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I have three tables:

Shop
Shop_id  City_id   Address  
1        1         Address 1      
2        1         Address 2
3        2         Address 3 
4        2         Address 4
5        1         Address 5
6        1         Address 6

City
City_id  Name
1        Vilnius
2        Kaunas

Places
Place_id  Shop_id  Book_id
1         3        1
2         2        1
3         3        2
4         4        3
5         3        3

In Places table I save shops where you can buy specific book. Also I have checkboxes form:

$result = mysql_query("SELECT places.place_id, places.book_id, places.shop_id,
shop.shop_id, shop.city_id,shop.address,city.city_id,city.name 
FROM shop INNER JOIN places ON places.shop_id=shop.shop_id 
INNER JOIN city ON shop.city_id=city.city_id") or die(mysql_error());

if(mysql_num_rows($result) > 0) {
    while($row = mysql_fetch_assoc($result2)) {
        echo '<tr> 
                <td><input type="checkbox"'; if ($row['book_id']==$id2){echo 'checked';}echo' name="identifer[]" value="'.$row['shop_id'].'" /> <br /></td>  
                <td>'.ucfirst($row['Name']).','.$row['Address'].' </td> 
             </tr> 

I'm trying to create table with all available shops with checbox checked value if Book_id equal to $id2. To be more clear here is the screenshot, it shows what I get from my code:

enter image description here

Obviously, it basically write down all shops from Places table. I'm trying to change my SQL code, but I can't get it right, so I need help.

share|improve this question
    
Do you want to list all shops or all places? Multiple places per shop! You text tells a different story from your query. –  Erwin Brandstetter Nov 16 '11 at 4:34
1  
@omg_ponies: Why would you delete the [query] tag? The query is the point of the question. –  Erwin Brandstetter Nov 16 '11 at 5:20
    
"query" is too generic; it's been my habit to remove the tag. If the query is your issue, the combination of "sql" and "mysql" should be far more popular (means more are likely to see your question & answer). –  OMG Ponies Nov 16 '11 at 5:56
    
@OMGPonies: I created a chatroom. Would you mind a quick chat? Will be around for like 15 min, in case you don't get this in time .. chat.stackoverflow.com/rooms/5040/chat1 –  Erwin Brandstetter Nov 16 '11 at 6:06

5 Answers 5

up vote 2 down vote accepted

I guess your problem is not solved with a LEFT JOIN, because then you can get multiple Places per Shop. Try this:

SELECT EXISTS (SELECT * FROM places p
               WHERE  p.shop_id = s.shop_id AND p.Book_id = $id2) AS has_book
      ,s.shop_id, s.city_id, s.address
      ,c.city_id, c.name 
FROM   shop s
JOIN   city c USING (city_id)  -- or LEFT JOIN if city could be missing

Or, if (Shop_id, Book_id) is guaranteed to be unique - meaning a book can never appear more than once in a shop - and you want to include columns from Places, you can use a query like this:

SELECT p.place_id, p.book_id, p.shop_id
      ,s.shop_id, s.city_id, s.address
      ,c.city_id, c.name 
FROM   shop s
JOIN   city c USING (city_id)  -- or LEFT JOIN if city could be missing
LEFT   JOIN places p ON p.shop_id = s.shop_id AND p.Book_id = $id2

Note the additional condition in the ON clause of the LEFT JOIN. Must be there, not in a WHERE clause. That gives you every shop and appends data for a place only if it has the book. As a shop can have every book only once, no shop will be doubled.

share|improve this answer
    
Thank you! Query is working good, but I'm not sure how I have to use has_book ? –  Lina Nov 16 '11 at 5:05
1  
@Lina: has_book is boolean (0 or 1 in mysql) and would be the check mark in your screenshot. TRUE / 1 would mean "check", FALSE or 0 means "not checked". –  Erwin Brandstetter Nov 16 '11 at 5:18
    
Thank you again! It was very helpful! –  Lina Nov 16 '11 at 5:52

You're doing an INNER JOIN on both tables. That means the query will return records where there's data on BOTH sides of the join only. Your Places table lists only shops 2,3,4. So records with ID 1,5,6 in the Shops table will not be returned, because there's no matching Places record.

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Try replacing your INNER JOINS with LEFT JOINS

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I tried, but than it returns all shops + shop, which shop_id is 3 - three times. –  Lina Nov 16 '11 at 4:24

Why don't you pass query of id2 into your query? If am understanding your question properly:

$query = sprintf("SELECT places.place_id, places.book_id, places.shop_id,
shop.shop_id, shop.city_id,shop.address,city.city_id,city.name 
FROM shop INNER JOIN places ON places.shop_id=shop.shop_id 
INNER JOIN city ON shop.city_id=city.city_id
AND places.Place_id='%s'",mysql_real_escape_string($id2));

$result = mysql_query($query);
share|improve this answer

Shop LEFT JOIN Places LEFT JOIN City and GROUP BY shop_id.

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