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I need some help with basic syntax in PHP,

I got the following string :
$str = "return (strlen(replace) <= 5 && strlen(replace) >= 1);";

and I got a variable : $var = "VariableValue";

and the st_replace function as : str_replace('replace', $var, $str);

What I am trying to do is actually use eval in somehing like:

if(eval($str)){//This should now make the if condition **look like**               
               //if(strlen(*'VariableValue'*)...) 
               //

echo 'Success';

}else{

     echo 'Ask the guys at StackOverFlow :),sure after searching for it';
}

So if you notice what is if(strlen('VariableValue')...) this is what I want to do,make the final if statement after eval containing the vars value WITH QUOTES so strlen actually process it,

I hope I made clear as needed :)

Thanks in advance

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2 Answers 2

up vote 1 down vote accepted

Try it like this

$str = "return (strlen(##replace##) <= 5 && strlen(##replace##) >= 1);";
$var = 'test';

// you have to assign the str_replace to $str again. And use " around the $var.
$str = str_replace('##replace##', '"' . addslashes($var) . '"', $str);

if (eval($str)) {             
    echo 'Success';
}
else {
    echo 'Ask the guys at StackOverFlow :),sure after searching for it';
}

I added the ## around replace because it's a good idea to always have a somewhat unique string to replace... like when you expand your eval'd code to include str_replace, then that would be replaced too otherwise.

EDIT
Escaped the $var with addslashes as per @Erbureth's comment.

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1  
You should escape the variable string in case it contains quotes or other control characters –  Erbureth Oct 5 '12 at 11:05
    
Terrific,Thanks a lot,Do you think there is other way to do what I am trying to do without using eval (but only with the same technique) –  Gegrgerg Rgwg Oct 5 '12 at 11:37
    
As @arkascha stated in the other answer: use the variable directly: so instead of if (eval($code)) {...} do if (strlen($var) <= 5 && strlen($var) >= 1) {...} –  SJFrK Oct 5 '12 at 11:40

aYou don't need eval() for that (there are reason why it is sometimes called evil()...).

Just try a condition like that:

if ( (strlen($var) <= 5) && (strlen($var) >= 1) )
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True, this is not a good use for eval, but if eval was pure evil and had no use-cases it wouldn't still be around. Or it would at least be deprecated in PHP 5.4 –  SJFrK Oct 5 '12 at 11:02
    
@SJFrK: I never claimed it is pure evil. –  arkascha Oct 5 '12 at 11:07
    
Sorry if I sounded rude, that was not my intention. I just don't like all those wars about eval good or evil, database table names plural or singular, opening braces on same line or next line etc. –  SJFrK Oct 5 '12 at 11:11
1  
@SJFrK: I absolutely agree with you. I don't want to start a fight or anything. I just want to mention that eval() can be evil, and that thinking twice if you really really have to use it absolutely makes sense. In 98% of the cases there are simpler and safer solutions. –  arkascha Oct 5 '12 at 11:16
    
Guys Is it enough secure if I am only using eval, i.e. I am replacing a const strings that I only Know ? –  Gegrgerg Rgwg Oct 5 '12 at 11:44

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