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One of my colleges seem to have an 'undefined index' error on a code I wrote

This code of mine looks like this:

if ( is_array ($arr['key'])) 

My intention was to check whether $arr has a key named 'key', and if the value of that key is array itself. Should I do instead: if( isset($arr['key']) && is_array ($arr['key'])) ?

Maybe the following is equivavlent: Let's assume $var is not set. Then, will is_array($var) cause an error or will it just return false?

Thank you

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3 Answers 3

up vote 6 down vote accepted

Yes, use isset, then is_array.

if(isset($arr['key']) && is_array($arr['key'])) {
    // ...
}

Because PHP uses short-circuit logic evaluation, it will stop before it gets to is_array(), so you'll never get an error.

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Try:

is_array($arr) && array_key_exists('key', $arr)
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This doesn't answer my question, but it wasn't clear enough. Edited it, please give another look –  shealtiel Dec 21 '10 at 0:07
    
If it is not set, it will throw a Notice. What you can do is check first isset($arr) && is_array($arr). –  ncuesta Dec 21 '10 at 0:12

check if it exists first, then if its an array. Otherwise you will still get the same error.

if ( isset($arr['key'])) {
    if (is_array ($arr['key']) {

    }
}
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1  
Why not both in the same statement: if ( isset($arr['key']) && is_array ($arr['key']) ? –  shealtiel Dec 21 '10 at 0:07

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