Last active
June 13, 2019 09:02
-
-
Save bertptrs/3ec95457ee50d95e1a6e28237e68ed09 to your computer and use it in GitHub Desktop.
Pythonic proof that a certain Einstein-like puzzle was impossible
This file contains hidden or bidirectional Unicode text that may be interpreted or compiled differently than what appears below. To review, open the file in an editor that reveals hidden Unicode characters.
Learn more about bidirectional Unicode characters
| import itertools | |
| import sys | |
| PEOPLE = ['Pieter', 'Maaike', 'Kim', 'Tim', 'Patrieck'] | |
| AGES = ['Bever', 'Welp', 'Scout', 'Explorer', 'Rover'] | |
| BADGES = ['Das', 'Knopen', 'EHBO', 'Boomhut', 'Vissen'] | |
| def adjacent(group, *args): | |
| # Exchange to make the table non-circular | |
| # for i in range(len(group) - 1): | |
| for i in range(len(group)): | |
| if group[i] in args and \ | |
| group[(i + 1) % len(group)] in args: | |
| return True | |
| return False | |
| def index_of(group, k): | |
| for i, v in enumerate(group): | |
| if v == k: | |
| return i | |
| sys.exit('Did not find ' + k + ' in ' + str(group)) | |
| for order in itertools.permutations(PEOPLE): | |
| if order[1] != 'Tim': | |
| continue | |
| if order[0] in ['Pieter', 'Patrieck']: | |
| continue | |
| # check if together | |
| if not adjacent(order, 'Pieter', 'Maaike'): | |
| continue | |
| for badges in itertools.permutations(BADGES): | |
| if badges[2] != 'Knopen': | |
| continue | |
| boom_index = index_of(badges, 'Boomhut') | |
| if order[boom_index][0] == 'P': | |
| continue | |
| for ages in itertools.permutations(AGES): | |
| welp_index = index_of(ages, 'Welp') | |
| if order[welp_index][0] == 'P': | |
| continue | |
| rover_index = index_of(ages, 'Rover') | |
| if adjacent(badges, badges[rover_index], 'Vissen'): | |
| continue | |
| print('Solution:', order, badges, ages) |
Sign up for free
to join this conversation on GitHub.
Already have an account?
Sign in to comment