Escape a string in SQL Server so that it is safe to use in LIKE expression
Rather than escaping all characters in a string that have particular significance in the pattern syntax given that you are using a leading wildcard in the pattern it is quicker and easier just to do.
SELECT *
FROM YourTable
WHERE CHARINDEX(@myString , YourColumn) > 0
In cases where you are not using a leading wildcard the approach above should be avoided however as it cannot use an index on YourColumn
.
Additionally in cases where the optimum execution plan will vary according to the number of matching rows the estimates may be better when using LIKE
with the square bracket escaping syntax when compared to both CHARINDEX
and the ESCAPE
keyword.
To escape special characters in a LIKE expression you prefix them with an escape character. You get to choose which escape char to use with the ESCAPE keyword. (MSDN Ref)
For example this escapes the % symbol, using \ as the escape char:
select * from table where myfield like '%15\% off%' ESCAPE '\'
If you don't know what characters will be in your string, and you don't want to treat them as wildcards, you can prefix all wildcard characters with an escape char, eg:
set @myString = replace(
replace(
replace(
replace( @myString
, '\', '\\' )
, '%', '\%' )
, '_', '\_' )
, '[', '\[' )
(Note that you have to escape your escape char too, and make sure that's the inner replace
so you don't escape the ones added from the other replace
statements). Then you can use something like this:
select * from table where myfield like '%' + @myString + '%' ESCAPE '\'
Also remember to allocate more space for your @myString variable as it will become longer with the string replacement.
You specify the escape character. Documentation here:
http://msdn.microsoft.com/en-us/library/ms179859.aspx
Had a similar problem (using NHibernate, so the ESCAPE keyword would have been very difficult) and solved it using the bracket characters. So your sample would become
WHERE ... LIKE '%aa[%]bb%'
If you need proof:
create table test (field nvarchar(100))
go
insert test values ('abcdef%hijklm')
insert test values ('abcdefghijklm')
go
select * from test where field like 'abcdef[%]hijklm'
go