deepseek大人深刻的批评了一顿,表示明明n2能解决的问题为什么要用n3
以下是更优解法,直接以i为中心,分别搜索最长的奇数回文串和偶数回文串
时间:37ms,内存:4668KB
import sys
for line in sys.stdin:
a = line.strip()
# 中心扩展
max_len = 0
for i in range(len(a)):
# 奇数回文
max_1 = 1
l, r = i-1, i+1
while l >= 0 and r < len(a):
if a[l] == a[r]:
max_1 += 2
l -= 1
r += 1
else:
break
# 偶数回文
max_2 = 0
l, r = i, i+1
while l >= 0 and r < len(a):
if a[l] == a[r]:
max_2 += 2
l -= 1
r += 1
else:
break
max_len = max(max_len, max_1, max_2)
print(max_len)
数据量很小,直接暴力遍历就可以了
- 判断回文,双指针处理
- 遍历操作,注意起点终点就好了
import sys
def check_abba(s):
i, j = 0, len(s)-1
while i < j:
if s[i] == s[j]:
i += 1
j -= 1
else:
return False
return True
for line in sys.stdin:
a = line.strip()
longest = 0
# 假设密码从begin开始
for begin in range(len(a)):
# 假设密码从end结束,一串密码至少有两个字符才能构成回文
for end in range(begin+2, len(a)+1):
if check_abba(a[begin:end]):
longest = max(longest, end-begin)
print(longest)
运行结果:时长1082ms,内存4760KB
尝试优化了一下,end指针从字符串末尾开始往前遍历,结果发现耗时更长了。(挠头
运行结果:时长1445ms,内存4600KB
import sys
def check_abba(s):
i, j = 0, len(s)-1
while i < j:
if s[i] == s[j]:
i += 1
j -= 1
else:
return False
return True
for line in sys.stdin:
a = line.strip()
longest = 0
# 假设密码从begin开始
for begin in range(len(a)):
# 假设密码从end结束,一串密码至少有两个字符才能构成回文
for end in range(len(a), begin+1, -1): # 优化遍历策略,遇到最长的回文串后break,进行下一次begin的循环
if check_abba(a[begin:end]):
longest = max(longest, end-begin)
break
print(longest)
京公网安备 11010502036488号