Two strings are considered close if you can attain one from the other using the following operations:
- Operation 1: Swap any two existing characters.
- For example,
abcde -> aecdb
- For example,
- Operation 2: Transform every occurrence of one existing character into another existing character, and do the same with the other character.
- For example,
aacabb -> bbcbaa(alla's turn intob's, and allb's turn intoa's)
- For example,
You can use the operations on either string as many times as necessary.
Given two strings, word1 and word2, return true if word1 and word2 are close, and false otherwise.
Example 1:
Input: word1 = "abc", word2 = "bca" Output: true Explanation: You can attain word2 from word1 in 2 operations. Apply Operation 1: "abc" -> "acb" Apply Operation 1: "acb" -> "bca"
Example 2:
Input: word1 = "a", word2 = "aa" Output: false Explanation: It is impossible to attain word2 from word1, or vice versa, in any number of operations.
Example 3:
Input: word1 = "cabbba", word2 = "abbccc"
Output: true
Explanation: You can attain word2 from word1 in 3 operations.
Apply Operation 1: "cabbba" -> "caabbb"
Apply Operation 2: "caabbb" -> "baaccc"
Apply Operation 2: "baaccc" -> "abbccc"
Example 4:
Input: word1 = "cabbba", word2 = "aabbss" Output: false Explanation: It is impossible to attain word2 from word1, or vice versa, in any amount of operations.
Constraints:
1 <= word1.length, word2.length <= 105word1andword2contain only lowercase English letters.
class Solution { public boolean closeStrings(String word1, String word2) { if(word1.length() != word2.length()) return false; int[] freq1 = new int[26]; int[] freq2 = new int[26]; Set<Character> wd1 = new HashSet(); Set<Character> wd2 = new HashSet(); for(char c : word1.toCharArray()) { freq1[c - 'a']++; wd1.add(c); } for(char c : word2.toCharArray()) { freq2[c - 'a']++; wd2.add(c); } Arrays.sort(freq1); Arrays.sort(freq2); for(int i = 0; i < freq1.length; i++) { if(freq1[i] != freq2[i]) return false; } return wd1.equals(wd2); } }
有什么特征?
所包含的字母种类必须相同,频率也相同。