288. Unique Word Abbreviation

时间:2021-02-08 14:52:40

题目:

An abbreviation of a word follows the form <first letter><number><last letter>. Below are some examples of word abbreviations:

a) it                      --> it    (no abbreviation)

     1

b) d|o|g                   --> d1g

              1    1  1

     1---5----0----5--8

c) i|nternationalizatio|n  --> i18n

              1

     1---5----0

d) l|ocalizatio|n          --> l10n

Assume you have a dictionary and given a word, find whether its abbreviation is unique in the dictionary. A word's abbreviation is unique if no other word from the dictionary has the same abbreviation.

Example:

Given dictionary = [ "deer", "door", "cake", "card" ]

isUnique("dear") -> false

isUnique("cart") -> true

isUnique("cane") -> false

isUnique("make") -> true

链接: http://leetcode.com/problems/unique-word-abbreviation/

题解:

新题的题目真是越来越长了。 这道题是给定一个数组Dictionary, 求输入字符串是否有unique的abbreviation在Dictionary中。我们选择用Map<String, Set<String>>来做我们存储数据的数据结构,然后按照题意做就可以了,还需要判断一些边界条件,比如缩写不在map中直接返回true之类的。 以后一定要牢记,选定了好的数据结构,编写程序就会容易很多。

Time Complexity - O(n * L), Space Complexity - O(n * L)。

public class ValidWordAbbr {

    private Map<String, HashSet<String>> map;

    public ValidWordAbbr(String[] dictionary) {

        this.map = new HashMap<>();

        for(int i = 0; i < dictionary.length; i++) {

            String abbr = getAbbr(dictionary[i]);

            if(!map.containsKey(abbr)) {

                HashSet<String> set = new HashSet<>();

                set.add(dictionary[i]);

                map.put(abbr, set);

            } else {

                if(!map.get(abbr).contains(dictionary[i])) {

                    map.get(abbr).add(dictionary[i]);

                }

            }

        }

    }

    public boolean isUnique(String word) {

        if(map.size() == 0 || word.length() < 3) {

            return true;

        }

        String abbr = getAbbr(word);

        if(!map.containsKey(abbr) || (map.get(abbr).contains(word) && map.get(abbr).size() == 1)) {

            return true;

        } else {

            return false;

        }

    }

    private String getAbbr(String s) {

        if(s.length() < 3) {

            return s;

        } else {

            return s.substring(0, 1) + String.valueOf(s.length() - 2) + s.substring(s.length() - 1);

        }

    }

}

// Your ValidWordAbbr object will be instantiated and called as such:

// ValidWordAbbr vwa = new ValidWordAbbr(dictionary);

// vwa.isUnique("Word");

// vwa.isUnique("anotherWord");

二刷:

跟一刷的方法一样。就是跟Anagram一样,用Map<String, Set<String>>来存,使用一个新的方法getAbbr先求出abbr作为key,然后把单词加入到key的value里。  Discuss里面还有很多很好的方法,用map<String, String>之类的,三刷要好好研究。

Java:

Time Complexity - O(n * L), Space Complexity - O(n * L)。

public class ValidWordAbbr {

    Map<String, Set<String>> map;

    public ValidWordAbbr(String[] dictionary) {

        map = new HashMap<>();

        for (String s : dictionary) {

            String abbr = getAbbr(s);

            if (!map.containsKey(abbr)) {

                map.put(abbr, new HashSet<String>());

            }

            map.get(abbr).add(s);

        }

    }

    public boolean isUnique(String word) {

        String abbr = getAbbr(word);

        if (!map.containsKey(abbr) || (map.get(abbr).contains(word) && map.get(abbr).size() == 1)) {

            return true;

        }

        return false;

    }

    private String getAbbr(String s) {

        if (s.length() < 3) {

            return s;

        }

        int len = s.length();

        return s.substring(0, 1) + (len - 2) + s.substring(len - 1);

    }

}

// Your ValidWordAbbr object will be instantiated and called as such:

// ValidWordAbbr vwa = new ValidWordAbbr(dictionary);

// vwa.isUnique("Word");

// vwa.isUnique("anotherWord");

Reference:

https://leetcode.com/discuss/62842/a-simple-java-solution-using-map-string-string

https://leetcode.com/discuss/61658/share-my-java-solution

https://leetcode.com/discuss/71652/java-solution-with-hashmap-string-string-beats-submissions

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