Codeforces Round #281 (Div. 2) B. Vasya and Wrestling 水题

B. Vasya and Wrestling
time limit per test
2 seconds
memory limit per test
256 megabytes
input
standard input
output
standard output

Vasya has become interested in wrestling. In wrestling wrestlers use techniques for which they are awarded points by judges. The wrestler who gets the most points wins.

When the numbers of points of both wrestlers are equal, the wrestler whose sequence of points is lexicographically greater, wins.

If the sequences of the awarded points coincide, the wrestler who performed the last technique wins. Your task is to determine which wrestler won.

Input

The first line contains number n — the number of techniques that the wrestlers have used (1 ≤ n ≤ 2·105).

The following n lines contain integer numbers ai (|ai| ≤ 109, ai ≠ 0). If ai is positive, that means that the first wrestler performed the technique that was awarded with ai points. And if ai is negative, that means that the second wrestler performed the technique that was awarded with ( - ai) points.

The techniques are given in chronological order.

Output

If the first wrestler wins, print string "first", otherwise print "second"

Sample test(s)
Input
5
1
2
-3
-4
3
Output
second
Input
3
-1
-2
3
Output
first
Input
2
4
-4
Output
second
Note

Sequence x  =  x1x2... x|x| is lexicographically larger than sequence y  =  y1y2... y|y|, if either |x|  >  |y| and x1  =  y1,  x2  =  y2, ... ,  x|y|  =  y|y|, or there is such number r (r  <  |x|, r  <  |y|), that x1  =  y1,  x2  =  y2,  ... ,  xr  =  yr and xr  +  1  >  yr  +  1.

We use notation |a| to denote length of sequence a.

两个cha点:
LL和最后一发谁打谁赢

#include <cstdio>

#include <cmath>

#include <cstring>

#include <ctime>

#include <iostream>

#include <algorithm>

#include <set>

#include <vector>

#include <sstream>

#include <queue>

#include <typeinfo>

#include <fstream>

typedef long long ll;

using namespace std;

//freopen("D.in","r",stdin);

//freopen("D.out","w",stdout);

#define sspeed ios_base::sync_with_stdio(0);cin.tie(0)

ll kiss[1000000];

ll kill[1000000];

int main()

{



    int n;

    cin>>n;

    ll ans1=0;

    ll ans2=0;

    int path1=0;

    int path2=0;

    int flag3=0;

    int num=0;

    for(int i=0;i<n;i++)

    {

        cin>>num;

        if(num<0)

        {

            kill[path2++]=-num;

            ans2-=num;

        }

        else

        {

            kiss[path1++]=num;

            ans1+=num;

        }

        if(i==n-1)

        {

            if(num<0)

                flag3=2;

            else

                flag3=1;

        }



    }

    //cout<<ans1<<" "<<ans2<<endl;

    int flag=0;

    if(ans1>ans2)

    {

        flag=1;

    }

    else if(ans2>ans1)

    {

        flag=2;

    }

    else

    {

        int len=min(path1-1,path2-1);

        for(int i=0;i<len+1;i++)

        {

            //cout<<kiss[i]<<" "<<kill[i]<<endl;

            if(kiss[i]>kill[i])

            {

                flag=1;

                break;

            }

            if(kill[i]>kiss[i])

            {

                flag=2;

                break;

            }

        }

        if(flag==0)

        {

            if(path1>path2)

                flag=1;

            else if(path2>path1)

                flag=2;

            else

                flag=flag3;

        }

    }

    if(flag==1)

        cout<<"first"<<endl;

    else

        cout<<"second"<<endl;



    return 0;

}

 

你可能感兴趣的:(codeforces)