Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I need to pull a specific substring from a string of the form:

foo=abc;bar=def;baz=ghi

For example, how would I get the value of "bar" from that string?

share|improve this question
    
is the string a row value or something passed in? – Josh Jun 17 '09 at 18:38
    
do you have any say in the db schema? storing values like that goes against how sql databases are supposed to work. – Ben Hughes Jun 17 '09 at 18:38
    
I agree. I would not have designed it this way, but I'm having to work with existing code. – Jeremy Cantrell Jun 17 '09 at 18:40
    
what version of SQL ? if 2005/8 sounds like a good job for a clr function. – u07ch Jun 17 '09 at 19:06
    
It makes a big difference what you want to use it for. I can't believe all the answers provided without even knowing whether your're selecting with it, or displaying it, or using it in a subquery, or ... – dkretz Jun 17 '09 at 19:21
up vote 1 down vote accepted

You can use charindex and substring. For example, to search for the value of "baz":

declare @str varchar(128)
set @str = 'foo=abc;bar=def;baz=ghi'

-- Make sure @str starts and ends with a ;
set @str = ';' + @str + ';'

select substring(@str, 
    charindex(';baz=',@str) + len(';baz='),
    charindex('=',@str,charindex(';baz=',@str)) - charindex(';baz=',@str) - 1)

Or for the value of "foo" at the start of the string:

select substring(@str, 
    charindex(';foo=',@str) + len(';foo='),
    charindex('=',@str,charindex(';foo=',@str)) - charindex(';foo=',@str) - 1)

Here's a UDF to accomplish this (more readable version inspired by BlackTigerX's answer):

create function dbo.FindValueInString(
    @search varchar(256),
    @name varchar(30))
returns varchar(30)
as
begin
    declare @name_start int
    declare @name_length int
    declare @value_start int
    declare @value_end int

    set @search = ';' + @search

    set @name_start = charindex(';' + @name + '=',@search)
    if @name_start = 0
        return NULL

    set @name_length = len(';' + @name + '=')
    set @value_start = @name_start + @name_length
    set @value_end = charindex(';', @search, @value_start)

    return substring(@search, @value_start, @value_end - @value_start)
end

As you can see, this isn't easy in Sql Server :) Better do this in the client language, or normalize your database so the substrings go in their own columns.

share|improve this answer
    
I agree, but I just need something that works right now. – Jeremy Cantrell Jun 17 '09 at 18:43
    
I should mention, though, that "bar" could just as easily be at the beginning or end of this string. I don't think your solution accounts for that. – Jeremy Cantrell Jun 17 '09 at 18:44
    
The solution is lengthy, but it should work? Even right now. :) – Andomar Jun 17 '09 at 18:44
    
It works as long as you pad the beginning of @str with a ';'. Fix it accommodate potentially not having a leading ';' and I'll mark it as the answer. – Jeremy Cantrell Jun 17 '09 at 18:51
    
Added the leading character and UDF included now – Andomar Jun 17 '09 at 19:08

I have a generalized solution that works for this problem:

CREATE FUNCTION [dbo].[fn_StringBetween]
(
    @BaseString varchar(max),
    @StringDelim1 varchar(max),
    @StringDelim2 varchar(max)
)
RETURNS varchar(max)
AS
BEGIN
    DECLARE @at1 int
    DECLARE @at2 int
    DECLARE @rtrn varchar(max)

    SET @at1 = CHARINDEX(@StringDelim1, @BaseString)
    IF @at1 > 0
    BEGIN
    	SET @rtrn = SUBSTRING(@BaseString, @at1
	     + LEN(@StringDelim1), LEN(@BaseString) - @at1)
    	SET @at2 = CHARINDEX(@StringDelim2, @rtrn)
    	IF @at2 > 0
    		SET @rtrn = LEFT(@rtrn, @at2 - 1)
    END

    RETURN @rtrn
END

so if you run (just wrap your original string to be searched with ';' at beginning and end):

PRINT dbo.fn_StringBetween(';foo=abc;bar=def;baz=ghi;', ';bar=', ';')

you will get 'def' returned.

share|improve this answer

look into the PATINDEX function. It has wildcard matching which should help you..

share|improve this answer

you can use this function

alter function FindValue(@txt varchar(200), @find varchar(200)) 
returns varchar(200)
as
begin
declare 
    @firstPos int,
    @lastPos int

select @firstPos = charindex(@find, @txt), @lastPos = charindex(';', @txt, @firstPos+5)

select @lastPos = len(@txt)+1 where @lastPos = 0

return substring(@txt, @firstPos+len(@find)+1, @lastPos-@firstPos-len(@find)-1)
end


select dbo.FindValue('foo=abc;bar=def;baz=ghi', 'bar')

update: was not using the length of @find

share|improve this answer

this is assuming that the string will have the same string format just substitute the column name for the 'foo=abc;bar=def;baz=ghi'

select substring('foo=abc;bar=def;baz=ghi',patindex('%bar=%','foo=abc;bar=def;baz=ghi')+4, len('foo=abc;bar=def;baz=ghi')-patindex('%;baz=%','foo=abc;bar=def;baz=ghi')-4)
share|improve this answer

This can achieve in simple way

DECLARE  @str VARCHAR(30)

DECLARE  @start INT

SET @str='foo=abc;bar=def;baz=ghi'

SET @start=CHARINDEX('bar',@str)

PRINT SUBSTRING(@str,@start,3)
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.