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Since I believe this should be a basic question I know this question has probably been asked, but I am unable to find it. I'm probably about to earn my Peer Pressure badge, but I'll ask anyway:

Is there a way in SQL Server that I am not aware of for using the wildcard character % when using IN.

I realize that I can use OR's like:

select *
from jobdetails
where job_no like '0711%' or job_no like '0712%'

and in some cases I can use a subquery like:

select *
from jobdetails
where job_no in (select job_no from jobs where job_id = 39)

but I'm looking to do something like the following:

select *
from jobdetails
where job_no in ('0711%', '0712%')

In this case it uses the percent sign as a character instead of a wildcard character so no rows are returned. I currently just use a bunch of OR's when I have to do this, but I know there has to be a better way. What method do you use for this?

share|improve this question
Interesting, I think there's no solution other that OR though... –  tekBlues Jul 2 '09 at 19:05
@Dusty, just curious if you came up with a solution for this, I have a very similar issue –  Irwin M. Fletcher Nov 16 '09 at 21:54
@lansinwd - Sorry, no and sadly I never posted my follow up question either. Just got too busy and this was low on my list of priorities. Please post an answer if you figure something better out. Thanks –  Dusty Nov 16 '09 at 22:17

12 Answers 12

How about:

WHERE LEFT(job_no, 4) IN ('0711', '0712', ...)
share|improve this answer
I appreciate your response though and yes this works, but this is probably due to the simplifying of my example. I'd like something that didn't necessarily rely on the first 4 characters. I'm looking for something that would rely more on the wildcard. Thanks again though. –  Dusty Jul 2 '09 at 19:13
This appears to be the best answer so far, at least in my case. this will match any values starting with the specified text in the list, and makes it much easier to add entries (I need a list of 100 entries, so most of the other solutions are too verbose) –  Gavin Coates Apr 4 '12 at 15:32

You could try something like this:

select *
from jobdetails
where job_no like '071[12]%'

Not exactly what you're asking, but it has the same effect, and is flexible in other ways too :)

share|improve this answer
This is pretty close to what I was looking for. Can the values between the quotes be expanded to for multiple values (Ex '071[10,22]%') and do you have a link that explains this in detail? –  Dusty Jul 2 '09 at 20:27
@Dusty: No, '071[10,22]% will match any string '071x%, where x is one of 1 0 , or 2. Not looking for a 071 followed by either 10 or 22. See the patern section at: –  Shannon Severance Jul 2 '09 at 21:13
+1 although this is not exactly what I am looking for, but it is close and is helpful. Though it is probably the closest to what I was looking for I can't exactly mark it as the answer. Thanks –  Dusty Jul 2 '09 at 21:39
Aww, so unfair! –  Jeremy Smyth Jul 2 '09 at 21:43
HaHa, Sorry man. I'm going to post a follow-up question shortly that defines the issue which led me to this question. I figured if I could answer this question my problem would be resolved. Thanks again man for your response though. –  Dusty Jul 2 '09 at 21:57

How about something like this?

declare @search table
    searchString varchar(10)

-- add whatever criteria you want...
insert into @search select '0711%' union select '0712%'

select j.*
from jobdetails j
    join @search s on j.job_no like s.searchString
share|improve this answer
And, as in AlexKuznetsov's answer, you can also do it in one query without the table variable or temp table. –  GalacticCowboy Jul 2 '09 at 19:34
This is an interesting approach that I hadn't thought of. It probably runs faster than a bunch of OR's, but it'd probably be faster typing (copy and pasting) the OR's. I generally only do it if I need an ad hoc report for someone so generally the reason I want to do this is to save typing time. –  Dusty Jul 2 '09 at 20:33
+1 on this approach as well although not exactly the answer I was looking for either. –  Dusty Jul 2 '09 at 21:41
Very nice solution, didn't know you could do this. –  parrotsnest Aug 19 at 23:41

I think I have a solution to what the originator of this inquiry wanted in simple form. It works for me and actually it is the reason I came on here to begin with. I believe just using parenthesises around the column like '%text%' in combination with ORs will do it.

select * from tableName
where (sameColumnName like '%findThis%' or sameColumnName like '%andThis%' or 
sameColumnName like '%thisToo%' or sameColumnName like '%andOneMore%') 
share|improve this answer
Unfortunately I think you're right. –  Echilon Jul 8 '12 at 14:25
SELECT '071235' AS token UNION ALL SELECT '07113' 
SELECT '0712%' AS pattern UNION ALL SELECT '0711%' 
 UNION ALL SELECT '071343') AS d
ON c.token LIKE d.pattern

share|improve this answer
Whoever downvoted, can you provide the reason for it? –  A-K Jul 2 '09 at 19:19
No idea, but they better downvote mine too, then, because mine follows basically the same approach... except that you did yours in a single query whereas I did mine with some setup first. –  GalacticCowboy Jul 2 '09 at 19:22
Three comments got downvoted within seconds of each other. I suspect we should all have answered "No.", which is the correct answer to the question, rather than expend effort in finding workable alternatives. –  Jeremy Smyth Jul 2 '09 at 19:24
Rest assured it wasn't me. :) –  Dusty Jul 2 '09 at 19:24
That was Jeremy. But the original question - as worded - can only be answered "no". There is no way to do it using "IN". A "yes" answer requires you to approach from a different direction. –  GalacticCowboy Jul 2 '09 at 19:49

I had a similar goal - and came to this solution:

select *
from jobdetails as JD
where not exists ( select code from table_of_codes as TC 
                      where JD.job_no like TC.code ) 

I'm assuming that your various codes ('0711%', '0712%', etc), including the %, are stored in a table, which I'm calling *table_of_codes*, with field code.

If the % is not stored in the table of codes, just concatenate the '%'. For example:

select *
from jobdetails as JD
where not exists ( select code from table_of_codes as TC 
                      where JD.job_no like concat(TC.code, '%') ) 

The concat() function may vary depending on the particular database, as far as I know.

I hope that it helps. I adapted it from:

share|improve this answer

I got it guys! Took me an hour and a half scratching my head playing with variables but basically this is what i needed to do for a security implementation in SSAS of all things! Whilst in my POC stage today

  1. I firstly added one off static table with ALL posibilities of my wildcard results (this company has a 4 character nvarchar code as their localities and they wildcard their locals) I.e. they may have 456? which would give them 456[1] to 456[Z] i.e 0-9 & a-z

  2. I had to write a script to pull the current user (declare them) and pull the masks for the declared user.

  3. Create some temporary tables just basic ones to rank the row numbers for this current user

  4. loop through each result (YOUR Or this Or that etc...)

  5. Insert into the test Table.

Here is the the script... hopefully you can make some sense of this and put it to some use :)

Drop Table #UserMasks 
Drop Table #TESTUserMasks 

Create Table #TESTUserMasks (
    [User] [Int] NOT NULL,
    [Mask] [Nvarchar](10) NOT NULL)

Create Table #UserMasks (
    [RN] [Int] NOT NULL,
    [Mask] [Nvarchar](10) NOT NULL)

SET @User = 74054

Insert Into #UserMasks 
       REPLACE(mask,'?','') Mask
from dbo.Access_Masks 
where prontouserid = @User

SET @TopFlag = 1

WHILE (@TopFlag <=(select COUNT(*) from #UserMasks))
    Insert Into #TestUserMasks 
    select (@User),Code from dbo.MaskArrayLookupTable 
    where code like (select Mask + '%' from #UserMasks Where RN = @TopFlag)

    SET @TopFlag = @TopFlag + 1

select * from #TESTUserMasks
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Peer Pressure is for removing an asnwer, does it apply to questions too? I worked soo hard to earn mine ;). Ans was actually a valid response lol.

Anyway, the IN operator is nothing but a fancy OR of '=' comparisons. In fact is soo 'nothing but' that in SQL 2000 there was a stack overflow bug due to expansion of the IN into ORs when the list contained about 10k entries (yes, there are people writing 10k IN entries...). So you can't use any wildcard matching in it.

share|improve this answer
> 10K IN's ... Shudder –  Gavin Miller Jul 2 '09 at 19:16
10k ANDs, 255 UNION ALL: –  Remus Rusanu Jul 2 '09 at 19:21
I think your right now about the Peer Pressure badge. Hopefully I don't have to worry about it. :) –  Dusty Jul 2 '09 at 19:22

In Access SQL, I would use this. I'd imagine that SQLserver has the same syntax.

select * from jobdetails where job_no like "0711*" or job_no like "0712*"

share|improve this answer
I appreciate your response, but I'm trying to figure out a way to use the wildcard in an IN so that I don't have to do multiple OR's. –  Dusty Jul 2 '09 at 20:35

This might me the most simple solution use like any

select *
from jobdetails
where job_no like any ('0711%', '0712%')

In Teradata this works fine.

share|improve this answer

You have the answer right there in your question. You cannot directly pass wildcard when using IN. However, you can use a sub-query.

Try this:

select *
from jobdetails
where job_no in (
select job_no
from jobdetails
where job_no like '0711%' or job_no like '0712%')

I know that this looks crazy, as you can just stick to using OR in your WHERE clause. why the subquery? How ever, the subquery approach will be useful when you have to match details from a different source.


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Why would you need the subquery and instead just put the subquery or as the main query or? –  Dusty Jul 2 '09 at 19:20

Try this

select * 
from jobdetails 
where job_no between '0711' and '0713'

the only problem is that job '0713' is going to be returned as well so can use '07299999999999' or just add and job_no <> '0713'

Dan zamir

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