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I have data string with data in format like this -> 03/15/2014 (mm/dd/yyyy) and I need to replace that with date in format 2014-03-15 (yyyy-mm-dd).

I know how to change '/' to '-', but I don't know how to turn 2014 from end to start.

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4  
Did you look in the PHP manual at the date/time functions and/or DateTime class? –  GordonM Mar 6 at 10:55
3  
People don't know hot so use google sometimes. –  skywalker Mar 6 at 10:58
    
possible duplicate of How to change date format from DD/MM/YYYY to YYYY-MM-DD? –  Novocaine88 Mar 6 at 11:06
    
By the way it's date not data, could not correct this (Edits must be at least 6 characters; is there something else to improve in this post?). –  Cthulhu Mar 6 at 12:26

5 Answers 5

up vote 1 down vote accepted

try this

$dates = explode("/","03/15/2014");
$newdate = $dates[2]."-".$dates[0]."-".$dates[1];

This works in all version of php

Note: the input date should be of format mm/dd/yyyy

If your php is less than 5 you can use this. If php > 5 then it advised to use Datetime class as advised by GordonM in order to find the date is valid or not .

Demo

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1  
This is a very good way thanks @krishna –  Kermani Mar 6 at 10:59
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Not the downvoter. Though this answer IS INVALID the OP wants yyyy-mm-dd NOT yyyy-dd-mm as your proposal says. –  Wimpie Mar 6 at 11:05
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This is not a particularly good answer as it will only ever work the the specified input format, any other format will break it. –  Novocaine88 Mar 6 at 11:15
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-1, this is merely doing string manipulation and no sanity checking. If I input 31st of Feb as a date, as long as the string format is right it will happily return 31st of Feb as output. You should really use PHP's date/time functionality which will fail on invalid dates so you can detect and handle them better. –  GordonM Mar 6 at 11:48
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@GordonM, thanks for informing about cool feature of DateTime class.now i have added a note which informs about this problem –  krishna Mar 6 at 16:57
echo date('Y-m-d', strtotime('03/15/2014'));
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1  
You were faster :) –  skywalker Mar 6 at 10:55

Use DateTime::format

 $dt = DateTime::createFromFormat('m/d/Y', ' 03/15/2014');
 echo $dt->format('Y-m-d');
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1  
+1, but you might want to include a $dt -> getLastErrors () to make sure the date wasn't nonsense. For example 31st of Feb 2014 will be treated as 3rd of March (28th + 3 days) which might be what you want but it never hurts to check –  GordonM Mar 6 at 13:26
$date1 = '03/15/2014';
$time1 = strtotime($date1);
$date2 = date('Y-m-d', $time);
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Just explode the string and replace accordingly:

$str = explode('/', $date);
$result = $str[2].'-'.$str[0].'-'.$str[1];
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1  
Why downvote valid answer? –  Cthulhu Mar 6 at 10:58
    
-1, this is merely doing string manipulation and no sanity checking. If I input 31st of Feb as a date, as long as the string format is right it will happily return 31st of Feb as output. You should really use PHP's date/time functionality which will fail on invalid dates so you can detect and handle them better. –  GordonM Mar 6 at 11:49
    
@GordonM You sure you read the question? It was not about date validation. –  Cthulhu Mar 6 at 12:18
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@Cthulhu Yes I did but you should always be making sure your data is valid anyway, otherwise you might find yourself trying to send a birthday card on the 31st of February. –  GordonM Mar 6 at 13:17

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