55

I''ll explain what I need to do on example. First of all, we have a simple table like this one, named table:

id | name
===+=====
1  | foo
1  | bar
1  | foobar
2  | foo
2  | bar
2  | foobar

Now the query:

SELECT t.* FROM table t GROUP BY t.id

Will get us result similar to this one:

id | name
===+=====
1  | foo
2  | foo

But is it possible, to collect all values of name to have result like this?

id | name
===+=================
1  | foo, bar, foobar
2  | foo, bar, foobar
5
  • 2
    Which DBMS are you using? Postgres? Oracle? Sep 20, 2013 at 6:24
  • 2
    Which RDBMS are you using? MySQL, SQL Server? Sep 20, 2013 at 6:25
  • @a_horse_with_no_name, astander: DBMS doesn't really matter, let's say MySQL and PG.
    – b4rt3kk
    Sep 20, 2013 at 6:32
  • 10
    The DBMS does matter. The solutions will be different. Sep 20, 2013 at 6:34
  • 1
    And for Oracle one would use LISTAGG(), I guess. Sep 7, 2017 at 18:52

4 Answers 4

62

Using MySQL you can use GROUP_CONCAT(expr)

This function returns a string result with the concatenated non-NULL values from a group. It returns NULL if there are no non-NULL values. The full syntax is as follows:

GROUP_CONCAT([DISTINCT] expr [,expr ...]
             [ORDER BY {unsigned_integer | col_name | expr}
                 [ASC | DESC] [,col_name ...]]
             [SEPARATOR str_val])

Something like

SELECT ID, GROUP_CONCAT(name) GroupedName
FROM Table1
GROUP BY ID

SQL Fiddle DEMO

0
25

For SQL Server (before 2017) use FOR XML clause and STUFF() function for that:

SELECT distinct id, name = 
    STUFF((SELECT ' , ' + name
           FROM Table1 b 
           WHERE b.id = a.id 
          FOR XML PATH('')), 1, 2, '')
FROM Table1 a
GROUP BY id;

UPDATE

With SQL Server 2017, you can simply use STRING_AGG() function to achieve that:

SELECT ID, STRING_AGG (name, ', ') AS Name
FROM Table1
GROUP BY ID

See this SQLFiddle

21

For Postgres use string_agg()

select id, 
       string_agg(name, ',' order by name) as name_list
from the_table
group by id
order by id;
1
1

Below query works for you if you are using db2:

SELECT DISTINCT id, LISTAGG(names, ',')
FROM tb
GROUP BY id;

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