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The solution is to use the built in functions of UserManager, and not try to update the users table manually. Example: private ApplicationUserManager _userManager; public ApplicationUserManager UserManager { get { return _userManager ?? HttpContext.GetOwinContext().GetUserManager<ApplicationUserManager>(); ...


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Use this code instead. if you use CI version less than 3.0 if ( $this->input->post("mysubmit") !== false ) { If CI greater than or equal to 3.0 then if ( $this->input->post("mysubmit") !== NULL ) {


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The Wisper gem is exactly what are you looking for.


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You used DatabaseEntities for your ADO.net access layer, that connection is meant for Entity framework. No you don't need 2 connection strings for ADO.net, you will need them only for EF when using EDMX files because they need DefaultConnection in addition to the model connection string (DatabaseEntities). Use DefaultConnection and if you still get errors, ...


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I don't get your 'edit' part. The problem you have right now is the outlet defined in the invoices template, all sub routes will be rendered in here, so you cannot show an invoice without its parent (invoices) content. I think the most common way is to remove the outlet and show all invoices in the InvoicesIndex route. Clicking an invoice will then go to a ...


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Array values cant be passed in form data directly. You should use json_encode. In your view file $encoded_text = echo json_encode($test); <input name="test" type="text" class="form-control" id="test" value="<?php echo $encoded_text ;?>"> Now in your model just decode this $test = json_decode($test, $assoc = TRUE);


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Your questions is unclear.. you want to pass the array to you view, or to the HTML output into the INPUT element? These are 2 different things, as one is only passing an array internally in you application (on the server), and the second is passing it into you form data, displaying it in the browser, and then sending the form to the server and getting the ...


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echo will print only the type. If you want to show the whole array try json.decode() function .It will give a structured information about your array.It will convert the passed data into an array format json_decode($test, true);


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Where does value actually come from, because you can use that to drive the generics. As given, there's no way to prevent the switch, because the switch also decides the type of the value. If replace the switch with a variant (assuming you didn't want runtime polymorphism) you can make this work. The astute reader will note that of course, somewhere ...


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You will do this indirectly. You should bind your model values to SWT controls using BeanProperties and not PojoProperties. Now, in all of your setters, you should set the value like this: public void setValue(Object value) { firePropertyChange("value", this.value, this.value = value); } You should implement the firePropertyChange method in a super ...


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when AutomaticMigrationsEnabled = true then you don't have to add Migration because when you will execute your program the EF will look after for any change on the fly and update your database. If you want to control then set the AutomaticMigrationsEnabled = false. Then you should be able to see the difference when Add-Migration is being called. Please ...


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#include<vector> #include<algorithm> #include<iostream> template<typename T> struct pred{ void operator()(T x) { //implemnt algorithm } T value; }; class property{ }; int main() { std::vector<property> myShape; std::for_each(myShape.begin(),myShape.end(), pred<property>()); ...


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You can add a PagePopulationInterceptor to add values to all the pages: public class PagePopulationInterceptor extends HandlerInterceptorAdapter { @Override public void postHandle(HttpServletRequest request, HttpServletResponse response, Object handler, ModelAndView modelAndView) throws Exception { if (modelAndView != null) { ...


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Please use this template function in place of switch template<typename T> void func() { T value; model->fetch(value, P->id); writer->write(value, P->id); }


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The connection string for entities and ADO is somewhat different. In my projects, I typically have both. Something like this: <connectionStrings> <add name="DefaultConnection" connectionString="Data Source=SERVER;Initial Catalog=DBNAME;User ID=USER;Password=PWD;" providerName="System.Data.SqlClient" /> <add name="Entities" ...


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If you make yourself familiar with LINQ statements this is quite easy to achieve actually. I have written a little sample code which clears everything up for you. (hopefully) void Main() { var members = new List<Member>(); members.Add(new Member() {NameId = 1, Name = "Hank", IsActive = false, DisplayOrder = 3}); members.Add(new Member() ...


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This belongs to the controller: var names = db.Names.Where(n => n.IsActive).OrderBy(n => n.DisplayOrder); var model = new SelectList(names, "NameID", "Name"); return this.View(model); And in the corresponding view you should have code similar to this: @model SelectList @Html.DropDownList("someName", Model) As the pattern you are using is called ...


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the source of the triangle is this: locationInfoWindow = new google.maps.InfoWindow({ map: map, }); When you set the map-property, the infoWindow will be displayed on the map. You'll only see the triangle at the top left corner because you didn't set content & position. Create the infoWindow without passing a map-property: ...


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Alright so you're looking for an algorithm that solve this situation. Here is a working example, now you need to adapt that to Angular thingies, let us know if you have problem with that. function graph(nbNames) { var nbLines = 0; while (Math.pow(2, nbLines) < nbNames) { nbLines ++; } for (var i=0; i<nbLines; i++) { var t = ''; for (var ...


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Like this? You needed the loop inside the click handler... $scope.addNote = function() { for (var i = 0; i < numAdds; i++) { $scope.itemsList.items1.push({}); console.log('yay'); } numAdds = numAdds * 2; } http://jsfiddle.net/VJ94U/1116/


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At first install official JUI Extension for Yii 2. Then add yii\jui\JuiAsset to list of dependent assets: public $depends = [ 'yii\jui\JuiAsset', ... ]; yii\web\JqueryAsset in this case is not required because JuiAsset already has it in dependencies list so it will be included as well.


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Every project will have it's own needs, but others trying to find an answer, here's what I implemented. I decided to investigate the Passive Model-View-Presenter design pattern. For detailed reading check the Wikipedia article, or this article by Martin Fowler. Another alternative implementation is the one by "thedersen.com" - read the article here. ...


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You're getting the href for your link in the wrong place, it should be in the click handler. You've set your dataType to json so the data parameter in your success callback will already be parsed.


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You're going to need to do something like this: string pattern = "*.cs"; ViewBag.Message = "Your contact page."; DirectoryInfo dirInfo = new DirectoryInfo(@"f:\"); List<string> filenames = new List<string>(); foreach (FileInfo f in dirInfo.GetFiles(pattern)) { filenames.Add(f.Name); ...


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DirectoryInfo.GetFiles(pattern) only allows a single pattern. It is not like the filter you set when creating a common dialog. If you want multiple patterns, you can create your own extension method, there are some examples here:: GetFiles with multiple extentions


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Could you try this: function CountryController($scope, $http, id) { console.log(id) $http.get("/api/SportApi/GetCountry/").success(function (response) { $scope.controllerFunction = function (value) { console.log(value); } obj = JSON.parse(response); ...


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On your view, you should have: <a class="item item-thumbnail-left" href ng-click="CountryControler(x.id)">click for countries</a> where href will stop the link from reloading the page and the ng-click will call a method on your controller. In your controller, you should define that function on the scope variable: var myApp = ...


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If the original Action is accessed via HTTPS then RedirectToAction will redirect to a relative URL on the same domain using the same protocol. So if your original page is https://www.example.com/Foo/Bar and this redirects to the FooBar action with some route parameters: https://www.example.com/Foo/FooBar/1/2/3 an attacker cannot intercept the ...


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I have decided to go with Architecture like 1. JS Enabled Presentation (webform or only HTML + JS) 2. Web API (Controller calling data services (EF+Repo) as my service layer for data, it can support my browser based front end and devices Let me know any drawbacks on same


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The recommended approach is using the Facade Pattern. A perfect example of how to handle this is provided by Thoughtbot in the "Only instantiate one object in the controller" section of this blog post: http://robots.thoughtbot.com/sandi-metz-rules-for-developers


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You should add Qt::EditRole in your data() implementation. QVariant myModel::data(const QModelIndex &index, int role) const { if (index.isValid() && index.row() <= stringModel_.size() && (role == Qt::DisplayRole || role == Qt::EditRole) ) { return stringModel_[index.row()]; } else { return QVariant(); } }


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You may use, Yii::app()->createUrl(), method in your url-referral of button in CListView. 'buttons' => array( 'Say Something' =>array( 'url' => 'Yii::app()->createUrl("/controller/action/id/".$data->id)' ), --options... ),


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Have a try like this @Controller @RequestMapping(value="/job/{j_id}/instance") public class JobController { private final String htmlDir = "job/"; @RequestMapping(value="{i_id}/open", method=RequestMethod.GET) public ModelAndView open(@PathVariable(value="j_id") Long instance_id) { ModelAndView result = new ModelAndView(htmlDir + ...


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How is a user related to an item? I ask this because if you are using active record, the associations you make in your database will determine the methods that are created for you. Does a user has_many items in your model? Does an item belong_to a user? In which case would be @user = User.find(1) and you could find the price like @item = ...


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You have to define a clientTemplate by adding this to the Grid .ClientDetailTemplateId("template") Then you can add DropDownList into the template <script id="template" type="text/kendo-tmpl"> @(Html.Kendo().DropDownList() //build the dropdownlist .ToClientTemplate() ) </script> Demo: ...


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All you need to do is two things: Ensure that your MVC project (Company.UI) has a reference to the projects that has the classes you need. The classes are marked as public. By default they would be internal and will not be accessible from another project.


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You can simply annotate a public void method on your controller with @PostConstruct. This method is executed after dependencies have been injected, and it's invoked exactly ones after the controller instance is created.


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That's because the first time you will touch a class (calling a method, accessing a field or creating an object) all the static fields will be initialized. This is guaranteed by the Java Language Specification and you cannot really do much about it: either change the modifier to not static or initialize your views lazily


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When you return a String from a method annotated with @RequestMapping, you normally return the view name, not the url. You can configure prefix and suffix of the view resolver in your spring configuration to simplify view names you return. See this answer for a suggestion on how to use separate viewresolvers for different controllers


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Q1: You will be using the same entities throughout the entire solution so I recommend storing them in your Data project since it keeps all database related stuff bundled together separately from the remaining logic. Q2: You could always send a request to the APIs to get the resulting data, it's essentially what they're there for.


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Read this question "Laravel 4 - decoding json into view" right here: http://stackoverflow.com/a/21224806/4375900 I think the answer there describes what you are searching for.


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Try like that:-- class DemoController < ApplicationController layout false def index render :action => 'hello' end def hello render :action => 'index' end def other_hello redirect_to :action => :index end end


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I have solved the problem, I had to put single quotes around the name of the column i.e. $select_doctor = "Select UserOfficials.Occupation from UserOfficials WHERE UserOfficials.Unique_ID = :uid:"; After this, it gave no more errors.


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There's nothing wrong with using SKSpriteNode as an enemy class. I do it all the time. If you want to add a health bar, for example, you can simply add it as child. Your question is primarily opinion based so expect it to be closed soon enough. However, it is a good question nonetheless. I suggest you use one or more enemy SKSpriteNode classes to handle ...


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You need an observable CartModel defined outside ajax call: CartApp.Cart.CartModel = ko.observable(); in the ajax success you should put new value into this observable: CartApp.Cart.CartModel(ko.wrap.fromJS(response)); CartApp.Cart.CartModel().FilterdData = ... and change your binding in the markup ... foreach: CartApp.Cart.CartModel().FilteredData ...


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You should use attribute routing. It gives you more flexibility if you like different names for your actions rather than default values. It is easy to use. Check out: http://blogs.msdn.com/b/webdev/archive/2013/10/17/attribute-routing-in-asp-net-mvc-5.aspx [Route("viewPhone/{phoneID:int}")] public ActionResult phoneCatalog(int phoneID) { //CODE HERE } ...


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Use @Html.RouteLink instead. You probably still have the fall-back {controller}/{action}/{id} route defined. @Html.RouteLink(title, "phoneCatalog", new { phoneID = orderItem.phoneID })


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In your situation, I would subclass the ComplexEnemy as a simple object. This object would be responsible for the instantiation and the adding and removing to the scene of the various enemies that could appear. Then in your scene update method, I'd call a checking method in that object. The checking method would do the rest of the heavy lifting. You can put ...


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In addition to the information Chris posted, the following link has the required information to fetch the MethodInfo for MVC actions - using the controller / action name to resolve the method: How do I get the MethodInfo of an action, given action, controller and area names?


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I see this as two separate questions: Should Article class server as a factory for Article objects, and Should Article factory be placed in the model or in the controller of MVC The answer to the first question is "probably not": you would be better off defining a protocol for an article factory, and programming to that protocol. An implementation that ...



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