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I am trying to add days and/or weeks to a date that is being pulled from a database. All I am getting is the 12-31-1969 default date when it cannot output correctly. Here is my code:

$lastFeed = "6-25-2013"; //pulled from database last feed date 

$feedSchedule = "2"; //pulled from database number of weeks.

$nextFeeding = date("m-d-Y", strtotime($lastFeed . ' + ' . $feedSchedule. ' week'));

I have also tried multiplying the days times the $feedSchedule variable and replacing week(s) with day(s).

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what is $feedDate? –  Ronnie Jun 25 '13 at 18:00
    
Sorry that was a typo I have edited it to replace it with $lastFeed. –  n_starnes Jun 25 '13 at 18:01
    
    
I am trying to add days/weeks to a specific pulled time, not today's date which your link suggest. –  n_starnes Jun 25 '13 at 18:08
    
have you echo/print your retrieved $lastFeed variable to ensure that your year is not being retrieved as 0000 which would return 12-31-1969 –  amaster507 Jun 25 '13 at 18:17

2 Answers 2

up vote 0 down vote accepted

Here is code that will work and account for the invalid Date Time String

function nextFeeding($lastFeed,$feedSchedule){
  //fix date format
  $correctedDate = explode("-",$lastFeed);
  //pad month to two digits may need to do this with day also
  if($correctedDate[0] < 10 && strlen($correctedDate[0])!==2){
    $correctedDate[0] = "0".$correctedDate[0];
  }
  $correctedDate = $correctedDate[2]."-".$correctedDate[0]."-".$correctedDate[1];
  //get the next feeding date
  $nextFeeding = date("m-d-Y", strtotime($correctedDate . ' + ' . $feedSchedule. ' week'));
  //return value
  return $nextFeeding;
}

$lastFeed = "6-25-2013"; //pulled from database last feed date 

$feedSchedule = "2"; //pulled from database number of weeks.

$nextFeeding = nextFeeding($lastFeed,$feedSchedule);
echo $nextFeeding;

returns

07-09-2013
share|improve this answer
    
I have attempted this and it did not work. –  n_starnes Jun 25 '13 at 18:19
    
Sorry, I forgot to put the semicolon on the third line... just tried it in PHP sandbox and all works! –  amaster507 Jun 25 '13 at 18:21
    
I placed the semicolon there because I noticed it as well. It still does not work. –  n_starnes Jun 25 '13 at 18:23
    
try this before running the conversion echo $lastFeed; and let me know exactly what you are getting. –  amaster507 Jun 25 '13 at 18:25
    
I am running this without a conversion. $lastFeed when echoed shows the correct format of 6-25-2013 and then $lastFeed is then used in your function. Once the function is run it shows the date as 12-31-1969. $feedschedule varies each time it is used. On one animal it is 2 on the other it can be 10. –  n_starnes Jun 25 '13 at 18:30

6-25-2013 is not a valid date format. Try YYYY-MM-DD

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Yes, i checked, it will work. –  drull Jun 25 '13 at 18:05
    
The date format I am using works fine and for the purpose it is serving. I have used it in the past and on previous lines of code with this application. –  n_starnes Jun 25 '13 at 18:06
    
@n_starnes But as you have observed, it doesn't work as an input format for strtotime(). You don't have to switch the format globally, but you will need to modify it for use with strtotime(). –  George Cummins Jun 25 '13 at 18:07
    
doing it as you suggest displays: 1969-Dec-Wed I need accurate date information not day of the week. –  n_starnes Jun 25 '13 at 18:15

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