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I have this following loop which would get the dates with a given duration and start date.

$durationMonth =$_POST['pay_months']; //how many months to pay
$count = ($durationMonth * 30);
$day = 1;
for ($i=1; $i<=$count; $i++)
{ 
    $day+=1; 
    $start_date=date("y-m-d");
    $start_date=strtotime(date("y-m-d",strtotime($start_date))." + $day day");
    $start_date=date("y-m-d",$rel_date);

  echo "<tr>
 <td id ='row'> ".$i."</td> 
 <td id ='row'> ".$start_date." </td>
 </tr> ";
}

This loop wont work. If I set the ff:

 $start_date =  '2015-01-01'
 $duration = 1

Even if how many times i tried, this always gives the dates from 15-03-04 up to 15-04-02 . How should I revise my code? Thanks for the help

  • Ugly! Use DateTime() for date math. much cleaner. – John Conde Mar 2 '15 at 14:25
  • What proportion of the months in a year have 30 days? 4 out of 12! Your code will be wrong 67% of the time – Mark Baker Mar 2 '15 at 14:28
  • How should it be done to set also the months having leap year and have 31 days? – sw8mom Mar 2 '15 at 14:33
  • possible duplicate of increment date by one month – Alex Mar 2 '15 at 14:46
  • i just understand the procedural one. – sw8mom Mar 2 '15 at 14:57
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As I flagged it is duplicate .

So you can try:

$durationMonth =$_POST['pay_months']; //how many months to pay
$start_date=strtotime (date("y-m-d"));
for ($i=1; $i<=$durationMonth; $i++)
{ 
  $start_date = date("Y-m-d", strtotime("+1 month", $start_date));
  echo "<tr>
 <td id ='row'> ".$i."</td> 
 <td id ='row'> ".$start_date." </td>
 </tr> ";
}

the only thing you should worry if date day is more than 28.

If you can accept this solution to avoid usin 29,30,31 as a date day :

$durationMonth =$_POST['pay_months']; //how many months to pay
$start_date=strtotime (date("y-m-d"));
if (date('j',$start_date)>28)
   $start_date=strtotime (date("y-m-").'28');
for ($i=1; $i<=$durationMonth; $i++)
{ 
  $start_date = strtotime("+1 month", $start_date);
  echo "<tr>
 <td id ='row'> ".$i."</td> 
 <td id ='row'> ". date("Y-m-d", $start_date)." </td>
 </tr> ";
}
  • It's useful but why is it that my $start_date = $_POST['start_date']; is not captured? How it could be set in the code to be my $start_date=strtotime (date("y-m-d")); ? – sw8mom Mar 2 '15 at 15:34
  • because you didn't show in your post that you need that start_date from $_POST. so if you have it as a post field just change $start_date=strtotime (date("y-m-d")); to $start_date=strtotime ($_POST['start_date'])); – Alex Mar 2 '15 at 15:36
  • thank you so much for the help Alex. :) i got it now. – sw8mom Mar 2 '15 at 15:50

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