Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Getting a NullValueException on a Property that Isn't null

Here's the code for the beginnings of a ViewModel, and the method that creates the ViewModel object and opens the Window I am using the ViewModelt in. The exception is being thrown on the SwitchName property. The _ciscoswitch.SwitchName is coming up as null because the _ciscoswitch in the SwitchVewModel is null. The exception is getting thrown at InitializeComponent() in the SwitchBrowser constructor. Looking at the SwitchVewModel instance in the debugger, _ciscoswitch is not null. I tried changing the SwitchName accessor to use CiscoSwitch.switchName instead of _ciscoswitch.SwitchName, it still failed.

class SwitchViewModel : INotifyPropertyChanged
{
      #region Construction
    /// Constructs the default instance of a SwitchViewModel
    public SwitchViewModel()
    {

    }


    public SwitchViewModel(CiscoSwitch cs)
    {
       _ciscoswitch = cs;
    }
      #endregion
    #region Members

    CiscoSwitch _ciscoswitch;
    #endregion

    #region Properties
    public CiscoSwitch CiscoSwitch
    {
        get
        {
            return _ciscoswitch;
        }
        set
        {
            _ciscoswitch = value;
        }
    }

    public string SwitchName
    {
        get { return _ciscoswitch.switchName; }
        set
        {
            if (_ciscoswitch.switchName != value)
            {
               _ciscoswitch.switchName = value;
                RaisePropertyChanged("switchName");
            }
        }
    }
    #endregion

    #region INotifyPropertyChanged Members

    public event PropertyChangedEventHandler PropertyChanged;

    #endregion

    #region Methods

    private void RaisePropertyChanged(string propertyName)
    {
        // take a copy to prevent thread issues
        PropertyChangedEventHandler handler = PropertyChanged;
        if (handler != null)
        {
            handler(this, new PropertyChangedEventArgs(propertyName));
        }
    }
    #endregion

}
}

XAML for the SwitchBrowserWindow the only property I am using right now is the SwitchName to try and get this working

<Window x:Class="CiscoDecodeWPF.SwitchBrowser"
    xmlns="http://schemas.microsoft.com/winfx/2006/xaml/presentation"
    xmlns:x="http://schemas.microsoft.com/winfx/2006/xaml"
    xmlns:CiscoDecodeWPF="clr-namespace:CiscoDecodeWPF" IsEnabled="{Binding Enabled}"
    Title="SwitchBrowser" Height="500" Width="500" Background="GhostWhite">

<Window.Resources>
    <Style TargetType="{x:Type TreeViewItem}" x:Key="ModuleStyle">
        <Setter Property="Foreground" Value="Blue"/>
        <Setter Property="FontSize" Value="12"/>
    </Style>

    <Style TargetType="{x:Type TreeViewItem}" x:Key="RedModuleStyle" BasedOn="{StaticResource ModuleStyle}">
        <Setter Property="Foreground" Value="Red"/>
    </Style>
</Window.Resources>

<Window.DataContext>
    <CiscoDecodeWPF:SwitchViewModel/>
</Window.DataContext>
<Grid Margin="0,0,-211.4,-168">
    <StackPanel HorizontalAlignment="Stretch" Name="StackPanel1" VerticalAlignment="Stretch" Width="Auto" Margin="0,0,188.6,114">

        <StackPanel.Resources> 
            <Style TargetType="{x:Type Label}" x:Key="LabelStyle">
                <Setter Property="Foreground" Value="Blue"/>
                <Setter Property="FontSize" Value="12"/>
                <Setter Property="FontWeight" Value="Bold"/>
            </Style>
        </StackPanel.Resources>
        <Label Content="Switch Name:" Name="Label1" Height="25" HorizontalAlignment="Left"/>
        <Label Content="Software Version:" Name="Label2" HorizontalAlignment="Left" />
        <Label Content="Model Number:" Name="Label3" HorizontalAlignment="left"/>
        <Label Content="IP Address:" Name="Label4" HorizontalAlignment="left"></Label>
        <Label Content="Serial Number:" Name="Label5" HorizontalAlignment="Left"></Label>
        <Label Content="Show Tech Taken:" Name="Label6" HorizontalAlignment="left"/>
    </StackPanel>
    <StackPanel Margin="105,0,218,489">
        <StackPanel.Resources>
            <Style TargetType="{x:Type Label}" x:Key="LabelStyle">
                <Setter Property="FontSize" Value="12"/>
                <Setter Property="FontWeight" Value="Bold"/>
            </Style>
        </StackPanel.Resources>
        <Label Content="{Binding Path=SwitchName}" Name="SwitchNameLabel" HorizontalAlignment="left"/>
        <Label Content="Version" Name="VersionLabel" HorizontalAlignment="left"/>
        <Label Content="Model" Name="ModelNumberLabel" HorizontalAlignment="Left"/>
        <Label Content="IP" Name="IPAddressLabel" HorizontalAlignment="Left"/>
        <Label Content="Serial" Name="SerialLabel" HorizontalAlignment="Left"/>
            <Label Content="ST" Name="ShowTechLabel" HorizontalAlignment="Left"/>

    </StackPanel>

Exception, stack trace and call stack

System.NullReferenceException was unhandled by user code
  HResult=-2147467261
 Message=Object reference not set to an instance of an object.
  Source=CiscoDecodeWPF
StackTrace:
   at CiscoDecodeWPF.SwitchViewModel.get_SwitchName() in 

d:\Projects\CiscoDecodeWPF\CiscoDecodeWPF\SwitchViewModel.cs:line 50

InnerException:

CiscoDecodeWPF.exe!CiscoDecodeWPF.SwitchViewModel.SwitchName.get() Line 50 + 0xf bytes C# [External Code] CiscoDecodeWPF.exe!CiscoDecodeWPF.SwitchBrowser.SwitchBrowser(CiscoDecodeWPF.CiscoSwitch cs) Line 35 + 0x8 bytes C# CiscoDecodeWPF.exe!CiscoDecodeWPF.MainWindow.BrowseSwitchMenuItem_Click(object sender, System.Windows.RoutedEventArgs e) Line 1050 + 0x34 bytes C# [External Code]

share|improve this question
1  
It is almost certainly something wrong in your XAML. Please post that (and remove some of the C#) –  ChrisF Oct 5 '12 at 16:12
    
Also, post the entire stack trace. –  Kirk Woll Oct 5 '12 at 16:12
    
With the FirstOrDefault in new SwitchBrowser(cs.FirstOrDefault()) you can easily pass in a null as CiscoSwitch... and if your code uses the default public SwitchViewModel() constructor _ciscoswitch will be also null... –  nemesv Oct 5 '12 at 16:14
    
@ChrisF, posted the XAML for the SwitchBrowserWindow, or at least up to the bit that uses the SwitchName –  David Green Oct 5 '12 at 16:47
    
@Kirk, posted the Exeption and what the debugger gives for the stack trace –  David Green Oct 5 '12 at 16:47

1 Answer 1

up vote 0 down vote accepted

Try below code in SwitchName:

 public string SwitchName
{
    get {
         if (_ciscoswitch != null)
         {   
           return _ciscoswitch.switchName;
         }
         else
         {
            return string.empty;
         }
      }
    set
    {
      if (_ciscoswitch != null)
      {
        if (_ciscoswitch.switchName != value)
        {
           _ciscoswitch.switchName = value;
            RaisePropertyChanged("switchName");
        }
      }
    }
}

If you don't want to check _ciscoswitch != null in SwitchName then put DataContext = svm before InitizlizeComponent()

CODE:

public SwitchBrowser(CiscoSwitch cs)
{
    SwitchViewModel svm = new SwitchViewModel(cs);
    DataContext = svm;
    InitializeComponent();
 }

And remove below code from XAML.

<Window.DataContext>
<CiscoDecodeWPF:SwitchViewModel/>
</Window.DataContext>

Hope It should Work.

share|improve this answer
    
thanks Jignesh, the _ciscoswitch isn't supposed to be null. I have an instance of the CiscoSwitch object I am trying to pass in as the model. –  David Green Oct 5 '12 at 17:11
    
@DavidGreen <Label Content="{Binding Path=SwitchName}" Name="SwitchNameLabel" HorizontalAlignment="left"/> this line trying to get Switchname from viewmodel but at that time _ciscoswitch is null. –  Jignesh Thakker Oct 5 '12 at 17:24
    
Have you tried with my answer for SwitchName? –  Jignesh Thakker Oct 5 '12 at 17:25
    
With CiscoSwitch parameter New() of ViewModel, you are creating it at codebehind and you assigned DataContext value after Initialization(). But at design time you just created New object of Viewmodel with default New(). Just try with my answer. –  Jignesh Thakker Oct 5 '12 at 17:27
    
that worked. the problem is there are several properties and apparently I will have to test them all. I'd rather find a way to have the XAML call the constructor that takes a paramter, if there is a way. I haven't been able to find one so far. –  David Green Oct 5 '12 at 17:31

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.