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I have a large number to find in a table. But only a little part of it is given to me to find the whole number. I am looking for some new way to find these out without using the like operator. I know it is a simple thing, but I need a new approach.

  • Value given is: 4213076600
  • Value to find is: 89013106904213076600

I want to find it in the following query:

SELECT  * 
FROM    table_name 
WHERE   column_name in (value,value,value) 

i have searched the websites for this and came to know about the left() and right() functions but don't know how to arrange them to get the result

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Why can't you use like? Also, I think you omitted a critical requirement. Are you to search for more than one partial value? –  Leigh Dec 13 '12 at 6:19
    
ya i need to search more than one value that's why i need to use 'in' function –  faizan Dec 13 '12 at 6:22
    
No, IN will not work here. It only finds exact matches. If you need a partial match, you must use like (or something similar). ie WHERE col LIKE '%aaa%' OR col LIKE '%bbb%'. –  Leigh Dec 13 '12 at 6:25
    
ya i know that approach but right now i have discussed this matter with my one of my colleagues and there's an other way .. i came to know about .. –  faizan Dec 13 '12 at 6:26
    
Are the partial values always the same length and/or always in the same position? For example, at the end 8901310690_4213076600_ –  Leigh Dec 13 '12 at 6:29

4 Answers 4

You can use CONTAINS more info:

SELECT *
FROM table_name 
WHERE CONTAINS(column_name , '"*value*"')

For CONTAINS you need to create a FULL TEXT INDEX on the table.

share|improve this answer
    
+1 new one to me –  whytheq Dec 13 '12 at 8:14
    
This is a good solution if your SQL version is >= 2005, and your table is full-texted indexed. –  gkrogers Dec 14 '12 at 5:26
DECLARE @table table (n varchar(20))
DECLARE @param1 varchar(20)

SET @param1 = '4213076600'

INSERT INTO @table (n)
SELECT '89013106904213076600'

SELECT n 
FROM @table
WHERE RIGHT(n, len(@param1)) = @param1

Edit

select * 
from table_name 
where right(column_name, len(value)) = value
share|improve this answer
    
maybe you didn't understood that ... i have to find this'89013106904213076600' from a table which already contains this value and i have got '4213076600' value to find it which is a part of above value ..... –  faizan Dec 13 '12 at 6:10
    
@faizan My answer was a single testable unit that anybody can throw into their sql editor and run, imagine your table replaced with my table and the column 'n' replaced with your column. Updated answer. –  Zeb Rawnsley Dec 13 '12 at 6:14
    
ya thanks that second query works but it only works for the single value ... and ... i have to find more than one in a single query like in the example i have stated –  faizan Dec 13 '12 at 6:17
    
can i use both left() and right() functions in the same query ... ? –  faizan Dec 13 '12 at 6:20
SELECT
    *
FROM
    table_name
WHERE
    CHARINDEX(value1,column_name)>0
    OR CHARINDEX(value2,column_name)>0
    OR CHARINDEX(value3,column_name)>0
share|improve this answer
    
its giving the empty columns .... if it helps the column is in varchar format –  faizan Dec 13 '12 at 5:58
    
@faizan "its giving the empty columns" ...what do you mean? I've used CHARINDEX before in this context –  whytheq Dec 13 '12 at 8:16
SELECT left(column_name,length_of_value)
FROM   table_name
WHERE  RIGHT(column_name,length_of_value_given) IN (value,value,value)

That's way it works for IN clause

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