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0

Try this: onBlur = "pricingVatDisplay(this)" Then in your js function function pricingVatDisplay(ddl) { var value = $(ddl).val(); if (value == "0%" || value == "5%" || value == "20%") { ... } }


0

it is a invalid if condition if ($("#selectedVatRate").val() == "0%" || "5%" || "20%") { please try to change if ($("#selectedVatRate").val() == "0%" || $("#selectedVatRate").val() == "5%" || $("#selectedVatRate").val() == "20%") {


-1

You should try with different word rather then model like modelData etc. public function actionSearch() { $model = new SearchEmployee(); /*Getting Data From Search Form For Processing */ if (isset($_POST['SearchEmployee'])) { $category = $_POST['SearchEmployee']['category_id']; $skills = ...


0

You can use mvc frameworks like Struts(1.2 or 2) or Spring MVC which are built in frameworks for MVC pattern. In these frameworks you can configure your controller mapping through xml or annotation and requests will go through internal controller like DispatcherServlet which will pass the control to mapped custom controller classes.


0

I got 2 idear, you can consider one of them: config your servlet in web.xml with path, then in jsp use ajax to send request, Introduce springMVC might be a good choise, if you want MVC pattern.Move your servlet logic into springMVC action methods.


0

Yes you should include your modele in your controller, exemple : conroller.php include(dirname(__FILE__).'/../modeles/profils.php'); profils.php : function users_profils() { $users = array(); $req = mysql_query("SELECT id, name, cv, DATE_FORMAT(date, '%d/%m/%Y %H') AS date_formatee, contenu FROM users_tab ORDER BY date DESC"); ...


1

Since you are looking into the MVC paradigm you should also look into autoloading PHP classes. This way you wont have to manually include/require individual files in your controllers. Here is a the from php.net on autolaoding http://www.php.net/manual/en/language.oop5.autoload.php


1

In my opinion a view controller should only update the model in response to user interaction with the view. If, for example, you have a boolean in the model and the user changes a switch on the view that is tied to this boolean then the view controller can update the model to reflect the user input. In your example the change to the model is based on ...


0

This works for me: @model ReMod.CementType @{ var r = CementType.R; var n = CementType.N; var s = CementType.S; } @Html.RadioButtonFor(model => r, Model, new { @id = "CementTypeR" }) <label for="CementTypeR">R</label> @Html.RadioButtonFor(model => n, Model, new { @id = "CementTypeN" }) <label ...


0

There is a nuget package, Dapper TVP, that includes some classes that make using table valued parameters easier. It should be noted that the package is dependent upon Dapper 1.12.1 or higher. Using this package the passing a tvp to a stored procedure looks something like this: var p = new Dapper.Tvp.DynamicParametersTvp(); SqlMetaData[] ...


0

Try this, I think this will solve. !String.IsNullOrEmpty(n.CountyWebsite) && n.CountyWebsite.Contains(filteredText)


0

You can iterate the ModelState (which is a ModelStateDictionary) and look at the keys, they correspond to the properties


1

You were on the right track with your second attempt, but you need to switch the order of those statements. where n.CountyWebsite != null && n.CountyWebsite.Contains(filteredText) Just like all the other && operators, you don't want to evaulate any websites that are null, so do that operation first. Also, .Contains in EF automatically is ...


0

@model ReMod.CementType is basically saying that the Model you are referring to is of type ReMod.CementType. After declaring that, you can refer to that model using model. That is my understanding. try doing this: @model ReMod.CementType @Html.RadioButtonFor(model => model, model.R, new { @id = "CementTypeR" }) <label ...


0

If you're trying to route to a specific controller and action without having them in the URL, you need to specify them as defaults. Your route for this would be something like this: routes.MapRoute( name: "Profile", url: "{id}" defaults: new { controller = "Profile", action = "Show" } ); This would give you a route that would map ...


1

Yes. Example copied from How to Download Files with FTP. The example is for a console app, but I think you can figure quite easily how to adapt it to your site's structure. One thing you might consider is just hosting the file on the site (like normal HTTP) and then download it via WebClient instead of FTP. using System; using System.IO; using System.Net; ...


1

I do a replace(@"\n", "") on the string. OR Use JSON.NET JsonConvert.SerializeObject(model.data) By the way, in CSS to display multiline stuff use this: { white-space: pre-wrap; }


1

How we finally solved this is doing this in the Layout view: <script type="text/javascript"> @Html.Raw("var freshPage = true;") </script> Which sets a javascript variable to true when it runs through our C# code that tells us the page is fresh and went through our controller code. Then we put this in our global javascript file to check ...


1

Use datepicker's onSelect event and in there call valid() on your date field. According to datepicker documentation http://api.jqueryui.com/datepicker/#option-onSelect this in onSelect refers to the associated text field, so you can simply do this: $(".datepicker").datepicker({ onSelect : function() { $(this).valid(); } });


1

Yes they are. First of all that's not a 'true' repository, that is a useless abstraction on top of EF, you can ditch it. A repository should return busines or app objects not EF entities. For querying purposes it should return at least some bits (if not all ) of the view model. So, it should return a PersonView or a StudentView. These are guideliness not the ...


2

Add a data annotation of your table's name in the database to your context class. [Table("TableName")]


0

You may want to take a look at Exoskeleton by Paul Miller. Exoskeleton is a faster and leaner Backbone that supports custom builds. Please note that it does not support IE below version 9. If you need to support older browsers, you might want to stick to backbone. You can just ignore the Router and use the rest of the framework, or if you want to reduce ...


0

You will probably find it easier to make this work if you stop overriding hitTest:withEvent:. It will by default pass those touches to your child view controllers if you don't override it; mixing actual event handling in here is awkward. (It is that method's job to determine which subview should get the event, so you can't stop it from receiving events ...


0

Did you try putting a breakpoint and execute your code to see what the error is? Could be related to your User model or due to the database. Is everything working fine without the 2 new fields?


0

$model = SearchEmployee::model()->find(array( 'select' => array('*'), "condition" => "category_id=$category AND key_skills like '%$skills%' AND experience=$experience", )); There is error here. You can't use find in that way. public function find($condition='',$params=array()) $model = ...


0

Remove this line: $this->render('search',$model); First it's invalid because it should be: $this->render('search', array('model' => $model)); But also it's unnecessary because you already have it lower in your code.


0

You have to make your Entity classes to use exist tables and columns names using name attribute in @Table and @Column, then the relation will be @OneToMany at user entity to the authorities entity with for ex Set<Role>, then in view you can make your check to know if this user have a specific role or not.


0

The problem is... when I use this attribution: products = [{ "products": [{ "CadastroItemOrcamento": [], "ID": 8, "MarcaNome": "MudarNome", "MarcaEspecificacao": "INOCULANTE", "MarcaAtiva": true }, { "CadastroItemOrcamento": [], "ID": 9, "MarcaNome": "MudarNome", "MarcaEspecificacao": "STANDAK TOP", "MarcaAtiva": true }, { "CadastroItemOrcamento": [], ...


1

Your query is just on the Joke table. You could eagerload the categories ie. $jokes = Joke::with('JokesCategory')->get(); See docs: http://laravel.com/docs/eloquent#eager-loading


1

You need to convert your C# array into a valid javascript Array (i.e. ["a","b","c"...]). There are many ways to do that here is my suggestion: string.Concat("[", string.Join(",", Model.DatasetTitles.Select(s => string.Concat("'", s, "'"))), "]"); In essence I am taking each element in the DatasetTitles collection and transforming it to a javascript ...


2

input does not have a textChanged event. There is a change though, but it will be triggered only when text bpx is blurred, so it is not of a value fo you. However you might want to use onKeyPress instead: onKeyPress = "calculateOuterCasePOR()"


0

I think you need this: In your header define in a script tag: var base_url = '<?php echo base_url() ?>'; //here we keep the base url in a variable to use in our js files Then include the js file below the above line which is calling your ajax, so we can access the above variable. Now your ajax function needs to be changed like this: ...


0

This usually happens when a fatal error occurred in the backend. When a fatal error occurs on PHP, it constructs a page to displays some error message contained within a box. jQuery tries to interpret to a meaningful data but it fails. And if you see this response in Firebug or Google Chrome Dev tool you can actually see that the page can be rendered. Use ...


0

Ok, there are obviously more errors.. let's try from the beginning: The "model not defined" - you get because if $model is null, you render the search view withou the $model parameter. In the search view you try to use the $model variable, but of course it does not exist. you have to alter your view, so that it does not use the model if it is undefined. Or ...


1

You can use ViewModel to use multiple models in a view For eg: Let's say you want to use 2 models viz., ModelA and ModelB in your view. ModelA { public int PropA { get; set; } public int PropB { get; set; } } ModelB { public int PropC { get; set; } public int PropD { get; set; } } Now to use both models in a single view, you can ...


0

I think as per your scenario you need to have async methods. private async void InserVariablestToDatabase() { .... } public async Task<JsonResult> GetImportStatus() { .... } You would have worth reading this.


0

Dude, Check this answer. http://stackoverflow.com/a/16054490/3081461 you can read more about localdb at microsoft TechNet as well : http://technet.microsoft.com/en-us/library/hh510202.aspx


0

Please check the following: Make sure the sql server service is up and running. Make sure the TCP/IP ports are enabled. If both are fine, I would suggest you to read the servername and database name from the app.config/ web.config which makes life easier.


0

Your better change your connection String value to use a real sql server database. SQL Server Express or LocalDB is not used for production web applications because it is not designed to work with IIS.


2

Try this on for size, of course all of this can be done MUCH easier with JQuery if you would like a much better solution: @if (Model.Count > 0) { foreach (var item in Model.Items) { <div><a title="Remove item from cart" id="@item.ItemID" hreaf="javascript:return RemoveItem(@item.ItemID);" ...


2

TLDR: this is because only the service layer in the application has the logic needed to identify the scope of a database/business transaction. The controller and persistence layer by design can't/shouldn't know the scope of a transaction. The controller can be made @Transactional, but indeed it's a common recommendation to only make the service layer ...


1

If you open your console, you'll see several 404 errors for each of your css assets and probably afew of your js assets. This is because you're using relative file paths. relative file paths look within the folder of the current file, therefore once you're viewing a file in a sub folder, the relative paths no longer target the correct files. To fix it, use ...


0

If you start project from scratch you might as well just use Web API instead. It's just much easier and more straightforward to use when it comes to ASP.NET Identity. If you only need to use HTTP protocol for your REST-ful web services, then Web API is for you. So to answer your question, just create a new Web API project and make sure you select User ...


0

Yes! It makes sense as Johan Sjöberg said! You can use Spring MVC for example. I like it a lot and think it is very simple and easy to learn. You have an example here. By the away, for the frontend maybe you would like to check this presentation.


0

Use this piece of code. It will work. protected override void HandleUnauthorizedRequest(AuthorizationContext filterContext) { PartialViewResult result = new PartialViewResult(); result.ViewName = "noaccess"; filterContext.Result = result; }


1

I received 403.1 because I had folder name same as controller name under web project root directory. So even before it reaches MVC route resolution, it fails trying to list folder content. May be similar issue with properties being standard folder in any project


0

Here is a similar sample project https://aspnet.codeplex.com/SourceControl/latest#Samples/WebApi/OData/v3/ODataCompositeKeySample/ There are POST, PATCH methods: public HttpResponseMessage PutPerson([FromODataUri] string firstName, [FromODataUri] string lastName, Person person) { _repo.UpdateOrAdd(person); return ...


0

However... If you simply want to fix your displayFor method then you can make the type generic instead of int, e.g. public static IHtmlString DisplayEnumFor<TModel, TValue>(this HtmlHelper<TModel> html, Expression<Func<TModel, TValue>> ex, Type enumType) where TValue : struct, IConvertible { var value = ...


0

If you simply want to output the enum value as a string then you can just do this: <div class="display-field"> @Enum.GetName(typeof(HiltiHaninge.Models.Discplines), Model.Discipline) </div>


0

I think you miss one thing... Those features as Like, dislike, points etc are done by Ajax. So, make all your actions on simple and call them by Ajax. Like- public function like(){ $this->autoRender = false; // If you wants to use this function just for ajax if($this->request->is('ajax')){ // do something // capture ...



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