Problem Description
Fang Fang says she wants to be remembered.
I promise her. We define the sequence F of strings.
F0 = ‘‘f",
F1 = ‘‘ff",
F2 = ‘‘cff",
Fn = Fn−1 + ‘‘f", for n > 2
Write down a serenade as a lowercase string S in a circle, in a loop that never ends.
Spell the serenade using the minimum number of strings in F, or nothing could be done but put her away in cold wilderness.
I promise her. We define the sequence F of strings.
F0 = ‘‘f",
F1 = ‘‘ff",
F2 = ‘‘cff",
Fn = Fn−1 + ‘‘f", for n > 2
Write down a serenade as a lowercase string S in a circle, in a loop that never ends.
Spell the serenade using the minimum number of strings in F, or nothing could be done but put her away in cold wilderness.
Input
An positive integer T, indicating there are T test cases.
Following are T lines, each line contains an string S as introduced above.
The total length of strings for all test cases would not be larger than 106.
Following are T lines, each line contains an string S as introduced above.
The total length of strings for all test cases would not be larger than 106.
Output
The output contains exactly T lines.
For each test case, if one can not spell the serenade by using the strings in F, output −1. Otherwise, output the minimum number of strings in F to split S according to aforementioned rules. Repetitive strings should be counted repeatedly.
For each test case, if one can not spell the serenade by using the strings in F, output −1. Otherwise, output the minimum number of strings in F to split S according to aforementioned rules. Repetitive strings should be counted repeatedly.
Sample Input
8 ffcfffcffcff cffcfff cffcff cffcf ffffcffcfff cffcfffcffffcfffff cff cffc
Sample Output
Case #1: 3 Case #2: 2 Case #3: 2 Case #4: -1 Case #5: 2 Case #6: 4 Case #7: 1 Case #8: -1
Hint
Shift the string in the
first test case, we will get the string "cffffcfffcff" and it can be split into "cffff", "cfff" and "cff".Source
模拟判断,具体思路,首先他说是首尾相接的,所以先把开头第一个c之前的f移到总串的后面,这样字符串就是c开头的或全f,拍着判断即可,如果有别的字符就是-1的情况。
代码:
#include <iostream>
#include <cstdio>
#include <cstring>
#define MAX 1000000
#define DMAX 1000000
#define MOD 1000000007
using namespace std;
typedef long long ll;
int n;
char s[MAX + 2],cs[MAX + 2];
int main() {
scanf("%d",&n);
for(int i = 1;i <= n;i ++) {
scanf("%s",s);
int j,len = strlen(s);
for(j = 0;s[j];j ++) {
if(s[j] != 'f') break;
}
strcpy(cs,s + j);
s[j] = 0;
strcat(cs,s);
printf("Case #%d: ",i);
if(cs[0] == 'f') printf("%d
",(len + 1) / 2);
else {
int ans = 0;
for(int i = 0;cs[i];i ++) {
if(cs[i] == 'c') {
if(cs[i + 1] != 'f' || cs[i + 2] != 'f') {
ans = -1;
break;
}
else {
ans ++;
i += 2;
}
}
else if(cs[i] != 'f') {
ans = -1;
break;
}
}
printf("%d
",ans);
}
}
}