标签:put The can coin nts google nta map ini
Given a value V, if we want to make change for V cents, and we have infinite supply of each of C = { C1, C2, .. , Cm} valued coins, what is the minimum number of coins to make the change? Examples: Input: coins[] = {25, 10, 5}, V = 30 Output: Minimum 2 coins required We can use one coin of 25 cents and one of 5 cents Input: coins[] = {9, 6, 5, 1}, V = 11 Output: Minimum 2 coins required We can use one coin of 6 cents and 1 coin of 5 cents
// "static void main" must be defined in a public class. public class Main { public static void main(String[] args) { int[] coins = {1,3,5}; System.out.println(new Solution().minCoinChangeRecursiveWithMemo(coins, 3, 50)); System.out.println(new Solution().minCoinChangeDP(coins, 3, 50)); } } class Solution { public int minCoinChangeRecursiveWithMemo(int[] coins, int m, int v){ HashMap<Integer, Integer> map = new HashMap<>(); return helper(coins, m, v, map); } public int helper(int[] coins, int m, int v, HashMap<Integer, Integer> map){ if(v == 0){ return 0; } if(map.containsKey(v)){ return map.get(v); } int min = Integer.MAX_VALUE; for(int i = 0; i < m; i++){ if(coins[i] <= v){ int sub_res = helper(coins, m, v-coins[i], map); if(sub_res != Integer.MAX_VALUE && sub_res + 1 < min){ min = sub_res+1; } } } map.put(v, min); return min; } public int minCoinChangeDP (int[] coins, int m, int v){ int[] dp = new int[v+1]; dp[0] = 0; for(int i= 1; i <= v; i++){ dp[i] = Integer.MAX_VALUE; for(int j = 0; j < m; j++){ if(coins[j] <= i){ if(dp[i - coins[j]] + 1 < dp[i]) { dp[i] = dp[i - coins[j]] + 1; } } } } return dp[v]; } }
Google - Find minimum number of coins that make a given value
标签:put The can coin nts google nta map ini
原文地址:https://www.cnblogs.com/incrediblechangshuo/p/10037150.html