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For simplicity, suppose I have a SQL table with one column, containing numeric data. Sample data is

11
13
21
22
23
3
31
32
33
41
42
131
132
133
141
142
143

If the table contains ALL the numbers of the form x1, x2, x3, but NOT x (where x is all of the digits of a number but the last digit. So for 123456, x would be 12345), then I want to replace these three rows with a new row, x.

The desired output of the above data would be:

11
13
2
3
31
32
33
41
42
131
132
133
14

How would I accomplish this with SQL? I should mention that I do not want to permanently alter the data - just for the query results. Thanks.

share|improve this question
    
@Magnus Yes. The numbers to combine need to be greater than 10. Thanks for pointing out that additional restriction. –  brian_d Oct 3 '11 at 16:15
    
What rdbms are you using? There are helpful features available for some databases. –  Jens Schauder Oct 3 '11 at 16:16
    
@Jens Schauder postgres –  brian_d Oct 3 '11 at 16:17
    
What should the result of (11,12,13,111,112,113) be? (1,11) or (1,111,112,113)? –  Erwin Brandstetter Oct 3 '11 at 16:43
    
@ErwinBrandstetter Good question. I guess it depends on the query order. It could be either after one run. If run twice, it would be (1, 11). –  brian_d Oct 3 '11 at 16:55

2 Answers 2

up vote 2 down vote accepted

I assume

  • the presence of to functions: lastDigit and head producing the last digit and the rest of the input value respectively

  • the data is unique

  • only the digits 1,2,3 are used for constructing the table values

  • the table is named t and has a single column x

  • you don't want this to work recursively

  • create a view n like this: select head(x) h, lastDigit(x) last from t You can use inline views instead

  • create a view c like this

    select h from n group by h having count(*) = 3

Then this should give the desired result:

select distinct x 
from (
    select x from t where head(x) not in (select h from c)
    union
    select h from c
)
share|improve this answer
    
Works, thanks! One fix in your pseudocode is that select h should be select head –  brian_d Oct 3 '11 at 17:38
    
fixed it (the other way round) –  Jens Schauder Oct 3 '11 at 17:59
    
Full solution would have to be recursive or procedural (see comments on question). Still +1 for a very nice answer. –  Erwin Brandstetter Oct 3 '11 at 18:24

You need two SQL commands, one to remove the existing rows and the second to add the new row. They would look like this (where :X is a parameter containing your base number, 14 in your example):

 DELETE FROM YourTable WHERE YourColumn BETWEEN (:X*10) AND ((:X*10) + 9)

 INSERT INTO YourTable (YourColumn) VALUES (:X)

Note: I assume you want all the numbers from x0 to x9 to be removed, so that's what I wrote above. If you really only want x1, x2, x3 removed, then you would use this DELETE statement instead:

 DELETE FROM YourTable WHERE YourColumn BETWEEN ((:X*10) + 1) AND ((:X*10) + 3)
share|improve this answer
    
your assumption about the values being 0-9 is correct. However in your solution, you delete all values between a range, regardless if the range is not full (correct me if I am wrong). I would not want to replace an incomplete range, such as 140, 141, 142, 149 with 14. –  brian_d Oct 3 '11 at 16:23
    
I was not clear on needing the full range to match, I have adjusted my question. –  brian_d Oct 3 '11 at 16:26
    
No, I completely missed that requirement. Is this column declared UNIQUE (that is, no repeating values)? –  Larry Lustig Oct 3 '11 at 16:40
    
Yes. (Well in the real table the column does repeat, but combined with a second column it is UNIQUE) –  brian_d Oct 3 '11 at 16:50

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