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A.codeforces670D2. Magic Powder - 2
1 second 256 megabytes
 

The term of this problem is the same as the previous one, the only exception — increased restrictions.

Input

The first line contains two positive integers n and k (1 ≤ n ≤ 100 000, 1 ≤ k ≤ 109) — the number of ingredients and the number of grams of the magic powder.

The second line contains the sequence a1, a2, ..., an (1 ≤ ai ≤ 109), where the i-th number is equal to the number of grams of the i-th ingredient, needed to bake one cookie.

The third line contains the sequence b1, b2, ..., bn (1 ≤ bi ≤ 109), where the i-th number is equal to the number of grams of the i-th ingredient, which Apollinaria has.

Output

Print the maximum number of cookies, which Apollinaria will be able to bake using the ingredients that she has and the magic powder.

Examples
Input
1 1000000000
1
1000000000
Output
2000000000
Input
10 1
1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000
1 1 1 1 1 1 1 1 1 1
Output
 
0
Input
3 1
2 1 4
11 3 16
Output
4
Input
4 3
4 3 5 6
11 12 14 20
Output
3

技术图片
 1 #include<cstdio>
 2 using namespace std;
 3 typedef long long ll;
 4 const ll MAXN=2*1e9+5;
 5 ll n, k;int i;
 6 ll a[100005],b[100005];
 7 ll binarySearch(ll l,ll r){
 8     ll mid,sum;
 9     while(l <= r){
10         mid = (l+r)/2,sum = 0;
11         for( i = 0; i < n; i++){
12             if(b[i] < mid*a[i])sum += (mid*a[i]-b[i]);
13             if(sum > k)break;
14         }
15         if(sum==k){
16             return mid;
17         } 
18         else if(sum < k)l = mid+1;
19         else r = mid-1;
20     }
21     return l-1;
22 } 
23 int main()
24 {    
25     scanf("%d %d", &n, &k);
26     for( i = 0; i < n; i++) scanf("%d", &a[i]);
27     for( i = 0; i < n; i++) scanf("%d", &b[i]);
28     printf("%lld",binarySearch( 0 , MAXN));
29     return 0;
30 }
AC代码
 
B. codeforces371C-Hamburgers
1 second 256 megabytes
 

Polycarpus loves hamburgers very much. He especially adores the hamburgers he makes with his own hands. Polycarpus thinks that there are only three decent ingredients to make hamburgers from: a bread, sausage and cheese. He writes down the recipe of his favorite "Le Hamburger de Polycarpus" as a string of letters ‘B‘ (bread), ‘S‘ (sausage) и ‘C‘ (cheese). The ingredients in the recipe go from bottom to top, for example, recipe "ВSCBS" represents the hamburger where the ingredients go from bottom to top as bread, sausage, cheese, bread and sausage again.

Polycarpus has nb pieces of bread, ns pieces of sausage and nc pieces of cheese in the kitchen. Besides, the shop nearby has all three ingredients, the prices are pb rubles for a piece of bread, ps for a piece of sausage and pc for a piece of cheese.

Polycarpus has r rubles and he is ready to shop on them. What maximum number of hamburgers can he cook? You can assume that Polycarpus cannot break or slice any of the pieces of bread, sausage or cheese. Besides, the shop has an unlimited number of pieces of each ingredient.

Input

The first line of the input contains a non-empty string that describes the recipe of "Le Hamburger de Polycarpus". The length of the string doesn‘t exceed 100, the string contains only letters ‘B‘ (uppercase English B), ‘S‘ (uppercase English S) and ‘C‘ (uppercase English C).

The second line contains three integers nb, ns, nc (1 ≤ nb, ns, nc ≤ 100) — the number of the pieces of bread, sausage and cheese on Polycarpus‘ kitchen. The third line contains three integers pb, ps, pc (1 ≤ pb, ps, pc ≤ 100) — the price of one piece of bread, sausage and cheese in the shop. Finally, the fourth line contains integer r (1 ≤ r ≤ 1012) — the number of rubles Polycarpus has.

Please, do not write the %lld specifier to read or write 64-bit integers in С++. It is preferred to use the cin, cout streams or the %I64d specifier.

Output

Print the maximum number of hamburgers Polycarpus can make. If he can‘t make any hamburger, print 0.

Examples
Input
BBBSSC
6 4 1
1 2 3
4
Output
2
Input
BBC
1 10 1
1 10 1
21
Output
7
Input
BSC
1 1 1
1 1 3
1000000000000
Output
200000000001
技术图片
 1 #include<cstdio>
 2 #include<cstring>
 3 using namespace std;
 4 typedef long long ll;
 5 const ll MAXN = 2*1e12+5;
 6 int a[5],b[5],c[5],len;
 7 char s[1000];
 8 ll ru;int i,j;
 9 ll bs(ll l,ll r){
10     
11     while(l <= r){
12         ll mid = (l+r)/2,sum = 0;
13         for( j = 0; j < 3; j++){
14             if(b[j] < a[j]*mid) sum += c[j]*(a[j]*mid-b[j]);
15             if(sum > ru)break;
16         }
17         if(sum == ru)return mid;
18         else if(sum < ru)l = mid+1;
19         else if(sum > ru)r = mid-1;
20     }
21     return l-1;
22 }
23 int main ()
24 {
25     memset(a,0,sizeof(a));    
26     scanf("%s",s);
27     len=strlen(s);
28     for(i = 0;i < len; i++){
29         if(s[i]==B)a[0]++;
30         else if(s[i]==S)a[1]++;
31         else if(s[i]==C)a[2]++;
32     }
33     scanf("%d %d %d", &b[0], &b[1], &b[2]);
34     scanf("%d %d %d", &c[0], &c[1], &c[2]);
35     scanf("%lld", &ru);
36     printf("%lld", bs(0,MAXN));
37     return 0;
38 }
AC代码

 

简单二分

标签:present   ice   click   index   seq   const   ams   from   case   

原文地址:https://www.cnblogs.com/h404nofound/p/10848305.html

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