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Hi I am trying to figure out how to display the first image in an album that the user uploads. I have a website that lets users upload images to albums, Now I want to display the first picture in the album as the album cover, right now when the user clicks on the albums page all that shows is the album info like name, description, etc. and I used the album name as the link to view the images in the album, what I want is the first image in the album to be displayed as link to that album. I have alot of stuff going on with this but I will try and provide everything so you can understand easier. Here is my albums page code:

$albums = get_albums();

if(empty($albums)){
echo 'No Albums';
}else{

foreach($albums as $album){
    echo '<p><a href="view_album.php?album_id=', $album['id'] ,'">', $album['name'],'</a>(', $album['count'], ' images) <br />
    ', $album['description'], '...<br />
    <a href="edit_album.php?album_id=', $album['id'] , '">Edit</a> / <a href="delete_album.php?album_id=', $album['id'] , '">Delete</a>
    </p>';
}
}

Here is the function from my functions php file that I include in this file:

function get_albums(){
$albums = array();

$albums_query = mysql_query("
SELECT `albums`.`album_id`, `albums`.`timestamp`, `albums`.`name`, LEFT(`albums`.`description`, 50) as `description`, COUNT(`images`.`image_id`) as `image_count`
FROM `albums`
LEFT JOIN `images`
ON `albums`.`album_id` = `images`.`album_id`
WHERE `albums`.`user_id` = " . $_SESSION['user_id'] . "
GROUP BY `albums`.`album_id`
");

while($albums_row = mysql_fetch_assoc($albums_query)){
    $albums[] = array(
        'id'            => $albums_row['album_id'],
        'timestamp'     => $albums_row['timestamp'],
        'name'          => $albums_row['name'],
        'description'   => $albums_row['description'],
        'count'         => $albums_row['image_count']
    );
}

return $albums;

}

Now I am a little lost and confused on what route to take to change the link to open the albums from the album name to the first image in the album. If the albums do not have any pics in them I plan on using a simple if statement to show a generic empty folder image. My database using two table to upload images, the first is the albums table and the second is the images table. I also have a timestamp field that inserts the image upload timestamp, so can i return the images from that album and the image with the lowest timestamp so to return the first image uploaded to the album? Is there a SELECT statement to return this? Also I did create a folder that stores these images in the corresponding albums, can i return the first image in that album? What would be the easiest way to achieve this?

Here is how I get the images path:

function get_images($album_id){
$album_id = (int)$album_id;

$images = array();

$image_query = mysql_query("SELECT `image_id`, `album_id`, `timestamp`, `ext` FROM `images` WHERE `album_id` = $album_id AND `user_id` = ". $_SESSION['user_id']);
while($images_row = mysql_fetch_assoc($image_query)){
    $images[] = array(
        'id'            => $images_row['image_id'],
        'album'         => $images_row['album_id'],
        'timestamp'     => $images_row['timestamp'],
        'ext'           => $images_row['ext']
    );
}
return $images;
}

Here is my view_album.php file:

if(!isset($_GET['album_id']) || empty($_GET['album_id']) || album_check($_GET['album_id']) === false){
header('Location: albums.php');
exit();
}

$album_id = $_GET['album_id'];
$album_data = album_data($album_id, 'name');

echo '<h1 class="logo2">', $album_data['name'], '</h1>';
include 'includes/menu_album.php';

$images = get_images($album_id);

if(empty($images)){
echo 'No images.';
}else{
foreach($images as $image){
    echo '<a href="uploads/', $image['album'], '/', $image['id'], '.',     $image['ext'], '"><img src="uploads/thumbs/', $image['album'], '/', $image['id'], '.', $image['ext'], '" title="Uploaded ', date('D M Y', $image['timestamp']), '"></a> [<a       href="delete_image.php?image_id=', $image['id'], '">x</a>] ';
}
}
share|improve this question
    
Just a usability comment really, users being seemingly stuck with the very first image they uploaded as being the cover. Wouldn't you want to let the user pick which is the album cover? It'd just an extra binary field in the table cover. –  Cups Dec 28 '12 at 12:14
add comment

1 Answer

up vote 2 down vote accepted

You are actually pretty close to getting the first image with your existing query. All you need to do as add the image name or path to the SELECT and the image timestamp to an ORDER BY to make sure you get the earliest one:

   $albums_query = mysql_query("
        SELECT 
          `albums`.`album_id`, 
          `albums`.`timestamp`, 
          `albums`.`name`, 
          LEFT(`albums`.`description`, 50) as `description`, 
          COUNT(`images`.`image_id`) as `image_count`, 
          CONCAT(`images`.`image_id`, '.', `images`.`ext`) AS `first_image`
        FROM `albums`
        LEFT JOIN `images`
        ON `albums`.`album_id` = `images`.`album_id`
        WHERE `albums`.`user_id` = " . $_SESSION['user_id'] . "
        GROUP BY `albums`.`album_id`
        ORDER BY `albums`.`timestamp` ASC, `images`.`timestamp` ASC
    ");

    if (!$albums_query) {
      die('Invalid query: ' . mysql_error());
    }

    while($albums_row = mysql_fetch_assoc($albums_query)){
        $albums[] = array(
            'id'            => $albums_row['album_id'],
            'timestamp'     => $albums_row['timestamp'],
            'name'          => $albums_row['name'],
            'description'   => $albums_row['description'],
            'count'         => $albums_row['image_count'],
            'image'         => $albums_row['first_image']
        );
    }

You can then update your output to include the image:

foreach($albums as $album){
    if (empty($album['image'])) {
        $album['image'] = 'default.jpg';
    }
    echo '<p>
      <a href="view_album.php?album_id=', $album['id'] ,'">
        <img src="uploads/thumbs/', $album['id'] ,'/', $album['image'] ,'" />', $album['name'],'
      </a>(', $album['count'], ' images) <br />
      ', $album['description'], '...<br />
      <a href="edit_album.php?album_id=', $album['id'] , '">Edit</a> / <a href="delete_album.php?album_id=', $album['id'] , '">Delete</a>
    </p>';
}
share|improve this answer
    
Im sorry im confused I see the logic there but I do not have a field image in my table under the $albums array you added a field of image, not sure do you want me to add that field to the table? I don't see how that works, sorry Im sure Im missing something. It says there are no albums also even after I add one to it, my code before worked just fine I just wanted to add the first image as the link. i get this error now: Warning: mysql_fetch_assoc() expects parameter 1 to be resource, boolean given in C:\xampp\htdocs\lr\func\album.func.php on line 36 No Albums –  Aaron Warnke Jul 31 '12 at 2:32
    
Hi Aaron, The image field should be the image location in your images table, which in your SQL is LEFT JOINED to the albums table. I don't know what fields are in your images table, so I guessed filename. You'll need to adapt the code to work with your actual tables. You are getting an error because of an error in the SQL, I've added an error check to my answer so you can see what is going wrong. –  John C Jul 31 '12 at 2:47
    
You already have a table called images LEFT JOIN images so you have image field from that table –  BobSort Jul 31 '12 at 2:47
    
Here are the fields I have images has: image_id, user_id, album_id, timestamp, and ext. They are all int except for ext which get the files extension. and the image_id is the primary key. In the albums table I have: album_id, user_id, timestamp, name, description(frist 50 char.) name and description are varchar. album_id is primary key. Does that make sense? –  Aaron Warnke Jul 31 '12 at 2:53
    
It does thanks Aaron. Can you tell me how you derive the filename from the image table? –  John C Jul 31 '12 at 2:57
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