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How can I find the minimum value among the values ​​not filled or not exists

for example

001  
002  
003
013
015

result must return 004

select min

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5 Answers

declare @T table(Number int)

insert into @T values (1),(2),(3),(13),(15)

select top 1 Number + 1
from @T
where Number + 1 not in (select Number from @T)
order by Number

Update:

A version using char(3) zero padded.

declare @T table(ID char(3))

insert into @T values ('001'),('002'),('003'),('013'),('015')

select top 1 right(1001 + Id, 3)
from @T
where Id + 1 not in (select Id from @T)
order by Id
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This usually works quite well, but how would this work if 009 was stored as a CHAR(3)? the leading zeroes in the question makes me think it's a CHAR not INT field. Just wondering :) –  Seph Dec 29 '11 at 8:15
    
@Seph - Added a version with char(3) as data type. No difference really except for the result value and the fact that there are a bunch of implicit type conversions and it will not use any index on Number. –  Mikael Eriksson Dec 29 '11 at 8:19
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Assuming your sequence in the table YourNumbersTable Try this (SQL Server 2005+):

declare @min int, @max int
select @min = MIN(Id), @max = MAX(Id) from YourNumbersTable

;WITH numbers(id) as
(
    SELECT @min id
    UNION ALL 
    SELECT id+1
    FROM numbers
    WHERE id <= @max
)

SELECT MIN(Numbers.id)
FROM Numbers
     LEFT JOIN YourNumbersTable ON Numbers.Id = YourNumbersTable.Id
WHERE YourNumbersTable.Id IS NULL
OPTION(MAXRECURSION 0)
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Try this (no joins, no rec-cte)

declare @T table(n int)

insert into @T values (1),(2),(3),(13),(15)


select max(n)+1 from (
  select *,l=n-row_number() over(order by n)  
    from (
      select n from @T
      union
      select 0 -- what about 0 ??
    ) as s
) as a
where l=-1
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This is similar to what @szauri has suggested, but without aggregating:

;
WITH ranked AS (
  SELECT n, r = ROW_NUMBER() OVER (ORDER BY n)
  FROM @T
)
SELECT TOP 1 r
FROM ranked
WHERE n <> r
ORDER BY n

Note: Both @szauri's and my solutions require SQL Server 2005 or later version.

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maybe I have an alternative solution. It can be slower on wide number ranges because of the loop in it.

-- prepare a table to have your example 
declare @ref table (id int)
insert into @ref (id) values (1), (2), (3), (13), (15)

-- this will return 1
select min(id) from @ref

-- magic happens here
declare @i int, @max int, @returnValue int
select @i = min(id), @max = max(id) from @ref
declare @tmp table (id int)
while @i <= @max
    begin
    insert into @tmp (id) values (@i)
    set @i = @i + 1
    end

select @returnValue = min(t.id) 
    from @tmp t left outer join @ref r on t.id = r.id
    where r.id is null

-- this will return 4
select @returnValue
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