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This is annoying me. In theory it should be easy but I don't live in theory.

Basically, I have an option to set a custom algorithm to make a 'code' that is either string or int.

This is user generated, and I then call that.

I have attempted to execute it using this code:

$code = eval('return($custalg);');

but that returns the actual algorithm entered, and not the value it would produce.

So my question is, how would I manage to execute the string in $custalg as php and then save the result into a variable?

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3  
Not an answer, but please please please reconsider your design. eval() is very bad in general, but with user supplied code it is an insta hack. –  PeeHaa Oct 20 '12 at 18:47
    
@PeeHaa The way it works, this would be on people's own server ;) –  Liam W Oct 20 '12 at 19:02
3  
Ever heard of liability? If not I would suggest you look into it? –  PeeHaa Oct 20 '12 at 19:14

2 Answers 2

up vote 1 down vote accepted

You can get an echoed output with using the PHP output control functions:

ob_start();
eval("echo $custalg;");
$tmp = ob_get_contents();
ob_end_clean();
$evalOutput = $tmp;

Or you just assign the return value to a global variable.

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That has the exact same issue as described in question –  Liam W Oct 20 '12 at 18:53
    
@liamwli Yeah, you're right, I've updated the answer… –  feeela Oct 20 '12 at 18:56
    
THANK YOU! That has worked perfectly :) –  Liam W Oct 20 '12 at 19:02

It looks you are not aware of difference between single quoted ' and double quoted " strings in PHP. You should use:

$code = eval("return($custalg);");

if you want $custalog to be expanded:

The most important feature of double-quoted strings is the fact that variable names will be expanded. See string parsing for details.

See more in docs.

So basically correct syntax depends on what $custalg is and where it is assigned. In your case I guess your $custalg is assigned in main code so you do not want substitution. Use code like this then:

$code = eval("return \$custalg;");
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I didn't realise there was a difference. Now I get this error: Parse error: syntax error, unexpected ';' in /pathtofile/login.php(119) : eval()'d code(57) : eval()'d code on line 1. The second eval's code the the $code = one. –  Liam W Oct 20 '12 at 18:48
1  
See edited answer –  Marcin Orlowski Oct 20 '12 at 18:54
    
Edited answer produces same answer as question –  Liam W Oct 20 '12 at 18:58
1  
it works fine for me ($a = 'foo'; echo eval("return \$a;") produces foo as expected). Ensure it is not other part of your code failing. –  Marcin Orlowski Oct 20 '12 at 19:01
    
Not what I wanted, see selected answer –  Liam W Oct 22 '12 at 17:24

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