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Having problems with eval(). I am forced to store strings in an array that are exectuted later on.

Now, storing strings in the string is no problem. But how do I store an array in there? Since I will NOT have access to the variable, I want the array directly stored to this string.

See this code:

    // ----------------------
    // -- class A
    $strId    = 'id_1234';
    $strClass = 'classname';
    $arParams = array('pluginid' => 'monitor', 'title' => 'Monitor', ...);

    $strClone = 'openForm(desktop(),"'.$strId.'","'.$strClass.'",'.$arParams.');';

    $this->menu = array( "clone" => $strClone, ... );

    // ----------------------
    // -- class B
    // loop through $this->menu, then..
    {
      eval( $this->menu[$item] );
    }

    // ----------------------
    // -- class C
    function openForm( $owner, $id, $class, $params )
    {
      ...
    }

Everything works perfectly except for the array $arParams.

There is an error: PHP Parse error: syntax error, unexpected ')', expecting '(' in ... (441) : eval()'d code on line 1

What is the problem? Can I do this without serialize()?


EDIT:

I have set up a representation of what is going on. If you get this to run, then it is fixed:

$ar = array('a' => 'value1', 'b' => 'value2');
$str = "something";

$run = " a('".$str."', \$ar); "; // this line may be changed

// this is done to represent the loss of the variables in another class
unset($ar);
unset($str);

// $run is kept
eval( $run );

function a($str, $ar) {
    echo "\$str="         . $str      . "<br>";
    echo "\$ar['a']="     . $ar['a']    . "<br>";
    echo "\$ar['b']="     . $ar['b']    . "<br>";
}
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2  
There will almost definitely be a way to solve your problem without using eval(). Could you post more about why you think you need it? –  cbuckley Sep 24 '12 at 15:31
    
We use that strange "framework" and are not to change it, only if absolutely necessary. I could solve it without it too. –  Indianer Sep 24 '12 at 15:50
    
So how can I do it that eval() way? –  Indianer Sep 24 '12 at 15:54
    
You need to provide more information about what classes A, B and C are. –  cbuckley Sep 24 '12 at 19:05
    
I have added an representation of the whole code, please see it. –  Indianer Sep 25 '12 at 7:46
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3 Answers

up vote 1 down vote accepted

When you're running the function a() in your eval'ed string, the variable $ar doesn't exist anymore. That's triggering an error, which causes the eval() to fail.

Since you're using eval(), a quick-and-dirty hacky way to fix it seems appropriate. ;-)

Instead of doing this:

$run = " a('".$str."', \$ar); ";

You can do this:

$run = " a('$str', ". var_export($ar, true) ."); ";

This will cause the string $run to look like this if you were to echo it:

a('something', array(
  'a' => 'value1',
  'b' => 'value2',
));

So now you're passing the array directly into the function call, instead of passing a variable.

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That is what I came up too however a bit longer. I will use this attempt, thanks. –  Indianer Sep 25 '12 at 8:56
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Yes, change $arParams to this:

$arParams = 'array("pluginid" => "monitor", "title" => "Monitor", ...)';
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1  
Let's not make this any worse than it already is :-) –  cbuckley Sep 24 '12 at 15:34
    
This does not work, I then get a PHP Parse error: syntax error, unexpected T_STRING –  Indianer Sep 24 '12 at 15:54
    
In where , which line ? –  Caner Korkmaz Sep 24 '12 at 15:55
    
The error is always in the eva() line. Please see my edit, I have added a code example. –  Indianer Sep 25 '12 at 7:47
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I now use this hack:

$strParams = " array(";
foreach($arParams as $strKey => $strVal) {
   $strParams .= "'".$strKey."' => '".$strVal."',";
}
$strParams = substr($strParams, 0, -1) . ") ";

// later on
... => " openForm(desktop(),'".$strId."','".$strClass."',".$strParams."); "
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