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Given the information below:

  • Year: 2012
  • Weeknumber: 4
  • Dayname: TUE

How can i convert this to a valid date like 2012-01-12 (YYYY-MM-DD) using PHP's date functions?

Thanx

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See the DateTime object –  Second Rikudo Apr 21 '12 at 15:52
    
Would your keyboard slap you if you search a bit the PHP doc ? –  noli Apr 21 '12 at 15:56
    
Is the week number an ISO week? –  salathe Apr 21 '12 at 15:56
    
@Truth Sorry bud but there is no support for the weaknumber with the DateTime::createFromFormat –  VIPIN JAIN Apr 21 '12 at 15:57
    
@VIPINJAIN: You multiply it by 7? –  Second Rikudo Apr 21 '12 at 15:57

2 Answers 2

The DateTime class can't do this, but the function strptime can.

$d = strptime('TUE 4 2012', '%a %W %Y');
var_dump($d);

That returns an array:

array
  'tm_sec' => int 0
  'tm_min' => int 0
  'tm_hour' => int 0
  'tm_mday' => int 24
  'tm_mon' => int 0
  'tm_year' => int 112
  'tm_wday' => int 2
  'tm_yday' => int 23
  'unparsed' => string '' (length=0)

Note that tm_year contains the number of years since 1900 and tm_month is 0-based, not 1-based. So this does represent 2012-01-24, which is correct.

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nice answer.. I didnt knew about this function. So i wrote a script:D check it out... –  VIPIN JAIN Apr 21 '12 at 16:48

Use this function:

function get_date($year,$week,$day,$start_sunday=false){
    $day_array = array('Mon'=>1,'Tue'=>2,'Wed'=>3,'Thu'=>4,'Fri'=>5,'Sat'=>6,'Sun'=>($start_sunday?0:7));
    $month_array = array(31,($year%4==0?29:28),31,30,31,30,31,31,30,31,30,31);
    $week *= 7;
    $month = 1;
    for($i=0;$i<count($month_array);$i++){
        if($week-$month_array[$i]<=0){
            break;
        }
        $week -= $month_array[$i];
        $month++;
    }
    $format = "$year $month $week";
    $date = date_create_from_format("Y m j",$format);
    $date_num = date_format($date,"D");
    $curr = $day_array[ucfirst(strtolower($day))]-$day_array[$date_num];
    $got_date = strtotime("$curr ".($curr==1||$curr==-1?"day":"days"),strtotime(date_format($date,"Y-m-j")));

    return $got_date;
}

where $start_sunday should be true if week starts from sunday

$year is the year $week is week number $day is short weekday name i.e.mon,tue,wed,....

this function will get you a date form the given format.

Enjoy............
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1  
-1 because it makes my eyes hurt. And there are more rules for calculating whether it is a leap year or not. And for not using built in functions to do the job. –  PeeHaa Apr 22 '12 at 0:45
    
yeep i know there r more rules for 100th year :P –  VIPIN JAIN Apr 22 '12 at 10:52

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