Codeforces Round #294 (Div. 2)

时间:2022-05-11 15:31:41

水 A. A and B and Chess

/*

    水题

*/

#include <cstdio>

#include <algorithm>

#include <iostream>

#include <cstring>

#include <string>

using namespace std;

const int maxn = 1e6 + 10;

int a[maxn];

int main(void)

{

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

    string s1;

    int suma = 0;    int sumb = 0;

    for (int i=1; i<=8; ++i)

    {

        cin >> s1;

        for (int j=0; s1[j]!='\0'; ++j)

        {

            if (s1[j] == '.')    continue;

            else if (s1[j] == 'Q')    suma += 9;

            else if (s1[j] == 'R')    suma += 5;

            else if (s1[j] == 'B')    suma += 3;

            else if (s1[j] == 'N')    suma += 3;

            else if (s1[j] == 'P')    suma += 1;

            else if (s1[j] == 'q')    sumb += 9;

            else if (s1[j] == 'r')    sumb += 5;

            else if (s1[j] == 'b')    sumb += 3;

            else if (s1[j] == 'n')    sumb += 3;

            else if (s1[j] == 'p')    sumb += 1;

        }

    }

    if (suma > sumb)    cout << "White" << endl;

    else if (suma < sumb)    cout << "Black" << endl;

    else    cout << "Draw" << endl;

    return 0;

}

水 B. A and B and Compilation Errors

题意:三组数列,依次少一个,找出少了的两个数

思路:

1. 三次排序,逐个对比(如果没找到,那个数在上一个数列的末尾)
2. 求和做差,最简单!

#include <cstdio>

#include <algorithm>

#include <iostream>

using namespace std;

const int maxn = 1e5 + 10;

int a[maxn];

int b[maxn];

int c[maxn];

int main(void)

{

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

    int n, x, y;

    while (~scanf ("%d", &n))

    {

        x = y = 0;

        for (int i=1; i<=n; ++i)

        {

            scanf ("%d", &a[i]);

        }

        sort (a+1, a+1+n);

        for (int i=1; i<=n-1; ++i)

        {

            scanf ("%d", &b[i]);

        }

        sort (b+1, b+1+n-1);

        for (int i=1; i<=n-1; ++i)

        {

            if (a[i] == b[i])    continue;

            else

            {

                x = a[i];

                break;

            }

        }

        if (x == 0)        x = a[n];

        for (int i=1; i<=n-2; ++i)

        {

            scanf ("%d", &c[i]);

        }

        sort (c+1, c+1+n-2);

        for (int i=1; i<=n-2; ++i)

        {

            if (b[i] == c[i])    continue;

            else

            {

                y = b[i];

                break;

            }

        }

        if (y == 0)        y = b[n-1];

        printf ("%d\n%d\n", x, y);

    }

    return 0;

}

/*

#include <cstdio>

#include <algorithm>

#include <iostream>

using namespace std;

const int maxn = 1e5 + 10;

int a[maxn];

int b[maxn];

int c[maxn];

int suma, sumb, sumc;

int main(void)

{

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

    int n;

    while (~scanf ("%d", &n))

    {

        suma = sumb = sumc = 0;

        for (int i=1; i<=n; ++i)

        {

            scanf ("%d", &a[i]);    suma += a[i];

        }

        for (int i=1; i<=n-1; ++i)

        {

            scanf ("%d", &b[i]);    sumb += b[i];

        }

        for (int i=1; i<=n-2; ++i)

        {

            scanf ("%d", &c[i]);    sumc += c[i];

        }

        printf ("%d\n%d\n", suma - sumb, sumb - sumc);

    }

    return 0;

}

*/

构造 C. A and B and Team Training

题意:方案:高手1和菜鸟2 或者 高手2菜鸟1 三人组队求最大组队数
思路:

1. 高手加菜鸟每三个分开,在n,m的数字之内
2. 高手多,高手2;菜鸟多,菜鸟2 比较好理解

#include <cstdio>

#include <algorithm>

using namespace std;

int main(void)

{

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

    int n, m;

    while (~scanf ("%d%d", &n, &m))

    {

        int ans = (n + m) / 3;

        ans = min (ans, n);

        ans = min (ans, m);

        printf ("%d\n", ans);

    }

    return 0;

}

/*

#include <cstdio>

#include <algorithm>

using namespace std;

int main(void)

{

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

    int n, m;

    while (~scanf ("%d%d", &n, &m))

    {

        int cnt = 0;

        while (n && m && (n + m) >= 3)

        {

            if (n >= m)

            {

                n -= 2;        m -= 1;

            }

            else

            {

                n -=1;        m -= 2;

            }

            cnt++;

        }

        printf ("%d\n", cnt);

    return 0;

}

*/

  

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