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How can i make a query that takes everything from one table then joins another table and put the values from the second table in a certain column in the result

What i am asking can be better explained:

clients:
id | name      | age | ...
---------------------
15 | something | 30  |
17 | somethiaa | 30  |
13 | ggggthing | 30  |

clients_meta:
id | client_id | meta_key  | meta_value |
-----------------------------------------
1  | 15        | location  | NY         |
2  | 15        | height    | 195        |
3  | 15        | job       | student    |
4  | 13        | location  | TN         |

This is my current query:

SELECT
`clients`.*,
`clients_meta`.*

FROM `clients`

JOIN clients_meta ON ( clients_meta.client_id = clients.id )

WHERE
`clients_age` = '30'

how can instead of a ugly table like that:

15 | something | 30  | 1  | 15        | location  | NY         |
15 | something | 30  | 2  | 15        | height    | 195        |
15 | something | 30  | 3  | 15        | job       | student    |

change it to something like:

15 | something | 30  | 1  | 15        | location  | NY         |
                     | 2  | 15        | height    | 195        |
                     | 3  | 15        | job       | student    |

thanks

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3  
That's just how MySQL (and most other RDBMses) work. Get used to it, there's nothing ugly about it. – Lex Jul 18 '14 at 20:28
    
So how can i do a more advanced queries like adding even more data from a 3rd table ? – Neta Meta Jul 18 '14 at 20:29
    
You can make a complex query to fix this, but rather I would just query the flattened data and prettify it only when you need to output it. – GolezTrol Jul 18 '14 at 20:30
    
You can just add more joins to your query to get even more data. I totally agree with Gordon, the first version looks way better to me too. – Lex Jul 18 '14 at 20:31
    
i see well. i will keep playing with it thanks. – Neta Meta Jul 18 '14 at 20:32
up vote 0 down vote accepted

You can use a variable to check whether the last id is equal to the current id, and in that case output null or '' instead.

select
  case when c.ClientId <> @clientid then c.Name else '' end as ClientName,
  case when c.ClientId <> @clientid then @ClientId := c.ClientId else '' end as ClientId,
  p.ContactId,
  p.Name as ContactName
from
  Clients c
  inner join Contacts p on p.ClientId = c.Clientid
  , (select @clientid := -1) x
order by
  c.ClientId, p.ContactId

Example: http://sqlfiddle.com/#!2/658e4c/6

Note, this is a bit hacky. I deliberately made ClientId the second field, so I could change and return the clientId variable in the same field. In other, more elaborate cases, you may have to do that in a separate field. But to eliminate that placeholder field from the result, you'll have to embed the whole query in a subselect, and define the wanted fields in the right order on the top level query.

share|improve this answer
    
thanks very much – Neta Meta Jul 18 '14 at 20:45

You could choose one value in clients_meta.meta_key to always be first like 'location'. Then you can sort by clients.id, then by whether or not meta_key = 'location'. Any rows where meta_key != 'location', you can hide, like this:

select 
    case when clients_meta.meta_key = 'location' 
        then clients.id else '' end as id
    , case when clients_meta.meta_key = 'location' 
        then clients.name else '' end as name
    , case when clients_meta.meta_key = 'location' 
        then clients.age else '' end as age
    , clients_meta.* 
    from clients join clients_meta on (clients_meta.client_id = clients.id) 
    where clients.age = '30' 
    order by clients.id, clients_meta.meta_key = 'location' desc;

You will obtain the results that you wanted:

+------+-----------+------+----+-----------+----------+------------+
| id   | name      | age  | id | client_id | meta_key | meta_value |
+------+-----------+------+----+-----------+----------+------------+
| 13   | ggggthing | 30   |  4 |        13 | location | TN         |
| 15   | something | 30   |  1 |        15 | location | NY         |
|      |           |      |  3 |        15 | job      | student    |
|      |           |      |  2 |        15 | height   | 195        |
+------+-----------+------+----+-----------+----------+------------+
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