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Table name: Table1

id   name 
1    1-aaa-14 milan road
2    23-abcde-lsd road
3    2-mnbvcx-welcoome street

I want the result like this:

Id   name   name1    name2  
1    1      aaa      14 milan road
2    23     abcde    lsd road
3    2      mnbvcx   welcoome street
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4 Answers 4

up vote 3 down vote accepted

This function ought to give you what you need.

--Drop Function Dbo.Part
Create Function Dbo.Part
    (@Value Varchar(8000)
    ,@Part Int
    ,@Sep Char(1)='-'
)Returns Varchar(8000)
As Begin
Declare @Start Int
Declare @Finish Int
Set @Start=1
Set @Finish=CharIndex(@Sep,@Value,@Start)
While (@Part>1 And @Finish>0)Begin
    Set @Start=@Finish+1
    Set @Finish=CharIndex(@Sep,@Value,@Start)
    Set @Part=@Part-1
End
If @Part>1 Set @Start=Len(@Value)+1 -- Not found
If @Finish=0 Set @Finish=Len(@Value)+1 -- Last token on line
Return SubString(@Value,@Start,@Finish-@Start)
End

Usage:

Select ID
      ,Dbo.Part(Name,1,Default)As Name
      ,Dbo.Part(Name,2,Default)As Name1
      ,Dbo.Part(Name,3,Default)As Name2
  From Dbo.Table1

It's rather compute-intensive, so if Table1 is very long you ought to write the results to another table, which you could refresh from time to time (perhaps once a day, at night).

Better yet, you could create a trigger, which automatically updates Table2 whenever a change is made to Table1. Assuming that column ID is primary key:

Create Table Dbo.Table2(
    ID Int Constraint PK_Table2 Primary Key,
    Name Varchar(8000),
    Name1 Varchar(8000),
    Name2 Varchar(8000))
Create Trigger Trigger_Table1 on Dbo.Table1 After Insert,Update,Delete
As Begin
If (Select Count(*)From Deleted)>0
    Delete From Dbo.Table2 Where ID=(Select ID From Deleted)
If (Select Count(*)From Inserted)>0
    Insert Dbo.Table2(ID, Name, Name1, Name2)
    Select ID
          ,Dbo.Part(Name,1,Default)
          ,Dbo.Part(Name,2,Default)
          ,Dbo.Part(Name,3,Default)
      From Inserted
End

Now, do your data manipulation (Insert, Update, Delete) on Table1, but do your Select statements on Table2 instead.

share|improve this answer
    
This is a good approach –  Ravia Feb 4 '13 at 9:32

The below solution uses a recursive CTE for splitting the strings, and PIVOT for displaying the parts in their own columns.

WITH Table1 (id, name) AS (
  SELECT 1, '1-aaa-14 milan road' UNION ALL
  SELECT 2, '23-abcde-lsd road' UNION ALL
  SELECT 3, '2-mnbvcx-welcoome street'
),
cutpositions AS (
  SELECT
    id, name,
    rownum = 1,
    startpos = 1,  
    nextdash = CHARINDEX('-', name + '-')
  FROM Table1
  UNION ALL
  SELECT
    id, name,
    rownum + 1,
    nextdash + 1,
    CHARINDEX('-', name + '-', nextdash + 1)
  FROM cutpositions c
  WHERE nextdash < LEN(name)
)
SELECT
  id,
  [1] AS name,
  [2] AS name1,
  [3] AS name2
  /* add more columns here */
FROM (
  SELECT
    id, rownum,
    part = SUBSTRING(name, startpos, nextdash - startpos)
  FROM cutpositions
) s
PIVOT ( MAX(part) FOR rownum IN ([1], [2], [3] /* extend the list here */) ) x

Without additional modifications this query can split names consisting of up to 100 parts (that's the default maximum recursion depth, which can be changed), but can only display no more than 3 of them. You can easily extend it to however many parts you want it to display, just follow the instructions in the comments.

share|improve this answer
select T.id,
    substring(T.Name, 1, D1.Pos-1) as Name,
    substring(T.Name, D1.Pos+1, D2.Pos-D1.Pos-1) as Name1,
    substring(T.Name, D2.Pos+1, len(T.name)) as Name2
from Table1 as T
  cross apply (select charindex('-', T.Name, 1)) as D1(Pos)
  cross apply (select charindex('-', T.Name, D1.Pos+1)) as D2(Pos)

Testing performance of suggested solutions

Setup:

create table Table1
(
  id int identity primary key,
  Name varchar(50)
)
go

insert into Table1
select '1-aaa-14 milan road' union all
select '23-abcde-lsd road' union all
select '2-mnbvcx-welcoome street'

go 10000

Result:

enter image description here

share|improve this answer
    
I knew it should be possible with CROSS APPLY! I'm still poorly acquainted with the technique. Anyway, my solution is probably faster. :) –  Andriy M May 13 '11 at 6:51
    
@Andriy - Did some testing of the performance :) –  Mikael Eriksson May 13 '11 at 9:31
    
I was a bit too hasty in my assumption as well as in my prior reporting about the results of the comparison. The actual figures I got then were absolutely consistent with yours. Sorry for my being so misleading. And thanks for your testing and for posting the results! –  Andriy M May 13 '11 at 13:00

if you always will have 2 dashes, you can do the following by using PARSENAME

--testing table
CREATE TABLE #test(id INT, NAME VARCHAR(1000))


INSERT #test VALUES(1, '1-aaa-14 milan road')
INSERT #test VALUES(2, '23-abcde-lsd road')
INSERT #test VALUES(3, '2-mnbvcx-welcoome street')

SELECT id,PARSENAME(name,3) AS name,
PARSENAME(name,2) AS name1,
PARSENAME(name,1)AS name2
 FROM (
SELECT id,REPLACE(NAME,'-','.') NAME
FROM #test)x

if you have dots in the name column you have to first replace them and then replace them back to dots in the end

example, by using a tilde to substitute the dot

 INSERT #test VALUES(3, '5-mnbvcx-welcoome street.')


SELECT id,REPLACE(PARSENAME(name,3),'~','.') AS name,
REPLACE(PARSENAME(name,2),'~','.')  AS name1,
REPLACE(PARSENAME(name,1),'~','.') AS name2
 FROM (
SELECT id,REPLACE(REPLACE(NAME,'.','~'),'-','.') NAME
FROM #test)x
share|improve this answer
    
Pretty good, but it only works if you always have 3 or fewer dashes. Oh, and if you don't have any periods (as you point out, you can replace the periods and then restore them). And if you don't have any [square brackets]. And... I'm not sure how ParseName deals with name parts that starts or end with spaces, are you? Generally, the ParseName function wasn't meant for this purpose; it was specifically meant for database object names. –  Allan W May 12 '11 at 18:04
    
That is exactly what I said –  SQLMenace May 12 '11 at 18:07
    
On my previous comment, I mistakenly pressed "Add Comment" as soon as I typed the first sentance. I immediately edited it to finish my thought. I think that @SQLMenace replied to the first version of my comment, so if it doesn't make sense, it's my fault. –  Allan W May 12 '11 at 18:10
    
SELECT PARSENAME(' .111.222.333',4) no problem with spaces...btw using case statement you can make it work for less than 4 dashes but in that case your function makes more sense –  SQLMenace May 12 '11 at 18:15

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