[面试题 16.18][中等] 模式匹配
题目描述
你有两个字符串,即pattern和value。 pattern字符串由字母"a"和"b"组成,用于描述字符串中的模式。例如,字符串"catcatgocatgo"匹配模式"aabab"(其中"cat"是"a","go"是"b"),该字符串也匹配像"a"、"ab"和"b"这样的模式。但需注意"a"和"b"不能同时表示相同的字符串。编写一个方法判断value字符串是否匹配pattern字符串。
示例 1:
输入: pattern = "abba", value = "dogcatcatdog"
输出: true示例 2:
输入: pattern = "abba", value = "dogcatcatfish"
输出: false示例 3:
输入: pattern = "aaaa", value = "dogcatcatdog"
输出: false示例 4:
输入: pattern = "abba", value = "dogdogdogdog"
输出: true
解释: "a"="dogdog",b="",反之也符合规则提示:
0 <= len(pattern) <= 1000
0 <= len(value) <= 1000
你可以假设pattern只包含字母"a"和"b",value仅包含小写字母。
解题思路
简单来说就是枚举a模式和b模式各自对应的子串所有可能的长度, 然后判别是否整体是否匹配.
参考:
class Solution:
def patternMatching(self, pattern: str, value: str) -> bool:
n, m = len(value), len(pattern)
if m == 0:
return True if n == 0 else False
first, second = 'a', 'b'
first_num = sum([t == first for t in pattern])
second_num = m - first_num
if second_num > first_num:
first, second = second, first
first_num, second_num = second_num, first_num
if n == 0:
return True if second_num == 0 else False
available = []
len_first, len_second = 0, 0
while len_first <= n:
if second_num == 0:
if len_first > 0:
available.append((len_first, 0))
else:
len_second = (n - len_first * first_num) / second_num
if len_second < 1:
break
if (n - len_first * first_num) % second_num == 0:
available.append((len_first, int(len_second)))
len_first += 1
if not available:
return False
for flen, slen in available:
f, s = None, None
cur, bfalse = 0, 0
for i, t1 in enumerate(pattern):
if t1 == first:
tmp = value[cur: cur + flen]
if f is None:
f = tmp
else:
if tmp != f:
bfalse = 1
break
cur += flen
else:
tmp = value[cur: cur + slen]
if s is None:
s = tmp
else:
if tmp != s:
bfalse = 1
break
cur += slen
if cur == n and i == m - 1 and not bfalse:
return True
return False最后更新于
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