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Vector3 v = new Vector3(1, 1, 1);
v.x = 5;

Why can't I do this? I have to do v = new Vector3(5, v.y, v.z);

I assume the reason behind this is for performance. But I can't guess at why this is necessary.


Edit:

I lied, this actually does work. The Vector3 I've been working with transform.position always returns a copy of itself, which is why setting values on it doesn't work. Some kind of Unity magic.

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They aren't according to MSDN: msdn.microsoft.com/en-us/library/…. You are lucky though.. generally struct's are tiny immutable objects (like DateTime). –  Simon Whitehead Sep 11 '13 at 4:56
    
@SimonWhitehead I'm using Unity3D, they support C#. I thought everything was the same, maybe this is just a Unity thing? Can anyone confirm that? –  Stephen Bugs Kamenar Sep 11 '13 at 4:57
    
Where is Vector3 defined? The type linked in the comment above is from XNA. That is most likely not the one you are using. –  Brian Rasmussen Sep 11 '13 at 4:58
    
Sorry about the multiple tag edits. The Vector3 context was unclear. Additionally, the tag vector is not relevant to a vector component structure. –  Austin Brunkhorst Sep 11 '13 at 5:00
    
As for the actual question, according to the docs, you can use .Set(x, y, z) to update the values of each component respectively. –  Austin Brunkhorst Sep 11 '13 at 5:02

4 Answers 4

(Disclaimer: I am not a Unity developer)

Every example I see initialized a new Vector3.. which means the properties are probably readonly in Unity (they aren't in XNA).

But, the documentation shows a Set() method for Vector3's. So you can (apparently) do this:

v.Set(5, v.y, v.z);
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Doesn't work with the transform.position Vector3. "As far as I can tell, this happens because when you use 'transform.position', it returns a new vector3, rather than giving you a reference to the actual position. Then, when you use Vector3.Set(), it modifies the returned Vector3, without actually changing the original!" What the heck Unity. –  Stephen Bugs Kamenar Sep 11 '13 at 5:13
    
But that does work with my example, so thanks for that. –  Stephen Bugs Kamenar Sep 11 '13 at 5:16

I lied, this actually does work. The Vector3 I've been working with transform.position always returns a copy of itself, which is why setting values on it doesn't work. Some kind of Unity magic.

Actually, the reason is that Vector3 are structs. In C#, structs are value types. So they are always returned by value wereas class can be pass/returned by references. It will be the same behaviour for all properties that wrap struct members (like Rect, Vector2, etc...)

As this is a property, the get method return a copy value of the struct position when you call it. You will always need to assign it to a local ref, modify it and then reassign it:

Vector3 t_Pos = transform.position;
t_Pos.Normalize();
transform.position = t_Pos;
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Unity's Vector3s are indeed structs as well - so you are required to create a new instance, even if you are only changing one value. In response to the question itself, as you already mentioned, Vector3's properties aren't readonly.

Source

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Here is an example I just created for testing:

    List<Vector3> list = new List<Vector3>();
    list.Add(new Vector3(1, 1, 1));
    list.Add(new Vector3(2, 2, 2));
    list.Add(new Vector3(3, 3, 3));
    for (int i = 0; i < list.Count; i++) {
        list[i].Set(list[i].x, 0, list[i].z);
        Vector3 pos = list[i];
        pos.z = 0;
        list[i] = pos;
    }
    for (int i = 0; i < list.Count; i++) {
        Debug.Log(list[i]);
    }

My question is, why does the following line do not set the y value to 0?

list[i].Set(list[i].x, 0, list[i].z);

It seems to do nothing, maybe because the "list[i]" directly creates a copy and that copy is changed via .Set() and not the original? Can a generic list return the reference instead of a copy?

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