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Using the update method to control sprite animations in Pyglet

I friends, I will be very gratefull for any answer, a thanks in advance, this is my problem:

In pyglet this is the basic code to update a sprite in the screen:

sprite.x=50
pixels=10
def update开发者_高级运维(dt):
    if move_right == True:
        sprite.x += pixels * dt
pyglet.clock.schedule_interval(update, 1/60.0)

This results in the sprite moving from point x to the right at 10 pixels speeed per second if the Right key was pressed.

But lets assume I need to move exactly from point X1 to point X2 at a variable and STOP exactly at point X2, how I would do that?

Imagine this:

x_start=20

x_finish=40

I want to move from x=20 to x=40, and stop at x=40. Pixels per second can be any value, lets assume 10 pixels in this example.

If I use the usual code I could do:

sprite.x=20  
pixels=10  
def update(dt):  
    if sprite.x != 40:  
        if move_right == True:  
            sprite.x += pixels * dt  
pyglet.clock.schedule_interval(update, 1/60.0)

This would not work, because pixels*dt is not equal to 10, dt is irregular and a float (1/60=0.01, 0.01*10=0.1, and dt is irregular too, so sometimes is 0.01, others is 0.019, others 0.021...etc), so each time the update executes the sprite.x evolution is something like this --> 10, 10,1, 10,24, 10,38, 10.51...etc

So, the if sprite.x != 40: would never work (because sprite.x will allways be a float and hardly will be 40) and my player will never stop.

I know that this problem my have a very easy solution but I have no clue and I am in despair. I am beggining my journey in pyglet so I am very ignorant at this stage, and need help to find a solution, I cant find a way out.

Is there other techniques to update a sprite every frame without using sprite.x += pixels*dt? Are there other solutions?

Very very gratefull, Best regards from Portugal


Here's one way to do it

sprite.x=20  
pixels=10  
def update(dt):
    if sprite.x != 40:  
        if move_right == True:  
            sprite.x = min(sprite.x + pixels * dt, 40)
pyglet.clock.schedule_interval(update, 1/60.0)
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