2026-rff_mp/AgapovaDS/docs/data/2-nd/maze.py

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import time
from collections import deque
import heapq
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class Cell:
def __init__(self, x, y, is_wall=False, is_start=False, is_exit=False):
self.x = x
self.y = y
self.is_wall = is_wall
self.is_start = is_start
self.is_exit = is_exit
def is_passable(self):
return not self.is_wall
class Maze:
def __init__(self, width, height):
self.width = width
self.height = height
self.grid = [[Cell(x, y) for y in range(height)] for x in range(width)]
self.start_cell = None
self.exit_cell = None
def get_cell(self, x, y):
if 0 <= x < self.width and 0 <= y < self.height:
return self.grid[x][y]
return None
def get_neighbors(self, cell):
neighbors = []
for dx, dy in [(-1,0), (1,0), (0,-1), (0,1)]:
nx, ny = cell.x + dx, cell.y + dy
neighbor = self.get_cell(nx, ny)
if neighbor and neighbor.is_passable():
neighbors.append(neighbor)
return neighbors
class MazeBuilder:
def build_from_file(self, filename):
raise NotImplementedError
class TextFileMazeBuilder(MazeBuilder):
def build_from_file(self, filename):
with open(filename, 'r', encoding='utf-8') as f:
lines = f.readlines()
lines = [line.rstrip('\n') for line in lines if line.strip() != '']
if not lines:
raise ValueError("Файл пуст")
height = len(lines)
width = max(len(line) for line in lines)
maze = Maze(width, height)
for y, line in enumerate(lines):
for x, ch in enumerate(line):
if x >= width:
break
cell = maze.get_cell(x, y)
if ch == '#':
cell.is_wall = True
elif ch == 'S':
cell.is_start = True
maze.start_cell = cell
elif ch == 'E':
cell.is_exit = True
maze.exit_cell = cell
if maze.start_cell is None or maze.exit_cell is None:
raise ValueError("В лабиринте должны быть S и E")
return maze
class PathFindingStrategy:
def find_path(self, maze, start, exit):
raise NotImplementedError
class BFSStrategy(PathFindingStrategy):
def find_path(self, maze, start, exit):
if start == exit:
return [start]
queue = deque([start])
visited = {start}
parent = {start: None}
while queue:
current = queue.popleft()
if current == exit:
break
for neighbor in maze.get_neighbors(current):
if neighbor not in visited:
visited.add(neighbor)
parent[neighbor] = current
queue.append(neighbor)
if exit not in parent:
return []
path = []
step = exit
while step is not None:
path.append(step)
step = parent[step]
path.reverse()
return path
class DFSStrategy(PathFindingStrategy):
def find_path(self, maze, start, exit):
if start == exit:
return [start]
stack = [start]
visited = {start}
parent = {start: None}
while stack:
current = stack.pop()
if current == exit:
break
for neighbor in maze.get_neighbors(current):
if neighbor not in visited:
visited.add(neighbor)
parent[neighbor] = current
stack.append(neighbor)
if exit not in parent:
return []
path = []
step = exit
while step is not None:
path.append(step)
step = parent[step]
path.reverse()
return path
class AStarStrategy(PathFindingStrategy):
def heuristic(self, a, b):
return abs(a.x - b.x) + abs(a.y - b.y)
def find_path(self, maze, start, exit):
if start == exit:
return [start]
open_set = []
heapq.heappush(open_set, (0, id(start), start))
came_from = {}
g_score = {start: 0}
f_score = {start: self.heuristic(start, exit)}
while open_set:
_, _, current = heapq.heappop(open_set)
if current == exit:
path = []
step = current
while step is not None:
path.append(step)
step = came_from.get(step)
path.reverse()
return path
for neighbor in maze.get_neighbors(current):
tentative_g = g_score[current] + 1
if neighbor not in g_score or tentative_g < g_score[neighbor]:
came_from[neighbor] = current
g_score[neighbor] = tentative_g
f_score[neighbor] = tentative_g + self.heuristic(neighbor, exit)
heapq.heappush(open_set, (f_score[neighbor], id(neighbor), neighbor))
return []
class MazeSolver:
def __init__(self, maze, strategy=None):
self.maze = maze
self.strategy = strategy
def set_strategy(self, strategy):
self.strategy = strategy
def solve(self):
if self.strategy is None:
raise ValueError("Стратегия не установлена")
start = self.maze.start_cell
exit_cell = self.maze.exit_cell
if start is None or exit_cell is None:
raise ValueError("Лабиринт не содержит старта или выхода")
start_time = time.perf_counter()
path = self.strategy.find_path(self.maze, start, exit_cell)
end_time = time.perf_counter()
elapsed_ms = (end_time - start_time) * 1000
return path, elapsed_ms
# Test search
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if __name__ == '__main__':
builder = TextFileMazeBuilder()
maze = builder.build_from_file('test_maze.txt')
solver = MazeSolver(maze)
solver.set_strategy(BFSStrategy())
path, ms = solver.solve()
print("BFS путь:", [f"({c.x},{c.y})" for c in path])
print(f"Время: {ms:.3f} мс")
solver.set_strategy(DFSStrategy())
path, ms = solver.solve()
print("DFS путь:", [f"({c.x},{c.y})" for c in path])
print(f"Время: {ms:.3f} мс")
solver.set_strategy(AStarStrategy())
path, ms = solver.solve()
print("A* путь:", [f"({c.x},{c.y})" for c in path])
print(f"Время: {ms:.3f} мс")