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Today's date is 27-01-2014 so I got day name using following function:

$t=date('d-m-Y');
$day = strtolower(date("D",strtotime($t)));

So now the day name is mon.

How to find that this Monday is the forth Monday of current month? In other words, I am trying to find the 1st, 2nd, 3rd, 4th of a particular day (eg. Monday) of a month?

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5  
Basic math: floor(($dayNumber - 1) / 7) + 1. –  Jon Jan 27 '14 at 10:00
    
I made an edit to his post to fix the typos and also a bit the grammar as it was really hard to understand what he's trying to explain. Tough good question nevertheless –  Oliver M Grech Jan 27 '14 at 10:08
    
Thanks @Oliver M Grech for your edit and sorry for bad english. –  DS9 Jan 27 '14 at 10:10
    
No worries we can all understand and respect other people :) Most importantly is that other people understand your post so they can help you :) Wim's edit was better than mine and happy that his edit went trough :) –  Oliver M Grech Jan 27 '14 at 10:11
    
@DS9: I read the question 3 or 4 times but still don't understand what is it that you're trying to accomplish. Are you trying to find: a) the day number for the first/second/third Monday/Tuesday/... in a month? b) the day name for a given day number, i.e. convert 27-01-2014 => Monday? c) ... something else? Please edit your question and explain what you're trying to achieve. –  Amal Murali Jan 27 '14 at 10:24

2 Answers 2

up vote 4 down vote accepted

Credit for the Math part goes to Jon (above)

In combination with your code, full solution can be implemented as follows

$t=date('d-m-Y');
$dayName = strtolower(date("D",strtotime($t)));
$dayNum = strtolower(date("d",strtotime($t)));
echo floor(($dayNum - 1) / 7) + 1

or else as a function with optional date

PHP Fiddle here

This just return the number you are requesting.

function dayNumber($date=''){
    if($date==''){
        $t=date('d-m-Y');
    } else {
        $t=date('d-m-Y',strtotime($date));
    }

    $dayName = strtolower(date("D",strtotime($t)));
    $dayNum = strtolower(date("d",strtotime($t)));
    $return = floor(($dayNum - 1) / 7) + 1;
    return $return;
}


echo dayNumber('2014-01-27');
share|improve this answer
    
Thanks @Oliver M Grech. –  DS9 Jan 27 '14 at 10:43
    
Welcome mate... repost if you would need further help on this issue and I would glady help. Thanks –  Oliver M Grech Jan 27 '14 at 10:44
$date = mktime(0, 0, 0, 1, 27, 2014);
$dayNumber = date("d", $date);
$dayOfWeek = date("l", $date);
$dayPosition = (floor(($dayNumber - 1) / 7) + 1);

switch ($dayPosition) {
    case 1:
        $suffix = 'st';
        break;
    case 2:
        $suffix = 'nd';
        break;
    case 3:
        $suffix = 'rd';
        break;
    default:
        $suffix = 'th';
}

echo "Today is the " . $dayPosition . $suffix . " " . $dayOfWeek . " of the month.";
// Will echo: Today is the 4th Monday of the month.

Thanks to @Jon for the maths.

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can you please explain why you use mktime instead of using direct date(d-m-Y)? –  DS9 Jan 27 '14 at 10:48
    
Because when using $dayNumber = date("d", $date); the $date must be a timestamp. –  MrUpsidown Jan 27 '14 at 10:55
    
Of course, if you need it only for the current date, then you can do $dayNumber = date("d"); $dayOfWeek = date("l"); and forget about mktime. –  MrUpsidown Jan 27 '14 at 10:57
    
ok..got it thanks. –  DS9 Jan 27 '14 at 11:12

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