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.

I have this simple library checkout table created with the following columns and values inserted into it:

insert into CHECKOUT (MemID, Cat#, DateChkOut, DateDue, DateRet) 
    values (4, 'T 430.98 1956', '15-Mar-2011', '14-Jun-2011', '31-May-2011');
insert into CHECKOUT (MemID, Cat#, DateChkOut, DateDue, DateRet) 
    values (12, 'B 125.2 2013', '15-Mar-2011', '14-Jun-2011', NULL);
insert into CHECKOUT (MemID, Cat#, DateChkOut, DateDue, DateRet) 
    values (4, 'T 430.98 1956', '27-Dec-2012', '25-Mar-2013', NULL);

For each member, I need to list member id and the number of books ever checked out. I tried using:

select distinct MemID, count(distinct Cat#) from CHECKOUT; 

but receive the error: not a single-group group function. Apparently I can't select a column and a count to display at the same time, but I could be wrong. Any ideas?

share|improve this question
    
Gordon gave you a correct answer. The part that you didn't know about was pretty fundamental. That being the case, I've heard good things about the book, Teach Yourself SQL in 10 Minutes. –  Dan Bracuk Apr 23 '13 at 16:04

1 Answer 1

You need a group by statement, not a select distinct:

select MemID, count(distinct Cat#)
from CHECKOUT
group by MemId

If you want members who never checked out a book, then you need a left outer join:

select memID, count(distinct Cat#)
from Members m left outer join
     Checkout co
group by m.MemId

The idea behind the left outer join is to keep all the rows in the first table, along with the matches in the second table. This allows you to find members who have no matching rows.

It seems like you are learning SQL. You should do some studying to better understand the language.

share|improve this answer
    
Thank you so much for the help Gordon! I also need to list those members’ names who never checked out a book (their IDs and Names are stored in a separate table called Member and ID is a PK of checkout's MemID). Is the group by function part of that as well, or is there a different function that is useful to figure that out? –  Rekson Apr 23 '13 at 16:34

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.