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I have a WPF application with multiple views. I want to switch from view 1 to view 2 and from there I can switch to multiple views. So I want a button on view 1 that loads view2 in the same window.

I tried those things, but can't get it to work.

From the first link, the problem is that I don't understand the ViewModelLocator code. They call the CreateMain(); function but where is this defined, and how can I switch to another view from inside a view.

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    @AndrasSebö, on this occasion, I disagree with you. While I accept that this is not a great question, I have seen much worse and I believe that it is quite clear what the user is after. – Sheridan Oct 29 '13 at 9:37
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    Well the question is: How can i switch the view from inside a view. – user2499088 Oct 29 '13 at 9:47
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    Did you find a good way to address this issue? – User1551892 Jan 29 '14 at 8:52
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    I ended up with using the magellan framework. It's a great framework for apps with a lot of navigation. – user2499088 Jan 29 '14 at 15:04
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    @user2499088, please add an answer and accept it. Duplicates of this question cannot be closed as a duplicate if this question does not have an accepted answer. Please follow the guidelines from the What should I do when someone answers my question? and What does it mean when an answer is "accepted"? pages of the Help Center. – Sheridan Jul 30 '14 at 10:08
122

Firstly, you don't need any of those toolkits/frameworks to implement MVVM. It can be as simple as this... let's assume that we have a MainViewModel, and PersonViewModel and a CompanyViewModel, each with their own related view and each extending an abstract base class BaseViewModel.

In BaseViewModel, we can add common properties and/or ICommand instances and implement the INotifyPropertyChanged interface. As they all extend the BaseViewModel class, we can have this property in the MainViewModel class that can be set to any of our view models:

public BaseViewModel ViewModel { get; set; }

Of course, you'd be implementing the INotifyPropertyChanged interface correctly on your properties unlike this quick example. Now in App.xaml, we declare some simple DataTemplates to connect the views with the view models:

<DataTemplate DataType="{x:Type ViewModels:MainViewModel}">
    <Views:MainView />
</DataTemplate>
<DataTemplate DataType="{x:Type ViewModels:PersonViewModel}">
    <Views:PersonView />
</DataTemplate>
<DataTemplate DataType="{x:Type ViewModels:CompanyViewModel}">
    <Views:CompanyView />
</DataTemplate>

Now, wherever we use one of our BaseViewModel instances in our application, these DataTemplates will tell the framework to display the related view instead. We can display them like this:

<ContentControl Content="{Binding ViewModel}" />

So all we need to do now to switch to a new view is to set the ViewModel property from the MainViewModel class:

ViewModel = new PersonViewModel();

Finally, how do we change the views from other views? Well there are several possible ways to do this, but the easiest way is to add a Binding from the child view directly to an ICommand in the MainViewModel. I use a custom version of the RelayComand, but you can use any type you like and I'm guessing that you'll get the picture:

public ICommand DisplayPersonView
{
    get { return new ActionCommand(action => ViewModel = new PersonViewModel(), 
        canExecute => !IsViewModelOfType<Person>()); }
}

In the child view XAML:

<Button Command="{Binding DataContext.DisplayPersonView, RelativeSource=
    {RelativeSource AncestorType={x:Type MainView}}, Mode=OneWay}" />

That's it! Enjoy.

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    Well if you're using MVVM Light, then you should probably stick to whatever they use to do these things... my point was that you don't need to use a framework to implement this functionality. – Sheridan Oct 29 '13 at 10:28
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    I'm not sure if I really understand your question @ETG87. The view model classes are just classes that extend the BaseViewModel class and the views are just UserControls. – Sheridan May 15 '14 at 8:37
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    Dude, you need to read up about XAML Namespaces and Namespace Mapping for WPF XAML... my views are declared in a AppName.Views namespace which has a mapped XAML Namespace Prefix of Views. The view models are declared in a AppName.ViewModels namespace and therefore mapped to a XAML Namespace Prefix of ViewModels. There should be no BaseViewModel namespace because that is a class, not a namespace. – Sheridan May 15 '14 at 9:12
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    @Sheridan, I do this in my application but even though I create a new instance of the ViewModel in my code, the XAML code creates another instance. Is there any way to get around this? I'm trying to switch the view and immediately bind to an event but since the XAML creates a new instance, I can't make it happen. – Cody Apr 9 '15 at 15:40
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    @AUSTX_RJL, if you haven't already, you should ask a new question for that. – Sheridan Jul 28 '15 at 18:20
8

When i first started wiht MVVM I also struggled with the different MVVM-frameworks and especially the navigation part. Therefore I use this little tutorial i found, that Rachel Lim has created. It's very nice and well explained.

Have a look at it on the following link:

Hope it helped you :)

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    Thanks, but this is not what i mean. I used this example for another application, but for this application i dont have a sidemenu. So i have a button on view1 and when i click on that button it has to switch to view2 – user2499088 Oct 29 '13 at 9:52
1

Maybe this link will help you. Just set the NavigateTo property to the view which you need to display on the window.

As an example you can do something like

<Window x:Class="MainWindowView" xmlns="http://schemas.microsoft.com/winfx/2006/xaml/presentation"
                                 xmlns:x="http://schemas.microsoft.com/winfx/2006/xaml"
                                 xmlns:d="http://schemas.microsoft.com/expression/blend/2008"
                                 xmlns:meffed="http:\\www.codeplex.com\MEFedMVVM"
                                 meffed:ViewModelLocator.NonSharedViewModel="YourViewModel"
                                 WindowStartupLocation="CenterScreen">

    <Button meffed:NavigationExtensions.NavigateTo="firstview"
                    meffed:NavigationExtensions.NavigationHost="{Binding ElementName=_viewContainer}"
                    meffed:NavigationExtensions.NavigateOnceLoaded="False"
                    Visibility="Visible" />

    <ContentControl x:Name="_viewContainer" Margin="0,0,0,10" />
<Window>

Then the class file would be

public partial class MainWindowView : Window
{
    public MainWindowView()
    {           
              InitializeComponent();
    }

        public ContentControl ViewContainer { get { return _viewContainer; } }

    }

Then you can define each view as UserControl and then using the link I gave above bind the button's meffed:NavigationExtensions.NavigateTo="secondView". To target the ContentControl of the Window just use a RelativeSource binding. For e.g

meffed:NavigationExtensions.NavigationHost="{Binding RelativeSource={RelativeSource Mode=FindAncestor, AncestorType={x:Type Window}},Path=ViewContainer}"

In each of the view just see that you annotate the code behind class definition with the [NavigationView("firstview")] and so on.

It is complicated for first time but it will be very easy once you understand the idea.

1
<ContentControl x:Name="K.I.S.S" Content="{Binding ViewModel, Converter={StaticResource ViewLocator}}"/>

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