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  • [LeetCode] Combination Sum II

    Combination Sum II

    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, a1 ≤ a2 ≤ … ≤ 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] 

    Solution:

    int differentCandidatesNum;
    int* differentCandidates;
    int* differentCandidatesCount;
    vector<vector<int> > ans;
    int targ;
    
    
    void dfs(int k, int curSum, vector<int> curCount)
    {
        /*
        cout << "k = " << k << " curSum = " << curSum << endl;
        cout << "curCount: ";
        for(int i = 0;i < curCount.size();i++)
            cout << curCount[i] << " ";
        cout << endl;
        */
        if(curSum > targ) 
            return;
        if(curSum == targ)
        {
            vector<int> curCom;
            for(int i = 0;i < curCount.size();i++)
                for(int j = 0;j < curCount[i];j++)
                    curCom.push_back(differentCandidates[i]);
            ans.push_back(curCom);
            return;
        }
    
        if(k >= differentCandidatesNum) 
            return;
    
        //try the k the no duplicate candidates
        //choose 0 to differentCandidatesCount[k]'s k to check if this is a good combination
    
        for(int i = 0;i <= differentCandidatesCount[k];i++)
        {
            curCount.push_back(i);
            dfs(k + 1, curSum + i * differentCandidates[k], curCount);
            curCount.pop_back();
        }
    }
    
    
    vector<vector<int> > combinationSum2(vector<int> &num, int target) {
            if(num.size() == 0) return ans;
    
            //sort the candidate num
            for(int i = 0;i < num.size();i++)
            {
                bool continueBubble = false;
    
                for(int j = 0;j < num.size() - i - 1;j++)
                {
                    if(num[j] > num[j + 1])
                    {
                        int tmp = num[j];
                        num[j] = num[j + 1];
                        num[j + 1] = tmp;
                        continueBubble = true;
                    }
                }
    
                if(continueBubble == false)
                    break;
            }
    
            //get no duplicate candidates
            int curNum = num[0], counter = 1;
            differentCandidates = new int[num.size()];
            differentCandidatesCount = new int[num.size()];
            differentCandidatesNum = 0;
            
            for(int i = 1;i < num.size();i++)
            {
                if(curNum == num[i]) 
                {
                    counter++;
                }
                else
                {
                    differentCandidates[differentCandidatesNum] = curNum;
                    differentCandidatesCount[differentCandidatesNum] = counter;
                    differentCandidatesNum++;
                    counter = 1;
                    curNum = num[i];
                }
            }
            //add last no duplicate candidate
            differentCandidates[differentCandidatesNum] = curNum;
            differentCandidatesCount[differentCandidatesNum] = counter;
            differentCandidatesNum++;
        //    for(int i = 0;i < differentCandidatesNum;i++)
        //        cout << differentCandidates[i] << " num = " << differentCandidatesCount[i] << endl;
            
            //begin dfs to search combinations.
            targ = target;
            vector<int> cur;
            dfs(0, 0, cur);
    
            delete [] differentCandidates;
            return ans;
        }
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  • 原文地址:https://www.cnblogs.com/changchengxiao/p/3834763.html
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