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PHP provides ways to get the number of the current day of the month (date('j')) as well as the number of the current day of the year (date('z')). Is there a way to get the number of the current day of the current quarter?

So right now, August 5, it is day 36 of the third quarter.

If there is no standard way of calculating this, does anyone have a (prefereably PHP-based) algorithm handy?

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How are you defining "quarter"? –  lc. Aug 5 '09 at 16:55
    
A group of three months. –  Chad Johnson Aug 5 '09 at 16:56
1  
Pseudocode: day_of_quarter(y, m, d) = day_of_year(y, m, d) - day_of_year(y, 3*((m-1) % 3) + 1, 1) + 1 –  balpha Aug 5 '09 at 16:57
    
(assuming all values are 1-based) –  balpha Aug 5 '09 at 16:59

6 Answers 6

How about:

$curMonth = date("m", time());
$curQuarter = ceil($curMonth/3);

Et voila :-)

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Clever! I'm using it. –  Jake A. Smith Apr 4 '13 at 4:04
up vote 4 down vote accepted

I wrote a class with the following methods. Enjoy.

public static function getQuarterByMonth($monthNumber) {
  return floor(($monthNumber - 1) / 3) + 1;
}

public static function getQuarterDay($monthNumber, $dayNumber, $yearNumber) {
  $quarterDayNumber = 0;
  $dayCountByMonth = array();

  $startMonthNumber = ((self::getQuarterByMonth($monthNumber) - 1) * 3) + 1;

  // Calculate the number of days in each month.
  for ($i=1; $i<=12; $i++) {
    $dayCountByMonth[$i] = date("t", strtotime($yearNumber . "-" . $i . "-01"));
  }

  for ($i=$startMonthNumber; $i<=$monthNumber-1; $i++) {
    $quarterDayNumber += $dayCountByMonth[$i];
  }

  $quarterDayNumber += $dayNumber;

  return $quarterDayNumber;
}

public static function getCurrentQuarterDay() {
  return self::getQuarterDay(date('n'), date('j'), date('Y'));
}
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function date_quarter()
{
    return ceil(date('n', time()) / 3);
}

or

function date_quarter()
{
    $month = date('n');

    if ($month <= 3) return 1;
    if ($month <= 6) return 2;
    if ($month <= 9) return 3;

    return 4;
}
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<?php
function day_of_quarter($ts=null) {
    if( is_null($ts) ) $ts=time();
    $d=date('d', $ts);
    $m=date('m', $ts)-1;
    while($m%3!=0) {
        $lastmonth=mktime(0, 0, 0, $m, date("d", $ts),   date("Y",$ts));
        $d += date('t', $lastmonth);
        $m--;
    }
    return $d;
}
echo day_of_quarter(mktime(0, 0, 0, 1, 1,2009));
echo "\n";
echo day_of_quarter(time());
echo "\n";
?>
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Assuming you mean a calendar-quarter (because a company fiscal year can start in any month of the year), you could rely on the date('z') to determine the day-of-year, and then keep a simple array of the day each quarter starts on:

$quarterStartDays = array( 1 /* Jan 1 */, 90 /* Mar 1, non leap-year */, ... );

Then with the current day-of-year you can first locate the largest start-day that's less than or equal to the day-of-year, then subtract.

Note that you need different numbers depending on the leap year.

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$curDate = date('m');
$quater = '';
switch ($curDate) {
case 1:
case 2:
case 3:
    $quater= '4';
    break;
case 4:
case 5:
case 6:
    $quater= '1';
    break;
case 7:
case 8:
case 9:
    $quater= '2';
    break;
case 10:
case 11:
case 12:
    $quater= '3';
    break;

default:
    break;
}
echo $quater;

where my quarters are....
$quaterArray = array(
        '1' => array(
            'month1' => 'April',
            'month2' => 'May',
            'month3' => 'June',
        ),
        '2' => array(
            'month1' => 'July',
            'month2' => 'August',
            'month3' => 'September',
        ),
        '3' => array(
            'month1' => 'October',
            'month2' => 'November',
            'month3' => 'December',
        ),
        '4' => array(
            'month1' => 'January',
            'month2' => 'February',
            'month3' => 'March',
        )
    );
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