added day 12
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23
12/input01.txt
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23
12/input01.txt
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he-JK
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wy-KY
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pc-XC
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vt-wy
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LJ-vt
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wy-end
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wy-JK
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end-LJ
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start-he
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JK-end
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pc-wy
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LJ-pc
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at-pc
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xf-XC
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XC-he
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pc-JK
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vt-XC
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at-he
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pc-he
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start-at
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start-XC
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at-LJ
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vt-JK
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7
12/input01_sample01.txt
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7
12/input01_sample01.txt
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start-A
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start-b
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A-c
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A-b
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b-d
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A-end
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b-end
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10
12/input01_sample02.txt
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10
12/input01_sample02.txt
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dc-end
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HN-start
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start-kj
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dc-start
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dc-HN
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LN-dc
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HN-end
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kj-sa
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kj-HN
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kj-dc
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18
12/input01_sample03.txt
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18
12/input01_sample03.txt
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fs-end
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he-DX
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fs-he
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start-DX
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pj-DX
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end-zg
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zg-sl
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zg-pj
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pj-he
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RW-he
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fs-DX
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pj-RW
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zg-RW
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start-pj
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he-WI
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zg-he
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pj-fs
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start-RW
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37
12/solve01.py
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37
12/solve01.py
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#!/usr/bin/env python
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import copy
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graph = dict()
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def calculate_paths(graph, current, small_seen, path):
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found = 0
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for n in graph.get(current):
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if n == 'start':
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continue
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if n in small_seen:
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continue
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p = copy.copy(path)
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p.append(n)
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#print(p)
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#print("%s -> %s" % (current, n))
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if n == 'end':
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found += 1
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continue
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sm = copy.copy(small_seen)
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if n.lower() == n:
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sm.append(n)
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found += calculate_paths(graph, n, sm, p)
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return found
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with open("input01.txt","r") as f:
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for line in f:
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(x,y) = line.strip().split("-",2)
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if x not in graph:
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graph[x] = []
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graph[x].append(y)
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if y not in graph:
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graph[y] = []
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graph[y].append(x)
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#print(graph)
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print(calculate_paths(graph, 'start', [], ['start']))
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41
12/solve02.py
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41
12/solve02.py
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#!/usr/bin/env python
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import copy
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from collections import defaultdict
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graph = dict()
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def calculate_paths(graph, current, small_seen, path):
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if current == 'end':
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return 1
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found = 0
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for n in sorted(graph.get(current)):
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if n == 'start':
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continue
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# already seen, check if there is any with count
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if small_seen[n] > 0:
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tmp = max(small_seen.values())
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if tmp > 1:
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continue
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p = copy.copy(path)
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p.append(n)
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#print("%s -> %s" % (current, n))
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sm = copy.copy(small_seen)
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if n.lower() == n:
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sm[n] += 1
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found += calculate_paths(graph, n, sm, p)
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return found
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with open("input01.txt","r") as f:
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for line in f:
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(x,y) = line.strip().split("-",2)
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if x not in graph:
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graph[x] = []
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graph[x].append(y)
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if y not in graph:
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graph[y] = []
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graph[y].append(x)
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#print(graph)
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small_seen = defaultdict(int)
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print(calculate_paths(graph, 'start', small_seen, ['start']))
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