本文深入探讨了一种复杂的字符串模式匹配算法,通过分析不同情况下的特殊处理逻辑,提供了一个详细的实现思路与官方代码示例。文章首先介绍了在特定条件下(如pattern和value长度为0)的直接判断方法,随后通过调整pattern中字符类型占比,引入了双指针技术来匹配pattern与value中的字符,确保了匹配过程的正确性和效率。
题目描述:
思路:说实话完全没有思路。甚至于看了题解也没有思路。先看一下简单的几种容易理解的特殊情况。1.当value长度为0时候,当pattern长度为0或者pattern都是a或都是b时候返回true,否则返回false。2.当value长度不为0时候,pattern长度为0则返回false,pattern长度为1时,返回true。
之后。。附上官方的思路:
附上官方的代码:
class Solution {
public boolean patternMatching(String pattern, String value) {
int count_a = 0, count_b = 0;
for (char ch: pattern.toCharArray()) {
if (ch == 'a') {
++count_a;
} else {
++count_b;
}
}
if (count_a < count_b) {
int temp = count_a;
count_a = count_b;
count_b = temp;
char[] array = pattern.toCharArray();
for (int i = 0; i < array.length; i++) {
array[i] = array[i] == 'a' ? 'b' : 'a';
}
pattern = new String(array);
}
if (value.length() == 0) {
return count_b == 0;
}
if (pattern.length() == 0) {
return false;
}
for (int len_a = 0; count_a * len_a <= value.length(); ++len_a) {
int rest = value.length() - count_a * len_a;
if ((count_b == 0 && rest == 0) || (count_b != 0 && rest % count_b == 0)) {
int len_b = (count_b == 0 ? 0 : rest / count_b);
int pos = 0;
boolean correct = true;
String value_a = "", value_b = "";
for (char ch: pattern.toCharArray()) {
if (ch == 'a') {
String sub = value.substring(pos, pos + len_a);
if (value_a.length() == 0) {
value_a = sub;
} else if (!value_a.equals(sub)) {
correct = false;
break;
}
pos += len_a;
} else {
String sub = value.substring(pos, pos + len_b);
if (value_b.length() == 0) {
value_b = sub;
} else if (!value_b.equals(sub)) {
correct = false;
break;
}
pos += len_b;
}
}
if (correct && !value_a.equals(value_b)) {
return true;
}
}
}
return false;
}
}
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