Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a mySQL database.

I need to count the number of days between two dates.

My client is going to fill an input hm_date with January 1, 1979 via php form to create a new record.

I need a field total_days to calculate the total number of days from hm_date to the present day. I need this field to always update itself with each passing day.

How do I make hm_date to appear with total days and be always updated?

I asume this can be achieved server-side?

Should I use strototime() ?

share|improve this question
add comment

3 Answers 3

up vote 8 down vote accepted

You'll want to use MySQL's DATEDIFF()

DATEDIFF() returns expr1 – expr2 expressed as a value in days from one date to the other. expr1 and expr2 are date or date-and-time expressions. Only the date parts of the values are used in the calculation.

mysql> SELECT DATEDIFF('2007-12-31 23:59:59','2007-12-30');
        -> 1
mysql> SELECT DATEDIFF('2010-11-30 23:59:59','2010-12-31');
        -> -31

Based on your question I think you would want DATE_DIFF(hm_date, CURRENT_DATE). Just make sure hm_date is in YYYY-MM-DD format.

share|improve this answer
    
Is there an example anywhere for the syntax and how to write it? –  Erik May 11 '12 at 0:31
    
Check my updated answer –  John Conde May 11 '12 at 0:32
    
is this right? mysql> SELECT DATEDIFF('hm_date'); -> 1 mysql> SELECT DATEDIFF('total_days'); -> -31 –  Erik May 11 '12 at 0:33
    
You need to pass DATE_DIFF() two dates as parameters. Based on your question I think you would want DATE_DIFF(hm_date, CURRENT_DATE). Just make sure hm_date is in YYYY-MM-DD format. –  John Conde May 11 '12 at 0:36
    
And this can be server-side so i don't need to create php on the client-side? –  Erik May 11 '12 at 0:38
show 5 more comments

With PHP:

$daydiff = floor( ( strtotime( $endDate ) - strtotime( $startDate ) ) / 86400 );

$startDate and $endDate can be any valid date format explained here: http://www.php.net/manual/en/datetime.formats.date.php

share|improve this answer
3  
A day is not always 24 hours. During DST, it may be 23 or 25. As such, this may sometimes fail. –  Corbin May 11 '12 at 0:35
    
The concept of "day difference" can not be programatically calculated without assuming a day is 24 hours. Governments can set a date for dst switching. And again it can't be 100% accurate with just dates, without inputting the actual time. –  Conrad Warhol May 11 '12 at 0:52
1  
The fault in that is that a day is well defined. It's just not conveniently defined. DST is a bitch, but a bitch that you must tolerate. Having a bug show up on DST-day is never a pleasant experience, especially when you look at the code and go "Awww... I assume it was 24 hours." –  Corbin May 11 '12 at 1:46
add comment

Its pretty easy but long.. Please follow following codes

<?php

  // Set timezone
  date_default_timezone_set("UTC");

  // Time format is UNIX timestamp or
  // PHP strtotime compatible strings
  function dateDiff($time1, $time2, $precision = 6) {
    // If not numeric then convert texts to unix timestamps
    if (!is_int($time1)) {
      $time1 = strtotime($time1);
    }
    if (!is_int($time2)) {
      $time2 = strtotime($time2);
    }

    // If time1 is bigger than time2
    // Then swap time1 and time2
    if ($time1 > $time2) {
      $ttime = $time1;
      $time1 = $time2;
      $time2 = $ttime;
    }

    // Set up intervals and diffs arrays
    $intervals = array('year','month','day','hour','minute','second');
    $diffs = array();

    // Loop thru all intervals
    foreach ($intervals as $interval) {
      // Set default diff to 0
      $diffs[$interval] = 0;
      // Create temp time from time1 and interval
      $ttime = strtotime("+1 " . $interval, $time1);
      // Loop until temp time is smaller than time2
      while ($time2 >= $ttime) {
    $time1 = $ttime;
    $diffs[$interval]++;
    // Create new temp time from time1 and interval
    $ttime = strtotime("+1 " . $interval, $time1);
      }
    }

    $count = 0;
    $times = array();
    // Loop thru all diffs
    foreach ($diffs as $interval => $value) {
      // Break if we have needed precission
      if ($count >= $precision) {
    break;
      }
      // Add value and interval 
      // if value is bigger than 0
      if ($value > 0) {
    // Add s if value is not 1
    if ($value != 1) {
      $interval .= "s";
    }
    // Add value and interval to times array
    $times[] = $value . " " . $interval;
    $count++;
      }
    }

    // Return string with times
    return implode(", ", $times);
  }

?>

Now try this and see how it shows the difference...

echo dateDiff("2010-01-26", "2004-01-26") . "\n";
echo dateDiff("2006-04-12 12:30:00", "1987-04-12 12:30:01") . "\n";
echo dateDiff("now", "now +2 months") . "\n";
echo dateDiff("now", "now -6 year -2 months -10 days") . "\n";
echo dateDiff("2009-01-26", "2004-01-26 15:38:11") . "\n";
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.