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Is there any way of getting a count of fieldB but only where fieldA and fieldB combination is unique?

For example

fieldA     fieldB
X          A
X          B
Y          C
X          B
Y          A

A count of field B would return:

A = 2
B = 1
C = 1

I've tried using 'SELECT DISTINCT fieldA, COUNT(fieldB) AS count FROM table GROUP BY fieldB'. This seems to return a count of all the values in fieldB, not just the ones that have a unique fieldA.

I hope what i'm trying to do makes sense, I'm finding it difficult to put into words. Is what i'm trying to do possible with SQL?

Thanks

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4 Answers

up vote 3 down vote accepted

It should be

SELECT fieldB, COUNT(DISTINCT  fieldA, fieldB) AS count 
FROM table 
GROUP BY fieldB;
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Thanks for all the quick answers, this is just the first one I tried it and seems to work perfectly. - Thank you –  jd182 Jul 20 '12 at 10:30
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SELECT   fieldA, COUNT(fieldB) AS count from
(SELECT DISTINCT fieldA, fieldB FROM table)a
FROM a GROUP BY a.fieldB
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I think this gets you there

Declare @mytbl table (fieldA char(1), fieldB char(1))
insert into @mytbl
select 'X','A'
union all select 'X','B'
union all select 'Y','C'
union all select 'X','B'
union all select 'Y','A'

select COUNT(*), LEFT(myfields,1)
from 
(
select distinct fieldb + fielda as myfields
from @mytbl
group by fieldb + fielda
) a
group by LEFT(myfields,1)

Returns

2 A 1 B 1 C

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DECLARE @mytb table
(
fieldA varchar(10),
fieldB varchar(10)
);

INSERT into @mytb values('X','A');
INSERT into @mytb values('X','B');
INSERT into @mytb values('Y','C');
INSERT into @mytb values('X','B');
INSERT into @mytb values('Y','A');

SELECT fieldB,count(DISTINCT fieldA+fieldB) as count
from @mytb
group BY fieldB;


   fieldB     count
---------- -----------
    A          2
    B          1
    C          1
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@RaphaëlAlthaus Sorry But It returns 2 for A. –  mr_eclair Jul 20 '12 at 10:38
    
Downvote? @RaphaëlAlthaus sqlfiddle.com/#!3/61853/1 –  mr_eclair Jul 20 '12 at 10:41
1  
Sql Server. Try it with mysql... sqlfiddle.com/#!2/61853/1 –  Raphaël Althaus Jul 20 '12 at 10:43
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