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 three tables; doctor, person, and appointment. doctor table:

+-----------+----------+---------+----------------+----------------+
| doctor_id | phone_no | room_no | date_qualified | date_appointed |
+-----------+----------+---------+----------------+----------------+
| 50        | 1234     | 1       | 1963-09-01     | 1991-05-10     |
| 51        | 1235     | 2       | 1973-09-12     | 1991-05-10     |
| 52        | 1236     | 3       | 1990-10-02     | 1993-04-01     |
| 53        | 1237     | 4       | 1965-06-30     | 1994-03-01     |
+-----------+----------+---------+----------------+----------------+

person table

+-----------+----------+-----------+---------------+------+
| person_id | initials | last_name | date_of_birth | sex  |
+-----------+----------+-----------+---------------+------+
| 100       | T        | Williams  | 1972-01-12    | m    |
| 101       | J        | Garcia    | 1981-03-18    | f    |
| 102       | W        | Fisher    | 1950-10-22    | m    |
| 103       | K        | Waldon    | 1942-06-01    | m    |
| 104       | P        | Timms     | 1928-06-03    | m    |
| 105       | A        | Dryden    | 1944-06-23    | m    |
| 106       | F        | Fogg      | 1955-10-16    | f    |
| 150       | T        | Saj       | 1994-06-17    | m    |
| 50        | A        | Cameron   | 1937-04-04    | m    |
| 51        | B        | Finlay    | 1948-12-01    | m    |
| 52        | C        | King      | 1965-06-06    | f    |
| 53        | D        | Waldon    | 1938-07-08    | f    |
+-----------+----------+-----------+---------------+------+

appointment table

+-----------+------------+------------+-----------+---------------+
| doctor_id | patient_id | appt_date  | appt_time | appt_duration |
+-----------+------------+------------+-----------+---------------+
| 50        | 100        | 1994-08-10 | 10:00:00  |            10 |
| 50        | 100        | 1994-08-16 | 10:50:00  |            10 |
| 50        | 102        | 1994-08-21 | 11:20:00  |            20 |
| 50        | 103        | 1994-08-10 | 10:10:00  |            10 |
| 50        | 104        | 1994-08-10 | 10:20:00  |            20 |
| 52        | 102        | 1994-08-10 | 10:00:00  |            10 |
| 52        | 105        | 1994-08-10 | 10:10:00  |            10 |
| 52        | 150        | 2014-03-10 | 12:00:00  |            15 |
| 53        | 106        | 1994-08-10 | 11:30:00  |            10 |
+-----------+------------+------------+-----------+---------------+

I need to create a query to produce a list of doctor IDs and their names with the number of appointments they have.

I have already created a statement to produce a list of doctor IDs with the number of appointments they have but im not sure how to produce a list with doctor IDs and their names.

The statement that I have now is:

select doctor.doctor_id, count(appointment.appt_time) as no_appt
from doctor
left join appointment
on doctor.doctor_id = appointment.doctor_id
group by doctor.doctor_id;

Please Help.

share|improve this question
    
your code is looking good. you should just add the field like initials,last_namewith left join in query –  jmail Mar 28 '14 at 12:09

3 Answers 3

up vote 1 down vote accepted

You need an additional join to the person table. Apparently, the doctor_id is the link. Yuck. This should be an explicit column rather than a re-use of the id.

select d.doctor_id, p.initials, p.last_name, count(appointment.appt_time) as no_appt
from doctor d left join
     appointment a
     on d.doctor_id = a.doctor_id left join
     person p
     on d.doctor_id = p.person_id
group by d.doctor_id, p.initials, p.last_name;

In MySQL, you don't actually need to add the two columns to the group by, but it is good practice to do so.

share|improve this answer
select doctor.doctor_id, person.initials, person.last_name, count(appointment.appt_time) as no_appt
from doctor 
left join appointment on doctor.doctor_id = appointment.doctor_id
left join person on person.person_id = appointment.patient_id 
group by doctor.doctor_id;
share|improve this answer
    
this SQL won't work because doctor table does not have initials or last_name columns - these are on the Person table –  Julian Joseph Mar 28 '14 at 12:08
    
updated table name in this, should work now –  Matt Mar 28 '14 at 12:10

your SQL is nearly there - you just need to add a JOIN to the Person table to get the initial and last_name of the doctors - like this:

SELECT 
    d.doctor_id, 
    p.initials,
    p.last_name,
    COUNT(a.*)
FROM [person] p
JOIN [doctor] d ON p.person_id = d.doctor_id
LEFT JOIN [appointment] a ON a.doctor_id = d.doctor_id
GROUP BY d.doctor_id, p.initials, p.last_name

Hope this helps

share|improve this answer
    
When I use this statement, in the Doctor name field i dont get the names it just shows zeros. –  user3472448 Mar 28 '14 at 12:41
    
You're using MySQL? Try this: code CONCAT(p.initials,'.',p.last_name) as [Doctor Name] code replacing the line in the SQL above –  Julian Joseph Mar 28 '14 at 13:39
    
so what would you put after group by –  user3472448 Mar 28 '14 at 13:49
    
Hi - sorry, you would group by CONCAT(p.initials,'.',p.last_name) - let me know if that works –  Julian Joseph Mar 28 '14 at 13:57
    
no that doesn't seem to work –  user3472448 Mar 28 '14 at 14:02

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.