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I have got 2 joined tables in Eloquent namely themes and users.

theme model:

public function user() {
  return $this->belongs_to('User');
}

user model:

public function themes() {
  return $this->has_many('Theme');
}

My Eloquent api call looks as below:

return Response::eloquent(Theme::with('user')->get());

Which returns all columns from theme (that's fine), and all columns from user (not fine). I only need the 'username' column from the user model, how can I limit the query to that?

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13 Answers 13

Change your model to specify what columns you want selected:

public function user() {
  return $this->belongs_to('User')->select(array('id', 'username'));
}

And don't forget to include the column you're joining on.

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5  
great answer, also the tip about including the join column saved me a ton of time! – greatwitenorth Jul 22 '13 at 3:42
    
What if in some places I need only id instead of both id and username? Still have to select both? – Darius.V Aug 5 '15 at 7:19
    
Hi does select function have same function in the model query builder? – Gokigooooks Sep 8 '15 at 4:20
    
I dont think it is a good approach. It will be sort of hard coding the column names. All the places will return only these columns. In some other api, i may need some more columns, so that wont work here. I think using QueryBuilder is the option here. – Aman Sura Feb 24 at 13:50

You can supply an array of fields in the get parameter like so:

return Response::eloquent(Theme::with('user')->get(array('user.username'));

UPDATE (for Laravel 5.2) From the docs, you can do this:

$response = DB::table('themes')
    ->select('themes.*', 'users.username')
    ->join('users', 'users.id', '=', 'themes.user_id')
    ->get();
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2  
I tried this and it shows an error SQLSTATE[42S22]: Column not found and it's SQL doesn't include the table in the with. The sql that it appears on the error is "SELECT fk_table.column1 FROM main_table". – Michel Ayres Apr 6 '15 at 17:42
1  
Yes, the 'user.username' is not working. – Vinoth Kumar Sep 3 '15 at 8:27

I know, you ask for Eloquent but you can do it with Fluent Query Builder

$data = DB::table('themes')
    ->join('users', 'users.id', '=', 'themes.user_id')
    ->get(array('themes.*', 'users.username'));
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Use the ->lists() method

$roles = DB::table('roles')->lists('title');

This method will return an array of role titles. You may also specify a custom key column for the returned array:

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Another option is to make use of the $hidden property on the model to hide the columns you don't want to display. You can define this property on the fly or set defaults on your model.

public static $hidden = array('password');

Now the users password will be hidden when you return the JSON response.

You can also set it on the fly in a similar manner.

User::$hidden = array('password');
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2  
in Laravel 4.2 I'm getting 'Cannot access protected property User::$hidden' when trying to set this dynamically. – mtmacdonald Jul 15 '14 at 12:32
    
it shouldn't be static. – StackOverflowed Sep 9 '15 at 18:18
    
@StackOverflowed, I take it you didn't take any notice of how old this question/answer is and that it related to Laravel 3. – Jason Lewis Sep 18 '15 at 1:57

Using with pagination

$data = DB::table('themes')
->join('users', 'users.id', '=', 'themes.user_id')
->select('themes.*', 'users.username')
->paginate(6);
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user2317976 has introduced a great static way of selecting related tables' columns.

Here is a dynamic trick I've found so you can get whatever you want when using the model:

return Response::eloquent(Theme::with(array('user' => function ($q) {
    $q->addSelect(array('id','username'))
}))->get();

I just found this trick also works well with load() too. This is very convenient.

$queriedTheme->load(array('user'=>function($q){$q->addSelect(..)});

Make sure you also include target table's key otherwise it won't be able to find it.

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I know that this is a pretty old question, but if you are building an API, as topicposter does, use output transformers to perform such tasks.

Transofrmer is a layer between your actual database query result and a controller. It allows to easily control and modify what is going to be output to a user or an API consumer.

I recommend Fractal as a solid foundation of your output transformation layer. You can read the documentation here.

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In Laravel 4 you can hide certain fields from being returned by adding the following in your model.

protected $hidden = array('password','secret_field');

http://laravel.com/docs/eloquent#converting-to-arrays-or-json

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This is how i do it

$posts = Post::with(['category' => function($query){
        $query->select('id', 'name');
      }])->get();

First answer by user2317976 did not work for me, i am using laravel 5.1

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This Way:

Post::with(array('user'=>function($query){
    $query->select('id','username');
}))->get();
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Please always explain your answer. – Rohit Gupta Mar 4 at 0:52
    
Had a similar problem, this is the smartest way so far! This answer is underrated! – eldblz Jul 10 at 23:15

If I good understood this what is returned is fine except you want to see only one column. If so this below should be much simpler:

return Response::eloquent(Theme::with('user')->get(['username']));
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Check out, http://laravel.com/docs/database/eloquent#to-array

You should be able to define which columns you do not want displayed in your api.

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