1357. Apply Discount Every n Orders
There is a sale in a supermarket, there will be a discount every n customer.
There are some products in the supermarket where the id of the i-th product is products[i] and the price per unit of this product is prices[i].
The system will count the number of customers and when the n-th customer arrive he/she will have a discount on the bill. (i.e if the cost is x the new cost is x - (discount * x) / 100). Then the system will start counting customers again.
The customer orders a certain amount of each product where product[i] is the id of the i-th product the customer ordered and amount[i] is the number of units the customer ordered of that product.
Implement the Cashier class:
Cashier(int n, int discount, int[] products, int[] prices)Initializes the object withn, thediscount, theproductsand theirprices.double getBill(int[] product, int[] amount)returns the value of the bill and apply the discount if needed. Answers within10^-5of the actual value will be accepted as correct.
Example 1:
Input ["Cashier","getBill","getBill","getBill","getBill","getBill","getBill","getBill"] [[3,50,[1,2,3,4,5,6,7],[100,200,300,400,300,200,100]],[[1,2],[1,2]],[[3,7],[10,10]],[[1,2,3,4,5,6,7],[1,1,1,1,1,1,1]],[[4],[10]],[[7,3],[10,10]],[[7,5,3,1,6,4,2],[10,10,10,9,9,9,7]],[[2,3,5],[5,3,2]]] Output [null,500.0,4000.0,800.0,4000.0,4000.0,7350.0,2500.0] Explanation Cashier cashier = new Cashier(3,50,[1,2,3,4,5,6,7],[100,200,300,400,300,200,100]); cashier.getBill([1,2],[1,2]); // return 500.0, bill = 1 * 100 + 2 * 200 = 500. cashier.getBill([3,7],[10,10]); // return 4000.0 cashier.getBill([1,2,3,4,5,6,7],[1,1,1,1,1,1,1]); // return 800.0, The bill was 1600.0 but as this is the third customer, he has a discount of 50% which means his bill is only 1600 - 1600 * (50 / 100) = 800. cashier.getBill([4],[10]); // return 4000.0 cashier.getBill([7,3],[10,10]); // return 4000.0 cashier.getBill([7,5,3,1,6,4,2],[10,10,10,9,9,9,7]); // return 7350.0, Bill was 14700.0 but as the system counted three more customers, he will have a 50% discount and the bill becomes 7350.0 cashier.getBill([2,3,5],[5,3,2]); // return 2500.0
Constraints:
1 <= n <= 10^40 <= discount <= 1001 <= products.length <= 2001 <= products[i] <= 200- There are not repeated elements in the array
products. prices.length == products.length1 <= prices[i] <= 10001 <= product.length <= products.lengthproduct[i]exists inproducts.amount.length == product.length1 <= amount[i] <= 1000- At most
1000calls will be made togetBill. - Answers within
10^-5of the actual value will be accepted as correct.
题目出这么长的leetcode实属人间之屑
题意是设计一个class,能初始化cashier和getbill,每n个人有一个可以获得discount
class Cashier { public int mod = 0; int n = 0; double disc = 0; private int[] products; private int[] prices; public Cashier(int n, int discount, int[] products, int[] prices) { this.n = n; disc = discount; this.products = products; this.prices = prices; } public double getBill(int[] product, int[] amount) { mod ++; double bill = 0; for(int i = 0; i < product.length; i++){ for(int j = 0; j < products.length; j++){ if(products[j] == product[i]) bill += prices[j] * amount[i]; } } return mod % n == 0 ? (bill*(1 - disc / 100)) : bill; } }
方法一:一时大意忘了hashmap这个东西,就感觉怪怪的
class Cashier { private int mod = 0; private Map<Integer, Integer> map; private double disc = 0; private int n = 0; public Cashier(int n, int discount, int[] products, int[] prices) { this.n = n; disc = discount; this.map = new HashMap(); for(int i = 0; i < products.length; i++) map.put(products[i], prices[i]); } public double getBill(int[] product, int[] amount) { mod ++; double bill = 0; for(int i = 0; i < product.length; i++){ bill += map.get(product[i]) * amount[i]; } return mod % n == 0 ? (bill*(1 - disc / 100)) : bill; } }
用hashmap来记录products和prices
