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I have a number of days to a date in the future but would like to know how many weeks and days it is. Also, noting that if its less than a week, then it simply returns the same number.

Is this possible?

e.g. 17 days would be 2 weeks and 3 days

e.g. 4 days would be 4 days

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6  
The modulo operator is not sufficient? How? $x % 7 gives you the number of days which didn't fit into a whole week, and you can work out the number of weeks from there trivially. See also: The Fine Manual, over there: php.net/manual/en/language.operators.arithmetic.php –  Piskvor Jan 2 '12 at 15:47
1  
+1 for @Piskvor's suggestion, but if you ever need more than weeks, you might look into PHP's DateInterval class. –  Jimmy Sawczuk Jan 2 '12 at 15:49
    
Piskvor's right. Get the weeks by round($x / 7), and then the days by $x % 7 –  Nonym Jan 2 '12 at 15:50
    
@Nonym: $weeks = round($x/7); $days = ($x%7) won't do quite what you'd expect for $x==13. PHP has three different rounding functions for a good reason. –  Piskvor Jan 2 '12 at 15:54
    
You're right, piskvor, but perhaps $weeks = floor($x/7); $days = ($x%7) would work, will it? –  Nonym Jan 2 '12 at 16:12
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7 Answers

up vote 3 down vote accepted

I would try something like this:

$days = 17;
$weeks = floor($days / 7);
$dayRemainder = $days % 7;
echo $days.'<br/>'.$weeks.'<br/>'.$dayRemainder;//add whatever logic you need here to get the display the way you want it.
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$weeks = intval($days / 7);
$days = $days % 7;

if($weeks)
{
    printf("%d weeks", $weeks);
}
if($days)
{
    if($weeks)
    {
        printf(" and ");
    }
    printf("%d days", $days);
}
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Something along the lines of this should work

function getnumweeks(d) {
   totalDays = d;
   numWeeks = floor(d/7);
   if numWeeks != 0 {
      extraDays = totalDays % 7;
      return array(extraDays, numWeeks);
   } else {
      return array(totalDays, 0)
   }
}

Then you can call and use it as such:

ans = getnumweeks(17)

ans[0] <- Contains number of days
ans[1] <- Contains Number of Weeks
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As the Piskvor mentioned, you should use the modulo operator:

$weeks = $days/7;
$daysleft = $days%7;
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If $x = 13; then $weeks == 1.8571428571429 and $daysleft == 6. Close, but no cigar. –  Piskvor Jan 2 '12 at 15:56
    
$weeks = floor($days/7); –  Darren Sweeney Jan 2 '12 at 16:03
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Let's say x is number of days, W is output value of weeks and D is output value of days remaining.

First do integer division

W = x / 7;

Then you take remainder: D = x % 7;

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W won't necessarily be an integer, due to the way PHP is weakly typed. You want a floor() around that. –  Piskvor Jan 2 '12 at 15:51
    
Yes, you are right! I just write very general way, not exact PHP code ;) –  rkosegi Jan 2 '12 at 15:54
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$num_days = $databack30[days_to_next_event]; 
$weeks = floor($num_days/7); 
$days = $num_days % 7;

if($weeks>'0'){ $whenitis = ' in '.$weeks.' weeks and '.$days.' days'; }

else { $whenitis = ' in '.$days.' days'; }
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I would suggest you to re-use this powerful function datediff:

http://www.addedbytes.com/lab/php-datediff-function/

as suggested in php weeks between 2 dates

or taking inspiration from that code.

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That function won't work right this year. Guess why? –  Piskvor Jan 2 '12 at 15:57
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