针对此问题,给出了一个主字符串和另一种通配符模式。在该算法中,它将检查通配符模式是否与主要文本匹配。
通配符模式可以包含字母或“ *”或“?” 符号。'?' 用于匹配单个字符,“ *”用于匹配字符序列,包括空格。
当字符为“ *”时:我们可以忽略星号,然后移动以检查模式中的下一个字符。
当下一个字符为“?”时,我们可以仅忽略文本中的当前字符,并检查模式和文本中的下一个字符。
当图案字符不是'*'和'?'时,则如果图案和文本的当前字符匹配,则仅进一步移动。
Input: The main string and the wildcard pattern. Main String “Algorithm” Pattern “A*it?m” Output: The 模式匹配。
wildcardMatch(text, pattern)
输入:主要文字和图案。
输出: 当通配符模式与主要文本匹配时为True。
Begin n := length of the text m := length of pattern if m = 0, then return 0 if n = 0, otherwise return 1 i := 0, j := 0 while i < n, do if text[i] == pattern[i], then increase i by 1 increase j by 1 else if j < m and pattern[j] is ? mark, then increase i by 1 increase j by 1 else if j < m and pattern[j] is * symbol, then textPointer := i patPointer := j increase j by 1 else if patPointer is already updated, then j := patPointer + 1 i := textPinter + 1 increase textPointer by 1 else return false done while j < m and pattern[j] = * symbol, do increase j by 1 done if j = m, then return true return false End
#include<iostream> using namespace std; bool wildcardMatch(string text, string pattern) { int n = text.size(); int m = pattern.size(); if (m == 0) //when pattern is empty return (n == 0); int i = 0, j = 0, textPointer = -1, pattPointer = -1; while (i < n) { if (text[i] == pattern[j]) { //matching text and pattern characters i++; j++; }else if (j < m && pattern[j] == '?') { //as ? used for one character i++; j++; }else if (j < m && pattern[j] == '*') { //as * used for one or more character textPointer = i; pattPointer = j; j++; }else if (pattPointer != -1) { j = pattPointer + 1; i = textPointer + 1; textPointer++; }else return false; } while (j < m && pattern[j] == '*') { j++; //j will increase when wildcard is * } if (j == m) { //check whether pattern is finished or not return true; } return false; } int main() { string text; string pattern; cout << "Enter Text: "; cin >> text; cout << "Enter wildcard pattern: "; cin >> pattern; if (wildcardMatch(text, pattern)) cout << "模式匹配。" << endl; else cout << "Pattern is not matched" << endl; }
输出结果
Enter Text: Algorithm Enter wildcard pattern: A*it?m 模式匹配。