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I have a SQL Server table that contains users & their grades. For simplicity's sake, lets just say there are 2 columns - name & grade. So a typical row would be Name: "John Doe", Grade:"A".

I'm looking for one SQL statement that will find the percentages of all possible answers. (A, B, C, etc...) Also, is there a way to do this without defining all possible answers (open text field - users could enter 'pass/fail', 'none', etc...)

The final output I'm looking for is A: 5%, B: 15%, C: 40%, etc...

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Getting the % is easy, rounding is the hard part :) –  Joe Philllips Apr 21 '09 at 0:23
1  
Possible, looks a lot like his previous queston stackoverflow.com/questions/756410/… –  Dana the Sane Apr 21 '09 at 1:10
1  
this is a SQL Server database –  Alex Apr 21 '09 at 1:26
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10 Answers 10

up vote 52 down vote accepted

I have tested the following and this does work. The answer by gordyii was close but had the multiplication of 100 in the wrong place and had some missing parenthesis.

Select Grade, (Count(Grade)* 100 / (Select Count(*) From MyTable)) as Score
From MyTable
Group By Grade
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gets my vote for simplicity –  Alex Apr 21 '09 at 12:58
7  
this gives result in integers .sum of results is not equal to 100. –  Thunder Jan 26 '10 at 10:41
4  
Not the most efficient as the table will be scanned twice. Also the query will not look that simple if there is more than one table referenced. –  Alex Aza May 19 '11 at 21:15
1  
@Thunder you can change 100 to 100.0 for decimal values. –  joseph4tw Feb 25 at 21:20
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  1. The most efficient (using over()).

    select Grade, count(*) * 100.0 / sum(count(*)) over()
    from MyTable
    group by Grade
    
  2. Universal (any SQL version).

    select Rate, count(*) * 100.0 / (select count(*) from MyTable)
    from MyTable
    group by Rate;
    
  3. With CTE, the least efficient.

    with t(Rate, RateCount) 
    as 
    ( 
        select Rate, count(*) 
        from MyTable
        group by Rate
    )
    select Rate, RateCount * 100.0/(select sum(RateCount) from t)
    from t;
    
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over() worked perfectly on my SQL Server 2008, I did the math to confirm. In order to round it off to 2 decimal places I used CAST(count() * 100.0 / sum(count()) over() AS DECIMAL(18, 2)). Thanks for the post! –  RJB May 8 '13 at 18:19
    
Thanks for sharing the Over() trick! Made my day! –  Niels Bosma Feb 10 at 8:52
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Instead of using a separate CTE to get the total, you can use a window function without the "partition by" clause.

If you are using:

count(*)

to get the count for a group, you can use:

sum(count(*)) over ()

to get the total count.

For example:

select Grade, 100. * count(*) / sum(count(*)) over ()
from table
group by Grade;

It tends to be faster in my experience, but I think it might internally use a temp table in some cases (I've seen "Worktable" when running with "set statistics io on").

EDIT: I'm not sure if my example query is what you are looking for, I was just illustrating how the windowing functions work.

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+1. This is great. It can also be used if in place of 'table' there is a select statement. –  mr_georg Sep 1 '09 at 20:26
    
It uses a spool in tempdb which is the work table. The logical reads seem higher but they are counted differently than normal –  Martin Smith Feb 11 '12 at 16:50
    
Actually, the COUNT(*) OVER () in your query would return a completely unrelated figure (specifically, the number of rows of the grouped result set). You should use SUM(COUNT(*)) OVER () instead. –  Andriy M May 1 '13 at 17:02
    
Good point @AndriyM. Updated –  John Gibb May 15 '13 at 21:32
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You need to group on the grade field. This query should give you what your looking for in pretty much any database.

    Select Grade, CountofGrade / sum(CountofGrade) *100 
    from
    (
    Select Grade, Count(*) as CountofGrade
    From Grades
    Group By Grade) as sub
    Group by Grade

You should specify the system you're using.

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Since you have an aggregate ('sum(CountofGrade)') in the outer select, don't you need a group by clause in it too? And in standard SQL, I think you could use '/ (SELECT COUNT(*) FROM Grades)' to get the grand total. –  Jonathan Leffler Apr 21 '09 at 1:32
    
damn it. you're right. thanks for the catch –  Jeremy Apr 21 '09 at 1:52
    
IBM Informix Dynamic Server doesn't like the naked SUM in the select-list (though it gives a somewhat less-than-helpful message when it complains). As noted in my answer and prior comment, using a full sub-select expression in the select-list does work in IDS. –  Jonathan Leffler Apr 21 '09 at 3:29
    
This does not work in PostreSQL 9. –  CXJ Jul 10 '13 at 16:32
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You have to calculate the total of grades If it is SQL 2005 you can use CTE

    WITH Tot(Total) (
    SELECT COUNT(*) FROM table
    )
    SELECT Grade, COUNT(*) / Total * 100
--, CONVERT(VARCHAR, COUNT(*) / Total * 100) + '%'  -- With percentage sign
--, CONVERT(VARCHAR, ROUND(COUNT(*) / Total * 100, -2)) + '%'  -- With Round
    FROM table
    GROUP BY Grade
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1  
Of course, this only gives the percentages for grade codes present in the table, not for those that could be present and aren't. But without a definitive list of the relevant (valid) grade codes, you can't do better. Hence the +1 from me. –  Jonathan Leffler Apr 21 '09 at 1:29
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The following should work

ID - Key
Grade - A,B,C,D...

EDIT: Moved the * 100 and added the 1.0 to ensure that it doesn't do integer division

Select 
   Grade, Count(ID) * 100.0 / ((Select Count(ID) From MyTable) * 1.0)
From MyTable
Group By Grade
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this works, but the answers all come back as 0 - do I need to do some sort of number formatting or conversion to see the proper answer? –  Alex Apr 21 '09 at 1:37
    
Edited the answer to hopefully solve your problem. –  GordyII Apr 22 '09 at 0:54
    
Select Grade, round(Count(grade) * 100.0 / ((Select Count(grade) From grades) * 1.0) ,2) From grades Group By Grade for adding a round function in sql-server returend eg : 21.56000000000 –  Thunder Jan 26 '10 at 10:54
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In any sql server version you could use a variable for the total of all grades like this:

declare @countOfAll decimal(18, 4)
select @countOfAll = COUNT(*) from Grades

select
Grade,  COUNT(*) / @countOfAll * 100
from Grades
group by Grade
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This is, I believe, a general solution, though I tested it using IBM Informix Dynamic Server 11.50.FC3. The following query:

SELECT grade,
       ROUND(100.0 * grade_sum / (SELECT COUNT(*) FROM grades), 2) AS pct_of_grades
    FROM (SELECT grade, COUNT(*) AS grade_sum
            FROM grades
            GROUP BY grade
         )
    ORDER BY grade;

gives the following output on the test data shown below the horizontal rule. The ROUND function may be DBMS-specific, but the rest (probably) is not. (Note that I changed 100 to 100.0 to ensure that the calculation occurs using non-integer - DECIMAL, NUMERIC - arithmetic; see the comments, and thanks to Thunder.)

grade  pct_of_grades
CHAR(1) DECIMAL(32,2)
A       32.26
B       16.13
C       12.90
D       12.90
E       9.68
F       16.13

CREATE TABLE grades
(
    id VARCHAR(10) NOT NULL,
    grade CHAR(1) NOT NULL CHECK (grade MATCHES '[ABCDEF]')
);

INSERT INTO grades VALUES('1001', 'A');
INSERT INTO grades VALUES('1002', 'B');
INSERT INTO grades VALUES('1003', 'F');
INSERT INTO grades VALUES('1004', 'C');
INSERT INTO grades VALUES('1005', 'D');
INSERT INTO grades VALUES('1006', 'A');
INSERT INTO grades VALUES('1007', 'F');
INSERT INTO grades VALUES('1008', 'C');
INSERT INTO grades VALUES('1009', 'A');
INSERT INTO grades VALUES('1010', 'E');
INSERT INTO grades VALUES('1001', 'A');
INSERT INTO grades VALUES('1012', 'F');
INSERT INTO grades VALUES('1013', 'D');
INSERT INTO grades VALUES('1014', 'B');
INSERT INTO grades VALUES('1015', 'E');
INSERT INTO grades VALUES('1016', 'A');
INSERT INTO grades VALUES('1017', 'F');
INSERT INTO grades VALUES('1018', 'B');
INSERT INTO grades VALUES('1019', 'C');
INSERT INTO grades VALUES('1020', 'A');
INSERT INTO grades VALUES('1021', 'A');
INSERT INTO grades VALUES('1022', 'E');
INSERT INTO grades VALUES('1023', 'D');
INSERT INTO grades VALUES('1024', 'B');
INSERT INTO grades VALUES('1025', 'A');
INSERT INTO grades VALUES('1026', 'A');
INSERT INTO grades VALUES('1027', 'D');
INSERT INTO grades VALUES('1028', 'B');
INSERT INTO grades VALUES('1029', 'A');
INSERT INTO grades VALUES('1030', 'C');
INSERT INTO grades VALUES('1031', 'F');
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gives integer percent in sql-server –  Thunder Jan 26 '10 at 10:49
    
@Thunder: interesting; what happens if you change, say, the 100 to 100.00? –  Jonathan Leffler Jan 26 '10 at 14:50
    
Sure the result is in decimal with 100.0 –  Thunder Jan 27 '10 at 4:44
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SELECT Grade, GradeCount / SUM(GradeCount)
FROM (SELECT Grade, COUNT(*) As GradeCount
      FROM myTable
      GROUP BY Grade) Grades
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You can use a subselect in your from query (untested and not sure which is faster):

SELECT Grade, COUNT(*) / TotalRows
FROM (SELECT Grade, COUNT(*) As TotalRows
      FROM myTable) Grades
GROUP BY Grade, TotalRows

Or

SELECT Grade, SUM(PartialCount)
FROM (SELECT Grade, 1/COUNT(*) AS PartialCount
      FROM myTable) Grades
GROUP BY Grade

Or

SELECT Grade, GradeCount / SUM(GradeCount)
FROM (SELECT Grade, COUNT(*) As GradeCount
      FROM myTable
      GROUP BY Grade) Grades

You can also use a stored procedure (apologies for the Firebird syntax):

SELECT COUNT(*)
FROM myTable
INTO :TotalCount;

FOR SELECT Grade, COUNT(*)
FROM myTable
GROUP BY Grade
INTO :Grade, :GradeCount
DO
BEGIN
    Percent = :GradeCount / :TotalCount;
    SUSPEND;
END
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