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I have used a function to calculate date difference between 2 dates.

Here is my function

function date_difference ($date_1, $date_2) {   


    $val_1 = new DateTime($date_1);
    $val_2 = new DateTime($date_2);

    $interval = $val_1->diff($val_2);
    $year     = $interval->y;
    $month    = $interval->m;
    $day      = $interval->d;

    $output   = '';

    if($year > 0){
        if ($year > 1){
            $output .= $year." years ";     
        } else {
            $output .= $year." year ";
        }
    }

    if($month > 0){
        if ($month > 1){
            $output .= $month." months ";       
        } else {
            $output .= $month." month ";
        }
    }

    if($day > 0){
        if ($day > 1){
            $output .= $day." days ";       
        } else {
            $output .= $day." day ";
        }
    }
    if($day == 0)
        $output.=' Almost Over';
    if($day < 0)
        $output.= ' Expired';
    return $output;
}

I am using it like this

echo date_difference(date('m/d/Y'),'02/06/2013');

It shows the result as 25 days where as it should show expired. Can anyone point where i am doing wrong.

share|improve this question
    
did you try it the other way around? –  kennypu Mar 3 '13 at 3:59
2  
    
Yes i haven't written the function just modified it to work like i want it. –  Nirmal Ram Mar 3 '13 at 4:05
    
Just a personal little thing but I would use the ternary operator instead of the $[timelength] > 1 if statements as it would be much cleaner. –  jimjimmy1995 Mar 3 '13 at 4:06
    
Okay thanks i would do that. –  Nirmal Ram Mar 3 '13 at 4:09

3 Answers 3

up vote 2 down vote accepted

As soon as I saw this XKCD page I wanted an opportunity to post it, and here it is!

xkcd

When your code tries to parse 02/06/2013, how can it know whether you mean "February 2nd", or "June 6th"? You should ALWAYS use the YYYY-MM-DD format when giving a date to parse, or better yet hardcode the actual numeric timestamp (in this case 1360126800)

share|improve this answer
    
Tried like this but still shows 25 days. echo time_difference(date('Y-m-d'),'2013-02-06'); –  Nirmal Ram Mar 3 '13 at 4:18
    
You need to check if( $interval['invert']) return 'Expired'; –  Niet the Dark Absol Mar 3 '13 at 4:21
    
Fatal error: Cannot use object of type DateInterval as array in /home/crowdfun/public_html/wp-content/themes/vantage-child/functions.php on line 87 –  Nirmal Ram Mar 3 '13 at 4:32
1  
My mistake, it should be $interval->invert. –  Niet the Dark Absol Mar 3 '13 at 4:34
    
Yes thanks that worked but why i need to return 'Expired' can't i append it to $output ? –  Nirmal Ram Mar 3 '13 at 4:38

DateInterval won't have nagative values, you need to compare the two DateTime object.

Change to

if($val_1 < $val_2 && $day == 0)
    $output.=' Almost Over';
if($val_1 > $val_2)
    $output.= ' Expired';
return $output;
share|improve this answer
    
That also didn't work. I got 25 days expired. and for almost over i got blank. –  Nirmal Ram Mar 3 '13 at 4:28
    
I think i can modify your code to make it work. Almost over shows correct result for me. So only expired needs to be modified. I did like this. if($val_1 > $val_2) return ' Expired'; –  Nirmal Ram Mar 3 '13 at 4:41

just use the UNIX time stamp, that way it should be a very easy calculation.

it can be shown in Y-D-M and you can even make a count down clock if you feel a bit fancy.

most MMO's and management systems use it to register the date & time of registration and to show how long the member has been on the community.

hope it helped!.

share|improve this answer
    
Already tried that but it gives 2 months 30 days echo time_difference(date('Y-d-m'),'2013-06-02');; –  Nirmal Ram Mar 3 '13 at 4:20
    
so simply say'd you want the code to subtract 1 until the value is 25 and then return "expired", am i understanding it correct? –  LUX Mar 3 '13 at 4:26
    
Yes. if the difference between the dates is less than 0 then it should return expired –  Nirmal Ram Mar 3 '13 at 4:35

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