159

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.

  • 17
    Obviously $memcachedConfig is not that array. Show var_dump($memcachedConfig); – zerkms Mar 26 '12 at 8:56
  • 1
    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
  • 6
    What most people missed is this doesn't exactly mean the index doesn't exist -- that produces "undefined index" message. This is a different error. – grantwparks Jul 19 '14 at 6:24
  • 1
    stackoverflow.com/a/20271518/2898712 is the correct answer here. – wedi Jun 19 '15 at 20:18
  • 15
    Attention anyone viewing this question: Correct answer to this question is not the one marked; correct is Kzqai's below – Aaron Jan 29 '16 at 19:33

13 Answers 13

35

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

$memcachedConfig = array("host" => "127.0.0.1","port" => "11211");
print_r ($memcachedConfig['host']);
  • 1
    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 $xx['host'] threw the warning correctly. – thesonix Mar 26 '12 at 9:17
  • I had the same error after an include_once($file);. The array has been built correctly (the debug info shows this), however it had to be copied manually into another array before having been usable without the PHP illegal stringoffset warning message. – Franz Holzinger Feb 6 '16 at 11:46
  • $sStartDate = date("Y-m-d",strtotime($feed['DTSTART']['value'])); $sEndDate = date("Y-m-d", strtotime($feed['DTEND']['value'])); How to fix the same error here Warning: Illegal string offset – J. Shabu Jun 15 '17 at 11:23
237

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 standard numeric keys, for example:

$fruit_counts = array('apples'=>2, 'oranges'=>5, 'pears'=>0);
echo $fruit_counts['oranges']; // echoes 5
$fruit_counts = "an unexpected string assignment";
echo $fruit_counts['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.

  • 6
    I bet it can be shown this was the reason the original problem happened. Most comments incorrectly assume "undefined index" was the error. – grantwparks Jul 19 '14 at 6:28
  • 1
    Ran into this problem in a while loop. Thanks – David Okwii Jun 23 '17 at 14:32
  • Sometimes this error may occur when attempting to grab the wrong node of a multidimensional array, i.e. going "too deep", you need the selection's parent instead – zoltar Mar 28 '18 at 9:23
  • This is correct, I used fetchAll(PDO::FETCH_ASSOC) instead fetch(PDO::FETCH_ASSOC) and worked perfectly. – MNN Jul 25 '18 at 17:42
63

TL;DR

You're trying to access a string as if it were an array, with a key that's a string. string will not understand that. In code we can see the problem:

"hello"["hello"];
// PHP Warning:  Illegal string offset 'hello' in php shell code on line 1

"hello"[0];
// No errors.

array("hello" => "val")["hello"];
// No errors. This is *probably* what you wanted.

In depth

Let's see that error:

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

What does it say? It says we're trying to use the string 'port' as an offset for a string. Like this:

$a_string = "string";

// This is ok:
echo $a_string[0]; // s
echo $a_string[1]; // t
echo $a_string[2]; // r
// ...

// !! Not good:
echo $a_string['port'];
// !! Warning: Illegal string offset 'port' in ...

What causes this?

For some reason you expected an array, but you have a string. Just a mix-up. Maybe your variable was changed, maybe it never was an array, it's really not important.

What can be done?

If we know we should have an array, we should do some basic debugging to determine why we don't have an array. If we don't know if we'll have an array or string, things become a bit trickier.

What we can do is all sorts of checking to ensure we don't have notices, warnings or errors with things like is_array and isset or array_key_exists:

$a_string = "string";
$an_array = array('port' => 'the_port');

if (is_array($a_string) && isset($a_string['port'])) {
    // No problem, we'll never get here.
    echo $a_string['port'];
}

if (is_array($an_array) && isset($an_array['port'])) {
    // Ok!
    echo $an_array['port']; // the_port
}

if (is_array($an_array) && isset($an_array['unset_key'])) {
    // No problem again, we won't enter.
    echo $an_array['unset_key'];
}


// Similar, but with array_key_exists
if (is_array($an_array) && array_key_exists('port', $an_array)) {
    // Ok!
    echo $an_array['port']; // the_port
}

There are some subtle differences between isset and array_key_exists. For example, if the value of $array['key'] is null, isset returns false. array_key_exists will just check that, well, the key exists.

9

There are a lot of great answers here - but I found my issue was quite a bit more simple.

I was trying to run the following command:

$x['name']   = $j['name'];

and I was getting this illegal string error on $x['name'] because I hadn't defined the array first. So I put the following line of code in before trying to assign things to $x[]:

$x = array();

and it worked.

  • 1
    I think this should be the answer. This must be the different between 5.4 (and the prior to 7) and 7. – sonnb Jan 25 '17 at 17:16
4

As from PHP 5.4 we need to pass the same datatype value that a function expects. For example:

function testimonial($id); // This function expects $id as an integer

When invoking this function, if a string value is provided like this:

$id = $array['id']; // $id is of string type
testimonial($id); // illegal offset warning

This will generate an illegal offset warning because of datatype mismatch. In order to solve this, you can use settype:

$id = settype($array['id'],"integer"); // $id now contains an integer instead of a string
testimonial($id); // now running smoothly
  • How does this have to do with arrays...? – some-non-descript-user Jul 12 '16 at 10:58
  • the hint "datataype mismatch" solved it for me! – mtness Dec 5 '16 at 19:52
4

A little bit late to the question, but for others who are searching: I got this error by initializing with a wrong value (type):

$varName = '';
$varName["x"] = "test"; // causes: Illegal string offset

The right way is:

 $varName = array();
 $varName["x"] = "test"; // works
1

Before to check the array, do this:

if(!is_array($memcachedConfig))
     $memcachedConfig = array();
1

In my case i change mysql_fetch_assoc to mysql_fetch_array and solve. It takes 3 days to solve :-( and the other versions of my proyect run with fetch assoc.

0

Just incase it helps anyone, I was getting this error because I forgot to unserialize a serialized array. That's definitely something I would check if it applies to your case.

0

It's an old one but in case someone can benefit from this. You will also get this error if your array is empty.

In my case I had:

$buyers_array = array();
$buyers_array = tep_get_buyers_info($this_buyer_id); // returns an array
...
echo $buyers_array['firstname'] . ' ' . $buyers_array['lastname']; 

which I changed to:

$buyers_array = array();
$buyers_array = tep_get_buyers_info($this_buyer_id); // returns an array
...
if(is_array($buyers_array)) {
   echo $buyers_array['firstname'] . ' ' . $buyers_array['lastname']; 
} else {
   echo 'Buyers id ' . $this_buyer_id . ' not found';
}
0

In my case, I solved it when I changed in function that does sql query after: return json_encode($array) then: return $array

0

It works to me:

Testing Code of mine:

$var2['data'] = array ('a'=>'21','b'=>'32','c'=>'55','d'=>'66','e'=>'77');
foreach($var2 as $result)
{  
    $test = $result['c'];
}
print_r($test);

Output: 55

Check it guys. Thanks

0

just use

$memcachedConfig = array();

before

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


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

this is because you never define what is $memcachedConfig, so by default are treated by string not arrays..

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