Merge pull request '[1] firstex' (#340) from ZhuravlevDV/2026-rff_mp:ZhuravlevDV into develop
Reviewed-on: #340
This commit is contained in:
commit
b4154dafa7
212
ZhuravlevDV/docs/data/firstex/LinkedListPhoneBook.py
Normal file
212
ZhuravlevDV/docs/data/firstex/LinkedListPhoneBook.py
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@ -0,0 +1,212 @@
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import time
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import random
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import csv
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def ll_insert(head, name, phone):
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new_node = {'name': name, 'phone': phone, 'next': None}
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if head is None:
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return new_node
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current = head
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while current['next']:
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current = current['next']
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current['next'] = new_node
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return head
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def ll_find(head, name):
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current = head
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while current:
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if current['name'] == name:
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return current['phone']
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current = current['next']
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return None
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def ll_delete(head, name):
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if head is None:
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return None
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if head['name'] == name:
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return head['next']
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current = head
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while current['next']:
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if current['next']['name'] == name:
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current['next'] = current['next']['next']
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return head
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current = current['next']
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return head
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def ll_list_all(head):
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records = []
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current = head
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while current:
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records.append((current['name'], current['phone']))
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current = current['next']
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records.sort(key=lambda x: x[0])
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return records
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def ht_insert(buckets, name, phone):
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index = hash(name) % len(buckets)
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buckets[index] = ll_insert(buckets[index], name, phone)
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return buckets
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def ht_find(buckets, name):
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index = hash(name) % len(buckets)
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return ll_find(buckets[index], name)
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def ht_delete(buckets, name):
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index = hash(name) % len(buckets)
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buckets[index] = ll_delete(buckets[index], name)
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return buckets
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def ht_list_all(buckets):
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records = []
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for bucket in buckets:
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current = bucket
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while current:
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records.append((current['name'], current['phone']))
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current = current['next']
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records.sort(key=lambda x: x[0])
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return records
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def bst_insert(root, name, phone):
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if root is None:
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return {'name': name, 'phone': phone, 'left': None, 'right': None}
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if name < root['name']:
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root['left'] = bst_insert(root['left'], name, phone)
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elif name > root['name']:
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root['right'] = bst_insert(root['right'], name, phone)
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else:
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root['phone'] = phone
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return root
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def bst_find(root, name):
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if root is None:
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return None
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if name == root['name']:
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return root['phone']
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elif name < root['name']:
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return bst_find(root['left'], name)
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else:
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return bst_find(root['right'], name)
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def bst_min_node(node):
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current = node
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while current['left']:
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current = current['left']
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return current
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def bst_delete(root, name):
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if root is None:
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return None
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if name < root['name']:
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root['left'] = bst_delete(root['left'], name)
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elif name > root['name']:
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root['right'] = bst_delete(root['right'], name)
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else:
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if root['left'] is None:
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return root['right']
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elif root['right'] is None:
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return root['left']
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temp = bst_min_node(root['right'])
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root['name'] = temp['name']
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root['phone'] = temp['phone']
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root['right'] = bst_delete(root['right'], temp['name'])
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return root
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def bst_list_all(root):
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records = []
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if root:
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records.extend(bst_list_all(root['left']))
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records.append((root['name'], root['phone']))
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records.extend(bst_list_all(root['right']))
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return records
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def generate_records(n):
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records = [(f"User_{i:05d}", f"+7-999-{i:07d}") for i in range(n)]
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records_shuffled = records.copy()
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random.shuffle(records_shuffled)
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records_sorted = sorted(records, key=lambda x: x[0])
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return records_shuffled, records_sorted
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def run_experiment(structure_name, records, insert_func, find_func, delete_func, list_all_func, buckets=None):
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if structure_name == "HashTable":
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buckets = [None] * 1000
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start = time.perf_counter()
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if structure_name == "HashTable":
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for name, phone in records:
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buckets = insert_func(buckets, name, phone)
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else:
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root_or_head = None
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for name, phone in records:
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if structure_name == "LinkedList":
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root_or_head = insert_func(root_or_head, name, phone)
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else:
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root_or_head = insert_func(root_or_head, name, phone)
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insert_time = time.perf_counter() - start
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existing_names = [name for name, _ in records[:100]]
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nonexisting_names = [f"None_{i}" for i in range(10)]
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all_searches = existing_names + nonexisting_names
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random.shuffle(all_searches)
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start = time.perf_counter()
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for name in all_searches:
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if structure_name == "HashTable":
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find_func(buckets, name)
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else:
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find_func(root_or_head, name)
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find_time = time.perf_counter() - start
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delete_names = [records[i][0] for i in random.sample(range(len(records)), min(50, len(records)))]
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start = time.perf_counter()
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for name in delete_names:
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if structure_name == "HashTable":
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buckets = delete_func(buckets, name)
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else:
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root_or_head = delete_func(root_or_head, name)
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delete_time = time.perf_counter() - start
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return insert_time, find_time, delete_time
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def main():
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N = 1000
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records_shuffled, records_sorted = generate_records(N)
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results = []
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for mode, records in [("случайный", records_shuffled), ("отсортированный", records_sorted)]:
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for run in range(5):
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ins_ll, find_ll, del_ll = run_experiment("LinkedList", records, ll_insert, ll_find, ll_delete, ll_list_all)
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results.append(["LinkedList", mode, "вставка", ins_ll, run+1])
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results.append(["LinkedList", mode, "поиск", find_ll, run+1])
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results.append(["LinkedList", mode, "удаление", del_ll, run+1])
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ins_ht, find_ht, del_ht = run_experiment("HashTable", records, ht_insert, ht_find, ht_delete, ht_list_all)
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results.append(["HashTable", mode, "вставка", ins_ht, run+1])
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results.append(["HashTable", mode, "поиск", find_ht, run+1])
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results.append(["HashTable", mode, "удаление", del_ht, run+1])
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ins_bst, find_bst, del_bst = run_experiment("BST", records, bst_insert, bst_find, bst_delete, bst_list_all)
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results.append(["BST", mode, "вставка", ins_bst, run+1])
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results.append(["BST", mode, "поиск", find_bst, run+1])
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results.append(["BST", mode, "удаление", del_bst, run+1])
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with open("results.csv", "w", newline="", encoding="utf-8") as f:
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writer = csv.writer(f)
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writer.writerow(["Структура", "Режим", "Операция", "Время (сек)", "Повторение"])
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writer.writerows(results)
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avg_results = {}
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for row in results:
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key = (row[0], row[1], row[2])
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if key not in avg_results:
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avg_results[key] = []
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avg_results[key].append(row[3])
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with open("avg_results.csv", "w", newline="", encoding="utf-8") as f:
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writer = csv.writer(f)
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writer.writerow(["Структура", "Режим", "Операция", "Среднее время (сек)"])
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for (struct, mode, op), times in avg_results.items():
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writer.writerow([struct, mode, op, sum(times)/len(times)])
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if __name__ == "__main__":
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main()
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395
ZhuravlevDV/docs/data/secondex/wayoutoflabirint.py
Normal file
395
ZhuravlevDV/docs/data/secondex/wayoutoflabirint.py
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@ -0,0 +1,395 @@
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import heapq
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import time
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import csv
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from abc import ABC, abstractmethod
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class Cell:
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def __init__(self, x, y, is_wall=False, is_start=False, is_exit=False):
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self.x = x
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self.y = y
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self.is_wall = is_wall
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self.is_start = is_start
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self.is_exit = is_exit
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def is_passable(self):
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return not self.is_wall
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class Maze:
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def __init__(self, width, height):
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self.width = width
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self.height = height
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self.grid = [[None for _ in range(width)] for _ in range(height)]
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self.start = None
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self.exit = None
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def set_cell(self, x, y, cell):
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self.grid[y][x] = cell
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if cell.is_start:
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self.start = cell
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if cell.is_exit:
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self.exit = cell
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def get_cell(self, x, y):
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if 0 <= x < self.width and 0 <= y < self.height:
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return self.grid[y][x]
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return None
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def get_neighbors(self, cell):
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neighbors = []
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directions = [(0, -1), (0, 1), (-1, 0), (1, 0)]
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for dx, dy in directions:
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nx, ny = cell.x + dx, cell.y + dy
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neighbor = self.get_cell(nx, ny)
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if neighbor and neighbor.is_passable():
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neighbors.append(neighbor)
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return neighbors
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class MazeBuilder(ABC):
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@abstractmethod
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def build_from_file(self, filename):
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pass
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class TextFileMazeBuilder(MazeBuilder):
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def build_from_file(self, filename):
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with open(filename, 'r', encoding='utf-8') as f:
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lines = [line.rstrip('\n') for line in f.readlines()]
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height = len(lines)
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width = len(lines[0]) if height > 0 else 0
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maze = Maze(width, height)
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for y, line in enumerate(lines):
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for x, ch in enumerate(line):
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is_wall = (ch == '#')
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is_start = (ch == 'S')
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is_exit = (ch == 'E')
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is_passable = (ch == ' ' or is_start or is_exit)
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cell = Cell(x, y, is_wall=is_wall, is_start=is_start, is_exit=is_exit)
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maze.set_cell(x, y, cell)
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return maze
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class PathFindingStrategy(ABC):
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@abstractmethod
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def find_path(self, maze, start, exit):
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pass
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class BFSStrategy(PathFindingStrategy):
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def find_path(self, maze, start, exit):
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if not start or not exit:
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return []
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queue = [(start, [start])]
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visited = set()
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while queue:
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current, path = queue.pop(0)
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if current == exit:
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return path
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if current in visited:
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continue
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visited.add(current)
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for neighbor in maze.get_neighbors(current):
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if neighbor not in visited:
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queue.append((neighbor, path + [neighbor]))
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return []
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class DFSStrategy(PathFindingStrategy):
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def find_path(self, maze, start, exit):
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if not start or not exit:
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return []
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stack = [(start, [start])]
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visited = set()
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while stack:
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current, path = stack.pop()
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if current == exit:
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return path
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if current in visited:
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continue
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visited.add(current)
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for neighbor in maze.get_neighbors(current):
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if neighbor not in visited:
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stack.append((neighbor, path + [neighbor]))
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return []
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class AStarStrategy(PathFindingStrategy):
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def heuristic(self, cell, exit):
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return abs(cell.x - exit.x) + abs(cell.y - exit.y)
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def find_path(self, maze, start, exit):
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if not start or not exit:
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return []
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open_set = [(0, id(start), start)]
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came_from = {}
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g_score = {start: 0}
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f_score = {start: self.heuristic(start, exit)}
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while open_set:
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_, _, current = heapq.heappop(open_set)
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if current == exit:
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path = []
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while current in came_from:
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path.append(current)
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current = came_from[current]
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path.append(start)
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path.reverse()
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return path
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for neighbor in maze.get_neighbors(current):
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tentative_g = g_score[current] + 1
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if neighbor not in g_score or tentative_g < g_score[neighbor]:
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came_from[neighbor] = current
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g_score[neighbor] = tentative_g
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f_score[neighbor] = tentative_g + self.heuristic(neighbor, exit)
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heapq.heappush(open_set, (f_score[neighbor], id(neighbor), neighbor))
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return []
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class DijkstraStrategy(PathFindingStrategy):
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def find_path(self, maze, start, exit):
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if not start or not exit:
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return []
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pq = [(0, id(start), start)]
|
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distances = {start: 0}
|
||||
came_from = {}
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||||
|
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while pq:
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dist, _, current = heapq.heappop(pq)
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if current == exit:
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path = []
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while current in came_from:
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path.append(current)
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current = came_from[current]
|
||||
path.append(start)
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||||
path.reverse()
|
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return path
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||||
|
||||
if dist > distances.get(current, float('inf')):
|
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continue
|
||||
|
||||
for neighbor in maze.get_neighbors(current):
|
||||
new_dist = dist + 1
|
||||
|
||||
if new_dist < distances.get(neighbor, float('inf')):
|
||||
distances[neighbor] = new_dist
|
||||
came_from[neighbor] = current
|
||||
heapq.heappush(pq, (new_dist, id(neighbor), neighbor))
|
||||
|
||||
return []
|
||||
|
||||
class SearchStats:
|
||||
def __init__(self, time_ms, visited_cells, path_length, path=None):
|
||||
self.time_ms = time_ms
|
||||
self.visited_cells = visited_cells
|
||||
self.path_length = path_length
|
||||
self.path = path
|
||||
|
||||
class MazeSolver:
|
||||
def __init__(self, maze, strategy=None):
|
||||
self.maze = maze
|
||||
self.strategy = strategy
|
||||
self.observers = []
|
||||
|
||||
def set_strategy(self, strategy):
|
||||
self.strategy = strategy
|
||||
|
||||
def attach(self, observer):
|
||||
self.observers.append(observer)
|
||||
|
||||
def notify(self, event):
|
||||
for observer in self.observers:
|
||||
observer.update(event)
|
||||
|
||||
def solve(self):
|
||||
if not self.strategy:
|
||||
raise ValueError("Strategy not set")
|
||||
|
||||
start_time = time.perf_counter()
|
||||
path = self.strategy.find_path(self.maze, self.maze.start, self.maze.exit)
|
||||
end_time = time.perf_counter()
|
||||
|
||||
time_ms = (end_time - start_time) * 1000
|
||||
visited_cells = len(path) if path else 0
|
||||
path_length = len(path) if path else 0
|
||||
|
||||
self.notify(f"Path found with length {path_length} in {time_ms:.2f}ms")
|
||||
|
||||
return SearchStats(time_ms, visited_cells, path_length, path)
|
||||
|
||||
class Observer(ABC):
|
||||
@abstractmethod
|
||||
def update(self, event):
|
||||
pass
|
||||
|
||||
class ConsoleView(Observer):
|
||||
def __init__(self):
|
||||
self.last_path = None
|
||||
|
||||
def update(self, event):
|
||||
print(f"[ConsoleView] {event}")
|
||||
|
||||
def render(self, maze, player_pos=None, path=None):
|
||||
print("\n" + "=" * (maze.width * 2 + 2))
|
||||
for y in range(maze.height):
|
||||
row = ""
|
||||
for x in range(maze.width):
|
||||
cell = maze.get_cell(x, y)
|
||||
if player_pos and cell == player_pos:
|
||||
row += "P "
|
||||
elif path and cell in path:
|
||||
row += "* "
|
||||
elif cell.is_start:
|
||||
row += "S "
|
||||
elif cell.is_exit:
|
||||
row += "E "
|
||||
elif cell.is_wall:
|
||||
row += "# "
|
||||
else:
|
||||
row += ". "
|
||||
print(row)
|
||||
print("=" * (maze.width * 2 + 2))
|
||||
|
||||
class Command(ABC):
|
||||
@abstractmethod
|
||||
def execute(self):
|
||||
pass
|
||||
|
||||
@abstractmethod
|
||||
def undo(self):
|
||||
pass
|
||||
|
||||
class Player:
|
||||
def __init__(self, start_cell):
|
||||
self.current = start_cell
|
||||
self.start = start_cell
|
||||
|
||||
def move_to(self, cell):
|
||||
self.current = cell
|
||||
|
||||
class MoveCommand(Command):
|
||||
def __init__(self, player, new_cell, maze):
|
||||
self.player = player
|
||||
self.new_cell = new_cell
|
||||
self.old_cell = player.current
|
||||
self.maze = maze
|
||||
|
||||
def execute(self):
|
||||
if self.new_cell.is_passable():
|
||||
self.player.move_to(self.new_cell)
|
||||
return True
|
||||
return False
|
||||
|
||||
def undo(self):
|
||||
self.player.move_to(self.old_cell)
|
||||
|
||||
def generate_test_mazes():
|
||||
mazes = {}
|
||||
|
||||
simple_maze = Maze(5, 5)
|
||||
for y in range(5):
|
||||
for x in range(5):
|
||||
is_wall = (x == 2 and y == 1) or (x == 2 and y == 2) or (x == 2 and y == 3)
|
||||
is_start = (x == 0 and y == 0)
|
||||
is_exit = (x == 4 and y == 4)
|
||||
cell = Cell(x, y, is_wall=is_wall, is_start=is_start, is_exit=is_exit)
|
||||
simple_maze.set_cell(x, y, cell)
|
||||
mazes["simple"] = simple_maze
|
||||
|
||||
empty_maze = Maze(20, 20)
|
||||
for y in range(20):
|
||||
for x in range(20):
|
||||
is_start = (x == 0 and y == 0)
|
||||
is_exit = (x == 19 and y == 19)
|
||||
cell = Cell(x, y, is_wall=False, is_start=is_start, is_exit=is_exit)
|
||||
empty_maze.set_cell(x, y, cell)
|
||||
mazes["empty"] = empty_maze
|
||||
|
||||
return mazes
|
||||
|
||||
def run_experiments():
|
||||
mazes = generate_test_mazes()
|
||||
strategies = {
|
||||
"BFS": BFSStrategy(),
|
||||
"DFS": DFSStrategy(),
|
||||
"AStar": AStarStrategy(),
|
||||
"Dijkstra": DijkstraStrategy()
|
||||
}
|
||||
|
||||
results = []
|
||||
|
||||
for maze_name, maze in mazes.items():
|
||||
for strat_name, strategy in strategies.items():
|
||||
solver = MazeSolver(maze, strategy)
|
||||
|
||||
times = []
|
||||
visited_counts = []
|
||||
path_lengths = []
|
||||
|
||||
for run in range(5):
|
||||
stats = solver.solve()
|
||||
times.append(stats.time_ms)
|
||||
visited_counts.append(stats.visited_cells)
|
||||
path_lengths.append(stats.path_length)
|
||||
|
||||
avg_time = sum(times) / len(times)
|
||||
avg_visited = sum(visited_counts) / len(visited_counts)
|
||||
avg_length = sum(path_lengths) / len(path_lengths)
|
||||
|
||||
results.append([maze_name, strat_name, avg_time, avg_visited, avg_length])
|
||||
print(f"{maze_name} | {strat_name}: {avg_time:.3f}ms, {avg_visited:.0f} cells, {avg_length:.0f} length")
|
||||
|
||||
with open("maze_results.csv", "w", newline="", encoding="utf-8") as f:
|
||||
writer = csv.writer(f)
|
||||
writer.writerow(["Лабиринт", "Стратегия", "Время_мс", "Посещено_клеток", "Длина_пути"])
|
||||
writer.writerows(results)
|
||||
|
||||
return results
|
||||
|
||||
def main():
|
||||
print("Testing maze loading...")
|
||||
builder = TextFileMazeBuilder()
|
||||
|
||||
try:
|
||||
maze = builder.build_from_file("maze.txt")
|
||||
print(f"Maze loaded: {maze.width}x{maze.height}")
|
||||
|
||||
solver = MazeSolver(maze)
|
||||
view = ConsoleView()
|
||||
solver.attach(view)
|
||||
|
||||
strategies = [BFSStrategy(), DFSStrategy(), AStarStrategy(), DijkstraStrategy()]
|
||||
|
||||
for strategy in strategies:
|
||||
solver.set_strategy(strategy)
|
||||
print(f"\n--- {strategy.__class__.__name__} ---")
|
||||
stats = solver.solve()
|
||||
view.render(maze, path=stats.path)
|
||||
print(f"Time: {stats.time_ms:.3f}ms, Path length: {stats.path_length}")
|
||||
|
||||
except FileNotFoundError:
|
||||
print("maze.txt not found, running experiments with generated mazes instead")
|
||||
|
||||
print("\n" + "="*50)
|
||||
print("Running experiments...")
|
||||
run_experiments()
|
||||
|
||||
if __name__ == "__main__":
|
||||
main()
|
||||
Loading…
Reference in New Issue
Block a user