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4

You should use some SQL magic: scope :top_by_number_of_favorites, -> { joins(:favorite_mappings). where("date_liked >= ?", 2.weeks.ago). group(:id). select("comfy_cms_pages.*, COUNT(*) AS favorite_score"). order("favorite_score DESC"). limit(10) } First two lines – we join favorite_mappings to query result, selecting only ...


4

undefined method `id' for nil:NilClass The error is because you don't have @group in room method. Try the below code def room @group = Group.find(params[:id]) end


2

Try this: class Article < Comfy::Cms::Page has_many :favorite_mappings has_many :view_mappings def self.top_by_number_of_favorites(since = 2.weeks.ago, amount = 10) with_favorite_score .where('date_liked >= ?', since) .order('favorite_score DESC') .limit(amount) end def self.top_by_number_of_views(since = 2.weeks.ago, ...


2

I would pass current_user to the model method, when you call it in the controller. That's a common technique. # controller def action Model.calculate_npv(current_user) end


2

That is because self.media_file will give you the file object not the url to the saved file. Change your code to return the url of the file. The easiest could be - def __str__(self): return self.media_file.url Read it about here - https://docs.djangoproject.com/en/1.8/ref/models/fields/#filefield ...


1

Rails active records are abstracted from the database connection. The connection is managed separately. You won't have something like, FirstDB.select_where(...). However, what you can try is define your different databases in your config/database.yml, for example: db1: adapter: postgresql encoding: unicode database: database1 pool: 5 username: ...


1

Maybe you can try this: class Team extends Model { protected $table = 'teams'; public function gameOwner() { return $this->hasMany('App\Games', 'team_1'); } public function gameVisitor() { return $this->hasMany('App\Games', 'team_2'); } public function games() { return ...


1

Move the method to your parent class: class Parent(object): @classmethod def _match_slug(cls, slug): """ Method that checks if we still have a match in the db for current 'slug' """ return cls.objects.filter(slug=slug).count() class Child(Parent): ... c = Child() # Equivalent to Parent._match_slug(c.__class__, x) ...


1

What I have done for this situation is instead of using on: :create, I use a virtual attribute that I set only when setting/changing the password. Something like this: validates :password, if: :changing_password? attr_accessor :password_scenario def changing_password? self.password_scenario.present? end Then in your controller, you would simply set ...


1

You should be able to use the perform_create method, which by default looks something like: def perform_create(self, serializer): serializer.save() Now you can override it and do pretty much anything you want. def perform_create(self, serializer): serializer.save() if ..something.. % 2: Presence.objects.create(...)


1

Ok, I got it done, it works this way for me: public function actionRoles() { $searchModel = new EmployeeSearch(); $dataProvider = $searchModel->search(Yii::$app->request->queryParams); $dataProvider->sort = ['defaultOrder' => ['role'=>SORT_ASC, 'fullname'=>SORT_ASC]]; $dataProvider->query->where('employee.role ...


1

You should set @group in room action: def room @group = Group.find(params[:group_id]) end I would also advice you to learn about routing in Rails, so you can clean your controller a little bit.


1

In the controller action for the "/room/:id", to which you redirect the user after creating a group, the @group variable is not set, therefor you get the error.


1

I would suggest making a new Story class. It could be an almost empty class, but it could contain something useful like dateWritten that would apply to all kinds of Storys. Then, you could simply have your CarStory or SportStory extend your parent class Story. Then, your newsfeed wouldn't contain cumbersome List<SportStory> and List<CarStory>, ...


1

When you get the article/offer. Make sure that the owner of that article is the authenticated user. I'm not sure what your models look like but it would be something like offer = get_object_or_404(Offer, id=id, author=logged_user) This way if they don't own the article, it will 404


1

Try this: import Ember from 'ember'; export default Ember.Route.extend({ actions: { reload: function() { this.controller.get('model').reload().then(function(model) { // do something with the reloaded model }); } } }); And in your controller: import Ember from 'ember'; export default Ember.Controller.extend({ actions: { reload_model: ...


1

Lets say you have some models like this public class ContactModel { public string MailAddress { get; set; } public string Phone { get; set; } public string Email { get; set; } } public class QuestionaireModel { public string Question1Answer { get; set; } public string Question2Answer { get; set; } public string Question3Answer { ...


1

Third attempt was the closest one. @Html.DropDownList("CompanyName", new SelectList(Model.Select(i => i.CompanyName).Distinct().ToList()), new { @class = "input-large form-control" }) To explain a bit overload of DropDownList used here, its first param specifies the field that will hold the posted value, second ...


1

Basically you want to have a presentation layer for your JSON response. I'll make some assumptions about the code you have and outline what I would do to solve this. Given a helper method in your model class Walkthru < ActiveRecord::Base has_many :walkthru_completions def completed_status(user) walkthru_completions.where(user_id: ...


1

to get the class' name use Cars.__name__ If you go through an object (e.g. camaro = Cars()), use camaro.__class__.__name__ In case you want to name of the image to depend on one of the other model attributes (e.g. name) def upload_to_company(instance, filename): if hasattr(instance, 'imgpath'): if os.path.exists(instance.imgpath): ...


1

The short answer is: you can't. Javascript runs at the client; Razor runs on the server. The longer answer is: if you use something like jQuery to send the data via AJAX, or even a form with hidden input fields, you could work with the data on the server and then reload the view with a new model, or redirect to a different view, as needed.


1

For Yii2 I used the following in a model called Register which will use the User Class. public function rules() { return [ ['Email', 'filter', 'filter' => 'trim'], ['Email', 'required'], ['Email', 'email'], ['Email', 'unique', 'targetClass' => '\common\models\User', 'message' => 'This email address has already ...



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