16

I am getting this error in this PHP code on line 3, what could be wrong? This code has been taken from php manual user notes by frank at interactinet dot com

<?php

public function myMethod()
{
return 'test';
}

public function myOtherMethod()
{
return null;
}

if($val = $this->myMethod())
{
 // $val might be 1 instead of the expected 'test'
}

if( ($val = $this->myMethod()) )
{
// now $val should be 'test'
}

// or to check for false
if( !($val = $this->myMethod()) )
{
// this will not run since $val = 'test' and equates to true
}

// this is an easy way to assign default value only if a value is not returned:

if( !($val = $this->myOtherMethod()) )
{
$val = 'default'
}

?> 
  • 1
    Looks like this is supposed to be part of a class definition. This won't run as is. – deceze Nov 12 '12 at 9:44
  • in addition, the code is showcasing bad programming, something you should not do. Why would you want to use the code? – eis Nov 12 '12 at 9:49
44

The public keyword is used only when declaring a class method.

Since you're declaring a simple function and not a class you need to remove public from your code.

  • 1
    what's the difference between a public function in a class and a function out in the open? – expiredninja Jan 3 '14 at 18:01
  • 4
    You can also hit this error from not closing a bracket & that runs into the next function... It will throw this error on that function. That's what I did. Don't be like me. – Tanner_Gram Nov 2 '18 at 15:19
2

You can remove public keyword from your functions, because, you have to define a class in order to declare public, private or protected function

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