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I was wondering if anyone could help with a query to select part of a column.

The column 'criteriadata' contains data that would look like this:

CriteriaData

14 27 15 C

14 30 15 DD

14 38 15 Pass

14 33 15 Pass

How can I select just the data that appears after the number 15.

Many thanks.

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2  
Will 15 always appear as the 7th and 8th characters? And why isn't this data being stored as four separate columns? –  Damien_The_Unbeliever Nov 6 '12 at 14:50
    
If you will have many rows you really want to normalize this data. If not, maybe an indexed view with a calculated column would be a work around. Functions in your query (possibly barring aggregation functions) are a good sign it will be slow. –  Jodrell Nov 6 '12 at 14:55

10 Answers 10

up vote 5 down vote accepted
SELECT RIGHT(CriteriaData, 
             LEN(CriteriaData) - CHARINDEX('15', CriteriaData, 1) - 2)
FROM TableName
WHERE CriteriaData LIKE '%15%';

SQL Fiddle Demo

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2  
This assumes that neither of the previous values ever contains 15. –  Michael Berkowski Nov 6 '12 at 14:50
    
@MichaelBerkowski - Ok Fixed now. See my edit. –  Mahmoud Gamal Nov 6 '12 at 15:00
    
This worked perfectly, many thanks for your help Mahmoud. –  dawsonz Nov 6 '12 at 15:34
declare @T table
(
  CriteriaData varchar(20)
)

insert into @T values
('14 27 15 C'),
('14 30 15 DD'),
('14 38 15 Pass'),
('14 33 15 Pass')

select stuff(CriteriaData, 1, 3+charindex(' 15 ', CriteriaData), '')
from @T  

Result:

---------
C
DD
Pass
Pass
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+1 for the best answer imo. The question should have been more specific –  t-clausen.dk Nov 6 '12 at 15:08
    
This didn't work for me it errors on line 7. –  dawsonz Nov 6 '12 at 15:34
    
@dawsonz it is only insertion of the test data that fails. The query works. This way of inserting the data works from sql server 2008 –  t-clausen.dk Nov 6 '12 at 15:37
    
Ah yes thank you, having just tested this it does in fact work. Thank you @Mikael –  dawsonz Nov 6 '12 at 15:40

If CriteriaCData always contains a pattern of 3 numbers of 2 numerics separated by a space then you always want to retrieve from 10th chars:

select SUBSTR(CriteriaCData, 10) from xxx

If you are under oracle min 10.g then use REGEXP_SUBSTR to retrieve the alpha pattern

SELECT upper(REGEXP_SUBSTR(CriteriaCData, '[a-zA-Z]*$')) FROM xxx
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Since you seem to want everything from the ninth character onwards, you could use RIGHT and LEN

SELECT right([CriteriaData], len([CriteriaData]) - 9)

However, you'd be better off normalizing your data so it was already in a seperate column.

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On oracle use LENGTH instead of LEN

SELECT substr(CriteriaData, 8, LENGTH(CriteriaData) - 9) from table
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You should use substring with left functions

Have a look at this: How to extract this specific substring in SQL Server?

And this: http://msdn.microsoft.com/en-us/library/aa259342(v=sql.80).aspx

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SELECT substring(criteriadata, 9, LEN(criteriadata)-8) from table

This assumes that the position of 15 is fixed.

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Declare @x nvarchar(100) = '14 30 15 DD';    
Select substring(@x, (select charindex('15',@x,1) + 2) ,len(@x));
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I created a SQL function to split the criteria by the spaces and used the last remaining value after the last space.

create function dbo.getCriteria
(
    @criteria varchar(500)
) 
returns varchar(500)
begin
    declare @space as int
    select @space=charindex(' ', data) from mydata
    while @space > 0
    begin
        set @criteria=substring(@criteria, @space + 1, len(@criteria))
        select @space=charindex(' ', @criteria)
    end
    return @criteria
end

select dbo.getCriteria(data) from mydata
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SELECT 
  RIGHT(CriteriaData, LEN(CriteriaData) - (CHARINDEX('15', CriteriaData, 1) - 2)) 
FROM 
  MyTable;
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1  
This is just wrong –  t-clausen.dk Nov 6 '12 at 15:06
    
Though a bit ambiguous, your comment was indeed correct. I have edited my answer appropriately. –  Nathan Nov 6 '12 at 15:11
    
This is still wrong. I suggest you test it on actual data –  t-clausen.dk Nov 6 '12 at 15:14

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