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I need to convert datetime into year, month, days, hours, minutes, seconds ag like as yahoo questino asked 5week ago , or 1 year ago or 1 month ago, my date is saved in database like this: 2011-11-30 05:25:50.

Now I want to show like year, month, days, hours, minutes and seconds in PHP like: how much year,how much month , days, hours, minutes, seconds ago, but need only one time unit show like it will be year or days or hours or minutes or seconds.

I have searched about this but not understand how I can do this,I know there are many questions at this topic on Stack Overflow, maybe it is duplicate but I am unable to solve my issue.

Thanks in advance.

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closed as off-topic by John Conde, tereško, Anand, keyboardsurfer, Shadwell Sep 18 '13 at 10:24

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions asking for code must demonstrate a minimal understanding of the problem being solved. Include attempted solutions, why they didn't work, and the expected results. See also: Stack Overflow question checklist" – John Conde, tereško, Anand, keyboardsurfer, Shadwell
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You can't convert a date into a period of time. You need two dates for that to work. –  John Conde Sep 17 '13 at 18:46
2  
You want the difference between that time and now, I suppose? php.net/manual/en/datetime.diff.php –  CBroe Sep 17 '13 at 18:47
    
No I don't want difference –  ali Sep 17 '13 at 18:51
    
@ali Then how are you planning on turning "2011" into "2 years"? –  Esaevian Sep 17 '13 at 18:53
    
it is only example: I just want this date time 2011-11-30 05:25:50 into correct formate –  ali Sep 17 '13 at 19:01

4 Answers 4

up vote 1 down vote accepted

Assuming you mean relative to the present (if you don't, please clarify your question), you could use this:

$then = new DateTime('2011-11-30 05:25:50');
$now = new DateTime();
$delta = $now->diff($then);

$quantities = array(
    'year' => $delta->y,
    'month' => $delta->m,
    'day' => $delta->d,
    'hour' => $delta->h,
    'minute' => $delta->i,
    'second' => $delta->s);

$str = '';
foreach($quantities as $unit => $value) {
    if($value == 0) continue;
    $str .= $value . ' ' . $unit;
    if($value != 1) {
        $str .= 's';
    }
    $str .=  ', ';
}
$str = $str == '' ? 'a moment ' : substr($str, 0, -2);

echo $str;

Output:

1 year, 9 months, 17 days, 14 hours, 31 minutes, 31 seconds
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They clarified, they don't. See this answer for a more concise way to do this. –  John Conde Sep 17 '13 at 19:01
    
I have question table there is save asked_date 2011-11-30 05:25:50 now I want to show this question was asked 'year,month,days,hours,minutes,seconds ago –  ali Sep 17 '13 at 19:09
1  
Retrieve that timestamp from the database in the normal way, put $result['asked_date'] into the constructor of the first DateTime ($then), and append ` ago` to the final $str. –  George Brighton Sep 17 '13 at 19:19
1  
Yes - passing no arguments initialises the DateTime object to the current timestamp. –  George Brighton Sep 17 '13 at 19:46
1  
There's a much easier way - see my edit. if($value == 0) continue; –  George Brighton Sep 17 '13 at 20:26

I've always used this function:

function when($datetime) {   

    define("SECOND", 1);
    define("MINUTE", 60 * SECOND);
    define("HOUR", 60 * MINUTE); define("DAY", 24 * HOUR);
    define("MONTH", 30 * DAY); $delta = time() - strtotime($datetime);

    // convert

    if($delta < 1 * MINUTE) { return $delta == 1 ? "one second ago" : $delta." seconds ago"; }
    if($delta < 2 * MINUTE) { return "a minute ago"; } if($delta < 45 * MINUTE) { return floor($delta / MINUTE)." minutes ago"; }
    if($delta < 90 * MINUTE) { return "an hour ago"; } if($delta < 24 * HOUR) { return floor($delta / HOUR)." hours ago"; }
    if($delta < 48 * HOUR) { return "yesterday"; } if($delta < 30 * DAY) { return floor($delta / DAY)." days ago"; }
    if($delta < 12 * MONTH) { $months = floor($delta / DAY / 30); return $months <= 1 ? "one month ago" : $months." months ago"; }
    else { $years = floor($delta / DAY / 365); return $years <= 1 ? "one year ago" : $years." years ago"; }

}

echo when(YOUR DATE HERE) will return the best format of relative time, which might be days, hours, or if it wasn't that long ago, even in seconds.

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They don't want the difference between two dates –  John Conde Sep 17 '13 at 18:53
    
I'm with @Esaevian then, this question makes no sense. –  Daniel Schwarz Sep 17 '13 at 18:56
    
Thank you: I used your method and it echo this error: Constant SECOND already defined: i am using this function in yii model class –  ali Sep 17 '13 at 18:59
    
Could you make sure that the function is only being included once? –  Daniel Schwarz Sep 17 '13 at 19:02
1  
This function won't do that. This will only return either a months, days, hours, or seconds ago. Try including the script higher in the document and calling in when needed. –  Daniel Schwarz Sep 17 '13 at 19:21

Try this: http://www.php.net/manual/en/function.strtotime.php

PHP has a nice function strtotime all ready for your needs.

That'll give you a timestamp, then you can just do math from there from whatever date you are subtracting from.

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But that's it, they're not doing math on two different dates –  John Conde Sep 17 '13 at 18:48
    
I made an assumption that they had a second date ready to go. Still, you can convert a single date to a string like that if you want something like 2011 years, 11 months, 30 days, 5 hours, 25 minutes, 50 seconds –  Esaevian Sep 17 '13 at 18:49
    
Hmph, nevermind, I just saw ali's comment. Now this question makes no sense. –  Esaevian Sep 17 '13 at 18:53
1  
Ah! "ago" is the magic word. For that you do want a difference between now. now() - asked_date = time ago. Use strtotime() to get the asked_date time, use now() to get the current time, subtract now from asked_date to get the difference between the time in seconds, then do basic math to figure out the different in different time units. –  Esaevian Sep 17 '13 at 19:12
1  
Or, more simply, date_diff() -> php.net/manual/en/function.date-diff.php Check the examples/comments –  Esaevian Sep 17 '13 at 19:14

You could try splitting this using preg_split.

Try something like

$output = preg_split( "/ (-| |:) /", $input );

That should give you an array, where the first element is the year, second is the month, and so on.

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