school-horror-game/game.py
2026-09-04 18:39:41 +02:00

215 lines
6.1 KiB
Python

import pygame
SCREEN_WIDTH = 1280
SCREEN_HEIGHT = 720
class Game:
def __init__(self):
pygame.init()
pygame.display.set_caption("School Game")
self.clock = pygame.Clock()
self.screen: pygame.Surface = pygame.display.set_mode(
(SCREEN_WIDTH, SCREEN_HEIGHT)
)
self.display: pygame.Surface = pygame.Surface(
(self.screen.get_width() // 2, self.screen.get_height() // 2)
)
self.movement: list[bool] = [False, False, False, False]
self.running: bool = True
self.dt: int = 0
self.player_pos = pygame.Vector2(self.display.get_width() / 2, self.display.get_height() / 2)
self.item_rect = pygame.Rect(60, 40, 10, 10)
self.flashlight_rect = (self.player_pos, 50)
self.flashlight = 0
self.color_item = (0, 0, 0)
self.speed = 300
self.player_width = 20
self.player_height = 20
self.walls = [
pygame.Rect(100, 100, 20, 50),
pygame.Rect(300, 300, 200, 20),
pygame.Rect(550, 80, 20, 200)
]
self.light_radius = 75
# self.circle = pygame.geometry.Circle(self.player_pos[0], self.player_pos[1], 30)
def run(self) -> None:
while self.running:
# Background
self.display.fill((0, 0, 0, 0))
self.player_rect = pygame.Rect(self.player_pos[0]-10, self.player_pos[1]-10, self.player_width, self.player_height)
# Event-Keys
for event in pygame.event.get():
if event.type == pygame.QUIT:
self.running = False
if event.type == pygame.KEYDOWN:
if event.key == pygame.K_ESCAPE:
self.running = False
if event.key == pygame.K_LSHIFT:
self.speed = 600
if event.type == pygame.KEYUP:
if event.key == pygame.K_LSHIFT:
self.speed = 300
# Player-Draw
# self.flashlight = pygame.draw.circle(self.display, (255, 255, 255, 0), self.flashlight_rect[0], self.flashlight_rect[1])
"""RAYCASTING"""
ray_end = pygame.Vector2()
light_points = []
vector = pygame.Vector2(self.light_radius, 0)
# Lichtstrahlen berechnen
for i in range(360):
rotated_vector = vector.rotate(i)
ray_end = self.player_pos + rotated_vector
# Überschneidung mit den Wänden prüfen
for wall in self.walls:
überschneidung = wall.clipline(self.player_pos, ray_end)
if überschneidung:
schnittpunkt = pygame.Vector2(überschneidung[0])
ray_end = schnittpunkt
light_points.append(ray_end)
pygame.draw.polygon(
self.display,
(243, 255, 74),
light_points
)
pygame.draw.rect(self.display, self.color_item, self.item_rect)
pygame.draw.rect(self.display, (255, 0, 0), self.player_rect)
for wall in self.walls:
pygame.draw.rect(self.display, "grey", wall)
# Smooth Movement
keys = pygame.key.get_pressed()
direction = pygame.Vector2(
keys[pygame.K_d] - keys[pygame.K_a],
keys[pygame.K_s] - keys[pygame.K_w]
)
if direction.length_squared() > 0:
direction = direction.normalize()
movement = direction * self.speed * self.dt
self.player_pos += movement
# player_rect.center = round(player_pos)
self.player_rect.centerx = round(self.player_pos.x)
for wall in self.walls:
if self.player_rect.colliderect(wall):
if movement.x > 0:
self.player_rect.right = wall.left
elif movement.x < 0:
self.player_rect.left = wall.right
self.player_pos.x = self.player_rect.centerx
self.player_rect.centery = round(self.player_pos.y)
for wall in self.walls:
if self.player_rect.colliderect(wall):
if movement.y > 0:
self.player_rect.bottom = wall.top
elif movement.y < 0:
self.player_rect.top = wall.bottom
self.player_pos.y = self.player_rect.centery
self.player_pos[1] = max(self.player_pos[1], self.player_height/2)
self.player_pos[1] = min(self.player_pos[1], SCREEN_HEIGHT/2-self.player_height/2)
self.player_pos[0] = max(self.player_pos[0], self.player_width/2)
self.player_pos[0] = min(self.player_pos[0], SCREEN_WIDTH/2-self.player_width/2)
# print(f"Player Pos: {self.player_pos}, Player Pos Before: {player_pos_before}")
if self.rect_circle_collision(self.item_rect, self.flashlight_rect):
self.color_item = (0, 0, 255)
else:
self.color_item = (0, 0, 0)
self.screen.blit(
pygame.transform.scale(self.display, self.screen.get_size())
)
pygame.display.update()
self.dt = self.clock.tick(60) / 3000
def rect_circle_collision(self, rect, circle):
rect_x, rect_y, rect_w, rect_h = rect
circle_x = circle[0][0]
circle_y = circle[0][1]
circle_r = circle[1]
# Calculate the closest point on the rectangle to the center of the circle
closest_x = max(rect_x, min(circle_x, rect_x + rect_w))
closest_y = max(rect_y, min(circle_y, rect_y + rect_h))
# Calculate the distance between the center of the circle and the closest point on the rectangle
dx = circle_x - closest_x
dy = circle_y - closest_y
distance = (dx ** 2 + dy ** 2) ** 0.5
return distance <= circle_r
game = Game()
game.run()