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For my Dofe Gold i have created a game of pong in pygame, as this was my first time using pygame i did not use sprites as this didnt occur to me. I am now wanting a solution which will allow me to resolve my problem without entirely rewriting my code with sprites. Note: i want this to still be my code so i will not accept a rewritten solution by someone else as this will take away any sense of accomplishment. Many thanks in advance. my code:

import pygame
import random
global vel
run = True
def pong():
    global run
    collision = 0
    pygame.init()
    screen = (600, 600)
    window = pygame.display.set_mode((screen))
    pygame.display.set_caption("Pong")
    x = 300
    y = 590
    coords = (300, 150)
    width = 175
    height = 10
    vel = 10 - selection
    velx = 10
    vely = 10
    while run == True:
        pygame.time.delay(100)
        for event in pygame.event.get():
            if event.type == pygame.QUIT:
                run = False
        keys = pygame.key.get_pressed()        

        if keys[pygame.K_LEFT] and x>0:
            x -= vel
        elif keys[pygame.K_RIGHT] and x<600-width:
            x += vel
        if event.type == pygame.MOUSEBUTTONUP:
            pygame.quit()
            quit()
        paddlecoords = (x, y, width, height)
        window.fill((255, 255, 255))
        ball = pygame.draw.circle(window, (255,0,255), coords,(35), (0))
        paddle = pygame.draw.rect(window, (0, 0, 0), paddlecoords)
        pygame.display.update()
        coords=((int(coords[0])+velx), (int(coords[1])+vely))
        if coords[0]>600-35:
            velx = -velx
        elif coords[0]<35:
            velx = -velx
        elif coords[1]<35:
            vely = -vely
        elif coords[1]>600-35:
            vely = -vely

selection =input("Do you want to play\n1)easy\n2)medium\n3)hard\n4)impossible?\n")
if selection.isdigit():
    if 0 < int(selection) < 5:
        selection = int(selection)
        selection = (selection-1)*2
    else:
        print("must be between 1 and 4")
else:
    print("number must be an integer")
    quit()
pong()
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Jeremy Walsh is a new contributor to this site. Take care in asking for clarification, commenting, and answering. Check out our Code of Conduct.
  • Now I never worked with pygame and can't help with that, but: I think global doesn't do what you think it does. I think you want to declare vel as a global variable? If so: no need for global, but please consider making it VEL (see here for what random actually does stackoverflow.com/questions/4693120/…) and here for why you may want to name it VEL python.org/dev/peps/pep-0008/#naming-conventions - see point "Constants" – SV-97 Mar 14 at 17:47
  • If you search on the phrase "Python collision detect", you’ll find resources that can explain it much better than we can in an answer here. Also, note that you have already implemented a collision detection between ball and wall. Simply adapt that to ball and paddle. – Prune Mar 14 at 17:50
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0

Since you don't want any code, here's how to do it in words.

Write a function named, say ballHits().

Pass to the function the paddlecoords , the Ball coords and the radius of the ball 35? as radius

Inside this new function, paddlecoords defines a rectangle. The code needs to check whether the edge of the Ball is within this rectangle.

A simple way of implementing this is to work out the co-ordinates of a rectangle (square) that would surround the ball. Since the ball is painted from the centre, this makes it approximately:

[ coords.x - radius,  coords.y - radius,  2 * radius, 2 * radius ]
# the [ x, y, width, height] of a square covering a circle

Using PyGame's rect class, determine if your two rectangles overlap.

A non-simple way of implementing this is to pre-generate the list of edge-pixels for the circle forming the ball. Maybe use something like the Mid-Point Circle Algorithm, centred on (0,0) to give you a list of points you can adjust with the current Ball co-ordinates.

Using the paddle rectangle, and PyGame's rect class determine if any of those points, when offset to the current ball-location, collide with the paddle. This will give you a true collision, rather than an approximation, and will work better for corner-to-corner collisions. It would probably be faster to check a rough collision with the square method above first, and then check the many circle points.

If the code decides there was a collision, return True from the function, and False otherwise.

In you main code, call out to this function, and act on the returned result.

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