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  • Combination Sum II leetcode java

    题目

    Given a collection of candidate numbers (C) and a target number (T), find all unique combinations in C where the candidate numbers sums to T.

    Each number in C may only be used once in the combination.

    Note:

    • All numbers (including target) will be positive integers.
    • Elements in a combination (a1, a2, … , ak) must be in non-descending order. (ie, a1a2 ≤ … ≤ ak).
    • The solution set must not contain duplicate combinations.
    For example, given candidate set 10,1,2,7,6,1,5 and target 8,
    A solution set is:
    [1, 7]
    [1, 2, 5]
    [2, 6]

    [1, 1, 6]

    题解

    这道题跟combination sum本质的差别就是当前已经遍历过的元素只能出现一次。

    所以需要给每个candidate一个visited域,来标识是否已经visited了。

    当回退的时候,记得要把visited一起也回退了。

    代码如下:

     1     public static ArrayList<ArrayList<Integer>> combinationSum(int[] candidates, int target) {  
     2         ArrayList<ArrayList<Integer>> res = new ArrayList<ArrayList<Integer>>();  
     3         ArrayList<Integer> item = new ArrayList<Integer>();
     4         if(candidates == null || candidates.length==0)  
     5             return res; 
     6             
     7         Arrays.sort(candidates);  
     8         boolean [] visited = new boolean[candidates.length];
     9         helper(candidates,target, 0, item ,res, visited);  
    10         return res;  
    11     }  
    12     
    13     private static void helper(int[] candidates, int target, int start, ArrayList<Integer> item,   
    14     ArrayList<ArrayList<Integer>> res, boolean[] visited){  
    15         if(target<0)  
    16             return;  
    17         if(target==0){  
    18             res.add(new ArrayList<Integer>(item));  
    19             return;  
    20         }
    21         
    22         for(int i=start;i<candidates.length;i++){
    23             if(!visited[i]){
    24                 if(i>0 && candidates[i] == candidates[i-1] && visited[i-1]==false)//deal with dupicate
    25                     continue;  
    26                 item.add(candidates[i]);
    27                 visited[i]=true;
    28                 int newtarget = target - candidates[i];
    29                 helper(candidates,newtarget,i+1,item,res,visited);  
    30                 visited[i]=false;
    31                 item.remove(item.size()-1);  
    32             }
    33         }  
    34     } 

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  • 原文地址:https://www.cnblogs.com/springfor/p/3886057.html
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