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ive been searching for hours but cant find a solution. its a bit complicated so i'll break it down into a very simple example

i have two tables; people and cars

people:

name_id    firstname
  1          john
  2          tony
  3          peter
  4          henry

cars:

name_id   car_name
   1      vw gulf
   1      ferrari
   2      mustang
   4      toyota

as can be seen, they are linked by name_id, and john has 2 cars, tony has 1, peter has 0 and henry has 1.

i simply want to do a single mysql search for who has a (1 or more) car. so the anwser should be john, tony, henry.

the people table is the master table, and im using LEFT JOIN to add the cars. my problem arises from the duplicates. the fact that the table im joining has 2 entries for 1 id in the master.

im playing around with DISTINCT and GROUP BY but i cant seem to get it to work.

any help is much appreciated.

EDIT: adding the query:

$query = "
SELECT profiles.*, invoices.paid, COUNT(*) as num 
FROM profiles 
    LEFT JOIN invoices ON (profiles.id=invoices.profileid) 
WHERE (profiles.id LIKE '%$id%') 
GROUP BY invoices.profileid
";
share|improve this question
    
Query example is irrelevant to the question. If you have a query already for your problem, then explain what's the problem with it. –  Bulat Feb 16 '13 at 21:13

3 Answers 3

try this
select distinct p.name_id, firstname from people p, cars c where p.name_id = c.name_id

or use joins
select distinct p.name_id, firstname from people p inner join cars c on p.name_id = c.name_id

share|improve this answer

If you only want to show people that have a car, then you should use a RIGHT JOIN. This will stop any results from the left table (people) to be returned if they didn't have a match in the cars table.

Group by the persons name to remove duplicates.

SELECT firstname
FROM people P
RIGHT JOIN cars C ON C.name_id = P.name_id
GROUP BY firstname
share|improve this answer
SELECT DISTINCT firstname 
FROM people 
    JOIN cars ON cars.name_id = people.name_id;

If this doesn't work you might have to show us the full problem.

The way to propose it there's no need for a left join since you need at least a car per person. Left join is implicitely an OUTER join and is intended to return the results with 0 corresponding records in the joinned table.

share|improve this answer
    
here is my count query. (invoices is the cars and profiles is people) $query = "SELECT profiles.*, invoices.paid, COUNT(*) as num FROM profiles LEFT JOIN invoices ON (profiles.id=invoices.profileid) WHERE (profiles.id LIKE '%$id%') GROUP BY invoices.profileid "; –  Lan Feb 16 '13 at 19:10

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