I have a database field that contains address information stored as multi-line strings.
88 Park View
Hemmingdale
London
Could anyone tell me the best way to get line 1, line 2 & line 3 as distinct fields in a select statement?
Regards Richard
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4 Answers
Try something like this? Mind you this is bit vulnerable
DECLARE @S VARCHAR(500), @Query VARCHAR(1000)
SELECT @S='88 Park View
Hemmingdale
London'
SELECT @Query=''''+ REPLACE(@S, CHAR(13),''',''')+''''
EXEC('SELECT '+@Query)
Results
88 Park View | Hemmingdale | London
Here is a solution I came up with using a CTE to recursively iterate a table of values, and split them out by new line CHAR(13), and then use a PIVOT to show the results. You can expand this to additional columns (more than 5) just by adding to these to the PIVOT.
DECLARE @Table AS TABLE(ID int, SomeText VARCHAR(MAX))
INSERT INTO @Table VALUES(1, '88 Park View
Hemmingdale
London')
INSERT INTO @Table VALUES(2, '100 Main Street
Hemmingdale
London')
INSERT INTO @Table VALUES(3, '123 6th Street
Appt. B
Hemmingdale
London')
;WITH SplitValues (ID, OriginalValue, SplitValue, Level)
AS
(
SELECT ID, SomeText, CAST('' AS VARCHAR(MAX)), 0 FROM @Table
UNION ALL
SELECT ID
, SUBSTRING(OriginalValue, CASE WHEN CHARINDEX(CHAR(13), OriginalValue) = 0 THEN LEN(OriginalValue) + 1 ELSE CHARINDEX(CHAR(13), OriginalValue) + 2 END, LEN(OriginalValue))
, SUBSTRING(OriginalValue, 0, CASE WHEN CHARINDEX(CHAR(13), OriginalValue) = 0 THEN LEN(OriginalValue) + 1 ELSE CHARINDEX(CHAR(13), OriginalValue) END)
, Level + 1
FROM SplitValues
WHERE LEN(SplitValues.OriginalValue) > 0
)
SELECT ID, [1] AS Level1, [2] AS Level2, [3] AS Level3, [4] AS Level4, [5] AS Level5
FROM (
SELECT ID, Level, SplitValue
FROM SplitValues
WHERE Level > 0
) AS p
PIVOT (MAX(SplitValue) FOR Level IN ([1], [2], [3], [4], [5])) AS pvt
Results:
ID Level1 Level2 Level3 Level4 Level5
----------- -------------------- -------------------- -------------------- -------------------- --------------------
1 88 Park View Hemmingdale London NULL NULL
2 100 Main Street Hemmingdale London NULL NULL
3 123 6th Street Appt. B Hemmingdale London NULL
answered Nov 14, 2012 at 19:32
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One of the best things I have come across on StackOverflow! I bow my head to a master.– bushellOct 31, 2019 at 14:49
Just for fun, updated with XML solution. This should handle '.' issue and can easily to extend to more lines.
DECLARE @xml XML , @S VARCHAR(500) = '88 Park View
Hemmingdale
London'
SET @xml = CAST('<row><col>' + REPLACE(@S,CHAR(13),'</col><col>') + '</col></row>' AS XML)
SELECT
line.col.value('col[1]', 'varchar(1000)') AS line1
,line.col.value('col[2]', 'varchar(1000)') AS line2
,line.col.value('col[3]', 'varchar(1000)') AS line3
FROM @xml.nodes('/row') AS line(col)
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@TimLehner, you are right. Maybe it's not a good idea to use '.' on address :)– EricZNov 14, 2012 at 19:08
I know this is horrible but this way you have the 3 lines in 3 columns called l1,l2 and l3:
declare @input nvarchar(max) = 'line 1' + CHAR(13) + CHAR(10) + 'line 2' + CHAR(13) + CHAR(10) + 'line 3' + CHAR(13) + CHAR(10) + 'line 4' + CHAR(13) + CHAR(10) + 'line 5'
declare @delimiter nvarchar(10) = CHAR(13) + CHAR(10)
declare @outtable table (id int primary key identity(1,1), data nvarchar(1000) )
declare @pos int = 1
declare @temp nvarchar(1000)
if substring( @input, 1, len(@delimiter) ) = @delimiter
begin
set @input = substring(@input, 1+len(@delimiter), len(@input))
end
while @pos > 0
begin
set @pos = patindex('%' + @delimiter + '%', @input)
if @pos > 0
set @temp = substring(@input, 1, @pos-1)
else
set @temp = @input
insert into @outtable ( data ) values ( @temp )
set @input = substring(@input, @pos+len(@delimiter), len(@input))
end
select
top 1 ISNULL(a.data,'') as l1, ISNULL(b.data,'') as l2, ISNULL(c.data,'') as l3
from
@outtable a
left outer join @outtable b on b.id = 2
left outer join @outtable c on c.id = 3
sqlfiddle here
