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.

I have the following classes:

public class DrawableComplexEntity2D
{
    public List<GameComponent> Components { get; set; }

    // anothers properties, constructor, methods...
}

public class BoardCell : DrawableComplexEntity2D
{
    public GoalPersonGroup GoalPersonGroup { get; set; }

    public void CreateGoalPersonGroup(Goal groupType)
    {
        this.GoalPersonGroup = new GoalPersonGroup(groupType)
        base.Components.Add(this.GoalPersonGroup);
    }
}

So, when i do:

BoardCell cell1 = new BoardCell();
cell1.CreateGoalPersonGroup(Goal.Type1);

BoardCell cell2 = new BoardCell();
cell2.CreateGoalPersonGroup(Goal.Type2);

cell1.GoalPersonGroup = cell2.GoalPersonGroup;

When i update the cell1.GoalPersonGroup with cell2.GoalPersonGroup, the cell1.GoalPersonGroup is updated, but the cell1.GoalPersonGroup that is inside of the base.Components of cell1 doesn`t change and still the value of cell1 instead cell2. Why?

share|improve this question
    
Why should it change, if you haven't written the code to change it? –  hvd Mar 3 '12 at 19:18
    
When i add a object inside a List<T> what i add isn`t the reference o the object? –  Vinicius Ottoni Mar 3 '12 at 19:21
1  
What you add to a List<T> is a reference to the object, but not a reference to a property. You're replacing the property with a reference to a completely separate object. The Components list still holds a reference to the original object, because that's what you added to it. –  hvd Mar 3 '12 at 19:24
add comment

3 Answers

up vote 1 down vote accepted

Lists, as with all other variables, contain values. With a reference type (which I'm assuming GoalPersonGroup is), the value is a reference. If I have the following:

object a = ...;
object b = ...;

a = b;

All I've done is take the value of b (which is a reference) and copied that value to a. In the case of a reference type, I can perform operations on that value (like calling a.SomeProperty = "foo";) and those same changes in state will be reflected anywhere in the program where that particular reference is stored in a variable. In other words, if I were to inspect the value of b.SomeProperty, it would be "foo".

However, changing the value in the variable does not affect other variables that point to that value (except in the case of a ref parameter).

You've added a value that points to a reference to your List. You've also assigned that same value to a property. These two distinct memory locations contain the same value, and thus point to the same actual object. But later you're just reassigning the value of the property, which means that it now has a different value than what's stored in the list.

share|improve this answer
add comment

Yes, you are getting confused with references. Assigning a reference variable assigns the thing that is referenced.

eg

string str1 = new String("Hello");   //str1 has a reference to "Hello"
string basestr = str1;               //basestr has a reference to "Hello" (NOT str1)

string str2 = new String("Goodbye"); //str2 has a reference to "Goodbye"
str1 = str2;                         //str1 has a reference to "Goodbye" (basestr still = hello)
share|improve this answer
add comment

You are only changing the reference in the property cell1.GoalPersonGroup, not the one you have added to base.Components. To fix this, you'll have to add code in the setter of GoalPersonGroup to do what you want.

share|improve this answer
    
When i add a object inside a List<T> what i add isn`t the reference o the object? –  Vinicius Ottoni Mar 3 '12 at 19:20
    
@ViniciusOttoni: You've added a value, which in the case of reference types is a reference. But changing that value later does not affect the reference or any other variables that happen to have the same value. –  Adam Robinson Mar 3 '12 at 19:25
add comment

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.