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I am creating a function where user display picture will be retrieve from database after the username is inserted. but i am facing some problem with my code. Please check for me ya ^^ Thank you so much.

<?php
include("connection.php");

$name = $_SESSION['login_username']; // login_username is test123, this is $_SESSION from another .php file
$_SESSION['name'] = $storename;


echo '<img src="display2.php"width="90" height="90"/>'; //this is how i display my picture
?>

Display.php(not working)

mysql_select_db($database) or die("Can not select the database: ".mysql_error());

$storename = $_SESSION['name']; // is there an error with my $_session statement?
$name = (string)$storename; 

if(!isset($name) || empty($name)){
     die("Please select your image!");

}else{


$query = mysql_query("SELECT * FROM customerdetail WHERE customer_username='$name'");
$num_row = mysql_fetch_array($query);
$content = $num_row['image'];

header('Content-type: image/jpg');
echo $content;

 }
}   

Display.php(working)

    $storename = "test123"; // it worked if i store the id in string but not passing from another page.
    $name = (string)$storename;

if(!isset($name) || empty($name)){
     die("Please select your image!");
}else{

$query = mysql_query("SELECT * FROM customerdetail WHERE customer_username='$name'");
$row = mysql_fetch_array($query);
$content = $row['image'];

header('Content-type: image/jpg');
         echo $content;

}
?>  

Can anyone please help me to figure what goes wrong ? Thanks in advance.

share|improve this question

closed as not a real question by deceze, bensiu, Björn Kaiser, Maerlyn, SztupY Jan 8 '13 at 12:50

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
What is wrong with it? "Something is wrong" is not an error description. –  deceze Jan 8 '13 at 11:05
    
Looks like your $_SESSION['name'] = $storename; in the first file is empty, from the file comments you say one line above that // login_username is test123 and in the last (working) file you say that you want $storename; to be of value "test123". Maby its a typo and change in your first file line $name = $_SESSION['login_username']; to $storename = $_SESSION['login_username']; –  Wilq Jan 8 '13 at 11:28

2 Answers 2

up vote 0 down vote accepted

At the very top of your php files (both of them), put this line of code (after the <?php tag, of course):

session_start();
share|improve this answer
    
Yup, i did include this in my "connection.php" already ^^ –  C.k. Jan 8 '13 at 11:51
    
Okay. I see that you're trying to display image in display2.php, while your script is in display.php –  Alin Roman Jan 8 '13 at 11:52
    
thank you ~~ i really missed out the session_start() in my display.php. such a stupid mistake.. lol –  C.k. Jan 8 '13 at 12:00

header('Content-type: image/jpg'); declares that the output will be jpg image since the code runs from <img src="">

It's impossible to display text as iamges

share|improve this answer
    
Sorry, i am weak to programming, can u please explain a little bit more in detail ? thank you so much ^.^ –  C.k. Jan 8 '13 at 11:12
    
Isn't <img src=""> the correct method used to display the image ? –  C.k. Jan 8 '13 at 11:14
    
If it's like this, if you don't include that bunch of line than the output type will be text/html (CMIIW) and of course you can't "call" html file using img tag. If you include it so the type is image and, it works! –  gamehelp16 Jan 8 '13 at 11:28
    
I'm not good at english, so sorry if the word is bad –  gamehelp16 Jan 8 '13 at 11:28
    
It's fine. Can you please state a example ? Because i dun really understand. If i assign the value for &storename, it works. When i pass in another value from previous page to $storename, it just simply cant work. PS: I did pass value from login1.php to login2.php. but when i pass value from login2.php to display.php. it seems like there is an error. –  C.k. Jan 8 '13 at 11:55

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