1

I'm currently trying to get a json object and display it my code looks like this :

if (isset($_POST['search_button'])) {
$cnt = new Connector();
$employee = new Search($cnt);
$name = $_POST['name'];
$found = array('id' => $employee->getEmployeeByName($name)[0]['id']);
$emp_id =  json_encode($found);
echo $emp_id;
}

This works for me, the only problem I have is that I get an output that looks like this:
{"id":1}
But I just want the value, so it should just display 1.
How would I go on about doing this? I already tried it with json decode and str_replace to remove the brackets, but I didn't work out for me.

  • if you just want plain id then don't decode it – Kevin May 13 '15 at 7:12
  • Then why are you encoding it? – Sougata Bose May 13 '15 at 7:14
  • @Jeremy wat exact output u r expecting? – Elangovan May 13 '15 at 7:16
  • @Elangovan just the value. So for this example just a number – Jeremy Püringer May 13 '15 at 7:18
0

Either don't use json_encode at all:

$emp_id = $found['id'];
echo $emp_id;

...or only encode the ID (e.g., if you want quotes and escaping):

$emp_id = $found['id'];
echo json_encode($emp_id);
  • When I don't use json_encode I get " Trying to get property of non-object" – Jeremy Püringer May 13 '15 at 7:16
  • Oh sorry, I made a mistake... now it works, thanks :) – Jeremy Püringer May 13 '15 at 7:20

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