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$inputarray=array("username", "password");  

foreach($inputarray as $inputkey);
  if(isset($_POST[$inputkey]) && !empty($_POST[$inputkey]))
  {
    $inputname=$inputkey;
    $inputresult=$_POST[$inputkey];
    $$inputname=$inputresult;
  }
  else
  {
    die("You have to fill both fields.");
  }

$username isn't being defined, only $password. Anyone know what's wrong?

share|improve this question

closed as off-topic by Mr. Alien, Orangepill, vascowhite, PeeHaa, hakre Aug 10 '13 at 16:14

This question appears to be off-topic. The users who voted to close gave this specific reason:

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3  
Why you need foreach at first place? –  Mr. Alien Jul 30 '13 at 17:58
1  
I don't see you using variables username or password anywhere in your code. I only see static strings "username" and "password". –  Lochemage Jul 30 '13 at 17:59
1  
@Lochemage, The $$ signifies "variable variables" –  jedwards Jul 30 '13 at 18:00
1  
@Lochemage Note the $$ in front of the second inputname –  StephenTG Jul 30 '13 at 18:00
1  
@user2635236 am sorry to say this but your code doesn't make any sense, I would suggest you to learn some more php and re code... –  Mr. Alien Jul 30 '13 at 18:01

4 Answers 4

up vote 1 down vote accepted

It's just a typo:

foreach($inputarray as $inputkey);

You included a semicolon at the end of that line, so the foreach statement runs, then ends, and then the if clause executes on the last value that the foreach statement left in $inputkey.

Try:

foreach($inputarray as $inputkey)
{
  if(isset($_POST[$inputkey]) && !empty($_POST[$inputkey]))
  {
    $inputname=$inputkey;
    $inputresult=$_POST[$inputkey];
    $$inputname=$inputresult;
  }
  else
  {
    die("You have to fill both fields.");
  }
}
share|improve this answer

Error is probably due to the ; at the end the foreach line. This will cause the foreach line to run leaving to completion, but not run any other statements as there is no enclosure that follows it. Once completed the value of $inputkey will be "password" which is why you are only getting data from "password"

Try:

$inputarray=array("username", "password");  

foreach($inputarray as $inputkey) {
   if(isset($_POST[$inputkey]) && !empty($_POST[$inputkey])) {
      $inputname=$inputkey;
      $inputresult=$_POST[$inputkey];
      $$inputname=$inputresult;
  } else {
     die("You have to fill both fields.");
  }
} //endforeach
share|improve this answer

Variable variables are a code smell that you're making things hard on yourself. Instead of doing that, at this stage, and for the specific purposes of a login page, I would make life as simple, readable, and uncomplicated as you can.

Just do this:

$username = @$_POST['username']; // Just about the only place where using @ is ok.
$password = @$_POST['password'];
if(!trim($username) || !trim($password)){
    die("You have to fill both fields.");
}

A login form is not a place to innovate or make your code complicated. For a little added abstraction, you could put that information into a simple login validation function so that you can modify the criteria down the line (e.g. username must be longer than 1 character, or whatever).

But from looking at your code, you're making a CLASSIC MISTAKE:

DO NOT ROLL YOUR OWN LOGIN SYSTEM THE FIRST TIME AROUND.

Reuse an expert's login code and learn from that. Write other things in custom php, but borrow someone else's time tested login code for database parameterization, error checking, and abstraction. Writing your own login system is playing with fire.

share|improve this answer
    
im using it for forms that have 15 input fields –  user2635236 Jul 30 '13 at 18:12
    
@user2635236 That doesn't surprise me. I've been there. But a login form is not like any other form. It should be treated with the utmost care and specificity. In your case, you're making the code that will determine the security of your app unreadably complicated and harder-than-necessary to debug. Use a whitelisted loop system with your standard input forms, use a tried-and-true third-party login system for your login system. –  Kzqai Jul 30 '13 at 18:18
    
ok thx. but can you tell me why my method is so bad? i use input validation before anything important happens –  user2635236 Jul 30 '13 at 18:46

It looks like you're assigning the string name $inputkey to the value. Also you were creating dynamic variables that you might never have found in your code.

$inputarray=array("username", "password");  

foreach($inputarray as $inputkey=>$inputvalue);
  if(isset($_POST[$inputkey]) && !empty($_POST[$inputkey]))
  {
    $inputname=$inputkey;
    $inputresult=$_POST[$inputkey];
    $inputname=$inputresult;
  }
  else
  {
    die("You have to fill both fields.");
  }
share|improve this answer
    
I think that was intentional... –  StephenTG Jul 30 '13 at 18:04

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