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I have the following code that I am using to create a website:

    <?php
    session_start();
        ?>
        <!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.1//EN" "http://www.w3.org   /TR/xhtml11          /DTD/xhtml11.dtd">
         <html xmlns="http://www.w3.org/1999/xhtml">
    <head>
<?php
require_once("connect.php");
                if(isset($_POST["firstName"]))
                {
                    $fname = mysql_real_escape_string($_POST["firstName"]);
                    $lname = mysql_real_escape_string($_POST["lastName"]);
                    $email = mysql_real_escape_string($_POST["email"]);
                    $pass = mysql_real_escape_string($_POST["password"]);
                    $cpass = mysql_real_escape_string($_POST["cPassword"]);

                    $chars = "abcdefghijklmnopqrstuvwxyz0123456789";
                    $salt = "";
                    for($i = 0; $i < 30; $i++)
                    {
                        $rand = rand(0,35);
                        $salt = $salt . substr($chars, $rand, 1);
                    }
                    $hash = crypt($salt . $pass);
                    $query = "INSERT INTO users (salt, hash, email, fname, lname) VALUES ('$salt', '$hash', '$email', '$fname', '$lname')";
                    $result = mysql_query($query);
                    $cString = "";
                    for($i = 0; $i < 30; $i++)
                    {
                        $rand = rand(0, 35);
                        $cString = $cString . substr($chars, $rand, 1); 
                    }

                }
        ?>
        <link rel="stylesheet" type="text/css" href="styles/common.css"/>
        <link rel="stylesheet" type="text/css" href="styles/thanks.css"/>
    </head>

    <body>
        <?php
            echo $cString;  
        ?>

Why doesn't the value of $cString appear on my page? If I echo a string it shows, but when I echo the variable it doesn't show. Why is this?

share|improve this question
    
Is $_POST['firstName'] set? –  jprofitt May 31 '12 at 23:26
    
echo $_POST['firstName'] and see if it's getting passed to you correctly. –  Jared May 31 '12 at 23:28
2  
Additionally, you should really look into using mysqli_* or PDOs rather than mysql_* functions. –  Jared May 31 '12 at 23:29
    
fyi i don't think saving your salt in the db is a good idea. –  Daniel A. White May 31 '12 at 23:35
1  
@DanielA.White I don't see a problem with storing salt in the database, though he can actually pass salt as the second parameter to crypt :) –  Jack May 31 '12 at 23:40
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4 Answers

The value of $cString is only set if $_POST["firstName"] is defined.

Btw, you can use string dereferencing instead of using substr, so instead of:

$cString = $cString . substr($chars, $rand, 1);

You can do this:

$cString = $cString . $chars[$rand];
share|improve this answer
    
I thought $_POST["firstName"] was defined. Where I'm trying to echo the $cString variable I'm actually unable to echo any variable from the previous php code block. What's going on? –  user532493 Jun 1 '12 at 2:15
    
@user532493 in that case, you can be pretty sure isset($_POST["firstName"]) returns false –  Jack Jun 1 '12 at 2:17
    
I don't think that's the case because when I query the database to add the user's information, it all adds properly, which would imply that the $_POST fields are set. –  user532493 Jun 1 '12 at 2:59
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The problem is that your variable is inside the if, when you call it outside it wont exist. You only need to declare the variable outside the if (at the start of your code would be perfect).

share|improve this answer
    
I tried this but it didn't fix the issue. –  user532493 Jun 1 '12 at 2:17
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$cString is not set within the same scope. Given this code, if you put

$cString = "";

right after the require_once line, it should work.

Update

You're most likely not showing your full code and $cString is constructed from within a function. Variables declared inside a function are not available outside. A few options:

  1. return $cString when the function ends

    function my_fn()
    {
        $cString = 'abc';
        return $cString;
    }
    
  2. declare $cString at the top and pass it by reference:

    $cString = '';
    function my_fn(&$cString) {
        $cString = 'abc';
    }
    my_fn($cString);
    

I've left out using global because it's not appropriate for your case I think.

share|improve this answer
    
Notwithstanding the PHP warning he might get, echo null or echo "" will yield the same net effect ... the value is not "seen" when echoed –  Jack May 31 '12 at 23:46
    
PHP scoping doesn't work like that. The variable isn't unset when it exits the if() block. Not does this happen with fors or whiles; only functions, really. –  Mark May 31 '12 at 23:54
    
I tried what you suggested but it didn't fix the issue. –  user532493 Jun 1 '12 at 2:17
    
@user532493 Hmm, I get it ... you're not showing the full code; Updated my answer –  Jack Jun 1 '12 at 3:07
    
I'm not defining $cString in a function, that's one of the few things I know for sure. –  user532493 Jun 1 '12 at 3:10
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up vote 0 down vote accepted

I solved the issue! Thanks for the help everyone, the issue was in the logic in the code.

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