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Does Oracle have its own implementation of SQL Server stuff function?

Stuff allows you to receive one value from a multi row select. Consider my situation below

 ID   HOUSE_REF   PERSON
 1      A         Dave
 2      A         John
 3      B         Bob

I would like to write a select statement, but I want the PERSON names to be in a single row.

For example, when I select from this table, I want to achieve the following

HOUSE_REF   PERSONS
A           Dave, John
B           Bob

I haven't been able to find a simple solution so far, it may be a case of writing my own function to use, but I'm not entirely sure of how to approach this, any ideas?

The main business use of this, will be to have a select statement that shows each house, and against that house to have one column which lists everyone that lives in that house. The house ref in this select must be unique, hence needing to concatenate the persons

Thanks

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You have misunderstood what T-SQL STUFF does. See the documentation: technet.microsoft.com/en-us/library/ms188043.aspx. It could be used as part of a solution for what you're trying to do, but isn't the solution in itself. –  Ed Harper Jan 21 '10 at 10:06
    
Not Oracle related - but MySQL has a function called GROUP_CONCAT that appears to solve the problem described above. –  John M Dec 10 '10 at 15:49
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4 Answers

up vote 2 down vote accepted

You can write a custom aggregate function to do this. This string you generate is limited to 4k characters.

http://www.sqlsnippets.com/en/topic-11591.html

There is an undocumented, unsupported function WMSYS.WM_CONCAT to do the same thing.

http://www.psoug.org/reference/undocumented.html

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1  
Oracle 11gR2 has a listagg() function: download.oracle.com/docs/cd/E11882_01/server.112/e17118/… –  a_horse_with_no_name Apr 24 '11 at 20:15
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Oracle 11.2 includes a new function LISTAGG to do this.

Prior to that you could use Tom Kyte's STRAGG function.

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+1 for spreading the word on LISTAGG –  dpbradley Jan 21 '10 at 13:41
    
Using LISTAGG is really the most appropriate and easy way! The documentation link has changed: LISTAGG - doc –  Joan.bdm May 22 at 13:49
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The "no add-ons/no undocumented functions" Oracle solution (prior to 11.2 as Tony mentions) is:

select c1, ltrim(sys_connect_by_path(c2,','),',') persons
 from
  (
   select c1, c2, 
    row_number() over (partition by c1 order by c2 ) rn
     from
      (
       select house_ref c1, person c2 
        from housetable 
      )
   )
  where connect_by_isleaf=1
  connect by prior rn+1 =rn and prior c1 = c1
  start with rn=1
;
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Execute below three functions.

Function 1

create or replace type stragg_type as object ( string varchar2(4000),

static function ODCIAggregateInitialize ( sctx in out stragg_type ) return number ,

member function ODCIAggregateIterate ( self in out stragg_type , value in varchar2 ) return number ,

member function ODCIAggregateTerminate ( self in stragg_type, returnvalue out varchar2, flags in number ) return number ,

member function ODCIAggregateMerge ( self in out stragg_type, ctx2 in stragg_type ) return number );

/

function 2

create or replace type body stragg_type is

static function ODCIAggregateInitialize ( sctx in out stragg_type ) return number is begin

sctx := stragg_type( null ) ;

return ODCIConst.Success ;

end;

member function ODCIAggregateIterate ( self in out stragg_type , value in varchar2 ) return number is begin

self.string := self.string || ',' || value ;

return ODCIConst.Success;

end;

member function ODCIAggregateTerminate ( self
in stragg_type , returnvalue out varchar2 , flags in number ) return number is begin

returnValue := ltrim( self.string, ',' );

return ODCIConst.Success;

end;

member function ODCIAggregateMerge
( self in out stragg_type , ctx2 in stragg_type ) return number is begin

self.string := self.string || ctx2.string;

return ODCIConst.Success;

end;

end; /

function 3

create or replace function stragg ( input varchar2 ) return varchar2
deterministic parallel_enable
aggregate using stragg_type ; /


after executing three functions now u can use stragg as follows

Example Table :emp name | salary a
| 100 a | 200 a | 300 b | 400 b | 500 c | 600 c | 700 d
| 800

select name , STRAGG( salary) as string from emp group by name;

output:

a | 100,200,300

b | 400,500

c | 600,700

d | 800

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Should give credit for this answer where it is due: sqlsnippets.com/en/topic-11591.html –  Baodad Aug 7 '13 at 16:16
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