21

This code is part of a websocket server:

$msgArray = json_decode($msg);
if ($msgArray->sciID) {
  echo "Has sciID";
}

It will either be receiving a json string like {"sciID":67812343} or a completely different json string with no sciID such as {"something":"else"}.

When the server receives the later, it echos out: Notice: Undefined property: stdClass::$sciID in /path/to/file.php on line 10

What is the correct code to check if $msgArray->sciID exists?

54

Use isset as a general purpose check (you could also use property_exists since you're dealing with an object):

if (isset($msgArray->sciID)) {
    echo "Has sciID";
}
  • 2
    Note: With isset() and empty() a non-existant variable and a variable set to NULL are treated the same. Only property_exists and ReflectionObject will tell the difference. – dog May 1 '11 at 23:38
  • See stackoverflow.com/a/3803347/632951 – Pacerier Jan 26 '15 at 12:45
7

property_exists()?

4

In case isset() or property_exists() doesn't work, we can use array_key_exists()

if (array_key_exists("key", $array)) {
    echo "Has key";
}
  • 2
    JSON string must be decoded as an array by setting second parameter true like json_decode($str, true) to use array_key_exists – spetsnaz Jan 11 '17 at 8:46
0

I've always done isset() but I've recently changed to !empty() and empty because one of my friends suggested it.

  • 1
    In this case empty doesn't work (php -r 'class A {} $a = new A; var_dump(isset($a->b), empty($a->b));' returns TRUE and FALSE respectively), however I'm not sure why - probably because an undefined property doesn't equate to NULL or FALSE or anything else considered 'empty' as trying to access it throws a notice. Personally I like to distinguish between what I'm checking - if I'm checking for 0, null or an empty string I use ==0, is_null and strlen because of the issue above. – Ross May 1 '11 at 23:42
0

The isset() function checks if a variable is set and is not null, which is really stupid, given its name. If you only want to know if a variable is set, use the following function:

function is_set( & $variable ) {
    if ( isset( $variable ) and ! is_null( $variable ) )
        return true;
    else
        return false;
}

This function will return true exactly when the variable is not set, and false otherwise. The '&' next to the argument is important, because it tells PHP to pass a reference to the variable, and not the value of the variable, thus avoiding a "Notice: Undefined variable" when the variable is not set.

  • This will return true if the variable is defined and not null. That's exactly what isset() does by default. – Nostalg.io Nov 17 '17 at 19:50

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.