-3

When I execute this code it says to me the error in the title. The code:

if(isset($_POST['name'])) {
        $name=$_POST['name']

        echo 'test';
}

I know it's a little code but I don't find the error. Can you help me pls?

2
  • 2
    PHP is not JS, place ; in the end of your second line – user1597430 Apr 8 at 6:04
  • 1
    Semi colon (;) is missing after second line $_POST[‘name’] it should be like $name =$_POST[‘name’]; – Arun Vishwakarama Apr 8 at 6:04
0

missing semmicolon at end of the line.
$name=$_POST['name'];

1
  • oh yeah thank you a very stupid error – Ganoss_ Apr 8 at 6:09

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