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I get a strange PHP error after updating my php version to 5.4.0-3.

I have this array:

Array
(
    [host] => 127.0.0.1
    [port] => 11211
)

When I try to access it like this I get strange warnings

 print $memcachedConfig['host'];
 print $memcachedConfig['port'];


 Warning: Illegal string offset 'host' in ....
 Warning: Illegal string offset 'port' in ...

I really don't want to just edit my php.ini and re-set the error level.

Thanks for any help!

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7  
Obviously $memcachedConfig is not that array. Show var_dump($memcachedConfig); –  zerkms Mar 26 '12 at 8:56
    
just a guess, but have you tried using actual strings as keys? I mean, ['host'] => '127.0.0.1' –  maialithar Mar 26 '12 at 8:57
    
Shouldn't it be ['host'] => '127.0.0.1' etc. ? –  luukes Mar 26 '12 at 8:58
    
use var_dump() not print_r() and you will see what $memcachedConfig really is. –  Vytautas Mar 26 '12 at 8:58
    
It means the keys does not exist. Check your variable with var_export($memcachedConfig) just before the "print". –  Skrol29 Mar 26 '12 at 8:59
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3 Answers

up vote 9 down vote accepted

Please try this way.... I have tested this code.... It works....

$memcachedConfig = array("host" => "127.0.0.1","port" => "11211");
print_r ($memcachedConfig['host']);
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Found it. Thanks for your help. var_dump helped. I loaded the array from a config file, which had the strage content like this. array(2) { ["host"]=> string(9) "127.0.0.1" ["port"]=> string(5) "11211" } string(5) "m_prefix" PHP 5.4 now $xx['host'] threw the warning correctly. –  thesonix Mar 26 '12 at 9:17
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Quickfix

Test your array-key for existence before using it. So instead of

$myVar = $someArray['someKey']

do something like

if (isset($someArray['someKey'])) {
    $myVar = $someArray['someKey'];
}

Additional help

Sometimes it might be also helpful to add some utility functions to your codebase, to shorten this repetitive task. For example

function isset_get($array, $key, $default = null) {
    return isset($array[$key]) ? $array[$key] : $default;
}

Then you can go with

$myVar = isset_get($someArray, 'someKey');
//or with some default if you got one
$myVar = isset_get($someArray, 'someKey', $mydefault);
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This did work and also explained what I was doing wrong –  lyomi Oct 21 '13 at 14:51
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The error Illegal string offset 'whatever' in... generally means: you're trying to use a string as a full array.

That is actually possible since strings are able to be treated as arrays of single characters in php. So you're thinking the $var is an array with a key, but it's just a string with a key, for example:

$fruit = array('apples'=>2, 'oranges'=>5, 'pears'=>0);
echo $fruit['oranges']; // echoes 5
$fruit = "new string";
echo $fruit['oranges']; // causes illegal string offset error

You can see this in action here: http://ideone.com/fMhmkR

For those who come to this question trying to translate the vagueness of the error into something to do about it, as I was.

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It's good to know this! –  alexcristea Mar 10 at 7:41
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