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Complete novice here, trying to find out the total number of students from both the part-time students and full-time students and display the total in a named column.

partTimeStudents**(bannerID, moduleCode, modStartDate, rvisitorID)

fullTimeStudents**(bannerID, courseCode, crsStartDate, rvisitorID)

Thank you in advance for any help given :)

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1  
provide with table structure or something –  jimy Apr 8 '11 at 11:42
1  
Again problem with database design why you have two separate tables for this? –  Framework Apr 8 '11 at 11:44

3 Answers 3

select
  (select count(*) from partTimeStudents)+
  (select count(*) from fullTimeStudents) as Total
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Brillant, thank you ever so much!! –  Bob Apr 8 '11 at 12:35

I agree what others have said about the database design, but here's one example of a query that would fulfill your requirement.

SELECT SUM(students_count)
FROM (
   SELECT COUNT(*) AS students_count 
   FROM partTimeStudents 
   UNION ALL 
   SELECT COUNT(*) AS students_count 
   FROM fullTimeStudents
)
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You should not take 2 tables just to distinguish it by full/part time student. You can simply take a flag in table like:

students(bannerID, Code, modStartDate, rvisitorID, timeFlag)

In timeFlag you can manage whether the student is full time or part time.

Now to get count of all students[full time + part time]:

select count(*) from students;

And to have counts for fullTime students or partime students:

select count(*) from students where tiemFlag=1; //--- assuming 1 is for fulltime
select count(*) from students where tiemFlag=0; //--- assuming 0 is for parttime
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If moduleCode and courseCode reference different tables, then student (bannerID, moduleCode, courseCode, startDate, rvisitorID) might be a better schema. It would also have a constraint that enforces only one of the code columns to have value, which could serve as the way of distinguishing between a full-time student and a part-time one. –  Andriy M Apr 8 '11 at 12:23
    
@Andriy: yes this is also a good option. At least better than the two table overhead. –  Harry Joy Apr 8 '11 at 12:25

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