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Given a date MM-dd-yyyy format, can someone help me get the first day of the week?

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2  
What do you mean by first day of the week? Do you mean Sun, Mon? Or do you mean the date of the first day of the week? –  Jeffrey Hines Dec 13 '09 at 21:04
    
The first day of the week is constant: it's Monday (or possibly Sunday). Do you mean you want to get the date of the Monday preceding a given arbitrary date? –  Jon Cram Dec 13 '09 at 21:08
    
What version of PHP - 4 or 5? –  Jon Cram Dec 13 '09 at 21:10
    
the date of the sunday of the week. php 5 –  Iggy Ma Dec 13 '09 at 21:15
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19 Answers

strtotime('this week', time());

Replace time(). Next sunday/last monday methods won't work when the current day is sunday/monday.

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8  
$monday = strtotime('last monday', strtotime('tomorrow')); –  Lewis Buckley Jul 30 '13 at 15:04
    
this week does not work if you need to have always previous start of week, but @LewisBuckley’s comment does it. –  Smar Dec 10 '13 at 14:11
    
Second argument time() is optionnal if you want to specify today. –  Ifnot Jan 7 at 12:27
    
did not work for me, I had to se slightly different syntax for YTD, MTD, WTD. –  Ron Apr 8 at 0:14
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$givenday = date("w", mktime(0, 0, 0, MM, dd, yyyy));

This gives you the day of the week of the given date itself where 0 = Sunday and 6 = Saturday. From there you can simply calculate backwards to the day you want.

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4  
This answer returns whether a given date is sunday or monday etc. But, the questioner has asked for the date of the sunday of the week of the given date as mentioned in his comment on the original question. –  syedrakib Aug 26 '12 at 16:40
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Here is what I am using...

$day = date('w');
$week_start = date('m-d-Y', strtotime('-'.$day.' days'));
$week_end = date('m-d-Y', strtotime('+'.(6-$day).' days'));

$day contains a number from 0 to 6 representing the day of the week (Sunday = 0, Monday = 1, etc.).
$week_start contains the date for Sunday of the current week as mm-dd-yyyy.
$week_end contains the date for the Saturday of the current week as mm-dd-yyyy.

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This is genius, works perfectly –  user2019515 Sep 15 '13 at 21:56
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How about this?

$first_day_of_week = date('m-d-Y', strtotime('Last Monday', time()));
$last_day_of_week = date('m-d-Y', strtotime('Next Sunday', time()));
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5  
Last monday on mondays will give you the previous monday. –  Ikke Dec 10 '12 at 7:32
2  
Yes this answer is wrong. Don't apply it !!! –  bobylapointe Nov 11 '13 at 12:02
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For what it's worth, here is a breakdown of the wonky behavior of strtotime when determining a consistent frame of reference:

http://gamereplays.org/reference/strtotime.php

Basically only these strings will reliably give you the same date, no matter what day of the week you're currently on when you call them:

strtotime("next monday");
strtotime("this sunday");
strtotime("last sunday"); 
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The following code should work with any custom date, just uses the desired date format.

$custom_date = strtotime( date('d-m-Y', strtotime('31-07-2012')) ); 
$week_start = date('d-m-Y', strtotime('this week last monday', $custom_date));
$week_end = date('d-m-Y', strtotime('this week next sunday', $custom_date));
echo '<br>Start: '. $week_start;
echo '<br>End: '. $week_end;

I tested the code with PHP 5.2.17 Results:

Start: 30-07-2012
End: 05-08-2012
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Worth noting that this will always return the previous Monday, so if $custom_date is a Monday, it will return the date of Monday one week earlier. –  Hill79 Feb 5 '13 at 14:08
    
Does not work properly, today is sunday, results are: Start: 09-09-2013 End: 22-09-2013 –  user2019515 Sep 15 '13 at 21:49
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Here I am considering Sunday as first & Saturday as last day of the week.

$m = strtotime('06-08-2012');  
$today =   date('l', $m);  
$custom_date = strtotime( date('d-m-Y', $m) );   
if ($today == 'Sunday') {  
   $week_start = date("d-m-Y", $m);  
} else {  
  $week_start = date('d-m-Y', strtotime('this week last sunday', $custom_date));  
}  

if ($today == 'Saturday') {  
  $week_end = date("d-m-Y", $m);
} else {  
  $week_end = date('d-m-Y', strtotime('this week next saturday', $custom_date));  
}
echo '<br>Start: '. $week_start;  
echo '<br>End: '. $week_end;  

Output :

Start: 05-08-2012
End: 11-08-2012

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Keep it simple :

<?php    
$dateTime = new \DateTime('2012-05-14');
$monday = clone $dateTime->modify(('Sunday' == $dateTime->format('l')) ? 'Monday last week' : 'Monday this week');
$sunday = clone $dateTime->modify('Sunday this week');    
?>

Source : PHP manual

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edit: typo or some unknown syntax ? where does the \ come from ? $dateTime = new \DateTime('2012-05-14'); –  Panique May 14 '12 at 13:56
1  
I'm doing this avoid any conflict with a possible autoloaded object of your application. That's like absolute path or relative path. –  doctormad May 14 '12 at 14:53
2  
@Panique - the "unknown syntax" is PHP 5.3's Namespace syntax. Namespacing allows you to prefix a class with a namespace followed by a backslash. Here he's using it without a namespace in order to specify the core DateTime class, which means the code will work even if you have another class called DateTime in the current namespace. –  Spudley May 14 '12 at 18:41
    
excellent answer for a non-obvious syntax. thanks, guys ! –  Panique May 14 '12 at 20:11
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Try this:

function week_start_date($wk_num, $yr, $first = 1, $format = 'F d, Y')
{
    $wk_ts  = strtotime('+' . $wk_num . ' weeks', strtotime($yr . '0101'));
    $mon_ts = strtotime('-' . date('w', $wk_ts) + $first . ' days', $wk_ts);
    return date($format, $mon_ts);
}

$sStartDate = week_start_date($week_number, $year);
$sEndDate   = date('F d, Y', strtotime('+6 days', strtotime($sStartDate)));

(from this forum thread)

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how do I get the week number and year in all that? I have a string date in MM-dd-yyyy format –  Iggy Ma Dec 13 '09 at 21:08
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How about this?

$day_of_week = date('N', strtotime($string_date));
$week_first_day = date('Y-m-d', strtotime($string_date . " - " . ($day_of_week - 1) . " days"));
$week_last_day = date('Y-m-d', strtotime($string_date . " + " . (7 - $day_of_week) . " days"));
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Given PHP version pre 5.3 following function gives you a first day of the week of given date (in this case - Sunday, 2013-02-03):

<?php
  function startOfWeek($aDate){
    $d=strtotime($aDate);
    return strtotime(date('Y-m-d',$d).' - '.date("w",$d).' days');
  }

  echo(date('Y-m-d',startOfWeek("2013-02-07")).'
');
?>
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$today_day = date('D'); //Or add your own date
$start_of_week = date('Ymd');
$end_of_week = date('Ymd');

if($today_day != "Mon")
    $start_of_week = date('Ymd', strtotime("last monday"));

if($today_day != "Sun")
                    $end_of_week = date('Ymd', strtotime("next sunday"));
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You parse the date using strptime() and use date() on the result:

date('N', strptime('%m-%d-%g', $dateString));
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<?php
/* PHP 5.3.0 */

date_default_timezone_set('America/Denver'); //Set apprpriate timezone
$start_date = strtotime('2009-12-15'); //Set start date

//Today's date if $start_date is a Sunday, otherwise date of previous Sunday
$today_or_previous_sunday = mktime(0, 0, 0, date('m', $start_date), date('d', $start_date), date('Y', $start_date)) - ((date("w", $start_date) ==0) ? 0 : (86400 * date("w", $start_date)));

//prints 12-13-2009 (month-day-year)
echo date('m-d-Y', $today_or_previous_sunday);

?>

(Note: MM, dd and yyyy in the Question are not standard php date format syntax - I can't be sure what is meant, so I set the $start_date with ISO year-month-day)

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This question needs a good DateTime answer:-

function firstDayOfWeek($date)
{
    $day = DateTime::createFromFormat('m-d-Y', $date);
    $day->setISODate((int)$day->format('o'), (int)$day->format('W'), 1);
    return $day->format('m-d-Y');
}

var_dump(firstDayOfWeek('06-13-2013'));

Output:-

string '06-10-2013' (length=10)

This will deal with year boundaries and leap years.

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You need a lower case 'o' instead of the capitol one. The capitol is the offset from GMT (or UTC?). –  Julian Feb 19 at 18:50
    
Oh, yes you're right! Well spotted. Corrected now. :) –  vascowhite Feb 19 at 18:56
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Another way to do it....

$year = '2014';
$month = '02';
$day = '26';

$date = DateTime::createFromFormat('Y-m-d H:i:s', $year . '-' . $month . '-' . $day . '00:00:00');
$day = date('w', $date->getTimestamp());

// 0=Sunday 6=Saturday
if($day!=0){

   $newdate = $date->getTimestamp() - $day * 86400;  //86400 seconds in a day

   // Look for DST change 
   if($old = date('I', $date->getTimestamp()) != $new = date('I', $newdate)){
       if($old == 0){
           $newdate -= 3600;  //3600 seconds in an hour
       } else {
           $newdate += 3600;
       }
   }

   $date->setTimestamp($newdate);
}

echo $date->format('D Y-m-d H:i:s');
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I've come against this question a few times and always surprised the date functions don't make this easier or clearer. Here's my solution for PHP5 that uses the DateTime class:

/**
 * @param DateTime $date A given date
 * @param int $firstDay 0-6, Sun-Sat respectively
 * @return DateTime
 */
function getFirstDayOfWeek(DateTime $date, $firstDay = 0) {
    $offset = 7 - $firstDay;
    $ret = clone $date;
    $ret->modify(-(($date->format('w') + $offset) % 7) . 'days');
    return $ret;
}

Necessary to clone to avoid altering the original date.

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What about:

$date = "2013-03-18"; 
$searchRow = date("d.m.Y", strtotime('last monday',strtotime($date." + 1 day")));
echo "for date " .$date ." we get this monday: " ;echo $searchRow; echo '<br>';

Its not the best way but i tested and if i am in this week i get the correct monday, and if i am on a monday i will get that monday.

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Why dont just let it be date($format, strtotime($date,' LAST SUNDAY + 1 DAY')); ???

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