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There is a secret string which is unknown to you. Given a collection of random triplets from the string, recover the original string.
A triplet here is defined as a sequence of three letters such that each letter occurs somewhere before the next in the given string. "whi" is a triplet for the string "whatisup".
As a simplification, you may assume that no letter occurs more than once in the secret string.
You can assume nothing about the triplets given to you other than that they are valid triplets and that they contain sufficient information to deduce the original string. In particular, this means that the secret string will never contain letters that do not occur in one of the triplets given to you.
secret = "whatisup"
triplets = [
['t','u','p'],
['w','h','i'],
['t','s','u'],
['a','t','s'],
['h','a','p'],
['t','i','s'],
['w','h','s']
]
test.assert_equals(recoverSecret(triplets), secret)
题意是 给你 triplets,每组从左到右代表优先级 比如 t>u>p 就是 t在u的左边,u在p的左边
然后让你找出符合条件的字符串
思路:
先把每个字符存起来,然后排序,假如位置反了就交换
直到一轮排序中没有交换就 return
def recoverSecret(triplets):
'triplets is a list of triplets from the secrent string. Return the string.'
lic = []
for i in range(len(triplets)):
for j in range(len(triplets[i])):
lic.append(triplets[i][j])
lic = set(lic)
lic = list(lic)
while True:
cnt = 0
for i in range(len(triplets)):
for j in range(len(triplets[i]) - 1):
a = triplets[i][j]
b = triplets[i][j + 1]
index_a = lic.index(a)
index_b = lic.index(b)
if index_a > index_b:
temp = lic[index_b]
lic[index_b] = lic[index_a]
lic[index_a] = temp
cnt += 1
if cnt == 0:
return ''.join(lic)