day nr.:

function getWeekday($date) {
    return date('w', strtotime($date));
}

echo getWeekday('2012-10-11'); // returns 4
Improve this answer
20

Try

$date = '2012-10-11';
$day  = 1;
$days = array('Sunday', 'Monday', 'Tuesday', 'Wednesday','Thursday','Friday', 'Saturday');
echo date('Y-m-d', strtotime($days[$day], strtotime($date)));
Improve this answer
2
  • 2
    Good approach, but as you can see in Rezigned's answer, you can also use '1 day', making the $days array useless.
    – Zulakis
    Oct 11, 2012 at 8:55
  • 2
    This seem more correct because it returns the correct date 2012-10-14 when you input 0, @Rezigned returns 2012-10-07
    – Carl
    Sep 25, 2019 at 6:17
12

If your date is already a DateTime or DateTimeImmutable you can use the format method.

$day_of_week = intval($date_time->format('w'));

The format string is identical to the one used by the date function.

To answer the intended question:

$date_time->modify($target_day_of_week - $day_of_week . ' days');
Improve this answer
5

PHP Manual said :

w Numeric representation of the day of the week

You can therefore construct a date with mktime, and use in it date("w", $yourTime);

Improve this answer
0
5

Just:

2012-10-11 as $date and 5 as $day

<?php
$day=5;
$w      = date("w", strtotime("2011-01-11")) + 1; // you must add 1 to for Sunday

echo $w;

$sunday = date("Y-m-d", strtotime("2011-01-11")-strtotime("+$w day"));

$result = date("Y-m-d", strtotime($sunday)+strtotime("+$day day"));

echo $result;

?>

The $result = '2012-10-12' is what you want.

Improve this answer
3

I had to use a similar solution for Portuguese:

<?php
$scheduled_day = '2018-07-28';
$days = ['Dom','Seg','Ter','Qua','Qui','Sex','Sáb'];
$day = date('w',strtotime($scheduled_day));
$scheduled_day = date('d-m-Y', strtotime($scheduled_day))." ($days[$day])";
// provides 28-07-2018 (Sáb)
Improve this answer
1

I'm afraid you have to do it manually. Get the date's current day of week, calculate the offset and add the offset to the date.

$current = date("w", $date)
$offset = $day - $current
$new_date = new DateTime($date)
    ->add(
        new DateInterval($offset."D")
    )->format('Y-m-d')
Improve this answer
1
  • 1
    Thanks for your approach, but no, I don't have to do it manually. Have a look at Rezigned's answer.
    – Zulakis
    Oct 11, 2012 at 8:51
1 
<?php echo date("H:i", time()); ?>
<?php echo $days[date("l", time())] . date(", d.m.Y", time()); ?>

Simple, this should do the trick

Improve this answer

Not the answer you're looking for? Browse other questions tagged or ask your own question.