Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
SELECT u.UserLastName, u.UserID, SUM((Format(c.CallLength, 'h') * 60 *60)) as hourSeconds, SUM((Format(c.CallLength, 'n') * 60)) as minSeconds,
                SUM((Format(c.CallLength, 's'))) as seconds, COUNT(*) as 'callCount'
                FROM Calls AS c INNER JOIN User AS u ON c.UserID = u.UserID
                WHERE c.CallDate BETWEEN format(NOW(), 'yyyy-mm-dd 00:00:00') AND format(Now(), 'yyyy-mm-dd 23:59:59') AND u.UserLastName NOT IN ('Britt','Jason','System')
                GROUP BY u.UserID, u.UserLastName
                ORDER BY 'callCount' DESC;

I've spent forever trying different techniques to sort this query using the "ORDER BY" clause. What is incorrect? It simply runs the query with no errors but seems to sort by the u.UserID field instead. No matter what I do I cannot get the ORDER BY clause to order any field!

share|improve this question

2 Answers 2

up vote 0 down vote accepted

you dont want to use a string as a column name.

Try this.

also, if I recall correctly, you cant order and group. so a sub select groups, and you can order the results...

Select * from (
    SELECT 
        u.UserLastName, 
        u.UserID, 
        SUM((Format(c.CallLength, 'h') * 60 *60)) as hourSeconds, 
        SUM((Format(c.CallLength, 'n') * 60)) as minSeconds,
        SUM(Format(c.CallLength, 's')) as seconds, 
        COUNT(*) as callCount 
    FROM Calls AS c 
    INNER JOIN User AS u ON c.UserID = u.UserID

    WHERE c.CallDate BETWEEN format(NOW(), 'yyyy-mm-dd 00:00:00') AND 
          format(Now(), 'yyyy-mm-dd 23:59:59') AND 
          u.UserLastName NOT IN ('Britt','Jason','System')
    GROUP BY u.UserID, u.UserLastName
)
ORDER BY callCount DESC;

if Your column name cannot be used because it is a keyword or multiple words. try putting square braces around it.

[callCount]

share|improve this answer
    
I wasn't aware you could use square braces for that purpose. However, I've tried that and I get an error: "Too few parameters. Expected 1." –  user706965 Apr 13 '11 at 23:33
    
That may have been a typo on my part. I have amended the post with a new query. try that one. –  The Lazy Coder Apr 13 '11 at 23:41
    
Continues to give me the error "Too Few Parameters. Expected 1." Hmm. –  user706965 Apr 13 '11 at 23:51
    
I cannot be sure, but if I remember correctly, there may be issues with order and grouping, Try the nested query, and break it down in smaller pieces to see if you can find out what part is asking for one parameter. –  The Lazy Coder Apr 14 '11 at 0:04
    
Well Jason, you sold me on this site. That was it. It was the order by clause that was asking for the 1 parameter. And your query above solved it. –  user706965 Apr 14 '11 at 0:23

If your original query returned the data you want without error, and the only problem was the ORDER BY, I think this simple change is the way to go.

SELECT
    u.UserLastName,
    u.UserID,
    SUM((Format(c.CallLength, 'h') * 60 *60)) as hourSeconds,
    SUM((Format(c.CallLength, 'n') * 60)) as minSeconds,
    SUM((Format(c.CallLength, 's'))) as seconds,
    COUNT(*) as callCount
FROM Calls AS c INNER JOIN User AS u ON c.UserID = u.UserID
WHERE
    c.CallDate BETWEEN format(NOW(), 'yyyy-mm-dd 00:00:00')
    AND format(Now(), 'yyyy-mm-dd 23:59:59')
    AND u.UserLastName NOT IN ('Britt','Jason','System')
GROUP BY u.UserID, u.UserLastName
ORDER BY 6 DESC;

When you assign an alias to a field (or expression), you can't use that alias name in the ORDER BY. However you can refer to it by its ordinal position in the field list.

share|improve this answer
    
Thanks for your help HansUp. Very good to know, and is the answer to my unexplained resolution above! Thanks for sharing your knowledge. –  user706965 Apr 15 '11 at 0:07

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.