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I have a date value posted from PHP using JQuery (MMDDYYYY) and I want to convert this date format to YYYYMMDD using PHP.

$fromDate=str_replace("'","''",trim($_POST['p']));
echo "-->".$year = substr($fromDate, 6, 4)."<br>";
echo "-->".$month = substr($fromDate, 0, 2)."<br>";
echo "-->".$date = substr($fromDate, 3, 2)."<br>";
echo $new_date = date( 'Ymd', strtotime($month, $date, $year ));

Suppose in the above code I have entered the date as 070122010.The new_date in the last line gives me 20100714. I don't know why it is giving today's date. I have tried both mktime and strtotime, but both are giving me the same result. The desired result is 20100712 (YYYYMMDD).

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5  
Ever thought of trying it out yourself? –  BoltClock Jul 20 '10 at 18:39
    
If you know string manipulation functions in php you should be able to write your own. php.net/manual/en/ref.strings.php –  ankitjaininfo Jul 20 '10 at 18:40
    
Sure wish I could edit posts. s/variable/parameter/g; s/Php/PHP/; s/Function/function/; s/Needed/needed; s/Format/format; s/$THIS_LAZY_POST// –  Dagg Nabbit Jul 20 '10 at 18:47
    
@no: s/copypasta/copypasta/ Oh, wait... –  BoltClock Jul 20 '10 at 18:50

10 Answers 10

strtotime($old_date) won't work because MMDDYYYY is not a valid date string: http://www.php.net/manual/en/datetime.formats.date.php

preg_replace("/([0-9]{2})([0-9]{2})([0-9]{4})/","$3$1$2",$old_date);

or an even shorter version:

preg_replace("/([0-9]{4})([0-9]{4})/","$2$1",$old_date);
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Since both formats contain MMDD, you can simplify your regex a bit –  Scott Saunders Jul 14 '10 at 14:12
    
@Scott, thanks, updated my answer –  jigfox Jul 14 '10 at 15:07
    
All you people seem to like a regex (I myself voted for the php5.3 DateTime::createFromFormat b.t.w.), but IF you go that route, please add some sane semi-validation: "/((0[1-9]|1[0-2])(0[1-9]|[12][0-9]|3[01])([0-9]{4})/" –  Wrikken Jul 14 '10 at 23:38

The DateTime class DateTime::createFromFormat function will do what you want, providing you have a PHP 5.3.0 or greater:

$date = DateTime::createFromFormat('mdY', '12312010');

echo $date->format('Ymd');
// 20101231

echo $date->format('Y-m-d');
// 2010-12-31

echo $date->format('Y-M-d');
//2010-Dec-31
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strtotime won't work because MMDDYYYY is not a valid date string:

preg_replace("/([0-9]{2})([0-9]{2})([0-9]{4})/","$3$1$2", $orig_date);
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even shorter: preg_replace("/([0-9]{4})([0-9]{4})/","$2$1", $orig_date); –  jigfox Jul 20 '10 at 19:00
    
even shorter: preg_replace("/(\d{4})(\d{4})/", "$2$1", $orig_date); :) –  Crozin Jul 21 '10 at 17:40

You don't need to tear apart the date. All you need to do is move the year to the front.

$orig = '01022010';
$new = substr($orig,4).substr($orig,0,4);
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Here are two ways:

$d = preg_replace("/([0-9]{4})([0-9]{4})/", "$2$1", $originalDate);

or

$d = substr($originalDate, 4, 4) . substr($originalDate, 0, 4);

If one of these makes more sense to you, I suggest you use that one. Otherwise, I suspect the second would be slightly faster though I haven't tested.

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function mmddyyyy_to_yyyymmdd ($input) {
    $monthdays = array(31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31);
    if ( !preg_match('/\\A\\d{8}\\Z/', $input) ) {
        return false;
    }
    $month = (int)substr($input, 0, 2);
    $day   = (int)substr($input, 2, 2);
    $year  = (int)substr($input, 4);
    if ( $year % 4 == 0 and
         ( $year % 100 != 0 or $year % 400 == 0 )
         ) {
        $monthdays[1] = 29;
    }
    if ( $month < 1 or
         $month > 12 or
         $day < 1 or
         $day > $monthdays[$month-1]
         ) {
        return false;
    }
    if ( $month < 10 ) { $month = '0'.$month; }
    if ( $day < 10 ) { $day = '0'.$day; }
    while ( strlen($year) < 4 ) {
        $year = '0'.$year;
    }
    return $year.$month.$date;
}
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2  
+1 I'm very sure you made it verbose on purpose :) –  BoltClock Jul 20 '10 at 18:52
    
Why so much work? This can be done MUCH simpler. –  Pickle Jul 20 '10 at 19:40
$new_date = date("Ymd", strtotime($old_date));
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date("Ymd", strtotime('12242010')) should return 20101224 but it returns 19700101 –  jigfox Jul 14 '10 at 13:54
    
Indeed.. hadn't realized that. Sometimes you just put a little too much trust in something ;) (although strtotime() IS a gem of course!) –  Dennis Haarbrink Jul 14 '10 at 14:15
    
It is returning '19691231' when i use the strtotime() –  Someone Jul 14 '10 at 15:47
$data = strptime('12242010','%m%d%Y');

$date = mktime(
 $data['tm_hour'],
 $data['tm_min'],
 $data['tm_sec'],
 $data['tm_mon']+1,
 $data['tm_mday'],
 $data['tm_year']+1900);

echo date('Ymd',$date);
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Using substr would be faster: http://php.net/manual/de/function.substr.php

$orig="20072010"; // DDMMYYYY
$new=substr($orig,5,4)+substr($orig,3,2)+substr($orig,0,2); // YYYYMMDD

And it is worth reading this: http://www.php.net/manual/en/datetime.formats.date.php

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This is my answer. At last I succeeded.

date( 'Ymd', mktime(0,0,0,$month, $date, $year ));
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