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As part of a request to generate a zero padded unique identifer I created what I thought would be a simple statement

right('00000000' + convert(char(6),ID),6)

However, this did not turn out as zero padded characters at all. Further investigation reveals all is not as I would have expected. See:

drop table #test 
go
select --top 30
    right('00000000' + convert(varchar(6),ID),6) varcharPadRight, --results in varchar(6) in tempdb
    right('00000000' + convert(char(6),ID),6) charPadRight, --results in varchar(6) in tempdb
    right('00000000' + convert(char(6),ID),20) charPadRight20, --results in varchar(14) in tempdb
    right('00000000' + convert(varchar(6),ID),20) vcharPadRight20 --results in varchar(14) in tempdb
into #test
from requestidentifier aTableWithAnIntIdentityColumn
where aTableWithAnIntIdentityColumn.ID in (1,100,1000)
go
select * from #test

select left(so.name, 5) name,sc.name, sc.xtype, sc.length from tempdb..sysobjects so inner join tempdb..syscolumns sc on so.id = sc.id where so.name like '%test%'

The results of this are:

varcharPadRight charPadRight charPadRight20 vcharPadRight20
--------------- ------------ -------------- ---------------
000100          100          00000000100    00000000100
001000          1000         000000001000   000000001000
000001          1            000000001      000000001

and

tableName colName        xtype length
--------- -------------- ----- ------
#test     varcharPadRigh 167   6
#test     charPadRight   167   6
#test     charPadRight20 167   14
#test     vcharPadRight2 167   14

Where an xtype of 167 is a varchar.

Is there anybody that can explain the ordering of the operations that would cause these (to me) unexpected results?

(This behaviour is consistent in SQL Server 2005 and 2008)

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2 Answers 2

up vote 1 down vote accepted

The simple explanation is that the char data type has spaces on the right to make it the length of the variable. So, if you have a char(6) and set it to '3' the value in the variable will actually be 3-space-space-space-space-space. That's a 3 followed by 5 spaces to make the total length = 6 characters.

When you add 6 zero's to the left of the string, SQL is doing some data type conversions. Hard coding a string will result in a varchar, so '000000' will have the data type varchar(6). When you append a char and a varchar, the result is a varchar with the lengths combined.

'000000' + Convert(Char(6), int)
VarChar(6) + Char(6)
varchar(12)

The Char(6) part will still have the spaces padded on the right of the data, so when you take the 6 right most characters, you are getting the spaces.

varchar doesn't pad with spaces on the end so it works exactly as you would expect it to.

PROOF:

Declare @ID Int
Set @Id = 3

-- Data type after converting to char (results in char(6))
SELECT SQL_VARIANT_PROPERTY(Convert(Char(6), @id), 'BaseType') As DatType, 
       SQL_VARIANT_PROPERTY(Convert(Char(6), @id), 'MaxLength') As Length,
       Convert(Char(6), @id)

-- data type of hard coded string (Results in varchar(6))
SELECT SQL_VARIANT_PROPERTY('000000', 'BaseType') As DatType, 
       SQL_VARIANT_PROPERTY('000000', 'MaxLength') As Length,
       '000000'

-- data type of varchar concatenate char (Results in varchar(12))
SELECT SQL_VARIANT_PROPERTY('000000' + Convert(Char(6), @id), 'BaseType') As DataType,
       SQL_VARIANT_PROPERTY('000000' + Convert(Char(6), @id), 'MaxLength') As Length,
       '000000' + Convert(Char(6), @id)

-- data type of the result (results in varchar(6))
SELECT SQL_VARIANT_PROPERTY(Right('000000' + Convert(Char(6), @id), 6), 'BaseType') As DataType,
       SQL_VARIANT_PROPERTY(Right('000000' + Convert(Char(6), @id), 6), 'MaxLength') As Length,
       Right('000000' + Convert(Char(6), @id), 6)
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Cheers SQL_VARIANT_PROPERTY a lot better than tempdb hacking. –  Nat Oct 20 '11 at 1:39

Converting an int to a char(6) is left aligned, so

   int -> char(6) -> '000' + char(6) -> right('000' + char(6))
    1  -> 1______ -> '0001_____'     -> '1_____'
    10 -> 10_____ -> '00010____'     -> '10____'
    etc

Thus an rtrim into the code will give the expected results e.g.

right('00000000' + rtrim(convert(char(6),ID)),6)
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5  
Just using varchar() instead of char() seems by far the most sensible thing to do though - it avoids adding the padding characters in the first place. –  Damien_The_Unbeliever Oct 19 '11 at 6:54
    
@Damien_The_Unbeliever: …which is as good as an answer, IMO. –  Andriy M Oct 19 '11 at 9:20
    
@Andriy M - possibly, but I was confused, since the OP seems to be aware that varchar() works (as per their first example), so I thought I might be missing something. –  Damien_The_Unbeliever Oct 19 '11 at 9:22
    
Yeah, I was aware of varchar fixing it, just wanted to understand why. –  Nat Oct 20 '11 at 1:38

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