20

I would like a SQL query for MS Jet 4.0 (MSSql?) to get a count of all the duplicates of each number in a database.

The fields are: id (autonum), number (text)

I have a database with a lot of numbers.

Each number should be returned in numerical order, without duplicates, with a count of all duplicates.

Number-fields containing 1, 2, 2, 3, 1, 4, 2 should return:

1, 2  
2, 3  
3, 1  
4, 1
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34
SELECT   col,
         COUNT(dupe_col) AS dupe_cnt
FROM     TABLE
GROUP BY col
HAVING   COUNT(dupe_col) > 1
ORDER BY COUNT(dupe_col) DESC
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  • 2
    Don't think you need the HAVING as OP included the column values of 3 and 4, both with a count of 1, in his expected results. – Joe Stefanelli Jun 6 '11 at 20:27
  • 1
    Also, the OP has the order by col, not by the count, unless 2 is higher than 3 now =) – Kevin Stricker Jun 6 '11 at 20:31
  • 3
    -1, A: count(named_column) is slower than count(*) B: Having... is incorrect given the question. C: order by clause should be order by col D: table is a reserved word – Johan - reinstate Monica Jun 6 '11 at 22:02
  • best answer with johans changes – Filip Haglund Oct 19 '11 at 10:55
18
SELECT number, COUNT(*)
    FROM YourTable
    GROUP BY number
    ORDER BY number
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  • lol, I'd be wrong though, I was sorting times wrong in my head. – Kevin Stricker Jun 6 '11 at 20:30
  • @mootinator: No, earliest answer was @Duncan's, then @dpmattingly's. Which one you count as ealiest corerct, is up to you. – ypercubeᵀᴹ Jun 6 '11 at 20:32
  • Actually @Duncan's is incorrect because it doesn't explicitly specify order. I tend to put a high value on understanding the question the OP is asking when picking a correct answer. – Kevin Stricker Jun 6 '11 at 20:35
5

You'd want the COUNT operator.

SELECT NUMBER, COUNT(*) 
FROM T_NAME
GROUP BY NUMBER
ORDER BY NUMBER ASC
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4

This is quite simple.

Assuming the data is stored in a column called A in a table called T, you can use

select A, count(A) from T group by A
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