4

I can't seem to work out why this isn't working.

I may of done this completely wrong but hoping someone can help.

I have a date and I want to add 2 years to that date. When I run my code it only echo's the date I started with.

Does anyone know where I have gone wrong? I want to only use the date in $start_date not today's date.

$start_date = "2013-05-06 13:18:56";
    $targetDate = date($start_date, strtotime('+2 Years'));
    echo $targetDate;
1
10

You want this:

$new_date = date('Y-m-d H:i:s', strtotime('+2 years', strtotime($from_date)));

For the options for the date format, check out the documentation.

1
  • Your missing a ) at the end of your code, once I added that it worked! Thanks heaps. – Aaron May 6 '13 at 4:15
1

Another option for you is to use the DateTime classes built into PHP:-

$date = \DateTime::createFromFormat('Y-m-d H:i:s', "2013-05-06 13:18:56");
var_dump($date);
$interval = new DateInterval('P2Y');
$date->add($interval);
var_dump($date);

The output from this is something like:-

object(DateTime)[1]
  public 'date' => string '2013-05-06 13:18:56' (length=19)
  public 'timezone_type' => int 3
  public 'timezone' => string 'Europe/London' (length=13)
object(DateTime)[1]
  public 'date' => string '2015-05-06 13:18:56' (length=19)
  public 'timezone_type' => int 3
  public 'timezone' => string 'Europe/London' (length=13)
1
  • Why is this not upvoted at least, the DateTime class is preferred – relipse Aug 19 '19 at 14:10
0

From the docs:

string date ( string $format [, int $timestamp = time() ] )

the first parameter is a date format, not the actual date you want to operate on.

Take a look at DateTime::add.

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