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I'm trying to produce a page that would function a bit like a digital sticker album. My SQL knowledge isn't very good so I need a bit of help finishing off what I have so far.

I want to display a list of all available stickers but then also show whether or not a user has a sticker. So the idea is to display a list of empty boxes(items) and then display an image inside the box if the user owns the sticker.

The two relevant tables I have are called "items" and "inventory". Items contains all the available stickers and inventory contains the stickers owned by the users.

Here are the available columns:

CREATE TABLE items (
    id INT UNSIGNED PRIMARY KEY AUTO_INCREMENT,
    name VARCHAR(255)
) Engine=InnoDB;

CREATE TABLE inventory (
    userid INT UNSIGNED,
    itemid INT UNSIGNED,
    -- FOREIGN KEY (userid) REFERENCES users (id),
    FOREIGN KEY (itemid) REFERENCES items (id),
    UNIQUE (itemid, userid)
) Engine=InnoDB;

I'm open to suggestions on the best way to go about doing this using PHP and MySQL, but I think what I need is a query to return a list of all the item names and then another column to flag whether the user has the item. I can then loop through the items in php and then use a conditional based on the second column to show if the sticker is there or not.

So far i've got as far as the below query but it needs to only show items for the current user. Sticking in a 'where' clause doesn't work either as it then only shows the inventory items and not the NULL items (that is, it doesn't include all items).

SELECT items.name, inventory.userid
  FROM items
    LEFT JOIN inventory ON items.id = inventory.itemid

SELECT items.name, inventory.userid
  FROM items
    LEFT JOIN inventory ON items.id = inventory.itemid
  WHERE inventory.userid = '$userid'
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2 Answers

up vote 1 down vote accepted

Try moving the userid test to the JOIN condition:

SELECT items.name, inventory.userid
  FROM items
    LEFT JOIN inventory 
      ON items.id = inventory.itemid AND inventory.userid=?

That way, when the join condition fails (such as when the item is in another user's inventory), the item itself is still included in the result, but with a null userid. It can also make use of an appropriately defined index on table inventory.

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Exactly what I needed, thanks. Seems obvious now :) –  spengos Jul 12 '11 at 11:31
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Correct me if I've misunderstood, and I will update accordingly.

  • You are outputting a table of all your items.
  • Each item listed will have an empty "box", that is filled if the current user has this item.

To do this, you should only need 2 queries-- one to fetch all your items, another to fetch the item IDs of the current user's inventory.

// Get all current user's items
$qUsersItems = "SELECT items.id AS itemID FROM items, inventory WHERE items.id = inventory.itemid AND inventory.userid = " . $givenUserID .
$rUsersItems = mysql_query($qUserItems);

// Store the user's items' IDs into an array
while (list($itemID) = mysql_fetch_assoc($rUsersItems))
    $usersItems[] = $itemID;


// Get all items
$qAllItems = "SELECT id, name FROM items";
$rAllItems = mysql_query($qAllitems);

// ... (To wherever you are outputting your items list)

while ($item = mysql_fetch_assoc($rAllItems)) {

    if (in_array($item['id'], $usersItems)) // Since this ID is in the users list of items (ids)
        $fillBox = "HTML to fill box";
    else
        $fillBox = "";

    /* Your "per item" HTML here, for example (assuming you have outputted table tags before and after the while loop */        
    echo<<<HTML

<tr>
    <td>{$item['name']</td>
    <td>{$fillBox}</td> <!-- This would be your empty box /-->
</tr>

HTML;

Note: This code is untested, and unfinished for obvious reasons. After I wrote this, I realize why people ask to show what you have done first.

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