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 a class called Sprite, and ballSprite is an instance of that class. Sprite has a Vector2 property called Position.

I'm trying to increment the Vector's X component like so:

ballSprite.Position.X++;

but it causes this error:

Cannot modify the return value of 'WindowsGame1.Sprite.Position' because it is not a variable

Is it not possible to set components like this? The tooltip for the X and Y fields says "Get or set ..." so I can't see why this isn't working.

share|improve this question
add comment

4 Answers

up vote 12 down vote accepted

The problem is that ballSprite.Position returns a struct, so when you access it, it creates a copy of it due to the value semantics. ++ attempts to modify that value, but it'll be modifying a temporary copy - not the actual struct stored in your Sprite.

You have to take the value from reading the Position and put it into a local variable, change that local variable, and then assign the local variable back into Position, or use some other, similar way of doing it (maybe hiding it as some IncrementX method).

Vector2D v;
v = ballSprite.Position;
v.X++;
ballSprite.Position = v;

Another, more generic solution, might be to add another Vector2 to your Position. The + operator is overloaded, so you could create a new vector with the change you want, and then add that to the vector instead of updating the indiviudal components one at a time.

share|improve this answer
    
ballSprite.Position.X = ballSprite.Position.X + 1; doesn't work either - same error. :( Isn't that exactly the same as ballSprite.Position.X++ anyway? –  Matthew H Mar 28 '10 at 21:22
    
Sorry, I wasn't thinking straight there. I've fixed it. –  Michael Madsen Mar 28 '10 at 21:26
    
Okay, looks like it's solved. This issue is kinda annoying. Thanks. I'll probably just add two vectors. :) –  Matthew H Mar 28 '10 at 21:48
add comment

In stead of using new Vector2(...) to add 2 vectors, you can also use Vector2.UnitX:

ballSprite.Position.X += 1; // error
ballSprite.Position += Vector2.UnitX; // solution

It's very useful when you want to move directional. For example, if you want to move only horizontal:

Vector2 offset = new Vector2(2, 4);
ballsprite.Position += offset * Vector2.UnitX;

In this example, the value of speed.Y won't be added to the position of the sprite. Why?

offset    ==   new Vector2(2, 4)
UnitX     ==   new Vector2(1, 0)
--------------------------------
The above Vectors are multiplied
which results into the following
--------------------------------
offset       *  UnitX
(X: 2, Y: 4) *  (X: 1, Y: 0)
(X: 2 * 1,  ...  Y: 4 * 0)
(X: 2, Y: 0)          <-- result

Another advantage of doing it this way is readability. At least that is what I think. See it for yourself:

// multiple ways of incrementing ballspeeds X coordinate.
ballSprite.Position += Vector2.UnitX;
ballSprite.Position += new Vector2(1, 0);
ballSprite.Position = new Vector2(ballSprite.Position.X + 1, ballSprite.Position.Y);

Vector2 temp = ballSprite.Position;
temp.X++;
ballSprite.Position = temp;

Of course, there is also a Vector2.UnitY for vertical movement. Combine these static fields together with Vector2.Zero and Vector2.One, and you can write easy-to-understand code.

When I'm working with Vector2s and directions, I use the following table:

             <---  X coordinate  --->
       -1                0               +1
                |                |                
  -Vector2.One  | -Vector2.UnitY |                  -1
  (X:-1, Y:-1)  |  (X: 0, Y:-1)  |                
                |                |                      ^
----------------+----------------+----------------      |
                |                |                
 -Vector2.UnitX |  Vector2.Zero  | +Vector2.UnitX    0  Y coordinate
  (X:-1, Y: 0)  |  (X: 0, Y: 0)  |  (X:+1, Y: 0)  
                |                |                      |
----------------+----------------+----------------      V
                |                |                
                | +Vector2.UnitY |  +Vector2.One    +1
                |  (X: 0, Y:+1)  |  (X:+1, Y:+1)  
                |                |                
share|improve this answer
add comment

An easy alternative is this:

instead of: sprite.Position.X = 10;

use: sprite.Position = new Vector2(10, sprite.Position.Y);

instead of: sprite.Position.Y = 10;

use: sprite.Position = new Vector2(sprite.Position.X, 10);

instead of: sprite.Position.X += 10;

use: sprite.Position += new Vector2(0, 10);

instead of: sprite.Position.Y += 10;

use: sprite.Position += new Vector2(10, 0);

share|improve this answer
add comment

You can do

 Position = new Vector2(Position.X + 1, Position.Y );

or

 Position += new Vector2( 1.0f, 0.0f );

or

 Position.X += 1.0f;
share|improve this answer
    
So is the summary of the X and Y fields a bug? // // Summary: // Gets or sets the y-component of the vector. Either way, thanks! –  Matthew H Mar 28 '10 at 21:28
    
Nope, I was mistaken, you just need to make sure you are adding a float with the f at the end. –  Maynza Mar 28 '10 at 21:33
1  
ballSprite.Position.X += 0.1f; That still gives me the same error. Besides, if the error was caused by a type problem, surely the error would say something about it? –  Matthew H Mar 28 '10 at 21:35
    
I just tested code like that in one of my projects and it works as expected. It must have something to do with your sprite class. –  Maynza Mar 28 '10 at 21:39
1  
@Maynza: It's because structs have value-type semantics and reading the property returns a temporary copy, not the specific piece of memory which is stored in the class. @Matt: Did you ONLY write that part for your line? I'm pretty sure new Vector2() will be considered a temporary copy - and you're not allowed to modify temporary copies of stuff. Try putting the vector into a local variable BEFORE modifying it. –  Michael Madsen Mar 28 '10 at 21:44
show 2 more comments

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.