Given a list of strings words and a string pattern, return a list of words[i] that match pattern. You may return the answer in any order.
A word matches the pattern if there exists a permutation of letters p so that after replacing every letter x in the pattern with p(x), we get the desired word.
Recall that a permutation of letters is a bijection from letters to letters: every letter maps to another letter, and no two letters map to the same letter.
Example 1:
Input: words = ["abc","deq","mee","aqq","dkd","ccc"], pattern = "abb"
Output: ["mee","aqq"]
Explanation: "mee" matches the pattern because there is a permutation {a -> m, b -> e, ...}.
"ccc" does not match the pattern because {a -> c, b -> c, ...} is not a permutation, since a and b map to the same letter.
Example 2:
Input: words = ["a","b","c"], pattern = "a"
Output: ["a","b","c"]
Constraints:
1 <= pattern.length <= 201 <= words.length <= 50words[i].length == pattern.lengthpattern and words[i] are lowercase English letters.在一个单词列表中找到所有符合pattern形式的单词。
问题可以转化为找到所有的单词,使这个单词中的字符能与pattern中的字符建立起一对一的映射。
class Solution {
public List<String> findAndReplacePattern(String[] words, String pattern) {
List<String> ans = new ArrayList<>();
for (String word : words) {
if (judge(word, pattern)) ans.add(word);
}
return ans;
}
private boolean judge(String word, String pattern) {
if (word.length() != pattern.length()) return false;
Map<Character, Character> dict = new HashMap<>();
for (int i = 0; i < word.length(); i++) {
char c1 = word.charAt(i);
char c2 = pattern.charAt(i);
if (!dict.containsKey(c1) && dict.containsValue(c2)) {
return false;
} else if (!dict.containsKey(c1)) {
dict.put(c1, c2);
} else if (dict.get(c1) != c2) {
return false;
}
}
return true;
}
}
0890. Find and Replace Pattern (M)
原文:https://www.cnblogs.com/mapoos/p/14797463.html