Problem
: Milk Man and His Bottles
A
Milkman serves milk in packaged bottles of varied sizes. The possible size of
the bottles are {1, 5, 7 and 10} litres. He wants to supply desired quantity
using as less bottles as possible irrespective of the size. Your objective is
to help him find the minimum number of bottles required to supply the given
demand of milk.
Input
Format:
First line contains number of test cases N
Next N lines, each contain a positive integer Li which corresponds to the demand of milk.
First line contains number of test cases N
Next N lines, each contain a positive integer Li which corresponds to the demand of milk.
Output
Format:
For each input Li, print the minimum number of bottles required to fulfill the demand
For each input Li, print the minimum number of bottles required to fulfill the demand
Constraints:
1
<= N <= 1000
Li >
0
1
<= i <= N
Sample
Input and Output
SNo.
|
Input
|
Output
|
1
|
2 17 65 |
2 7 |
Explanation:
Number of test cases is 2
Number of test cases is 2
- In
first test case, demand of milk is 17 litres which can be supplied using
minimum of 2 bottles as follows
- 1 x
10 litres and
- 1 x
7 litres
- In
second test case, demand of milk is 65 litres which can be supplied using
minimum of 7 bottles as follows
- 6 x
10 litres and
- 1 x
5 litres
Solution in C :
#include<stdio.h>
int main()
{
int c,i,cnt,array[1000],j;
scanf("%d",&c);
if(c>=1&&c<=1000)
{
for(j=0;j<c;j++)
{
scanf("%d",&i);
cnt=0;
if(i>0)
{
while(i!=0)
{
if((i==12||i==13||i==19||i==14))
{
cnt--;
if(i==14)
{
cnt=cnt-2;
}
}
if(i>=10)
{
cnt++;
i=i-10;
}
else if(i>=7)
{
cnt++;
i=i-7;
}
else if(i>=5)
{
cnt++;
i=i-5;
}
else if(i>=1)
{
cnt++;
i=i-1;
}
}
printf("%d\n",cnt);
}
}
}
return 0;
}
Solution in Java :
import java.util.*;
public class bottle{
private static Scanner in;
public static void main(String[] args) {
in = new Scanner(System.in);
int n,v,u,m,m1,s,s1,i,v1,w1;
int l[]=new int[9999];
try
{
n=in.nextInt();
if((n>=1)&&(n<=1000))
{
for(i=1;i<=n;i++)
{
if((i>=1)&&(i<=n))
{
l[i]=in.nextInt();
}
}
for(i=1;i<=n;i++)
{
if(l[i]>0)
{
if(l[i]<=9)
{
if((l[i]==1)||(l[i]==5)||(l[i]==7))
{
int a1=1;
System.out.println(a1);
}
if((l[i]==2)||(l[i]==6)||(l[i]==8))
{
int a2=2;
System.out.println(a2);
}
if((l[i]==3)||(l[i]==9))
{
int a3=3;
System.out.println(a3);
}
if(l[i]==4)
{
int a4=4;
System.out.println(a4);
}
}
int z=l[i]/10;
v=z-1;
u=l[i]%10;
if(l[i]>=10)
{
if(u==0)
{
System.out.println(z);
}
if((u==1)||(u==5)||(u==7))
{
v1=z+1;
System.out.println(v1);
}
if((u==2)||(u==4))
{
m=2;
m1=v+m;
System.out.println(m1);
}
if((u==3)||(u==9))
{
s=3;
s1=v+s;
System.out.println(s1);
}
if((u==6)||(u==8))
{
int k1=z+2;
System.out.println(k1);
}
}
}
}
}
}
catch(Exception e)
{
}
}
}
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