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The following php code :

<?php
class foo {
   $arr = array("First","Second","Third","Fourth");
}

$obj = new foo();
echo $obj->$arr[1];
?>

generates the following error :

Parse error: syntax error, unexpected '$arr' (T_VARIABLE), expecting function (T_FUNCTION) in /opt/lampp/htdocs/tester.php on line 3

I am using php5.4 . What is this error ? How do I resolve this ?

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2 Answers

When accessing a property of an object, you don't use a $. Just echo $obj->arr[1] will do fine.

EDIT: Also, as Explosion Pills says, you need to specify a visibility. In this case, you probably want

public $arr = array("First","Second","Third","Fourth");
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php.net/manual/en/language.variables.variable.php says it is a valid syntax but I get an error if I put the dollar sign. why is that –  saplingPro Jan 26 '13 at 19:20
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You need to add private|public|protected in front of $arr

Additionally, access with $obj->arr[1] instead, but $obj->$arr[1] is in fact valid syntax.

It is valid syntax because it will be interpolated as a string with the variable name. This will work, for example:

$arr = array(1 => 'arr');
$obj->$arr[1];

That interpolates to $obj->arr

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1  
We complete each other XD –  Niet the Dark Absol Jan 26 '13 at 19:19
    
I get an error Undefined variable: arr if I use the dollar sign . ($obj->$arr[1])even after putting the public access –  saplingPro Jan 26 '13 at 19:23
    
@saplingPro see my edit –  Explosion Pills Jan 26 '13 at 19:23
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