3

I am having issues getting my code to return the correct response.

$Birthd = '06-27-1996';

$NewISSdate = date("m-d-Y", strtotime(date("m-d-Y", strtotime($Birthd)) . " +21 years"));

When I run this the response is: "12-31-1969"

I believe this is a default date of sorts, but what can I do to repair my code? If ran with a different $Birthd string such as "07-03-1996".

0

You need to change string date format and then add years to it like below:-

$Birthd = '06-27-1996';
$Birthd = str_replace("-","/",$Birthd);

echo $NewISSdate = date("Y-m-d", strtotime(date("Y-m-d", strtotime($Birthd)) . " + 21 years"));

Output:-https://eval.in/835509 OR https://eval.in/835555

Reference:- php different acceptable date formats

0

Change - to / and try...

$Birthd = '06/27/1996';

$NewISSdate = date("m/d/Y", strtotime(date("m/d/Y", strtotime($Birthd)) . " +21 years"));
  • Still getting the wrong date :( – Ryan Reddings Jul 21 '17 at 5:42
  • try with this date("m/d/Y",strtotime('+21 years', strtotime($Birthd))); – Arshad Shaikh Jul 21 '17 at 5:45

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.