题解 | #Zero-complexity Transposition#
String Matching
http://www.nowcoder.com/practice/00438b0bc9384ceeb65613346b42e88a
/*
描述
字符串匹配
输入描述:
For each case, there are two strings T and P on a line,separated by a single space.You may assume both the length of T and P will not exceed 10^6.
输出描述:
You should output a number on a separate line,which indicates the number of valid shifts for the given text T and pattern P.
*/
#include<iostream> #include<string> #include<vector> using namespace std; vector<int> getNext(string pattern) { vector<int> arr; arr.push_back(0); int x = 1, now = 0; while (x < pattern.size()) { if (pattern[now] == pattern[x]) { now++; x++; arr.push_back(now); } else if (now > 0) { now = arr[now - 1]; } else { x++; arr.push_back(0); } } return arr; } int countMatch(string text, string pattern, vector<int> arr_next) { int n = text.size(), m = pattern.size(); int count = 0; int i=0, j = 0; while (i < n) { if (text[i] == pattern[j]) { i++; j++; } else if (j>0){ j = arr_next[j - 1]; } else { // j = 0 in this case, move the text pointer one step right. i++; } if (j == m) { // match count++; j = arr_next[j - 1]; } } return count; } int BruceForce(string text, string pattern, int count=0) { int n = text.size(); int m = pattern.size(); for (int i = 0; i <= n - m; ++i) if (text.substr(i, m) == pattern) count++; return count; } int main() { string pattern, text; cin >> text >> pattern; int count = 0; // method1: KMP algotithm vector<int> arr_next; arr_next = getNext(pattern); count = countMatch(text, pattern, arr_next); // method 2 : Bruce force //count = BruceForce(text, pattern); cout << count << endl; return 0; }