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I'm creating a website that relays on $_GET to function correctly. It works like this: http://www.example.com/show?q=14&i=48 q and i are IDs on MySQL server that must be fetched using mysql_query() and the like. Parameters are always integers.

If someones type the url without any parameters both PHP and MySQL yells errors. PHP for undefined variable(s) and MySQL for incorrect syntax.

What i've tried so far doesn't works i always get "Error";

if (is_int($_GET['q']) AND is_int($_GET['i']))
{
 echo "All good.";
}
else
{
 echo "Error.";
}

What am i doing wrong here.

Thanks, atno

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3 Answers 3

up vote 2 down vote accepted

That's because you're checking the type of the variable and not its content. Anything coming from a query string via $_GET is considered a string, so you should use ctype_digit() instead if is_int(), and also checking if the values are present with empty().

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+1, my thoughts exactly. ctype_digit() or even doing $_GET['i'] = (int)$_GET['i']; –  Brad F Jacobs Sep 23 '10 at 14:56
    
Casting also works, but I'd rather reject bad input than fix it –  Matteo Riva Sep 23 '10 at 14:58
    
Thank you, it's working as intended. –  afarazit Sep 23 '10 at 15:12

You should use is_numeric instead of is_int.
is_int returns false for numeric strings.

Downside is that the is_numeric function also returns true for numbers like "1.5". If you don't want that, you can check the function here

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You should try the isset($_GET[q])

if(isset($_GET[q]) && isset($_GET[i])){

}
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isset() isn't the right function to solve it because as kemp said everything in $_GET considered a string. So example.com/show?q=&i= returns "All good." –  afarazit Sep 23 '10 at 15:14
    
According to the question, the case on your example does not happen. He says, "If someones type the url without any parameters both PHP and MySQL yells errors." In your example there exist two parameters. My partial solution only helps on the PHP side, but not on the MySQL side. –  Jose Vega Oct 4 '10 at 19:11

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