Pearls
Time Limit: 1000MS Memory Limit: 10000K Total Submissions: 9932 Accepted: 5105 Description
In Pearlania everybody is fond of pearls. One company, called The Royal Pearl, produces a lot of jewelry with pearls in it. The Royal Pearl has its name because it delivers to the royal family of Pearlania. But it also produces bracelets and necklaces for ordinary people. Of course the quality of the pearls for these people is much lower then the quality of pearls for the royal family.In Pearlania pearls are separated into 100 different quality classes. A quality class is identified by the price for one single pearl in that quality class. This price is unique for that quality class and the price is always higher then the price for a pearl in a lower quality class.
Every month the stock manager of The Royal Pearl prepares a list with the number of pearls needed in each quality class. The pearls are bought on the local pearl market. Each quality class has its own price per pearl, but for every complete deal in a certain quality class one has to pay an extra amount of money equal to ten pearls in that class. This is to prevent tourists from buying just one pearl.
Also The Royal Pearl is suffering from the slow-down of the global economy. Therefore the company needs to be more efficient. The CFO (chief financial officer) has discovered that he can sometimes save money by buying pearls in a higher quality class than is actually needed.No customer will blame The Royal Pearl for putting better pearls in the bracelets, as long as the
prices remain the same.
For example 5 pearls are needed in the 10 Euro category and 100 pearls are needed in the 20 Euro category. That will normally cost: (5+10)*10+(100+10)*20 = 2350 Euro.Buying all 105 pearls in the 20 Euro category only costs: (5+100+10)*20 = 2300 Euro.
The problem is that it requires a lot of computing work before the CFO knows how many pearls can best be bought in a higher quality class. You are asked to help The Royal Pearl with a computer program.
Given a list with the number of pearls and the price per pearl in different quality classes, give the lowest possible price needed to buy everything on the list. Pearls can be bought in the requested,or in a higher quality class, but not in a lower one.Input
The first line of the input contains the number of test cases. Each test case starts with a line containing the number of categories c (1<=c<=100). Then, c lines follow, each with two numbers ai and pi. The first of these numbers is the number of pearls ai needed in a class (1 <= ai <= 1000).
The second number is the price per pearl pi in that class (1 <= pi <= 1000). The qualities of the classes (and so the prices) are given in ascending order. All numbers in the input are integers.Output
For each test case a single line containing a single number: the lowest possible price needed to buy everything on the list.Sample Input
2 2 100 1 100 2 3 1 10 1 11 100 12Sample Output
330 1344
题意:
给你一个清单,上面有不同等级珍珠的数量和对应的单价,你需要用最少的钱买到清单上的珍珠。你可以用高级的珍珠代替低级的珍珠。规定买任意一类珍珠n个,价格为p,都要支付(n+10)*p
思路:
先对dp[】初始化,(不用高级珍珠代替的方案),然后对n个品类进行遍历,对于每个品类我们都有两种解决方法,一种是不带替,一种是代替,不代替的情况初始化已经完成,剩下的就是代替的情况了,这又会又多种情况,
j代表前j个品类没有被代替,其余i-1-j个品类被代替,那么求他们最小的值即可,min1=min(min1,dp[j]+(num[j]+num[i+1]+num[i+2]+...num[i-1]+10)*p)
AC代码:#include<cstdio> #include<iostream> #include<cstring> #define N 110 #define INF 0x3f3f3f3f using namespace std; int dp[N];//dp[i]--第i个品类最少花费 int num[N],p[N];//num[i]--第i个品类的数量,p[i]--第i个品类的单价 int main(){ int t; int n; scanf("%d",&t); while(t--){ scanf("%d",&n); memset(dp,0,sizeof(dp)); for(int i=1;i<=n;i++){ scanf("%d%d",&num[i],&p[i]); dp[i]=dp[i-1]+((num[i]+10)*p[i]);//初始化 } for(int i=1;i<=n;i++){ int min1=dp[i],cnt=num[i]; for(int j=i-1;j>=0;j--){ min1=min(min1,dp[j]+(cnt+10)*p[i]); cnt+=num[j]; } dp[i]=min1; } printf("%d ",dp[n]); } return 0; }