E. Correcting Mistakes
time limit per test
2 seconds
memory limit per test
256 megabytes
input
standard input
output
standard output
Analyzing the mistakes people make while typing search queries is a complex and an interesting work. As there is no guaranteed way to determine what the user originally meant by typing some query, we have to use different sorts of heuristics.
Polycarp needed to write a code that could, given two words, check whether they could have been obtained from the same word as a result of typos. Polycarpus suggested that the most common typo is skipping exactly one letter as you type a word.
Implement a program that can, given two distinct words S and T of the same length n determine how many words W of length n + 1 are there with such property that you can transform W into both S, and T by deleting exactly one character. Words S and T consist of lowercase English letters. Word W also should consist of lowercase English letters.
Input
The first line contains integer n (1 ≤ n ≤ 100 000) — the length of words S and T.
The second line contains word S.
The third line contains word T.
Words S and T consist of lowercase English letters. It is guaranteed that S and T are distinct words.
Output
Print a single integer — the number of distinct words W that can be transformed to S and T due to a typo.
Examples
input
Copy
7 reading tradingoutput
Copy
1input
Copy
5 sweet sheepoutput
Copy
0input
Copy
3 toy tryoutput
Copy
2Note
In the first sample test the two given words could be obtained only from word "treading" (the deleted letters are marked in bold).
In the second sample test the two given words couldn't be obtained from the same word by removing one letter.
In the third sample test the two given words could be obtained from either word "tory" or word "troy".
题目大意:给你两个字符串,这两个串都是在原串的基础上减去一个字母得到的,问你原串有几种可能性。
思路:原串最多的可能性就就是2,只需要看两个串不同地方的区间就可以。
/*
@Author: Top_Spirit
@Language: C++
*/
#include <bits/stdc++.h>
using namespace std ;
typedef unsigned long long ull ;
typedef long long ll ;
const int Maxn = 1e5 +10 ;
const int Max = 26;
const int INF = 0x3f3f3f3f ;
string s1, s2 ;
int main (){
int n ;
cin >> n >> s1 >> s2 ;
int l = INF, r = -INF ;
for (int i = 0; i < n; i++){
if (s1[i] != s2[i]){
l = min(l, i) ;
r = max(r, i) ;
}
}
int ans1 = 1 , ans2 = 1 ;
for (int i = l + 1; i <= r; i++){
if (s1[i] != s2[i - 1]) ans1 = 0 ;
if (s1[i - 1] != s2[i]) ans2 = 0 ;
}
cout << ans1 + ans2 << endl ;
return 0 ;
}
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