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function check_login($array_val)
   {


  $strQury = "Select * from  tblsignup where usr_email ='".$array_val[0]."' and usr_password  = '".$array_val[1]."'" ;

    $result  = mysql_query($strQury);
    $row_user = mysql_fetch_array($result);
    if(mysql_num_rows($result)>0)
     {
      $msg = "true";

     }
    else
     {
      $msg = "false";
     }
    return $msg ;
   }

The return value is Object id #1true???? what is object id#1?

share|improve this question
    
You don't show us the entire picture. As according to this code you can get only "true" or`"false"` –  Itay Moav -Malimovka May 27 '10 at 12:45
    
Do you want that function to return a boolean, or a string. Right now it looks like you are returning boolean values but as strings. –  Codezy May 27 '10 at 12:46
    
Can you also show us the code that calls this function and how you determine the return value is Object id #1true? –  erisco May 27 '10 at 12:46
    
The return value could not be anything other than true, or false. I'm not sure how you arrived to the return value being Object id#1 true. Sounds to me like you printed something out before you printed message and you're confusing those two. –  kamasheto May 27 '10 at 12:47
    
me echo this function: echo $objUser.check_login($array_login); that answer display, –  Aamir May 27 '10 at 12:53

5 Answers 5

up vote 1 down vote accepted

Try this:

function check_login($array_val)
{
    $strQury = "Select * from  tblsignup where usr_email ='".$array_val[0]."' and usr_password  = '".$array_val[1]."'" ;

    $result  = mysql_query($strQury);
    $row_user = mysql_fetch_array($result);

    if(mysql_num_rows($result)>0)
    {
        return true;
    }
    else
    {
        return false;
    }
}

Let us know what result you get when using that code.

share|improve this answer
    
Unfortunately, the two codes should produce the same exact result. –  kamasheto May 27 '10 at 12:49
    
Why exactly do you need to put the return false inside an else? ;-) –  Itay Moav -Malimovka May 27 '10 at 12:50
    
They shouldn't product the same result. @Itay -- you don't. It's just habit :) –  Ian P May 27 '10 at 12:52
    
Why use an if structure at all? return mysql_num_rows($result)>0; –  Jeroen Pelgrims May 27 '10 at 12:55
    
@ Jeroen now return value is: Object id #10 –  Aamir May 27 '10 at 13:05

Change from:

echo $objUser.check_login($array_login);

to:

echo $objUser->check_login($array_login);

The . operator in PHP does string concatenation, while the arrow allows you to access object methods and attributes.

share|improve this answer
    
There is of course the weird question of why check_login() returns anything at all if it is actually a method of $objUser. Why not a fatal error? My guess is that aamir Fayyaz has been moving code around trying to get things working and moved check_login() outside of the class when he got the fatal error using the concatenation operator. –  erisco May 27 '10 at 13:19
    
my check_login() method in a classUser, when i used echo $objUser->check_login($array_login); the displayed page is blank, it never move to function of class, –  Aamir May 27 '10 at 13:26
    
Ahh, nice catch. @aamir Fayyaz: you should echo check_login($array_login); –  kamasheto May 27 '10 at 14:00

You're returning the strings "true" or "false" when you probably mean the boolean values true and false.

Oh, and your code is wide open to a visit from Little Bobby Tables. You really should use mysqli and proper prepared statements instead.

share|improve this answer
    
i musing mySql not mysqli –  Aamir May 27 '10 at 12:55
1  
@aamir: mysqli is just a different (and much superior) alternative to the regular mysql PHP extension. –  Michael Borgwardt May 27 '10 at 13:00

user single quotes and things will start to work better. also check your query for sql injection bug as it does have it.

share|improve this answer
    
by single quotes problem still... –  Aamir May 27 '10 at 12:59

Change

echo $objUser.check_login($array_login);

to

echo $objUser;
echo check_login($array_login);

You should end up with the following result:

Object id #1
true

My guess is that $objUser was set earlier with something along these lines:

$objUser = new User;

As a result, it is an object (the first one declared) and will return Object id #1 when you just echo it. You will need to read up on classes to understand that more.

share|improve this answer
    
me using $objUser = new classUser(); to creat an object. –  Aamir May 27 '10 at 14:00
    
exactly. The check_login() function I am guessing is not part of the object or erisco's solution would have worked. You cannot simply echo an object. It is not a string or a number. It is a collection of data organized in a specific way. If you just use echo check_login($array_login); does it give you the result you are looking for? –  Joseph May 27 '10 at 14:09
    
thanks to all, i solve it... –  Aamir May 27 '10 at 14:26
    
Then either post the solution, delete the question, or accept the answer that helped the most so that the people that come next with the same problem can see what the solution is. –  Joseph May 27 '10 at 15:54
    
There is brace problem, the function define outside the class by miss take.... –  Aamir May 31 '10 at 12:36

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