1.翻转
代码
输入数据,每组数据进行比较,j的范围掐头去尾,若a[j]==b[j],继续,若出现010,101子串则改成000,111,遍历完后比较a是否等于b,相同则输出次数,不同则输出-1。
for _ in range(int(input())):
a = list(input())
b = list(input())
cnt = 0
for j in range(1,len(a)-1):
if a[j] == b[j]:
continue
elif b[j-1]==b[j+1] and b[j] != b[j-1]:
b[j]=b[j-1]
cnt += 1
print(cnt if a==b else -1)
2.取模
暴力:(只能通过90%)
def f(n,m)->bool:
for y in range(1,m+1):
for x in range(1,y):
if n%x == n%y:
return True
return False
t = int(input())
for _ in range(t):
a,b = map(int,input().split())
print('Yes' if f(a,b) else 'No')
抽屉原理:
for _ in range(int(input())):
chk=0
n,m=map(int,input().split())
for i in range(m,1,-1):
if(n%i != (i-1)):
chk=1
break
print("Yes") if chk else print("No")