Trie-Trie-Trie!!!

-

Leetcode is obsessed with Tries. It is indeed a useful data structure, and someone fun to implement with a hashtable and recursion. Here is their latest: Implement Trie II (Prefix Tree) - LeetCode

1804. Implement Trie II (Prefix Tree)
Medium

trie (pronounced as "try") or prefix tree is a tree data structure used to efficiently store and retrieve keys in a dataset of strings. There are various applications of this data structure, such as autocomplete and spellchecker.

Implement the Trie class:

  • Trie() Initializes the trie object.
  • void insert(String word) Inserts the string word into the trie.
  • int countWordsEqualTo(String word) Returns the number of instances of the string word in the trie.
  • int countWordsStartingWith(String prefix) Returns the number of strings in the trie that have the string prefix as a prefix.
  • void erase(String word) Erases the string word from the trie.

 

Example 1:

Input
["Trie", "insert", "insert", "countWordsEqualTo", "countWordsStartingWith", "erase", "countWordsEqualTo", "countWordsStartingWith", "erase", "countWordsStartingWith"]
[[], ["apple"], ["apple"], ["apple"], ["app"], ["apple"], ["apple"], ["app"], ["apple"], ["app"]]
Output
[null, null, null, 2, 2, null, 1, 1, null, 0]

Explanation
Trie trie = new Trie();
trie.insert("apple");               // Inserts "apple".
trie.insert("apple");               // Inserts another "apple".
trie.countWordsEqualTo("apple");    // There are two instances of "apple" so return 2.
trie.countWordsStartingWith("app"); // "app" is a prefix of "apple" so return 2.
trie.erase("apple");                // Erases one "apple".
trie.countWordsEqualTo("apple");    // Now there is only one instance of "apple" so return 1.
trie.countWordsStartingWith("app"); // return 1
trie.erase("apple");                // Erases "apple". Now the trie is empty.
trie.countWordsStartingWith("app"); // return 0

 

Constraints:

  • 1 <= word.length, prefix.length <= 2000
  • word and prefix consist only of lowercase English letters.
  • At most 3 * 104 calls in total will be made to insertcountWordsEqualTocountWordsStartingWith, and erase.
  • It is guaranteed that for any function call to erase, the string word will exist in the trie.

The most complicated part of this solution is to count all the prefixes. That requires, in my case:

1/ A function inside the class that takes as input an instance of the class itself

2/ A full DFS to account for all the prefixes

Code is below, cheers, ACC

public class Trie
{
    private Hashtable children = null;
    private int numberInstances = 0;
    public Trie()
    {
        children = new Hashtable();
        numberInstances = 0;
    }

    public void Insert(string word)
    {
        if (String.IsNullOrEmpty(word))
        {
            numberInstances++;
            return;
        }

        if (!children.ContainsKey(word[0])) children.Add(word[0], new Trie());
        Trie child = (Trie)children[word[0]];
        child.Insert(word.Substring(1));
    }

    public int CountWordsEqualTo(string word)
    {
        if (String.IsNullOrEmpty(word)) return numberInstances;

        if (!children.ContainsKey(word[0])) return 0;
        Trie child = (Trie)children[word[0]];
        return child.CountWordsEqualTo(word.Substring(1));
    }

    public int CountWordsStartingWith(string prefix)
    {
        if (String.IsNullOrEmpty(prefix)) return CountAll(this);

        if (!children.ContainsKey(prefix[0])) return 0;
        Trie child = (Trie)children[prefix[0]];
        return child.CountWordsStartingWith(prefix.Substring(1));
    }

    private int CountAll(Trie trie)
    {
        if (trie == null) return 0;
        int result = trie.numberInstances;

        if (trie.children != null)
        {
            foreach (char c in trie.children.Keys)
            {
                Trie child = (Trie)trie.children[c];
                result += CountAll(child);
            }
        }

        return result;
    }

    public void Erase(string word)
    {
        if (String.IsNullOrEmpty(word))
        {
            if(numberInstances > 0) numberInstances--;
            return;
        }

        if (!children.ContainsKey(word[0])) return;
        Trie child = (Trie)children[word[0]];
        child.Erase(word.Substring(1));
    }
}

Comments

Post a Comment

Popular posts from this blog

Count Binary Substrings

-
Image
Problem by Leetcode:  https://leetcode.com/problems/count-binary-substrings/description/ Give a string  s , count the number of non-empty (contiguous) substrings that have the same number of 0's and 1's, and all the 0's and all the 1's in these substrings are grouped consecutively. Substrings that occur multiple times are counted the number of times they occur. Example 1: Input: "00110011" Output: 6 Explanation: There are 6 substrings that have equal number of consecutive 1's and 0's: "0011", "01", "1100", "10", "0011", and "01". Notice that some of these substrings repeat and are counted the number of times they occur. Also, "00110011" is not a valid substring because all the 0's (and 1's) are not grouped together. Example 2: Input: "10101" Output: 4 Explanation: There are 4 substrings: "10", "01", "10", "01&
Read more

Count Vowels Permutation: Standard DP

-
Image
Standard DP problem:  https://leetcode.com/problems/count-vowels-permutation/ Given an integer  n , your task is to count how many strings of length  n  can be formed under the following rules: Each character is a lower case vowel ( 'a' ,  'e' ,  'i' ,  'o' ,  'u' ) Each vowel  'a'  may only be followed by an  'e' . Each vowel  'e'  may only be followed by an  'a'  or an  'i' . Each vowel  'i'   may not  be followed by another  'i' . Each vowel  'o'  may only be followed by an  'i'  or a  'u' . Each vowel  'u'  may only be followed by an  'a'. Since the answer may be too large, return it modulo  10^9 + 7. Example 1: Input: n = 1 Output: 5 Explanation: All possible strings are: "a", "e", "i" , "o" and "u". Example 2: Input: n = 2 Output: 10 Explanation: All possible strings are
Read more

Maximum Number of Balloons

-
Image
#431 in my solved list:  https://leetcode.com/problems/maximum-number-of-balloons/ Given a string  text , you want to use the characters of  text  to form as many instances of the word  "balloon"  as possible. You can use each character in  text   at most once . Return the maximum number of instances that can be formed.   Example 1: Input: text = "nlaebolko" Output: 1 Example 2: Input: text = "loonbalxballpoon" Output: 2 Example 3: Input: text = "leetcode" Output: 0 Constraints: 1 <= text.length <= 10^4 text  consists of lower case English letters only. Solution is as follows:  - Count the number of occurrences of the "balloon" letters in the input string  - For "l" and "o", divide the count by 2  - If the balloon string is not fully covered, return 0  - Return the min number across all occurrences Code is below, cheers, ACC. public class Solution {     public int M
Read more