A. Strange Addition 暴力

 
A. Strange Addition
time limit per test
2 seconds
memory limit per test
256 megabytes
input
standard input
output
standard output

Unfortunately, Vasya can only sum pairs of integers (ab), such that for any decimal place at least one number has digit 0 in this place. For example, Vasya can sum numbers 505 and 50, but he cannot sum 1 and 4.

Vasya has a set of k distinct non-negative integers d1, d2, ..., dk.

Vasya wants to choose some integers from this set so that he could sum any two chosen numbers. What maximal number of integers can he choose in the required manner?

Input

The first input line contains integer k (1 ≤ k ≤ 100) — the number of integers.

The second line contains k distinct space-separated integers d1, d2, ..., dk (0 ≤ di ≤ 100).

Output

In the first line print a single integer n the maximum number of the chosen integers. In the second line print n distinct non-negative integers — the required integers.

If there are multiple solutions, print any of them. You can print the numbers in any order.

Sample test(s)
input
4
100 10 1 0
output
4
0 1 10 100
input
3
2 70 3
output
2
2 70

 答案最多4个最少1个



 

const int maxn = 30000;
int d[maxn];
int vis[4];
bool ok()
{
repf(i,0,2)
if(vis[i]) return false;
return true;
}
int main()
{
//freopen("in.txt","r",stdin);
int n;
while(cin>>n)
{
int ans = 0;
repf(i,1,n)
{
scanf("%d",&d[i]);
if(n>1 && d[i] == 0) ans++;
}
if(n == 1)
{
cout<<1<<endl;
cout<<d[1]<<endl;
continue;
}
int a = -1;
int b = -1;
int c = -1;
int tag = 0;
repf(i,1,n)
{
repf(j,i+1,n)
{
repf(k,0,2) vis[k] = 1;
if(d[i] == 0 || d[j] == 0) continue;
int t = 3;
int tt = d[i];
while(t > 0)
{
int tmp = tt%10;
tt/=10;
if(tmp == 0)
vis[t - 1] = 0;
t--;
}

tt = d[j];
t = 3;
while(t > 0)
{
int tmp = tt%10;
tt/=10;
if(tmp == 0)
vis[t - 1] = 0;
t--;
}
if(ok())
{
a = d[i];
b = d[j];
tag = 1;
}
}
}
if(tag == 0)
{
if(ans)
{
cout<<2<<endl;
int kk;
repf(i,1,n)
if(d[i] != 0)
kk = d[i];
cout<<0<<" "<<kk<<endl;
}else
{
cout<<1<<endl;
cout<<d[1]<<endl;
}
}else
{
int flag = 0;
//clr(vis)
repf(i,1,n)
repf(j,i+1,n)
repf(k,j+1,n)
{
if(d[i] == 0 || d[j] == 0 || d[k] == 0) continue;
int t = 3;
int tt = d[i];
clr(vis);
while(t > 0)
{
int tmp = tt%10;
tt/=10;
if(tmp)
{
vis[t - 1]++;
}
t--;
}
t = 3;
tt = d[j];
while(t > 0)
{
int tmp = tt%10;
tt/=10;
if(tmp)
vis[t - 1]++;
t--;
}
t = 3;
tt = d[k];
while(t > 0)
{
int tmp = tt%10;
tt/=10;
if(tmp)
vis[t - 1]++;
t--;
}
if(vis[0] == 1&& vis[1] == 1 && vis[2] == 1)
{
a = d[i];
b = d[j];
c = d[k];
flag = 1;
}
}
if(flag)
{
if(ans)
{
cout<<4<<endl;
printf("%d %d %d %d\n",0,a,b,c);
}else
{
cout<<3<<endl;
printf("%d %d %d\n",a,b,c);
}
}else
{
if(ans)
{
cout<<3<<endl;
printf("%d %d %d\n",0,a,b);
}else
{
cout<<2<<endl;
printf("%d %d\n",a,b);
}
}
}
}
return 0;
}

posted on 2013-11-25 17:08  keep trying  阅读(292)  评论(0编辑  收藏  举报

导航