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I need a query that will return a table where each column is the count of distinct values in the columns of another table.

I know how to count the distinct values in one column:

select count(distinct columnA) from table1;

I suppose that I could just make this a really long select clause:

select count(distinct columnA), count(distinct columnB), ... from table1;

but that isn't very elegant and it's hardcoded. I'd prefer something more flexible.

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1  
This is the elegant and simplest solution... do you mean "given a table name, give me distinct counts for each column in that table"? –  gbn Sep 1 '09 at 17:09
1  
Which database are you using? –  Raj More Sep 1 '09 at 17:11
    
    
@Will, this question is distinct from that question. –  David B Sep 1 '09 at 17:15
2  
Distinctly different it seems too. –  Will Bickford Sep 1 '09 at 17:18

6 Answers 6

try this (sql server 2005 syntax):

DECLARE @YourTable table (col1  varchar(5)
                         ,col2  int
                         ,col3  datetime
                         ,col4  char(3)
                         )

insert into @YourTable values ('abcdf',123,'1/1/2009','aaa')
insert into @YourTable values ('aaaaa',456,'1/2/2009','bbb')
insert into @YourTable values ('bbbbb',789,'1/3/2009','aaa')
insert into @YourTable values ('ccccc',789,'1/4/2009','bbb')
insert into @YourTable values ('aaaaa',789,'1/5/2009','aaa')
insert into @YourTable values ('abcdf',789,'1/6/2009','aaa')


;with RankedYourTable AS
(
SELECT
    ROW_NUMBER() OVER(PARTITION by col1 order by col1) AS col1Rank
        ,ROW_NUMBER() OVER(PARTITION by col2 order by col2) AS col2Rank
        ,ROW_NUMBER() OVER(PARTITION by col3 order by col3) AS col3Rank
        ,ROW_NUMBER() OVER(PARTITION by col4 order by col4) AS col4Rank
    FROM @YourTable
)
SELECT
    SUM(CASE WHEN      col1Rank=1 THEN 1 ELSE 0 END) AS col1DistinctCount
        ,SUM(CASE WHEN col2Rank=1 THEN 1 ELSE 0 END) AS col2DistinctCount
        ,SUM(CASE WHEN col3Rank=1 THEN 1 ELSE 0 END) AS col3DistinctCount
        ,SUM(CASE WHEN col4Rank=1 THEN 1 ELSE 0 END) AS col4DistinctCount
    FROM RankedYourTable

OUTPUT:

col1DistinctCount col2DistinctCount col3DistinctCount col4DistinctCount
----------------- ----------------- ----------------- -----------------
4                 3                 6                 2

(1 row(s) affected)
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+1: Concise, elegant, cheeky... –  gbn Sep 1 '09 at 18:35

and it's hardcoded.

It is not hardcoding to provide a field list for a sql statement. It's common and acceptable practice.

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...As is programmatically creating the SQL, as far as it goes (providing your users never supply the values you put in it - fine in this question, you have the column list somewhere). –  ijw Sep 1 '09 at 17:18
    
if I was going to code-gen some SQL, and if I was on MSSqlServer, I'd check out sysobjects and syscolumns. –  David B Sep 1 '09 at 17:23
    
If you want to write the code in a more portable way, you should select from Information_Schema.Tables and Information_Schema.Columns, rather than selecting from sysobjects and syscolumns –  Kibbee Sep 1 '09 at 17:51
    
What I would like to do is find the number of distinct values in each column without knowledge of the column names. I can see how using information_schema.tables would be useful here (I'm using MySQL.) So you would generate the query based on looking at the info_schema.tables table rather than write a query that finds the column names, groups by them, and then counts the values? That should work well enough. –  Ryan Sep 1 '09 at 18:26

This won't necessarily be possible for every field in a table. For example, you can't do a DISTINCT against a SQL Server ntext or image field unless you cast them to other data types and lose some precision.

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Good point. I shouldn't have to worry about this. The fields will only be text or numbers. –  Ryan Sep 1 '09 at 18:29
up vote 0 down vote accepted

I appreciate all of the responses. I think the solution that will work best for me in this situation (counting the number of distinct values in each column of a table from an external program that has no knowledge of the table except its name) is as follows:

Run "describe table1" and pull out the column names from the result.

Loop through the column names and create the query to count the distinct values in each column. The query will look something like "select count(distinct columnA), count(distinct columnB), ... from table1".

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This code should give you all the columns in 'table1' with the respective distinct value count for each one as data.

DECLARE @TableName VarChar (Max) = 'table1'
DECLARE @SqlString VarChar (Max)

set @SqlString = (
  SELECT DISTINCT
    'SELECT ' + 
        RIGHT (ColumnList, LEN (ColumnList)-1) + 
      ' FROM ' + Table_Name
    FROM INFORMATION_SCHEMA.COLUMNS COL1
      CROSS AppLy (
        SELECT ', COUNT (DISTINCT [' + COLUMN_NAME + ']) AS ' + '''' + COLUMN_NAME + ''''
          FROM INFORMATION_SCHEMA.COLUMNS COL2
          WHERE COL1.TABLE_NAME = COL2.TABLE_NAME
          FOR XML PATH ('')
      ) TableColumns (ColumnList)
    WHERE
      1=1 AND 
      COL1.TABLE_NAME = @TableName
)

EXECUTE (@SqlString)
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DISTINCT is evil. Do COUNT/GROUP BY

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Please qualify this with more information. How is using distinct evil when compred to doing COUNT/GROUP BY? –  Kibbee Sep 1 '09 at 17:49
    
DISTINCT behaves erratically with larger datasets and from platform to platform. At least in my experience. I find grouping results to be more predictable, particularly if you deal with differently encoded data, UTF, etc. –  Cristi Cotovan Sep 1 '09 at 17:55
    
I'll have to look into using group by. –  Ryan Sep 1 '09 at 18:29
    
count/group by would only get distict count for a single column. For columns A and B you would end up with two selects, because select A, B, count(*) from ... group by A, B would give you counts of the distinct pair (A, B), not distinct A and distinct B. The OP is on the right track with count(distinct A), count(distinct B) –  Shannon Severance Sep 1 '09 at 19:40

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