At a lemonade stand, each lemonade costs `$5`.
Customers are standing in a queue to buy from you, and order one at a time (in the order specified by bills).
Each customer will only buy one lemonade and pay with either a $5, $10, or $20 bill. You must provide the correct change to each customer, so that the net transaction is that the customer pays $5.
Note that you don't have any change in hand at first.
Return true if and only if you can provide every customer with correct change.
Example 1:
Input: [5,5,5,10,20] Output: true Explanation: From the first 3 customers, we collect three $5 bills in order. From the fourth customer, we collect a $10 bill and give back a $5. From the fifth customer, we give a $10 bill and a $5 bill. Since all customers got correct change, we output true.
Example 2:
Input: [5,5,10]
Output: true
Example 3:
Input: [10,10]
Output: false
Example 4:
Input: [5,5,10,10,20]
Output: false
Explanation:
From the first two customers in order, we collect two $5 bills.
For the next two customers in order, we collect a $10 bill and give back a $5 bill.
For the last customer, we can't give change of $15 back because we only have two $10 bills.
Since not every customer received correct change, the answer is false.
Note:
0 <= bills.length <= 10000bills[i]will be either5,10, or20.
这道题说是有很多柠檬,每个卖5刀,顾客可能会提供5刀,10刀,20刀的钞票,我们刚开始的时候并没有零钱,只有收到顾客的5刀,或者 10 刀可以用来给顾客找钱,当然如果第一个顾客就给 10 刀或者 20 刀,那么是无法找零的,这里就问最终是否能够都成功找零。10 刀的钞票需要5刀的找零,20 刀的钞票可以用1张 10 刀和1张5刀,或者3张5刀的钞票。实际上我们并不需要一直保留所有钞票的个数,当某些钞票被当作零钱给了,就没有必要继续留着它们的个数了。其实上我们只关心当前还剩余的5刀和 10 刀钞票的个数,用两个变量 five 和 ten 来记录。然后遍历所有的钞票,假如遇到5刀钞票,则 five 自增1,若遇到 10 刀钞票,则需要找零5刀,则 five 自减1,ten 自增1。否则遇到的就是 20 刀的了,若还有 10 刀的钞票话,就先用 10 刀找零,则 ten 自减1,再用一张5刀找零,five 自减1。若没有 10 刀了,则用三张5刀找零,five 自减3。找零了后检测若此时5刀钞票个数为负数了,则直接返回 false,参见代码如下:
class Solution { public: bool lemonadeChange(vector<int>& bills) { int five = 0, ten = 0; for (int bill : bills) { if (bill == 5) ++five; else if (bill == 10) { --five; ++ten; } else if (ten > 0) { --ten; --five; } else five -= 3; if (five < 0) return false; } return true; } };