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Here is my problem. I got a table Meaning

ID - Meaning
1 - red car
2 - cat man
3 - red car
4 - ontime
5 - red car
....

I want to make the colum Meaning become Unique. So i want to build a query to found all the duplicates & for each of duplicate, the system should append [number] to make the cell become unique.

So after running that query, the result should be:

ID - Meaning
1 - red car
2 - cat man
3 - red car [2]
4 - ontime
5 - red car [3]
....

The table is pretty long about 100K rows. The query could be similar to this query

Update Table Meaning set meaning=concat(meaning,"1") 
where meaning in (select meaning from Meaning group by meaning having count(meaning>1)

So what is the query for solving the problem?

Seem we have to use set variable to check each row?

share|improve this question
    
Why don't you make the column UNIQUE in the first place? –  cen Nov 18 '13 at 14:31
    
I took data from other source, that is the problem –  Tum Nov 18 '13 at 14:33
    
@cen, that might not be possible unless he makes the records unique first. –  Dan Bracuk Nov 18 '13 at 14:33
    
i will make Record unique later affter there is no duplicate –  Tum Nov 18 '13 at 14:42

2 Answers 2

up vote 1 down vote accepted

step 1: create temporary table

CREATE TABLE TMP (id int, meaning varchar (2));

step 2: prepare query and insert into temporary table

insert into tmp 
SELECT id, 
CASE WHEN cnt =0 theN meaning ELSE concat(meaning,'[',cnt+1,']') END AS meaning 

FROM
(
SELECT t1.id, t1.meaning, (

SELECT COUNT( t.id ) 
FROM test t
where  t.meaning=t1.meaning 
and t.id<t1.id
) as cnt
FROM test t1
)TMP

step 3

truncate table test

step 4: migrate to original

insert into test select * from tmp
share|improve this answer
    
it works gracefully. Thax you very much! –  Tum Nov 18 '13 at 15:04
SELECT x.*
     , CONCAT(x.meaning,CASE WHEN COUNT(*) = 1 THEN '' ELSE COUNT(*) END) meaning 
  FROM meanings 
     x JOIN meanings 
     y ON y.meaning = x.meaning 
   AND y.id <= x.id 
 GROUP 
    BY id;
share|improve this answer
    
thax for ur answer, but i need UPDATE. can u provide UPDATE Query? –  Tum Nov 18 '13 at 14:42

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