0953. Verifying an Alien Dictionary (E)
Verifying an Alien Dictionary (E)
题目
In an alien language, surprisingly they also use english lowercase letters, but possibly in a different order
. The order
of the alphabet is some permutation of lowercase letters.
Given a sequence of words
written in the alien language, and the order
of the alphabet, return true
if and only if the given words
are sorted lexicographicaly in this alien language.
Example 1:
Input: words = ["hello","leetcode"], order = "hlabcdefgijkmnopqrstuvwxyz"
Output: true
Explanation: As 'h' comes before 'l' in this language, then the sequence is sorted.
Example 2:
Input: words = ["word","world","row"], order = "worldabcefghijkmnpqstuvxyz"
Output: false
Explanation: As 'd' comes after 'l' in this language, then words[0] > words[1], hence the sequence is unsorted.
Example 3:
Input: words = ["apple","app"], order = "abcdefghijklmnopqrstuvwxyz"
Output: false
Explanation: The first three characters "app" match, and the second string is shorter (in size.) According to lexicographical rules "apple" > "app", because 'l' > '∅', where '∅' is defined as the blank character which is less than any other character (More info).
Constraints:
1 <= words.length <= 100
1 <= words[i].length <= 20
order.length == 26
- All characters in
words[i]
andorder
are English lowercase letters.
题意
给定一个自定义的字典序,判断一个字符串数组是否递增。
思路
Hash的应用。
代码实现
Java
class Solution {
public boolean isAlienSorted(String[] words, String order) {
int[] priority = new int[26];
for (int i = 0; i < 26; i++) {
priority[order.charAt(i) - 'a'] = i;
}
for (int i = 0; i < words.length - 1; i++) {
if (compare(words[i], words[i + 1], priority) == 1) return false;
}
return true;
}
private int compare(String a, String b, int[] priority) {
for (int i = 0; i < Math.min(a.length(), b.length()); i++) {
char ca = a.charAt(i), cb = b.charAt(i);
if (priority[ca - 'a'] > priority[cb - 'a']) {
return 1;
} else if (priority[ca - 'a'] < priority[cb - 'a']) {
return -1;
}
}
return a.length() == b.length() ? 0 : a.length() > b.length() ? 1 : -1;
}
}