Last updated on October 5th, 2024 at 08:55 pm
Here, We see Minimum Genetic Mutation LeetCode Solution. This Leetcode problem is done in many programming languages like C++, Java, JavaScript, Python, etc. with different approaches.
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Topics
String
Companies
Level of Question
Medium
Minimum Genetic Mutation LeetCode Solution
Table of Contents
Problem Statement
A gene string can be represented by an 8-character long string, with choices from ‘A’, ‘C’, ‘G’, and ‘T’.
Suppose we need to investigate a mutation from a gene string startGene to a gene string endGene where one mutation is defined as one single character changed in the gene string.
- For example, “AACCGGTT” –> “AACCGGTA” is one mutation.
There is also a gene bank bank that records all the valid gene mutations. A gene must be in bank to make it a valid gene string.
Given the two gene strings startGene and endGene and the gene bank bank, return the minimum number of mutations needed to mutate from startGene to endGene. If there is no such a mutation, return -1.
Note that the starting point is assumed to be valid, so it might not be included in the bank.
Example 1:
Input: startGene = “AACCGGTT”, endGene = “AACCGGTA”, bank = [“AACCGGTA”]
Output: 1
Example 2:
Input: startGene = “AACCGGTT”, endGene = “AAACGGTA”, bank = [“AACCGGTA”,”AACCGCTA”,”AAACGGTA”]
Output: 2
1. Minimum Genetic Mutation LeetCode Solution C++
class Solution { public: int minMutation(string startGene, string endGene, vector<string>& bank) { queue<string> q; unordered_map<string, int> vis; int steps = 0; q.push(startGene); vis[startGene] = 1; while (!q.empty()) { for (int i = q.size(); i > 0; i--) { string s = q.front(); q.pop(); if (s == endGene) return steps; for (int j = 0; j < 8; j++) { char oc = s[j]; for (int k = 0; k < 4; k++) { s[j] = "ACGT"[k]; if (!vis[s] && find(bank.begin(), bank.end(), s) != bank.end()) { q.push(s); vis[s] = 1; } } s[j] = oc; } } steps += 1; } return -1; } };
2. Minimum Genetic Mutation LeetCode Solution Java
class Solution { public int minMutation(String startGene, String endGene, String[] bank) { Queue<String> q = new LinkedList<>(); HashSet<String> vis = new HashSet<String>(); List<String> banks = Arrays.asList(bank); int steps = 0; q.add(startGene); vis.add(startGene); while (!q.isEmpty()) { for (int i = q.size(); i > 0; i--) { String s = q.poll(); if (s.equals(endGene)) return steps; char[] ca = s.toCharArray(); for (int j = 0; j < 8; j++) { char oc = ca[j]; for (int k = 0; k < 4; k++) { ca[j] = "ACGT".charAt(k); String t = new String(ca); if (!vis.contains(t) && banks.contains(t)) { q.add(t); vis.add(t); } } ca[j] = oc; } } steps += 1; } return -1; } }
3. Minimum Genetic Mutation Solution JavaScript
var minMutation = function(startGene, endGene, bank) { const choices = ['A', 'C', 'G', 'T']; const queue = [startGene]; const seen = new Set([startGene]); let steps = 0; while (queue.length !== 0) { const nodesInQueue = queue.length; for (let j = 0; j < nodesInQueue; j++) { const node = queue.shift(); if (node === endGene) return steps; for (const choice of choices) { for (let i = 0; i < node.length; i++) { const neighbor = node.substring(0, i) + choice + node.substring(i + 1); if (!seen.has(neighbor) && bank.includes(neighbor)) { queue.push(neighbor); seen.add(neighbor); } } } } steps++; } return -1; }
4. Minimum Genetic Mutation Solution Python
class Solution(object): def minMutation(self, startGene, endGene, bank): queue, seen = deque([(startGene, 0)]), {startGene} while queue: s, n = queue.popleft() if s == endGene: return n for i in range(8): for ch in 'ACGT': m = s[:i]+ch+s[i+1:] if m in bank and m not in seen: seen.add(m) queue.append((m, n+1)) return -1