Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have 2 tables in the database

BRAND
- id
- name

PRODUCT
- id
- brand_id
- name

The site user will search for a product using only one text field.

Example 1: "sony dvd player" where "sony" is in the BRAND table and "dvd player" is in the PRODUCT table.

Example 2: "car audio pioneer deh-1234", in this case "car audio deh-1234" belongs to PRODUCT and pioneer to BRAND.

It's there any way to write a unique SQL query searching for results?

Something like this:

SELECT
   B.name,P.name
FROM
   brand B,product P 
WHERE
   B.id=P.brand_id 
   AND (P.nombre LIKE '%{$textfield}%' OR B.name LIKE '%{textfield}%')

Thanks for any help. :)

Edit: The SQL above doesn't work for combined brand/product, but for a product OR a brand. I edited the variable name used to $textfield since it is from one single text input.

share|improve this question
    
What do you need it to do that isn't working with what you already posted? –  mdarwi Dec 13 '10 at 18:15
    
@mdarwi it isn't, the first step would be explode all the data from the input field. –  gustyaquino Dec 13 '10 at 18:22
    
Yes, exploding that field is a good way to go. see my answer below. also, whats with the mixed languages? –  jon_darkstar Dec 13 '10 at 18:39
    
hehe I'm from Paraguay (spanish) as you can clearly read.. –  gustyaquino Dec 13 '10 at 18:46
    
hah nothing wrong there you just gotta pick one! i understand tho, sometimes i code things like $arr = new ArrayList([<obj id=$('.i')> for i in range(100)]); –  jon_darkstar Dec 13 '10 at 19:04

3 Answers 3

up vote 0 down vote accepted

If you reconsider what parts are done in PHP, and which in SQL, this is pretty easy

--PHP--

$t = $_POST('textField1');
$tArr = explode(' ', $t);
$lastClause = '';
foreach ($tArr as $k=>$v)
{
    if ($k != 0) $lastClause .= ' OR ';
    $lastClause .= " B.name LIKE '%$v%' OR P.name LIKE '%$v%' ";
}


$sql = "SELECT B.name,P.name
       FROM
       brand B,product P
       WHERE
       B.id=P.brand_id 
       AND ($lastClause)";

mysql_query($sql, $conn);

I'd also recommend you change your query to use an INNER JOIN, but thats another matter.

As far as the sorting, if that is important to you. I'd recommend putting ORDER BY on a the SUM of a CASE on each separate piece of lastClause, where match -> 1, no-match -> 0

share|improve this answer
    
exactly, the user text input could contain all words in any order and even unnecessary words. –  gustyaquino Dec 13 '10 at 18:54

The reason why it doesn't work is that you have both brand and product information in the string. So, if you search for, say, "sony dvd player" the query searches for "%sony dvd player%" within the two tables. But probably there is no such entry (neither in brand nor in product).

You should split the search string instead and search for parts "separately". For example:

P.name LIKE '%sony%' OR p.name LIKE '%dvd%' OR p.name LIKE '%player%' OR b.name LIKE ...

The expression has to be generated dynamically. You could then sort the result by some "probability" value to have those rows in the first places that have a higher match.

share|improve this answer
    
This is a good solution. The only other thing to think about is you'll have to add extra logic if you want the ordering of the results to be "smarter". For example, if you needed "sony dvd player" as an exact match to be rated higher than something like "sony playstation". –  jocull Dec 13 '10 at 18:41
    
Yes, you are totally right. I think levenshtein would do the job very well. –  Flinsch Dec 13 '10 at 18:44
    
I'm very interested on implement this levenshtein distance in this case, did any one knows if it is possible? –  gustyaquino Dec 13 '10 at 18:57
    
its certainly possible en.wikipedia.org/wiki/Levenshtein_distance, you'd probably want to modify it to count by the word rather than by the letter (unless you think longer words deserve heavier weighting) –  jon_darkstar Dec 13 '10 at 19:34

@gustyaquino: Your code should work, just needs a small update --

SELECT
   B.name,P.name
FROM
   brand B,product P 
WHERE
   B.id = P.brand_id 
   AND (P.name LIKE '%{$textfield}%' OR B.name LIKE '%{textfield}%')

Replacing nombre with name, señor ;-)

Update

@hol: I tested the SQL code in a shell and it worked. I only noticed gustyaquino's edit after I had already answered and came back to see you jumping on me and down-voting me.

mysql> create database so4432028;
Query OK, 1 row affected (0.16 sec)

mysql> use so4432028;
Database changed

mysql> create table brand (id int not null auto_increment, 
name varchar(20) not null default '', 
primary key(`id`));
Query OK, 0 rows affected (0.34 sec)

mysql> create table product (id int not null 
auto_increment, name varchar(40) not null default '', 
brand_id int not null, primary key(`id`), 
key brand (`brand_id`));
Query OK, 0 rows affected (0.08 sec)

mysql> insert into brand (name) values ('Sony');
Query OK, 1 row affected (0.08 sec)

mysql> insert into brand (name) values ('LG');
Query OK, 1 row affected (0.02 sec)

mysql> insert into brand (name) values ('Panasonic');
Query OK, 1 row affected (0.01 sec)

mysql> insert into product (name, brand_id) values ('DVD Player', 1);
Query OK, 1 row affected (0.09 sec)

mysql> insert into product (name, brand_id) values ('Plasma Television', 2);
Query OK, 1 row affected (0.06 sec)

mysql> insert into product (name, brand_id) values ('CD Player', 3);
Query OK, 1 row affected (0.03 sec)

mysql> select p.name, b.name from brand b, product p where b.id = p.brand_id and
 (p.name like '%Sony%' OR b.name LIKE '%Sony%');
+------------+------+
| name       | name |
+------------+------+
| DVD Player | Sony |
+------------+------+
1 row in set (0.09 sec)
share|improve this answer
    
The code does not work. That typo was not the reason for him asking I would say. –  hol Dec 13 '10 at 18:39
    
@hol sorry for that.. my typo isn't in the real code. –  gustyaquino Dec 13 '10 at 18:48
    
@gustyquino. I know. My comment was towards @stealthyninja. I just wanted to say that I do not like the answer because it was somehow not solving your problem. –  hol Dec 13 '10 at 18:51
    
@hol you're right.. I just mess up when addressed to you instead of stealthyninja –  gustyaquino Dec 13 '10 at 19:00
    
:-) Understand. –  hol Dec 13 '10 at 19:07

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.