57

I want to create a whole bunch of instances of a model object in Laravel, then pick the optimal instance and save it to the database. I know that I can create an instance with Model::create([]), but that saves to the database. If possible I'd like to create a bunch of models, then only "create" the one that is best.

Is this possible?

I am using Laravel 5.0

1
  • How do you choose your best model? You could created a condition that will save to whatever model you want to save though.
    – Ikong
    Commented Aug 25, 2015 at 0:31

5 Answers 5

76

You create a new model simply by instantiating it:

$model = new Model;

You can then save it to the database at a later stage:

$model->save();
2
  • 1
    That is a little too easy. I don't know how i overlooked that option. Commented Aug 25, 2015 at 0:53
  • 56
    When instantiating like this, you can load the model with initial property values just like with create(): $model = new Model(['name' => 'foo', ...]);
    – Jason
    Commented Apr 19, 2016 at 15:42
38

You can create instances with Model::make(). It works the same way as create but it doesn't save it.

Whether or not this is best practice is another matter entirely.

5
  • 2
    I'm not sure whether it's good practice myself, but I think this could come in handy if you had to instantiate models off the payload from another service, and your current application is not supposed to preserve the data.
    – gyohza
    Commented Oct 1, 2020 at 8:03
  • Perfect for consuming third party services
    – Sahil Jain
    Commented Jan 4, 2021 at 13:45
  • 1
    @gyohza there's nothing bad practice about this. It's documented in the API. Commented Jan 12, 2023 at 17:20
  • Model::make() is a wrapper for Model::newModelInstance(), which is a wrapper for Model::newInstance(). You can safely use any of those to create the model in memory, without it persisting. Useful if you need to make further manipulations in memory, before saving the model to the db. Commented Jan 12, 2023 at 17:21
  • Php stan will report > Called 'Model::make()' which performs unnecessary work, use 'new Model()'. Commented Oct 1, 2023 at 12:10
15

Yes, it is possible different ways: you can use the mass assignment without saving.

Please remember to set first the $fillable property in your model.

WAY #1: using the method fill

$model = new YourModel;

$model->fill([
    'field' => 'value',
    'another_field' => 'another_value'
]);

$model->save();

WAY #2: using the constructor

$model = new YourModel([
    'field' => 'value',
    'another_field' => 'another_value'
]);

$model->save();

In YourModel set the $fillable property with the fileds allowed for mass assignment:

class YourModel extends Model
{
    protected $fillable = ['field', 'another_field'];
    // ...
}

Laravel documentation: https://laravel.com/docs/9.x/eloquent#mass-assignment

1
  • Without fillable you can write $model->field = 'value' to make it work, but it results in a bit more verbose code because you will have to set each property line by line. Commented May 2, 2022 at 9:07
2

there is also a method you can call it statically to get new instance:

 $modelInstance =   $modelName::newModelInstance();

it takes array $attributes = [] as a parameter

1
  • 1
    Yep nice - and this is essentially a wrapper for Model::newInstance() Commented Jan 12, 2023 at 17:19
0

yes it is possible, on laravel 10.

Car::factory()->make() : will create an object without saving it to database Car::factory()->create() : will create an object and save it to database

1
  • Model::factory() method is used get the set of defined default attributes used for testing Models. So, the answer seems not to be applicable.
    – mag
    Commented Jul 15, 2023 at 17:01

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