7

Hello I am making this call:

$parts = $structure->parts;

Now $structure only has parts under special circumstances, so the call returns me null. Thats fine with me, I have a if($parts) {...} later in my code. Unfortunately after the code finished running, I get this message:

Notice: Undefined property: stdClass::$parts in ...

How can I suppress this message?

Thanks!

23

The function isset should do exactly what you need.

PHP: isset - Manual

Example:

$parts = (isset($structure->parts) ? $structure->parts : false);
  • Thanks learned something new :)! Solved – EOB Apr 13 '12 at 15:01
  • +1 Helped me out with a similar problem – AdRock Nov 5 '13 at 11:14
  • its help alot thanks nitram – md server Jan 17 at 13:31
4

maybe this

$parts = isset($structure->parts) ? $structure->parts : false ;
0

With the help of property_exists() you can easily remove "Undefined property" notice from your php file.

Following is the example:

if(property_exists($structure,'parts')){ $parts = $structure->parts; }

To know more http://php.net/manual/en/function.property-exists.php

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