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python实现俄罗斯方块

更新时间:2020-06-08 08:48:01 作者:startmvc
网上搜到一个Pygame写的俄罗斯方块(tetris),大部分看懂的前提下增加了注释,Fedora19下运

网上搜到一个Pygame写的俄罗斯方块(tetris),大部分看懂的前提下增加了注释,Fedora19下运行OK的

主程序:


#coding:utf8
#! /usr/bin/env python
# 注释说明:shape表示一个俄罗斯方块形状 cell表示一个小方块
import sys
from random import choice
import pygame
from pygame.locals import *
from block import O, I, S, Z, L, J, T

COLS = 16
ROWS = 20
CELLS = COLS * ROWS
CELLPX = 32 # 每个cell的像素宽度
POS_FIRST_APPEAR = COLS / 2
SCREEN_SIZE = (COLS * CELLPX, ROWS * CELLPX)
COLOR_BG = (0, 0, 0)


def draw(grid, pos=None):
 # grid是一个list,要么值为None,要么值为'Block'
 # 非空值在eval()的作用下,用于配置颜色
 if pos: # 6x5
 s = pos - 3 - 2 * COLS # upper left position
 for p in range(0, COLS):
 q = s + p * COLS
 for i in range(q, q + 6):
 if 0 <= i < CELLS:
 # 0 <=i < CELLS:表示i这个cell在board内部。
 c = eval(grid[i] + ".color") if grid[i] else COLOR_BG
 # 执行着色。shape的cell涂对应的class设定好的颜色,否则涂黑(背景色)
 a = i % COLS * CELLPX
 b = i / COLS * CELLPX
 screen.fill(c, (a, b, CELLPX, CELLPX))
 else: # all
 screen.fill(COLOR_BG)
 for i, occupied in enumerate(grid):
 if occupied:
 c = eval(grid[i] + ".color") # 获取方块对应的颜色
 a = i % COLS * CELLPX # 横向长度
 b = i / COLS * CELLPX # 纵向长度
 screen.fill(c, (a, b, CELLPX, CELLPX))
 # fill:为cell上色, 第二个参数表示rect
 pygame.display.flip()
 # 刷新屏幕


def phi(grid1, grid2, pos): # 4x4
# 两个grid之4*4区域内是否会相撞(冲突)
 s = pos - 2 - 1 * COLS # upper left position
 for p in range(0, 4):
 q = s + p * COLS
 for i in range(q, q + 4):
 try:
 if grid1[i] and grid2[i]:
 return False
 except:
 pass
 return True


def merge(grid1, grid2):
 # 合并两个grid
 grid = grid1[:]
 for i, c in enumerate(grid2):
 if c:
 grid[i] = c
 return grid


def complete(grid):
 # 减去满行
 n = 0
 for i in range(0, CELLS, COLS):
 # 步长为一行。
 if not None in grid[i:i + COLS]:
 #这一句很容易理解错误。
 #实际含义是:如果grid[i:i + COLS]都不是None,那么执行下面的语句
 grid = [None] * COLS + grid[:i] + grid[i + COLS:]
 n += 1
 return grid, n
#n表示减去的行数,用作统计分数

pygame.init()
pygame.event.set_blocked(None)
pygame.event.set_allowed((KEYDOWN, QUIT))
pygame.key.set_repeat(75, 0)
pygame.display.set_caption('Tetris')
screen = pygame.display.set_mode(SCREEN_SIZE)
pygame.display.update()

grid = [None] * CELLS
speed = 500
screen.fill(COLOR_BG)
while True: # spawn a block
 block = choice([O, I, S, Z, L, J, T])()
 pos = POS_FIRST_APPEAR
 if not phi(grid, block.grid(pos), pos): break # you lose
 pygame.time.set_timer(KEYDOWN, speed)
 # repeatedly create an event on the event queue
 # speed是时间间隔。。。speed越小,方块下落的速度越快。。。speed应该换为其他名字

 while True: # move the block
 draw(merge(grid, block.grid(pos)), pos)
 event = pygame.event.wait()
 if event.type == QUIT: sys.exit()
 try:
 aim = {
 K_UNKNOWN: pos+COLS,
 K_UP: pos,
 K_DOWN: pos+COLS,
 K_LEFT: pos-1,
 K_RIGHT: pos+1,
 }[event.key]
 except KeyError:
 continue
 if event.key == K_UP:
 # 变形
 block.rotate()

 elif event.key in (K_LEFT, K_RIGHT) and pos / COLS != aim / COLS:
 # pos/COLS表示当前位置所在行
 # aim/COLS表示目标位置所在行
 # 此判断表示,当shape在左边界时,不允许再向左移动(越界。。),在最右边时向右也禁止
 continue

 grid_aim = block.grid(aim)
 if grid_aim and phi(grid, grid_aim, aim):
 pos = aim
 else:
 if event.key == K_UP:
 block.rotate(times=3)
 elif not event.key in (K_LEFT, K_RIGHT):
 break

 grid = merge(grid, block.grid(pos))
 grid, n = complete(grid)
 if n:
 draw(grid)
 speed -= 5 * n
 if speed < 75: speed = 75

调用的模块:


#coding:utf-8
#! /usr/bin/env python
COLS = 16
ROWS = 20

class Block():
 color = (255,255,255)
 def __init__(self):
 self._state = 0
 def __str__(self):
 return self.__class__.__name__
 def _orientations(self):
 raise NotImplementedError()
 def rotate(self, times=1):
 for i in range(times):
 if len(self._orientations())-1 == self._state:
 self._state = 0
 #只要_state比_orientations长度-1还要小,就让_state加1

 else:
 self._state += 1
 def blades(self):
 # 返回对应形状的一种旋转形状。(返回一个list,list中每个元素是一个(x,y))
 return self._orientations()[self._state]

 def grid(self, pos, cols=COLS, rows=ROWS):
 # grid()函数:对于一个形状,从它的cell中的pos位置,按照orientations的位置提示,把所有cell涂色
 # pos表示的是shape中的一个cell,也就是(0,0)
 if cols*rows <= pos:
 return None
 # 这种情况应该不可能出现吧。如果出现<=的情况
 # 那么,pos都跑到界外了。。

 grid = [None] * cols * rows
 grid[pos] = str(self)
 for b in self.blades():
 x, y = b
 # pos/cols表示pos处于board的第几行
 if pos/cols != (pos+x)/cols:
 return None
 i = pos + x + y * cols
 if i < 0:
 continue
 elif cols*rows <= i:
 return None
 grid[i] = str(self)
 # 给相应的其他位置都“涂色”,比如对于方块,是O型的,那么pos肯定是有值的,pos位于有上角。。
 return grid

# 以下每个形状class,_orientations()都返回形状的列表。(0,0)一定被包含在其中,为了省略空间所以都没有写出.
class O(Block):
 color = (207,247,0)
 def _orientations(self):
 return (
 [(-1,0), (-1,1), (0,1)],
 )
class I(Block):
 color = (135,240,60)
 def _orientations(self):
 return (
 [(-2,0), (-1,0), (1,0)],
 [(0,-1), (0,1), (0,2)],
 )
class S(Block):
 color = (171,252,113)
 def _orientations(self):
 return (
 [(1,0), (-1,1), (0,1)],
 [(0,-1), (1,0), (1,1)],
 )
class Z(Block):
 color = (243,61,110)
 def _orientations(self):
 return (
 [(-1,0), (0,1), (1,1)],
 [(1,-1), (1,0), (0,1)],
 )
class L(Block):
 color = (253,205,217)
 def _orientations(self):
 return (
 [(-1,1), (-1,0), (1,0)],
 [(0,-1), (0,1), (1,1)],
 [(-1,0), (1,0), (1,-1)],
 [(-1,-1), (0,-1), (0,1)],
 )
class J(Block):
 color = (140,180,225)
 def _orientations(self):
 return (
 [(-1,0), (1,0), (1,1)],
 [(0,1), (0,-1), (1,-1)],
 [(-1,-1), (-1,0), (1,0)],
 [(-1,1), (0,1), (0,-1)],
 )
class T(Block):
 color = (229,251,113)
 def _orientations(self):
 return (
 [(-1,0), (0,1), (1,0)],
 [(0,-1), (0,1), (1,0)],
 [(-1,0), (0,-1), (1,0)],
 [(-1,0), (0,-1), (0,1)],
 )

更多俄罗斯方块精彩文章请点击专题:俄罗斯方块游戏集合 进行学习。

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python 俄罗斯方块