Comprobamos movimiento en vista isometrica
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@ -48,8 +48,8 @@ El Vortex avanza automáticamente de forma constante hacia arriba. Si encuentra
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1. Clona este repositorio:
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```bash
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git clone https://gitea.soloconlinux.org.es/luisgulo/Hightway_Vector.git
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cd highway-vector
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git clone https://gitea.soloconlinux.org.es/luisgulo/Highway_Vector.git
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cd Highway_Vector
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```
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2. Crea y activa un entorno virtual para las librerias de Python:
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```bash
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239
highway_vector.py
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239
highway_vector.py
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import sys
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import pygame
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# Inicialización de Pygame
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pygame.init()
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# Constantes de Pantalla
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SCREEN_WIDTH = 800
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SCREEN_HEIGHT = 600
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FPS = 60
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# Configuración de Cuadrícula e Isometría
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TILE_WIDTH = 64
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TILE_HEIGHT = 32
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GRID_SIZE_X = 8
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GRID_SIZE_Y = 100 # Largo de la autopista
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# Colores (Paleta Retro Spectrum/Amstrad)
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COLOR_BG = (10, 10, 15)
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COLOR_GRID = (40, 40, 60)
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COLOR_ROAD = (60, 60, 80)
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COLOR_VORTEX = (0, 255, 200)
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COLOR_PLAYER = (255, 200, 0)
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COLOR_BLOCK = (200, 50, 50)
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COLOR_WALL = (100, 100, 120)
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def grid_to_iso(gx, gy, gz=0):
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"""Convierte coordenadas de cuadrícula 3D (x, y, z) a coordenadas de pantalla 2D."""
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iso_x = (gx - gy) * (TILE_WIDTH // 2)
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iso_y = (gx + gy) * (TILE_HEIGHT // 2) - (gz * 16)
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return iso_x, iso_y
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class Entity:
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def __init__(self, gx, gy, color, is_solid=True):
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self.gx = float(gx)
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self.gy = float(gy)
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self.gz = 0
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self.color = color
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self.is_solid = is_solid
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self.radius = 0.4
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def draw(self, surface, camera_offset_x, camera_offset_y):
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screen_x, screen_y = grid_to_iso(self.gx, self.gy, self.gz)
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draw_x = screen_x + camera_offset_x
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draw_y = screen_y + camera_offset_y
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# Dibujar un bloque o personaje estilo isométrico
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points = [
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(draw_x, draw_y - 20),
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(draw_x + TILE_WIDTH // 2, draw_y - 20 + TILE_HEIGHT // 2),
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(draw_x, draw_y - 20 + TILE_HEIGHT),
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(draw_x - TILE_WIDTH // 2, draw_y - 20 + TILE_HEIGHT // 2),
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]
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pygame.draw.polygon(surface, self.color, points)
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pygame.draw.polygon(
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surface, (255, 255, 255), points, 2
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) # Borde brillante
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class PushBlock(Entity):
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def __init__(self, gx, gy):
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super().__init__(gx, gy, COLOR_BLOCK, is_solid=True)
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def push(self, dx, dy, entities):
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new_gx = self.gx + dx
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new_gy = self.gy + dy
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# Comprobar límites de la carretera
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if not (0 <= new_gx < GRID_SIZE_X and 0 <= new_gy < GRID_SIZE_Y):
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return False
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# Comprobar colisión con otras entidades
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for entity in entities:
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if entity != self and entity.is_solid:
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if (
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abs(entity.gx - new_gx) < 0.6
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and abs(entity.gy - new_gy) < 0.6
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):
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return False
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self.gx = new_gx
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self.gy = new_gy
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return True
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class Player(Entity):
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def __init__(self, gx, gy):
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super().__init__(gx, gy, COLOR_PLAYER, is_solid=True)
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self.speed = 0.08
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def update(self, keys, entities):
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dx, dy = 0, 0
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if keys[pygame.K_LEFT] or keys[pygame.K_a]:
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dx -= self.speed
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if keys[pygame.K_RIGHT] or keys[pygame.K_d]:
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dx += self.speed
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if keys[pygame.K_UP] or keys[pygame.K_w]:
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dy -= self.speed
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if keys[pygame.K_DOWN] or keys[pygame.K_s]:
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dy += self.speed
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if dx != 0 or dy != 0:
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target_gx = self.gx + dx
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target_gy = self.gy + dy
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# Limites horizontales
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if not (0 <= target_gx < GRID_SIZE_X):
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dx = 0
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if not (0 <= target_gy < GRID_SIZE_Y):
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dy = 0
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# Intento de movimiento y colisión con bloques
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for entity in entities:
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if entity != self and entity.is_solid:
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if (
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abs(entity.gx - (self.gx + dx)) < 0.6
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and abs(entity.gy - (self.gy + dy)) < 0.6
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):
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# Intentar empujar si es un PushBlock
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if isinstance(entity, PushBlock):
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push_dx = 0.1 if dx > 0 else (-0.1 if dx < 0 else 0)
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push_dy = 0.1 if dy > 0 else (-0.1 if dy < 0 else 0)
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if not entity.push(push_dx, push_dy, entities):
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return
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else:
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return # Bloqueado
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self.gx += dx
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self.gy += dy
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class Vortex(Entity):
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def __init__(self, gx, gy):
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super().__init__(gx, gy, COLOR_VORTEX, is_solid=True)
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self.speed = 0.015 # Avance constante automático
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def update(self, entities):
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target_gy = self.gy - self.speed
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# Verificar si hay algún obstáculo al avanzar
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blocked = False
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for entity in entities:
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if entity != self and entity.is_solid:
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if (
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abs(entity.gx - self.gx) < 0.7
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and abs(entity.gy - target_gy) < 0.7
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):
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blocked = True
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break
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if not blocked and target_gy >= 0:
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self.gy = target_gy
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class Game:
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def __init__(self):
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self.screen = pygame.display.set_mode((SCREEN_WIDTH, SCREEN_HEIGHT))
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pygame.display.set_caption("Highway Encounter Python Remake")
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self.clock = pygame.time.Clock()
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self.vortex = Vortex(3.5, 95)
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self.player = Player(3.5, 92)
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self.entities = [self.vortex, self.player]
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# Generar bloques de prueba a lo largo de la autopista
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for y in range(10, 90, 5):
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self.entities.append(PushBlock(y % GRID_SIZE_X, y))
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self.entities.append(PushBlock((y + 3) % GRID_SIZE_X, y + 2))
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def run(self):
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running = True
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while running:
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self.clock.tick(FPS)
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# 1. Procesar Eventos
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for event in pygame.event.get():
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if event.type == pygame.QUIT:
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running = False
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# 2. Actualizar Estado
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keys = pygame.key.get_pressed()
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self.player.update(keys, self.entities)
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self.vortex.update(self.entities)
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# 3. Calcular desplazamiento de cámara (centrada en el VORTEX o el jugador)
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iso_x, iso_y = grid_to_iso(self.player.gx, self.player.gy)
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camera_offset_x = SCREEN_WIDTH // 2 - iso_x
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camera_offset_y = SCREEN_HEIGHT // 2 - iso_y + 100
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# 4. Renderizado
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self.screen.fill(COLOR_BG)
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# Dibujar suelo (Autopista)
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for gy in range(0, GRID_SIZE_Y):
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for gx in range(0, GRID_SIZE_X):
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sx, sy = grid_to_iso(gx, gy)
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draw_x = sx + camera_offset_x
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draw_y = sy + camera_offset_y
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# Solo dibujar si está visible en pantalla
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if -100 < draw_x < SCREEN_WIDTH + 100 and -100 < draw_y < SCREEN_HEIGHT + 100:
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pts = [
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(draw_x, draw_y),
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(
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draw_x + TILE_WIDTH // 2,
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draw_y + TILE_HEIGHT // 2,
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),
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(draw_x, draw_y + TILE_HEIGHT),
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(
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draw_x - TILE_WIDTH // 2,
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draw_y + TILE_HEIGHT // 2,
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),
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]
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pygame.draw.polygon(self.screen, COLOR_ROAD, pts)
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pygame.draw.polygon(self.screen, COLOR_GRID, pts, 1)
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# Ordenar entidades por coordenada 'gy' descendente para renderizar correctamente la profundidad
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sorted_entities = sorted(
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self.entities, key=lambda e: e.gy, reverse=True
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)
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for entity in sorted_entities:
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entity.draw(self.screen, camera_offset_x, camera_offset_y)
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pygame.display.flip()
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pygame.quit()
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sys.exit()
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if __name__ == "__main__":
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Game().run()
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BIN
img-versiones/version_0.1.png
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BIN
img-versiones/version_0.1.png
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