One spring day on his way to university Lesha found an array A. Lesha likes to split arrays into several parts. This time Lesha decided to split the array A into several, possibly one, new arrays so that the sum of elements in each of the new arrays is not zero. One more condition is that if we place the new arrays one after another they will form the old array A.
Lesha is tired now so he asked you to split the array. Help Lesha!
Input
The first line contains single integer n (1?≤?n?≤?100) — the number of elements in the array A.
The next line contains n integers a1,?a2,?...,?an (?-?103?≤?ai?≤?103) — the elements of the array A.
Output
If it is not possible to split the array A and satisfy all the constraints, print single line containing "NO" (without quotes).
Otherwise in the first line print "YES" (without quotes). In the next line print single integer k — the number of new arrays. In each of the next k lines print two integers li and ri which denote the subarray A[li... ri] of the initial array Abeing the i-th new array. Integers li, ri should satisfy the following conditions:
- l1?=?1
- rk?=?n
- ri?+?1?=?li?+?1 for each 1?≤?i?<?k.
If there are multiple answers, print any of them.
Example
Input
31 2 -3
Output
YES21 23 3
Input
89 -12 3 4 -4 -10 7 3
Output
YES21 23 8
Input
10
Output
NO
Input
41 2 3 -5
Output
YES41 12 23 34 4
1 #include<iostream>
2 #include<cstdio>
3 #include<cstring>
4 #include<cmath>
5 #include<algorithm>
6 using namespace std;
7 int a[105];
8 int main()
9 {
10 int t,i,flag;
11 long long sum;
12 while(~scanf("%d",&t))
13 {
14 sum=0;
15 flag=0;
16 for(i=1;i<=t;i++)
17 {
18 cin>>a[i];
19 sum+=a[i];
20 if(a[i]&&flag==0)
21 flag=i;
22 }
23 if(!flag)
24 cout<<"NO"<<endl;
25 else if(sum)
26 cout<<"YES"<<endl<<1<<endl<<1<<‘ ‘<<t<<endl;
27 else
28 {
29 cout<<"YES"<<endl<<2<<endl<<1<<‘ ‘<<flag<<endl<<flag+1<<‘ ‘<<t<<endl;
30 }
31
32 }
33 return 0;
34 }