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I am trying to create a search form for my database where a user can search for a customer name and all of that customers addresses will be displayed. my structure looks like this

Customer table

  • ID
  • First Name
  • Last name
  • Company Name

Address Table

  • ID
  • line 1
  • post code
  • town
  • Customer_ID

Site Table

  • ID
  • Address_ID
  • notes

I take either the first, last, or company name as an input and store this as a variable along with which column they want to search in then I use the following query to check the database for matching criteria

$data = mysql_query("SELECT * FROM customer INNER JOIN address ON customer.ID = address.Customer_ID INNER JOIN sites ON address.ID = sites.address_ID WHERE upper(customer.$field) LIKE'%$query%'") ;/

I print the results using

    while($results = mysql_fetch_array($data)){
            echo "<br>"; 
            echo $results['First_Name']; 
            echo " "; 
            echo $results['Surname']; 
            echo $results['town']; 
            echo " "; 
            echo $results['postcode'];

The problem occurs when one customer has multiple addresses. A home address and a site address that are different. The query will only print one of the addresses, the site address ( which is submitted second and seems to overwrite the home address)

in the address table both of these addresses contain the same Customer_ID, how can I get them to both be displayed rather than just one?

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2 Answers 2

You need to use your search query to find the customers but then come back and get all the records for that particular customer. Doing so as a subquery should do the trick:

SELECT ...
FROM Customer
INNER JOIN address ON customer.ID = address.Customer_ID 
INNER JOIN sites ON address.ID = sites.address_ID 
WHERE Customer.ID IN (SELECT ID 
                      FROM customer 
                      INNER JOIN address ON customer.ID = address.Customer_ID 
                      INNER JOIN sites ON address.ID = sites.address_ID 
                      WHERE upper(customer.$field) LIKE'%$query%')
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I still get the same problem when using this –  dan Jul 31 '12 at 2:52
    
@dan Can you include some sample data in your question then? I believe this should work the way you are describing it. –  lc. Aug 2 '12 at 5:35

I think you should use LEFT OUTER JOIN when you connect SITES. If you use INNER JOIN you lose ADDRESS records whose Id's are not in sites.address_id.

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