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I am working on a function which adds a number of days to a date inside an incrementing variable loop. I am having a problem getting the date from the previous loop to add the next 30 days to that date. This seems to be working for the first 2 loops then breaks and I cannot figure out the correct code to get the previous dates.

Here is my code:

$pay_cycles=5;
$period=30;

 $arr = array();
 for ($i=1;$i<=$pay_cycles;$i++) {

 //if first loop get todays date
 if($i==1){
 $due = date("Y-m-d");

 //else add to previous date
 } else {
 $time = strtotime ( '+'.$period.' day' , strtotime ( $due-1 ) ) ;
 $due = date("Y-m-d", $time); 
 }
   $arr[] = $due;
 }
 print_r($arr);

This is what prints

Array ( [0] => 2010-12-30 [1] => 2011-01-29 [2] => 2011-01-29 [3] => 2011-01-29 [4] => 2011-01-29 )

Thanks for looking

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3 Answers 3

up vote 0 down vote accepted

Maybe I am not understanding your requirement completely: but to get the next 5 X 30 day periods:

$pay_cycles=5;
$period=30;

 $arr = array();
 for ($i=1;$i<=$pay_cycles;$i++) {

 //if first loop get todays date
 if($i==1){
 $due = date("Y-m-d");

 //else add to previous date
 } else {
 $time = strtotime ( "$due +$period day" ) ;
 $due = date("Y-m-d", $time); 
 }
   $arr[] = $due;
 }
 print_r($arr);

Gives:

Array
(
    [0] => 2010-12-31
    [1] => 2011-01-30
    [2] => 2011-03-01
    [3] => 2011-03-31
    [4] => 2011-04-30
)
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Yes you are correct I was using $due-1 instead of just $due. Thanks for your help. –  Paul Atkins Dec 31 '10 at 0:56

This: strtotime ( $due-1 ) is probably biting you. $due is a string, containing "2010-12-31", and subtracting 1 will result in 2010-1 = 2009.

Have a look at mktime(). E.g.

$d = date("d");
$m = date("m");
$y = date("Y");

$pay_cycles = 5;
$period = 30;

for ( $i=0;$i<$pay_cycles;$i++ )
{
    $ts = mktime(0,0,0,$m,$d+$i*$period,$y);
    $datestr = date("Y-m-d",$ts);
    // stuff with $datestr
}
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Thanks you were correct that that line was the problem. I changed $due-1 to $due and it is now working correctly –  Paul Atkins Dec 31 '10 at 0:57
    
@Paul: Still I would strongly recommend using mktime() for this type of problem. –  mvds Dec 31 '10 at 1:25
$pay_cycles=5;
$period=30;

 $arr = array();
 for ($i=0;$i<$pay_cycles;$i++) {
 if($i==0){
 $due = date("Y-m-d");

 //else add to previous date
 } else {

 $time = mktime(0,0,0,date("m"),date("d")+30*$i,date("Y"));
 $due = date("Y-m-d", $time); 
}
   $arr[] = $due;
 }
 print_r($arr);
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