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I want to get the $registratiedag and count a couple of days extra, but I always get stuck on the fact that it needs to be a UNIX timestamp? I did some google-ing, but I really don't get it.

I hope someone can help me figure this out. This is what I got so far.

$registratiedag = $oUser['UserRegisterDate'];
$today = strtotime('$registratiedag + 6 days');

echo $today;            
echo $registratiedag;

echo date('Y-m-d', $today);

There's obviously something wrong with the strtotime('$registratiedag + 6 days'); part, because I always get 1970-01-01

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1  
yeah that's not a valid way to call strtotime... –  Fosco May 24 '11 at 20:00
    
What does $registratiedag contain? –  rid May 24 '11 at 20:02
    
$registratieday contains '2011-05-22' .. And no, I know that's not the right way, but I don't know what is.. –  user509433 May 24 '11 at 20:03

4 Answers 4

up vote 1 down vote accepted

You probably want this:

// Store as a timestamp
$registratiedag = strtotime($oUser['UserRegisterDate']);
$new_date = strtotime('+6 days', $registratiedag);

// You'll need to format for printing $new_date
echo date('Y-m-d', $new_date);

// I think you want to compare $new_date against
// today's date. I'd recommend a string comparison here,
// As time() includes the time as well
// time() is implied as the second argument to date,
// But we'll put it anyways just to be clearer 
if( date('Y-m-d', $new_date) == date('Y-m-d', time()) ) {
  // The dates are equal, do something here
}
else if($new_date < time()) {
  // if the new date is earlier than today
}
// etc.

First it converts $registratiedag to a timestamp, then it adds 6 days

EDIT: You probably should change $today to something less misleading like $modified_date or something

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Yeah, I got it working now, thanks. But now I want to compare the dates.. so if $registratiedag == $today ... but that doesn't work :s –  user509433 May 24 '11 at 20:38
    
@KimWouters I've updated my code to best show what I believe you're trying to accomplish. Let me know if this is what you want to do –  onteria_ May 24 '11 at 20:53
    
that's it! GREAT. thanks a lot! –  user509433 May 24 '11 at 22:05

try:

$today = strtorime($registratiedag); $today += 86400 * 6; // seconds in 1 day * 6 days

at least one of your problems is that PHP does not expand variables in single quotes.

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$today = strtotime("$registratiedag + 6 days"); 
//use double quotes and not single quotes when embedding a php variable in a string
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If you want to include the value of variable $registratiedag right into the text passed as parameter of strtotime, you have to enclose that parameter with ", not with '.

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Ok, fixed it! Thanks a lot! So now I got $today = strtotime("$registratiedag + 4 days");, and it works just fine. :) –  user509433 May 24 '11 at 20:06

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