Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I am making a gallery that uses a MySQL database (yeah I know it's a bad practice but it's the requirement for the moment.) I can upload multiple images but I'm having trouble displaying all images stored inside the database. The FORM allows five images to be uploaded. Then the user must proceed to another page where all the images in database (including the ones uploaded recently) will be displayed together with the description of the images. I have code already but the one that will work on the display is not working or I think is wrong.

Here is the form code:

 <html>
 <head>
    <title> Upload image</title>

 </head>
 <body> 
 <div align="center">
    <form action="fUpload.php" method="POST" enctype="multipart/form-data">
    All forms must be filled. <br />
    File: <br />
    <input type="file" name="image[]"/> <input type="text" name="imageDescription[]" size="30" /> <br />
    <input type="file" name="image[]"/>  <input type="text" name="imageDescription[]" size="30" /> <br />
    <input type="file" name="image[]"/>  <input type="text" name="imageDescription[]" size="30" /> <br />
    <input type="file" name="image[]"/>  <input type="text" name="imageDescription[]" size="30" /> <br />
    <input type="file" name="image[]"/> <input type="text" name="imageDescription[]" size="30" /> <br />

    <input type="submit" value="Upload image" />

    </form>
</div>  
</body>
</html>

Here is the script that would upload:

 <?php 

//connect to the database//
$con = mysql_connect("localhost","root", "");
if(!$con)
{
 die('Could not connect to the database:' . mysql_error());
 echo "ERROR IN CONNECTION";
}

$sel = mysql_select_db("imagedatabase");
if(!$sel)
{
 die('Could not connect to the database:' . mysql_error());
 echo "ERROR IN CONNECTION";
}
//file properties//

$file = $_FILES['image']['tmp_name']; 

echo '<br />';

 /*if(!isset($file))
    echo "Please select your images";

else
{
 */for($count = 0; $count < count($_FILES['image']); $count++)
{
//$image = file_get_contents($_FILES['image']['tmp_name']);
    $image_desc[$count] = addslashes($_POST['imageDescription'][$count]);
    $image_name[$count] = addslashes($_FILES['image]']['name'][$count]); echo '<br \>';
    $image_size[$count] = @getimagesize($_FILES['image']['tmp_name'][$count]);
    $error[$count] = $_FILES['image']['error'][$count];

    if($image_size[$count] === FALSE  || ($image_size[$count]) == 0)
        echo "That's not an image";
    else
    {

    // Temporary file name stored on the server
     $tmpName[$count]  = $_FILES['image']['tmp_name'][$count];

  // Read the file
    $fp[$count]   = fopen($tmpName[$count], 'r');
    $data[$count] = fread($fp[$count], filesize($tmpName[$count]));
    $data[$count] = addslashes($data[$count]);
     fclose($fp[$count]);


  // Create the query and insert
  // into our database.

  $results = mysql_query("INSERT INTO images( description, image) VALUES             ('$image_desc[$count]','$data[$count]')", $con);

        if(!$results)
        echo "Problem uploding the image. Please check your database";  
    //else 
    //{
        echo "";
        //$last_id = mysql_insert_id();
        //echo "Image Uploaded. <p /> <p /><img src=display.php?    id=$last_id>";
        //header('Lcation: display2.php?id=$last_id');
        }
    //}
}


mysql_close($con);
header('Location: fGallery.php');
?>

And finally the one that should display:

<html>
<body>

</body>
<?php

//connect to the database//
mysql_connect("localhost","root", "") or die(mysql_error());
mysql_select_db("imagedatabase") or die(mysql_error());

//requesting image id

$id = addslashes($_REQUEST['id']);

$image = mysql_query("SELECT * FROM images WHERE id = $id");


while($datum = mysql_fetch_array($image, MYSQL_ASSOC))
{
        printf("Description %s $image = $image['image'];

header("Content-type: image/jpeg");

}

mysql_close();


?>

Your help is much appreciated. I need it badly to move on.

share|improve this question
    
well, at least you are missing escape before double quotes in printf... then you need to call $datum['image']... – Elen Jan 6 '12 at 13:44
    
what do you mean? :D – SimonCode Jan 6 '12 at 14:56
up vote 4 down vote accepted

From what i understand from your post is that uploading and storing isn't a problem, but showing the images is. That's probably because you're using vars that are not set, so no results kan be found in the database. If i misunderstood let me know.

<?php
// No ID
$image = mysql_query("SELECT * FROM images ORDER BY id DESC");   
?>

Also look at what Prof83 says. Ignore my post if your script works with just one image.

Last but not least, if you're using different filetypes, also echo the correct MIME format in the header.

Update I combined both answers.

Edit your loop:

<?php
while($row = mysql_fetch_assoc($image))
{
        echo '<img src="img.php?id='.$row["id"].'">';
}
?>

Create a page name img.php

<?php
$query = mysql_query("SELECT image FROM images WHERE id = ".$_GET['id']);
$row = mysql_fetch_assoc($query);
header("Content-type: image/jpeg");
echo $row['image'];
?>
share|improve this answer
    
Thanks for that hint. :D I'll let you know if it worked., Thanks again.. :D – SimonCode Jan 6 '12 at 13:48
    
I got another error.. it says Warning: Cannot modify header information - headers already sent by (output started at C:\XAMP\xampp\htdocs\gallery\fUpload.php:21) in C:\XAMP\xampp\htdocs\gallery\fUpload.php on line 70 and no display comes out.. what's wrong? – SimonCode Jan 6 '12 at 13:51
    
You should strip the HTML and BODY tags above your PHP code. – mat Jan 6 '12 at 13:57
    
thanks so much mat. you're helpful. :D – SimonCode Jan 6 '12 at 14:08
1  
No problemen Simoncode! Could you please upvote my answer? Thanks – mat Jan 7 '12 at 19:22

Ok you can't display multiple images within a image/jpeg page...

You're telling the browser that the page is image/jpeg (in other words, the page is AN IMAGE) but you're echoing out multiple image data

You should rather use the gallery page to show all images like this:

<?php
// $images = result from database of all image rows
foreach ($images as $img) echo '<img src="img.php?id='.$img["id"].'">';
?>

and in img.php:

// Load the image data for id in $_GET['id'];
header("Content-type: image/jpeg");
echo $data;
share|improve this answer
    
wow! thanks! I never realized that.. thanks for the information.. where exactly should I place the php code with foreach? :D – SimonCode Jan 6 '12 at 13:58
    
inside your display page, the page to display all the images... PS. if this helped you, please mark it as the correct answer :D – Prof83 Jan 6 '12 at 14:02
    
I have amended the answer to help understand the foreach statement – Prof83 Jan 6 '12 at 14:03
    
can I be very direct? Can you do it for me? I mean can you correct the code for the gallery? Im already confused.. Ive been working on this since yesterday.. :( – SimonCode Jan 6 '12 at 14:07
    
So i wont use the while or I'll still use it? Im getting more confused.. ahha sorry.. – SimonCode Jan 6 '12 at 14:31

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.