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#yyds干货盘点# LeetCode面试题:组合总和 II

时间:2023-03-06 23:32:49浏览次数:40  
标签:yyds 面试题 get int pos rest II candidates freq

1.简述:

给定一个候选人编号的集合 candidates 和一个目标数 target ,找出 candidates 中所有可以使数字和为 target 的组合。

candidates 中的每个数字在每个组合中只能使用 一次 。

注意:解集不能包含重复的组合。 

 

示例 1:

输入: candidates = [10,1,2,7,6,1,5], target = 8,

输出:

[

[1,1,6],

[1,2,5],

[1,7],

[2,6]

]

示例 2:

输入: candidates = [2,5,2,1,2], target = 5,

输出:

[

[1,2,2],

[5]

]

2.代码实现:

class Solution {
List<int[]> freq = new ArrayList<int[]>();
List<List<Integer>> ans = new ArrayList<List<Integer>>();
List<Integer> sequence = new ArrayList<Integer>();

public List<List<Integer>> combinationSum2(int[] candidates, int target) {
Arrays.sort(candidates);
for (int num : candidates) {
int size = freq.size();
if (freq.isEmpty() || num != freq.get(size - 1)[0]) {
freq.add(new int[]{num, 1});
} else {
++freq.get(size - 1)[1];
}
}
dfs(0, target);
return ans;
}

public void dfs(int pos, int rest) {
if (rest == 0) {
ans.add(new ArrayList<Integer>(sequence));
return;
}
if (pos == freq.size() || rest < freq.get(pos)[0]) {
return;
}

dfs(pos + 1, rest);

int most = Math.min(rest / freq.get(pos)[0], freq.get(pos)[1]);
for (int i = 1; i <= most; ++i) {
sequence.add(freq.get(pos)[0]);
dfs(pos + 1, rest - i * freq.get(pos)[0]);
}
for (int i = 1; i <= most; ++i) {
sequence.remove(sequence.size() - 1);
}
}
}

标签:yyds,面试题,get,int,pos,rest,II,candidates,freq
From: https://blog.51cto.com/u_15488507/6104093

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