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I have two seperate tables in my DB, here the relevant fields:

table images:

CREATE TABLE `images` (
  `image_id` int(4) NOT NULL AUTO_INCREMENT,
  `project_id` int(4) NOT NULL,
  `user_id` int(4) NOT NULL,
  `image_name` varchar(255) COLLATE utf8_unicode_ci NOT NULL,
  `image_description` varchar(255) COLLATE utf8_unicode_ci NOT NULL,
  `date_created` date NOT NULL,
  `link_to_file` varchar(255) COLLATE utf8_unicode_ci NOT NULL,
  `link_to_thumbnail` varchar(255) COLLATE utf8_unicode_ci NOT NULL,
  `given_name` varchar(255) COLLATE utf8_unicode_ci NOT NULL,
  `note` varchar(255) COLLATE utf8_unicode_ci NOT NULL,
  PRIMARY KEY (`image_id`)
) ENGINE=InnoDB  DEFAULT CHARSET=utf8 COLLATE=utf8_unicode_ci AUTO_INCREMENT=51 ;

and table projects:

CREATE TABLE `projects` (
  `project_id` int(4) NOT NULL AUTO_INCREMENT,
  `user_id` int(4) NOT NULL,
  `project_name` varchar(255) COLLATE utf8_unicode_ci NOT NULL,
  `project_description` varchar(255) COLLATE utf8_unicode_ci NOT NULL,
  `date_created` date NOT NULL,
  `date_last_edited` date NOT NULL,
  `shared` int(1) NOT NULL,
  `password` varchar(255) COLLATE utf8_unicode_ci NOT NULL,
  PRIMARY KEY (`project_id`)
) ENGINE=InnoDB  DEFAULT CHARSET=utf8 COLLATE=utf8_unicode_ci AUTO_INCREMENT=25 ;

I would like to display in a variable $content, a gallery of the oldest image from each project as a link to that project page and I have no idea how the mysql query should be built. Can you please help me with this? I have tried several if and while statements but the results have been complete failures and i am at the end of my (very limited) knowledge. I'm about to jump out the window...

So I would like to end up with

<a href="index.php?page=projects&id='.$projectid.'">
  <img src="oldest_photo_of_project_x" />
</a>
<a href="index.php?page=projects&id='.$projectid.'">
  <img src="oldest_photo_of_project_y" />
</a>
<a href="index.php?page=projects&id='.$projectid.'">
  <img src="oldest_photo_of_project_z" />
</a>

Update1:

To clarify I am trying to combine:

"SELECT * FROM projects WHERE user_id='$UserID' ORDER BY project_id DESC"

And maybe something like this:

$query = "SELECT images.project_id, projects.project_name ". 
"FROM images, projects ".
"WHERE images.project_id = projects.project_id";
share|improve this question
    
What do you mean "display in a variable"? –  eggyal May 26 '12 at 8:49
    
@eggyal: I mean echo the results into a variable so i can later in the html do <?php echo $content; ?> –  PartisanEntity May 26 '12 at 8:51
    
Okay, then that variable will need to hold considerably more than just database results - it will need to hold structured markup. This is unusual practice and I suspect perhaps not what you want to do. Better to output directly as one loops over a database recordset. –  eggyal May 26 '12 at 8:54
    
I have added a clarification of what it is I am trying to achieve. –  PartisanEntity May 26 '12 at 9:00

3 Answers 3

up vote 1 down vote accepted

Haven't tested for errors, but I'd do something like this:

$result = mysql_query("SELECT DISTINCT 
    `projects`.`project_id` AS `project`, 
    `images`.`link_to_file` AS `filepath`
FROM 
    `projects`,
    `images`
WHERE 
    `projects`.`project_id` = `images`.`project_id`
ORDER BY 
    `images`.`date_created` DESC");

while ($resultLoop = mysql_fetch_array($result)) {
    $str .= '<a href="index.php?page=projects&id=' . $resultLoop["project"] . '">
        <img src="' . $resultLoop["filepath"] . '" />
    </a>';
}


echo $str;
share|improve this answer
    
Thanks very much! This is what I am looking for, the only thing is that the results should be restricted to the users user_id which is a variable I am storing in the session, it is also stored in projects and images. –  PartisanEntity May 26 '12 at 9:04
    
you can add that to the WHERE line, as such: WHERE projects.project_id = images.project_id AND projects.user_id = " . $userid . " ORDER BY etc –  Jared May 26 '12 at 9:09
    
Thanks so much, after a little tweaking, this is working exactly as I need it. –  PartisanEntity May 26 '12 at 9:22

Something like this will extract the data on the images from the database.

SELECT * FROM `images` WHERE `project_id`="x" ORDER BY `date_created` ASC LIMIT 1,1;

That will extract the oldest image for the project with ID 'x'. You can chain them up as follows:

SELECT * FROM `images` WHERE `project_id`="x" ORDER BY `date_created` ASC LIMIT 1,1;
SELECT * FROM `images` WHERE `project_id`="y" ORDER BY `date_created` ASC LIMIT 1,1;
SELECT * FROM `images` WHERE `project_id`="z" ORDER BY `date_created` ASC LIMIT 1,1;

If you are using PHP, you can use mysqli_result::fetch_array to get the results which should contain results for all 3 queries.

share|improve this answer
    
Thanks, but that's not exactly what I mean. I had updated my original post. –  PartisanEntity May 26 '12 at 9:00
$dbh = new PDO($DSN, $USERNAME, $PASSWORD);
$qry = $dbh->prepare('
  SELECT   project_id, link_to_thumbnail
  FROM     images NATURAL JOIN (
    SELECT   project_id, MIN(date_created) AS date_created
    FROM     images
    GROUP BY project_id
    WHERE    user_id = ?
  ) AS t
  ORDER BY project_id DESC
');
$qry->bindValue(1, $UserID);
$qry->execute();

while ($row = $qry->fetch()) echo "
  <a href=\"index.php?page=projects&id=$row[project_id]\">
    <img src=\"$row[link_to_thumbnail]\"/>
  </a>
";
share|improve this answer
    
Thank you, will give it a try now –  PartisanEntity May 26 '12 at 9:05

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