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I am trying to create a small script in PHP to get data from a MySQL Database. In my database 'companies' is a column called category where i store my the companies' categories in. For example "1|2" or just "2".

Now i want to search for "2" and my database shall return those two entries with the "1|2" and "2" - but that is my problem. I tried it with LIKE % etc. but nothing worked as i hoped.

Does anyone may help me out with my small PHP script?

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Show us the query you're trying... using LIKE '%2%' should do it... –  Brian Oct 15 '12 at 10:57
2  
use RLIKE –  diEcho Oct 15 '12 at 10:57
    
thank you diEcho. RLIKE solved my problem. –  JoernBernd Oct 15 '12 at 11:28

6 Answers 6

I believe it's a bad idea to store categories in the way you do. If you use LIKE "%2" or LIKE "%2%" or LIKE "2" statements to get compnaies wich belong to category "2", you will receive companies with categories e.g. 21|12.

It'd be better to take categories away from company table. And add 2 new tables: category(id, name) and company_category(id, compnay_id, category_id). This is how it has to be in RDMS. But if you have weighty arguments why you do so - it is you deal.

In this I'd suggest wrapping categories in additional |-symbol to get |1|2| or |1|3|23| and using LIKE "%|2|%" statement.

I hope this helps you.

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The right way to go is creating 2 new tables, for sure. –  regilero Oct 15 '12 at 11:35
SELECT * FROM cat_baza WHERE subsection = ".$row['id']." or subsection LIKE('%|".$row['id']."|%') or subsection LIKE('".$row['id']."|%') or subsection LIKE('%|".$row['id']."');
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Try

SELECT * FROM table
WHERE category LIKE %2% AND NOT LIKE '%|%'
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Have you tried

select * from table where category RLIKE "2"

??

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thank you davidkonrad. RLIKE solved my problem. –  JoernBernd Oct 15 '12 at 11:29
    
@JoernBernd. great to hear! maybe you could accept/vote the answer? :-) –  davidkonrad Jul 26 at 23:24

Try this

SELECT * FROM table 
WHERE category='2' OR category LIKE '%|2' OR category LIKE '2|%' 
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SELECT * FROM table 
WHERE category REGEXP '.*2.*'

Regex should work

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