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  • [LeetCode] 465. Optimal Account Balancing 最优账户平衡

    A group of friends went on holiday and sometimes lent each other money. For example, Alice paid for Bill's lunch for $10. Then later Chris gave Alice $5 for a taxi ride. We can model each transaction as a tuple (x, y, z) which means person x gave person y $z. Assuming Alice, Bill, and Chris are person 0, 1, and 2 respectively (0, 1, 2 are the person's ID), the transactions can be represented as [[0, 1, 10], [2, 0, 5]].

    Given a list of transactions between a group of people, return the minimum number of transactions required to settle the debt.

    Note:

    1. A transaction will be given as a tuple (x, y, z). Note that x ≠ y and z > 0.
    2. Person's IDs may not be linear, e.g. we could have the persons 0, 1, 2 or we could also have the persons 0, 2, 6.

    Example 1:

    Input:
    [[0,1,10], [2,0,5]]
    
    Output:
    2
    
    Explanation:
    Person #0 gave person #1 $10.
    Person #2 gave person #0 $5.
    
    Two transactions are needed. One way to settle the debt is person #1 pays person #0 and #2 $5 each.
    

    Example 2:

    Input:
    [[0,1,10], [1,0,1], [1,2,5], [2,0,5]]
    
    Output:
    1
    
    Explanation:
    Person #0 gave person #1 $10.
    Person #1 gave person #0 $1.
    Person #1 gave person #2 $5.
    Person #2 gave person #0 $5.
    
    Therefore, person #1 only need to give person #0 $4, and all debt is settled.

    这道题给了一堆某人欠某人多少钱这样的账单,问经过优化后最少还剩几个。其实就相当于一堆人出去玩,某些人可能帮另一些人垫付过花费,最后结算总花费的时候可能你欠着别人的钱,其他人可能也欠你的欠,需要找出简单的方法把所有欠账都还清就行了。这道题的思路跟之前那道 Evaluate Division 有些像,都需要对一组数据颠倒顺序处理。这里使用一个 HashMap 来建立每个人和其账户的映射,其中账户若为正数,说明其他人欠你钱;如果账户为负数,说明你欠别人钱。对于每份账单,前面的人就在 HashMap 中减去钱数,后面的人在哈希表中加上钱数。这样每个人就都有一个账户了,接下来要做的就是合并账户,看最少需要多少次汇款。先统计出账户值不为0的人数,因为如果为0了,表明你既不欠别人钱,别人也不欠你钱,如果不为0,把钱数放入一个数组 accnt 中,然后调用递归函数。在递归函数中,首先跳过为0的账户,然后看若此时 start 已经是 accnt 数组的长度了,说明所有的账户已经检测完了,用 cnt 来更新结果 res。否则就开始遍历之后的账户,如果当前账户和之前账户的钱数正负不同的话,将前一个账户的钱数加到当前账户上,这很好理解,比如前一个账户钱数是 -5,表示张三欠了别人5块钱,当前账户钱数是5,表示某人欠了李四5块钱,那么张三给李四5块,这两人的账户就都清零了。然后调用递归函数,此时从当前改变过的账户开始找,cnt 表示当前的转账数,需要加1,后面别忘了复原当前账户的值,典型的递归写法,参见代码如下:

    class Solution {
    public:
        int minTransfers(vector<vector<int>>& transactions) {
            int res = INT_MAX;
            unordered_map<int, int> m;
            for (auto t : transactions) {
                m[t[0]] -= t[2];
                m[t[1]] += t[2];
            }
            vector<int> accnt;
            for (auto a : m) {
                if (a.second != 0) accnt.push_back(a.second);
            }
            helper(accnt, 0, 0, res);
            return res;
        }
        void helper(vector<int>& accnt, int start, int cnt, int& res) {
            int n = accnt.size();
            while (start < n && accnt[start] == 0) ++start;
            if (start == n) {
                res = min(res, cnt);
                return;
            }
            for (int i = start + 1; i < n; ++i) {
                if ((accnt[i] < 0 && accnt[start] > 0) || (accnt[i] > 0 && accnt[start] < 0)) {
                    accnt[i] += accnt[start];
                    helper(accnt, start + 1, cnt + 1, res);
                    accnt[i] -= accnt[start];
                }
            }
        }
    };

    Github 同步地址:

    https://github.com/grandyang/leetcode/issues/465

    类似题目:

    Evaluate Division

    参考资料:

    https://leetcode.com/problems/optimal-account-balancing/

    https://leetcode.com/problems/optimal-account-balancing/discuss/95369/share-my-on-npc-solution-tle-for-large-case

    https://leetcode.com/problems/optimal-account-balancing/discuss/95355/11-liner-9ms-DFS-solution-(detailed-explanation)

    LeetCode All in One 题目讲解汇总(持续更新中...)

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  • 原文地址:https://www.cnblogs.com/grandyang/p/6108158.html
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