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I've seen some variants on this question but I believe this one hasn't been answered yet.

I need to get the starting date and ending date of a week, chosen by year and week number (not a date)

example:

input:

getStartAndEndDate($week, $year);

output:

$return[0] = $firstDay;
$return[1] = $lastDay;

The return value will be something like an array in which the first entry is the week starting date and the second being the ending date.

OPTIONAL: while we are at it, the date format needs to be Y-n-j (normal date format, no leading zeros.

I've tried editing existing functions that almost did what I wanted but I had no luck so far.

Please help me out, thanks in advance.

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StackOverflow is not about getting as many variants as possible covered. If you are able to figure out a solution from the variants, don't ask the question. If you couldn't figure it out, you are encouraged to explain how far you've gotten from the variants. –  Gordon Feb 1 '11 at 11:19
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7 Answers

up vote 23 down vote accepted
function getStartAndEndDate($week, $year)
{

    $time = strtotime("1 January $year", time());
    $day = date('w', $time);
    $time += ((7*$week)+1-$day)*24*3600;
    $return[0] = date('Y-n-j', $time);
    $time += 6*24*3600;
    $return[1] = date('Y-n-j', $time);
    return $return;
}
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Thank you man, this is exactly what I asked for! –  Pieter888 Feb 1 '11 at 11:59
    
Thank you man, this is exactly what I seeking for... –  Ranjith Siji Sep 23 '13 at 8:59
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Slightly neater solution, using the "[year]W[week][day]" strtotime format:

function getStartAndEndDate($week, $year) {
  // Adding leading zeros for weeks 1 - 9.
  $date_string = $year . 'W' . sprintf('%02d', $week);
  $return[0] = date('Y-n-j', strtotime($date_string));
  $return[1] = date('Y-n-j', strtotime($date_string . '7'));
  return $return;
}
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Using DateTime class:

function getStartAndEndDate($week, $year) {
  $dto = new DateTime();
  $dto->setISODate($year, $week);
  $ret['week_start'] = $dto->format('Y-m-d');
  $dto->modify('+6 days');
  $ret['week_end'] = $dto->format('Y-m-d');
  return $ret;
}

$week_array = getStartAndEndDate(52,2013);
print_r($week_array);

Returns:

Array
(
    [week_start] => 2013-12-23
    [week_end] => 2013-12-29
)

Explained:

  • Create a new DateTime object which defaults to now()
  • Call setISODate to change object to first day of $week of $year instead of now()
  • Format date as 'Y-m-d' and put in $ret['week_start']
  • Modify the object by adding 6 days, which will be the end of $week
  • Format date as 'Y-m-d' and put in $ret['week_end']

A shorter version (works in >= php5.3):

function getStartAndEndDate($week, $year) {
  $dto = new DateTime();
  $ret['week_start'] = $dto->setISODate($year, $week)->format('Y-m-d');
  $ret['week_end'] = $dto->modify('+6 days')->format('Y-m-d');
  return $ret;
}

Could be shortened with class member access on instantiation in >= php5.4.

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First we need a day from that week so by knowing the week number and knowing that a week has seven days we are going to do so the

$pickADay = ($weekNo-1) * 7 + 3;

this way pickAday will be a day in our desired week.

Now because we know the year we can check which day is that. things are simple if we only need dates newer than unix timestamp We will get the unix timestamp for the first day of the year and add to that 24*3600*$pickADay and all is simple from here because we have it's timestamp we can know what day of the week it is and calculate the head and tail of that week accordingly.

If we want to find out the same thing of let's say 12th week of 1848 we must use another approach as we can not get the timestamp. Knowing that each year a day advances 1 weekday meaning (1st of november last year was on a sunday, this year is on a monday, exception for the leap years when it advances 2 days I believe, you can check that ). What I would do if the year is older than 1970 than make a difference between it and the needed year to know how many years are there, calculate the day of the week as my pickADay was part of 1970, shift it back one weekday for each. $shiftTimes = ($yearDifference + $numberOfLeapYears)%7, in the difference. shift the day backwords $shiftTimes, then you will know what day of the week was that day those years ago, then find the weekhead and weektail. Same thing can be used also for the future if it seems simpler. Try it if it works and tell me if it does not.

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Thanks, it sure cleared up some of my confusion about these dates. The answer given by Roham Rafii confirms your theory and I thank you both very much! –  Pieter888 Feb 1 '11 at 12:02
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Have you tried PHP relative dates? It might work.

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then what command would you suggest I use? strtotime('first day of week 12')? –  Pieter888 Feb 1 '11 at 10:56
    
@Pieter888 this is not working and is not year based –  Elzo Valugi Feb 1 '11 at 11:21
    
Perhaps you can chain them. Try +n weeks to get the week. Then look at the docs again. There is also a way to get a weekday. –  Mikel Feb 1 '11 at 12:05
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Even if you dont want to use a specific date you cannot escape it. You can calculate a week based on the date ONLY.

Steps:

  1. get the first day of the year
  2. decide when the first week starts ( there are some rules that include first Thursday if I remember.
  3. add some number of weeks (your first param). Zend_Date has an add() function where you can add weeks for example. This will give you the first day of the week.
  4. offset and get the last day.

I would recommend working with a consistent dates sistem like Zend_Date or Pear Date.

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function getStartAndEndDate($week, $year)
    {
        $week_start = new DateTime();
        $week_start->setISODate($year,$week);
        $return[0] = $week_start->format('d-M-Y');
        $time = strtotime($return[0], time());
        $time += 6*24*3600;
        $return[1] = date('d-M-Y', $time);
        return $return;
    }
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explain what you did a bit futher than simply posting the code –  im_a_noob Aug 14 '13 at 19:01
    
explain it properly.. –  Stark Aug 14 '13 at 19:01
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