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I want to create 2 pushpins to add them in a layer in bing maps on windows phone 7 app. I have created a function that creates a pushpin with some predefined attributes. The odd thing is that when I create the first pin using this function the
Pushpin pin;
pin = new Pushpin();
works as expected. It creates a new pushpin... But when this functions works for the second pushpin the above code creates a reference to the first push pin... Why?

The code i use is the bellow

Pushpin pin0 = createDefaultPushpin(38.0, 23.0, "test0");
Pushpin pin1 = createDefaultPushpin(39.0, 24.0, "test1");


private Pushpin createDefaultPushpin(double lat, double lon, String name)
        {
            Pushpin pin;
            pin = new Pushpin();


            pin.Location.Latitude = lat;
            pin.Location.Longitude = lon;
            pin.Location.Altitude = 0;
            pin.Name = name;

            ScaleTransform st = new ScaleTransform();
            st.ScaleX = 0.25;
            st.ScaleY = 0.25;
            st.CenterX = 0;
            st.CenterY = 60;

            pin.RenderTransform = st;
            pin.Background = new SolidColorBrush(Colors.Blue);
            return pin;
        }
share|improve this question
    
How do you know that this code creates a reference to the first pushpin? How did you observe that the references were the same? – Mark Byers Oct 16 '11 at 18:12
    
Unless there's some code elsewhere doing some amount of wizardry, what you're telling us is impossible. – Adam Maras Oct 16 '11 at 18:12
    
@MarkByers Because the two pushpins are in the same position And I have run the new Pushpin() while in the function in the watch while debugging and this returned the first pushpin... – Panagiotis Lefas Oct 16 '11 at 18:16
    
@Peter: Two pushpins being in the same position doesn't mean they are the same reference. It could also be two different objects that have the same values. Or the values could be declared static. Or a few other scenarios. – Mark Byers Oct 16 '11 at 18:20
    
@MarkByers Unfortunately this is not the case. The "new Pushpin()" in the watch while debugging references the same pin with the first... – Panagiotis Lefas Oct 16 '11 at 18:29

I've never used these classes or this platform, but let's accept everything that you've said above as fact. Then I think the culprit must be that the "Location" object is being inadvertently shared between your three Pushpins. (I think it's pretty irresponsible of the Pushpin constructor to do so, but again, I'm just going from the evidence you've provided, not my own experience)

Can you try

pin.Location=new Location(lat, lon, 0);

at the appropriate place in the code above, and tell us what happens?

share|improve this answer
    
Location does not have this type of constructor. Therefore I cannot use this. – Panagiotis Lefas Oct 17 '11 at 19:32
up vote 0 down vote accepted

After talking with colleagues, it turned out that the class Pushpin has a dependency property attached to location. That is why it behaves like that. The solution is to do the following.

Pushpin pin = new Pushpin(){
                  Location = new Location(){
                      Latitude = lat,Longitude = lon, Altitude = 0
                  }
              };
share|improve this answer
    
I don't think it has anything to do with dependency properties. It has to do with the Location object being shared. So I believe my intuition was right in my answer above, though I was misled by this web page to think that there was a three-arg constructor: msdn.microsoft.com/en-us/library/… – Corey Kosak Oct 18 '11 at 0:42
    
@CoreyKosak This is what I 'm saying. The Location is shared through the dependency it has. But this happens only when i use new Pushpin inside the function. This is what I don't understand. – Panagiotis Lefas Oct 18 '11 at 19:03
    
You are not using .NET terminology properly. The term "DependencyProperty" refers to the property technology introduced by Microsoft with Windows Presentation Foundation (WPF). A dependency property is not a simple CLR proeprty. Just because this property appears to "depend" on another, you ought not call it a DependencyProperty. You may wish to read more here: msdn.microsoft.com/en-us/library/ms752914.aspx – Corey Kosak Oct 18 '11 at 21:17

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