总结2014新生暑假个人排位赛01

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时间限制 1000 ms 内存限制 65536 KB

题目描写叙述

学姐在增加集训队之后。学习了使用ubuntu系统来做题,可是没有了360电脑管家,学姐再也没办法看到她的飞速电脑开机究竟虐了全国多少人。作为一个电脑高手。学姐花了几分钟黑到了360的数据库拿到了全国360用户的开机时间,如今学姐想自己算算究竟打败了百分之多少的人?

输入格式

输入有多组数据。

首先给出数据组数T(T10),以下T组数据,每组开头为n(1n100000),360的用户数,和t,学姐的开机时间,接下来n个数字,ti代表第i个用户的开机时间。

当中tti为非负整数且小于109

输出格式

每组数据一行,输出学姐打败了全国百分之多少的用户,精确到小数点后两位。

输入例子

1
5 3
1 1 2 2 3

输出例子

80.00%
这题数据有问题。,,越大的反而越快
水题,一炮
#include <iostream>
#include <cstdio>
#include <algorithm>
using namespace std;
int num[111111];
int main()
{
    #ifndef ONLINE_JUDGE
        freopen("D:/in.txt","r",stdin);
        //freopen();
    #endif
    int T;
    scanf("%d",&T);
    while(T--)
    {
 
        int n,s;
        scanf("%d%d",&n,&s);
        for(int i=1;i<=n;i++)
        {
            scanf("%d",num+i);
        }
        sort(num+1,num+1+n);
        int i=1;
        for(i=1;i<=n;i++)
        {
            if(num[i]>=s)
                break;
        }
        //cout<<"i::"<<i<<endl;
        double ans=(i-1)*1.0/n;
        printf("%.2f",ans*100);
        cout<<"%\n";
    }
    return 0;
}

时间限制 1000 ms 内存限制 65536 KB

题目描写叙述

趁着放假。学姐去学车好带学弟去兜风。可是学车真的非常辛苦,每天五点半就要起床赶班车,可是学姐的教练更辛苦,他们要同样的时间到并且日日如此。于是温和的学姐关切的问了他们的歇息情况,教练告诉她。他们两个人倒班教学姐,每一个教练每上n天班就会放一天假,假设一个教练放假,就由还有一个教练来代课。一直代课到自己放假再换人。 如今学姐想知道,每一天是哪个教练给她上课。

输入格式

输入開始为数据组数T(T10),接下来T组输入,第一行为nm,我们如果第一天教学姐的是教练1。并且他教学姐的前一天刚刚放完假。教练2则会在学姐上课的第m天放假,1mn 以保证每天都有教练教学姐。接下一行为q(q103),即询问次数,接着q行,每行ti表示学姐想问哪天的教练是谁。由于教练们很很厉害。并且学姐不知道自己究竟会花多久学完车。你的程序要处理的nmti上限为109

输出格式

对于每一个询问ti,输出一行。1或2代表当天的教练。

输入例子

1
5 3
3
6
9
13

输出例子

2
1
2
签到题,一炮,逻辑题。命名挺优雅
#include <iostream>
#include <cstdio>
#include <algorithm>
using namespace std;
int num[111111];
int main()
{
    #ifndef ONLINE_JUDGE
        freopen("D:/in.txt","r",stdin);
        //freopen();
    #endif
    int T;
    scanf("%d",&T);
    while(T--)
    {
        int n,m;
        scanf("%d%d",&n,&m);
        int oneZero=n+1;
        int oneShi=m+n+1;
        int relativeShi_one=oneShi-oneZero;
        int twoZero=m;
        int twoShi=n+1;
        int relativeShi_two=twoShi-twoZero;
        int len=n+1;
        int quesnum;scanf("%d",&quesnum);
        int ques;
        for(int i=1;i<=quesnum;i++)
        {
            scanf("%d",&ques);
            if(ques<=n)
            {
                printf("1\n");
                continue;
            }
            int inONE=(ques-n-1)%len;
            int inTWO=(ques-m)%len;
            if(inONE==0)
                printf("2\n");
            else if(inONE<relativeShi_one)
                printf("2\n");
            else
                printf("1\n");
        }
    }
    return 0;
}

时间限制 1000 ms 内存限制 65536 KB

题目描写叙述

学姐正在写作业。可是她写着写着就開始想学弟,走神的她就開始在纸上画圈圈。这时学弟突然出现了,好奇的学弟问学姐在做什么,惊慌之下,学姐随口说想算一下这些圆覆盖的面积为多少。学弟顿时很敬仰学姐。可是学姐突然意识到自己不会做,为了自己能给学弟留下好印象。她来求助你帮她算出来这些圆覆盖的面积。
为了简化问题,我们如果全部圆的半径都为1。

输入格式

输入有多组数据。开头为一个整数T(T10),表示数据组数,接下来T组输入,每组开头为一个整数n(1n100),表示学姐画的圆的个数。接下来n行,每行两个整数xi,yi,表示圆的圆心坐标,1xi,yi100

输出格式

输出一个数,表示面积并,精确到小数点后五位。

输入例子

1
2
1 1
2 1

输出例子

5.05482
这题,初始是全零的整点阵,把圆心都标记为1,然后,面积仅仅有3种情况你懂得,遍历全部4个点组成的格子,看4个点的圆心分布情况
#include <iostream>
#include <cstdio>
#include <cmath>
#include <cstdlib>
#include <cmath>
#include <algorithm>
#include <stack>
#include <vector>
#include <cstring>
const double pi=acos(-1.0);
using namespace std;
int g[111][111];
int main()
{
    int T;scanf("%d",&T);
    double sq1=0.25*pi;
    double sq2=pi/6+sqrt(3)/4;
    while(T--)
    {
        memset(g,0,sizeof(g));
        int num;scanf("%d",&num);
        for(int i=1;i<=num;i++)
        {
            int x,y;scanf("%d%d",&x,&y);
            g[x][y]=1;
        }
        double ans=0;
        for(int i=0;i<=100;i++)
        {
            for(int j=0;j<=100;j++)
            {
                double tttt=ans;
                int ss=g[i][j]+g[i+1][j]+g[i][j+1]+g[i+1][j+1];
                if(ss==1)
                {
                    ans+=sq1;
                }
                else if(ss>2)
                {
                    ans+=1;
                }
                else if(ss==2&&((g[i][j]==1&&g[i+1][j+1]==1)||(g[i][j+1]==1&&g[i+1][j]==1)))
                {
                    ans+=1;
                }
                else if(ss==2)
                {
                    ans+=sq2;
                }
            }
        }
        printf("%.5f\n",ans);
    }
    return 0;
}

时间限制 1000 ms 内存限制 65536 KB

题目描写叙述

给定一个N?M的矩阵。求问里面有多少个由‘#‘组成的矩形,"There are 5 ships."。若是里面有一个不是矩形的联通块,则输出"So Sad"

输入格式

1n,m1000

有多组数据。EOF结束。

输出格式

每行相应一个answer

输入例子

6 8
.....#.#
##.....#
##.....#
.......#
#......#
#..#...#
6 8
.....#.#
##.....#
###...##
.......#
##.....#
#..#...#

输出例子

There are 5 ships.
So Sad
听贺爷说了个神方法
技术分享扫描全部的点(.)。假设有这种情况,那就肯定是非连通的。否则, 数左上角的sharp个数就能够了。输出答案
#include <iostream>
#include <cstdio>
#include <cmath>
#include <cstdlib>
#include <cmath>
#include <algorithm>
#include <stack>
#include <vector>
#include <cstring>
using namespace std;
#define N 111111<div class="line number6 index5 alt1"><code class="cpp preprocessor">#include <iostream></code></div><div class="line number7 index6 alt2"><code class="cpp preprocessor">#include <cstdio></code></div><div class="line number8 index7 alt1"><code class="cpp preprocessor">#include <cmath></code></div><div class="line number9 index8 alt2"><code class="cpp preprocessor">#include <cstdlib></code></div><div class="line number10 index9 alt1"><code class="cpp preprocessor">#include <cmath></code></div><div class="line number11 index10 alt2"><code class="cpp preprocessor">#include <algorithm></code></div><div class="line number12 index11 alt1"><code class="cpp preprocessor">#include <stack></code></div><div class="line number13 index12 alt2"><code class="cpp preprocessor">#include <vector></code></div><div class="line number14 index13 alt1"><code class="cpp preprocessor">#include <cstring></code></div><div class="line number15 index14 alt2"><code class="cpp keyword bold">using</code> <code class="cpp keyword bold">namespace</code> <code class="cpp plain">std;</code></div><div class="line number16 index15 alt1"><code class="cpp preprocessor">#define N 111111</code></div><div class="line number17 index16 alt2"><code class="cpp color1 bold">char</code> <code class="cpp plain">g[1111][1111];</code></div><div class="line number18 index17 alt1"><code class="cpp color1 bold">int</code> <code class="cpp plain">main()</code></div><div class="line number19 index18 alt2"><code class="cpp plain">{</code></div><div class="line number20 index19 alt1"><code class="cpp spaces">    </code><code class="cpp color1 bold">int</code> <code class="cpp plain">n,m;</code></div><div class="line number21 index20 alt2"><code class="cpp spaces">    </code><code class="cpp keyword bold">while</code><code class="cpp plain">(</code><code class="cpp functions bold">scanf</code><code class="cpp plain">(</code><code class="cpp string">"%d%d"</code><code class="cpp plain">,&n,&m)!=EOF)</code></div><div class="line number22 index21 alt1"><code class="cpp spaces">    </code><code class="cpp plain">{</code></div><div class="line number23 index22 alt2"><code class="cpp spaces">            </code><code class="cpp keyword bold">for</code><code class="cpp plain">(</code><code class="cpp color1 bold">int</code> <code class="cpp plain">i=0;i<n;i++)</code></div><div class="line number24 index23 alt1"><code class="cpp spaces">            </code><code class="cpp plain">{</code></div><div class="line number25 index24 alt2"><code class="cpp spaces">                </code><code class="cpp functions bold">scanf</code><code class="cpp plain">(</code><code class="cpp string">"%s"</code><code class="cpp plain">,g[i]);</code></div><div class="line number26 index25 alt1"><code class="cpp spaces">            </code><code class="cpp plain">}</code></div><div class="line number27 index26 alt2"><code class="cpp spaces">            </code><code class="cpp color1 bold">bool</code> <code class="cpp plain">isout=</code><code class="cpp keyword bold">false</code><code class="cpp plain">;</code></div><div class="line number28 index27 alt1"><code class="cpp spaces">            </code><code class="cpp keyword bold">for</code><code class="cpp plain">(</code><code class="cpp color1 bold">int</code> <code class="cpp plain">i=0;i<n;i++)</code></div><div class="line number29 index28 alt2"><code class="cpp spaces">            </code><code class="cpp plain">{</code></div><div class="line number30 index29 alt1"><code class="cpp spaces">                </code><code class="cpp keyword bold">for</code><code class="cpp plain">(</code><code class="cpp color1 bold">int</code> <code class="cpp plain">j=0;j<m;j++)</code></div><div class="line number31 index30 alt2"><code class="cpp spaces">                </code><code class="cpp plain">{</code></div><div class="line number32 index31 alt1"><code class="cpp spaces">                    </code><code class="cpp keyword bold">if</code><code class="cpp plain">(g[i][j]==</code><code class="cpp string">'.'</code><code class="cpp plain">)</code></div><div class="line number33 index32 alt2"><code class="cpp spaces">                    </code><code class="cpp plain">{</code></div><div class="line number34 index33 alt1"><code class="cpp spaces">                            </code><code class="cpp keyword bold">if</code><code class="cpp plain">((g[i-1][j]==</code><code class="cpp string">'#'</code><code class="cpp plain">&&g[i-1][j-1]==</code><code class="cpp string">'#'</code><code class="cpp plain">&&g[i][j-1]==</code><code class="cpp string">'#'</code><code class="cpp plain">)||</code></div><div class="line number35 index34 alt2"><code class="cpp spaces">                                </code><code class="cpp plain">(g[i+1][j]==</code><code class="cpp string">'#'</code><code class="cpp plain">&&g[i+1][j-1]==</code><code class="cpp string">'#'</code><code class="cpp plain">&&g[i][j-1]==</code><code class="cpp string">'#'</code><code class="cpp plain">)||</code></div><div class="line number36 index35 alt1"><code class="cpp spaces">                                </code><code class="cpp plain">(g[i][j+1]==</code><code class="cpp string">'#'</code><code class="cpp plain">&&g[i+1][j]==</code><code class="cpp string">'#'</code><code class="cpp plain">&&g[i+1][j+1]==</code><code class="cpp string">'#'</code><code class="cpp plain">)||</code></div><div class="line number37 index36 alt2"><code class="cpp spaces">                                </code><code class="cpp plain">(g[i-1][j]==</code><code class="cpp string">'#'</code><code class="cpp plain">&&g[i-1][j+1]==</code><code class="cpp string">'#'</code><code class="cpp plain">&&g[i][j+1]==</code><code class="cpp string">'#'</code><code class="cpp plain">))</code></div><div class="line number38 index37 alt1"><code class="cpp spaces">                                </code><code class="cpp plain">{</code></div><div class="line number39 index38 alt2"><code class="cpp spaces">                                    </code><code class="cpp functions bold">printf</code><code class="cpp plain">(</code><code class="cpp string">"So Sad\n"</code><code class="cpp plain">);</code></div><div class="line number40 index39 alt1"><code class="cpp spaces">                                    </code><code class="cpp plain">isout=</code><code class="cpp keyword bold">true</code><code class="cpp plain">;</code></div><div class="line number41 index40 alt2"><code class="cpp spaces">                                    </code><code class="cpp keyword bold">break</code><code class="cpp plain">;</code></div><div class="line number42 index41 alt1"><code class="cpp spaces">                                </code><code class="cpp plain">}</code></div><div class="line number43 index42 alt2"><code class="cpp spaces">                    </code><code class="cpp plain">}</code></div><div class="line number44 index43 alt1"><code class="cpp spaces">                </code><code class="cpp plain">}</code></div><div class="line number45 index44 alt2"><code class="cpp spaces">                </code><code class="cpp keyword bold">if</code><code class="cpp plain">(isout)</code></div><div class="line number46 index45 alt1"><code class="cpp spaces">                    </code><code class="cpp keyword bold">break</code><code class="cpp plain">;</code></div><div class="line number47 index46 alt2"><code class="cpp spaces">            </code><code class="cpp plain">}</code></div><div class="line number48 index47 alt1"><code class="cpp spaces">            </code><code class="cpp keyword bold">if</code><code class="cpp plain">(isout)</code></div><div class="line number49 index48 alt2"><code class="cpp spaces">                </code><code class="cpp keyword bold">continue</code><code class="cpp plain">;</code></div><div class="line number50 index49 alt1"><code class="cpp spaces">            </code><code class="cpp color1 bold">int</code> <code class="cpp plain">countn=0;</code></div><div class="line number51 index50 alt2"><code class="cpp spaces">            </code><code class="cpp keyword bold">for</code><code class="cpp plain">(</code><code class="cpp color1 bold">int</code> <code class="cpp plain">i=0;i<n;i++)</code></div><div class="line number52 index51 alt1"><code class="cpp spaces">            </code><code class="cpp plain">{</code></div><div class="line number53 index52 alt2"><code class="cpp spaces">                </code><code class="cpp keyword bold">for</code><code class="cpp plain">(</code><code class="cpp color1 bold">int</code> <code class="cpp plain">j=0;j<m;j++)</code></div><div class="line number54 index53 alt1"><code class="cpp spaces">                </code><code class="cpp plain">{</code></div><div class="line number55 index54 alt2"><code class="cpp spaces">                    </code><code class="cpp keyword bold">if</code><code class="cpp plain">(g[i][j]==</code><code class="cpp string">'#'</code><code class="cpp plain">)</code></div><div class="line number56 index55 alt1"><code class="cpp spaces">                    </code><code class="cpp plain">{</code></div><div class="line number57 index56 alt2"><code class="cpp spaces">                        </code><code class="cpp keyword bold">if</code><code class="cpp plain">(g[i-1][j]!=</code><code class="cpp string">'#'</code><code class="cpp plain">&&g[i][j-1]!=</code><code class="cpp string">'#'</code><code class="cpp plain">)</code></div><div class="line number58 index57 alt1"><code class="cpp spaces">                        </code><code class="cpp plain">{</code></div><div class="line number59 index58 alt2"><code class="cpp spaces">                            </code><code class="cpp plain">countn++;   </code></div><div class="line number60 index59 alt1"><code class="cpp spaces">                        </code><code class="cpp plain">}</code></div><div class="line number61 index60 alt2"><code class="cpp spaces">                    </code><code class="cpp plain">}</code></div><div class="line number62 index61 alt1"><code class="cpp spaces">                </code><code class="cpp plain">}</code></div><div class="line number63 index62 alt2"><code class="cpp spaces">            </code><code class="cpp plain">}</code></div><div class="line number64 index63 alt1"><code class="cpp spaces">            </code><code class="cpp functions bold">printf</code><code class="cpp plain">(</code><code class="cpp string">"There are %d ships.\n"</code><code class="cpp plain">,countn);</code></div><div class="line number65 index64 alt2"><code class="cpp spaces">    </code><code class="cpp plain">}</code></div><div class="line number66 index65 alt1"><code class="cpp spaces">    </code><code class="cpp keyword bold">return</code> <code class="cpp plain">0;</code></div><div class="line number67 index66 alt2"><code class="cpp plain">}</code></div>
char g[1111][1111];
int main()
{
    int n,m;
    while(scanf("%d%d",&n,&m)!=EOF)
    {
            for(int i=0;i<n;i++)
            {
                scanf("%s",g[i]);
            }
            bool isout=false;
            for(int i=0;i<n;i++)
            {
                for(int j=0;j<m;j++)
                {
                    if(g[i][j]=='.')
                    {
                            if((g[i-1][j]=='#'&&g[i-1][j-1]=='#'&&g[i][j-1]=='#')||
                                (g[i+1][j]=='#'&&g[i+1][j-1]=='#'&&g[i][j-1]=='#')||
                                (g[i][j+1]=='#'&&g[i+1][j]=='#'&&g[i+1][j+1]=='#')||
                                (g[i-1][j]=='#'&&g[i-1][j+1]=='#'&&g[i][j+1]=='#'))
                                {
                                    printf("So Sad\n");
                                    isout=true;
                                    break;
                                }
                    }
                }
                if(isout)
                    break;
            }
            if(isout)
                continue;
            int countn=0;
            for(int i=0;i<n;i++)
            {
                for(int j=0;j<m;j++)
                {
                    if(g[i][j]=='#')
                    {
                        if(g[i-1][j]!='#'&&g[i][j-1]!='#')
                        {
                            countn++;  
                        }
                    }
                }
            }
            printf("There are %d ships.\n",countn);
    }
    return 0;
}

时间限制 5000 ms 内存限制 65536 KB

题目描写叙述

用关系“<”和“=”将3个数A、B和C依序排列时有13种不同的序关系:
ABCABCABCABCACBACBBAC

BACBCABCACABCABCBA

如今输入数字的个数。要求你给出上述关系的数目。

数的个数不大于100
 

输入格式

多组数据。EOF结束

每行一个输入

输出格式

对于每一个输入,输出一行,即相应答案

输入例子

3

输出例子

13
dp,方程看程序。用大数模板
#include <iostream>
#include <cstdio>
#include <cmath>
#include <cstdlib>
#include <cmath>
#include <algorithm>
#include <stack>
#include <vector>
#include <cstring>
using namespace std;
class BigInteger
{
public:
    int num[100];
    int maxlenn;
    int len;
 
    BigInteger()
    {
        maxlenn=300;
        len=0;
        memset(num,0,sizeof(num));
    }
 
    BigInteger(char* ss)
    {
        maxlenn=300;
        len=0;
        memset(num,0,sizeof(num));
        int& i=this->len;
        int lenofss=strlen(ss);
        char s[10]={0};
        for(i=0;lenofss/4;lenofss-=4)
        {
            strncpy(s,ss+lenofss-4,4);
            this->num[i++]=atoi(s);
        }
        if(lenofss)
        {
            memset(s,0,sizeof(s));
            strncpy(s,ss,lenofss);
            this->num[i++]=atoi(s);
        }
    }
 
    BigInteger(int s)
    {
        maxlenn=300;
        len=0;
        memset(num,0,sizeof(num));
        while(s>10000)
        {
            num[len++]=s%10000;
            s/=10000;
        }
        if(s)
        {
            num[len++]=s;
        }
    }
 
    void Print()
    {
        int i;
        printf("%d",num[len-1]);
        for(i=this->len-2;i>=0;i--)
        {
            printf("%04d",this->num[i]);
        }
        printf("\n");
    }
 
    BigInteger Times(BigInteger sec)//该数本身没有变化,仅仅是返回了结果
    {
        int i,j,jw;
        BigInteger ans;
        for(i=0;i<len;i++)
        {
            jw=0;
            ans.len=i;
            for(j=0;j<sec.len;j++)
            {
                jw+=this->num[i]*sec.num[j]+ans.num[ans.len];
                ans.num[ans.len++]=jw%10000;
                jw/=10000;
            }
            while(jw)
            {
                jw+=ans.num[ans.len];
                ans.num[ans.len++]=jw%10000;
                jw/=10000;
            }
        }
        return ans;
    }
 
    BigInteger plusone()
    {
        int i=0;
        do
        {
            num[i]++;
            num[i+1]+=num[i]/10000;
            num[i]%=10000;
            i++;
        }while(num[i]<9999);
        return *this;
    }
 
    BigInteger operator+(const BigInteger& sec)
    {
        bool isUp=false;
        BigInteger tmp=*this;
        int maxn=tmp.len>sec.len?

tmp.len:sec.len; for(int i=0;i<maxn;i++) { /*if(isUp) { tmp.num[i]++; if(tmp.num[i]>=10000) { tmp.num[i]=0; isUp=true; } }*/ if(tmp.num[i]+sec.num[i]<=9999) { tmp.num[i]+=sec.num[i]; if(isUp) { tmp.num[i]++; isUp=false; if(tmp.num[i]==10000) { tmp.num[i]=0; isUp=true; } } } else { tmp.num[i]=tmp.num[i]+sec.num[i]-10000; if(isUp) { tmp.num[i]++; } isUp=true; } } if(isUp) tmp.num[maxn]=1; if(tmp.num[maxn]!=0) tmp.len++; else tmp.len=maxn; return tmp; } BigInteger operator-(const BigInteger& sec)//big-small { bool isBorrow=false; BigInteger tmp=*this; for(int i=0;i<this->len;i++) { if(isBorrow) { tmp.num[i]-=1; if(tmp.num[i]<0) tmp.num[i]=9999; } if(tmp.num[i]<sec.num[i]) { tmp.num[i]=tmp.num[i]+10000-sec.num[i]; isBorrow=true; } else { tmp.num[i]-=sec.num[i]; isBorrow=false; } } int i=0; for(i=maxlenn-1;;i--) { if(tmp.num[i]!=0) break; } if(i==0) tmp.len=1; else tmp.len=i+1; return tmp; } BigInteger operator*(const BigInteger sec) { return this->Times(sec); } int operator/(const BigInteger& sec)//big/small { BigInteger tmp=*this; int ans=0; while(tmp>=sec) { tmp=tmp-sec; ans++; } return ans; } BigInteger operator%(const BigInteger& sec) { BigInteger tmp=*this; while(tmp>=sec) { tmp=tmp-sec; } return tmp; } BigInteger& operator++() { this->plusone(); return *this; } bool operator<=(const BigInteger& sec) { if(len<sec.len) return true; for(int i=len-1;i>=0;i--) { if(num[i]>sec.num[i]) return false; } return true; } bool operator>=(const BigInteger& sec) { if(len>sec.len) return true; for(int i=len-1;i>=0;i--) { if(num[i]<sec.num[i]) return false; } return true; } bool operator==(const BigInteger& sec) { if(len!=sec.len) return false; for(int i=len-1;i>=0;i--) { if(num[i]!=sec.num[i]) return false; } return true; } bool operator==(const int& sec) { if(len!=1) return false; if(num[0]==sec) return true; else return false; } bool operator<(const BigInteger& sec) { if(len<sec.len) return true; for(int i=len-1;i>=0;i--) { if(num[i]>sec.num[i]) return false; else if(num[i]<sec.num[i]) return true; } return false; } bool operator>(const BigInteger& sec) { if(len>sec.len) return true; for(int i=len-1;i>=0;i--) { if(num[i]<sec.num[i]) return false; else if(num[i]>sec.num[i]) return true; } return false; } bool operator!=(const BigInteger& sec) { if(len!=sec.len) return true; for(int i=len-1;i>=0;i--) { if(num[i]!=sec.num[i]) return true; } return false; } /*BigInteger GCD(const BigInteger& first,const BigInteger& sec) { return first%sec==0?sec:GCD(sec,first%sec); } BigInteger LCM(const BigInteger& first,const BigInteger& sec) { return first/GCD(first,sec)*sec; }*/ }; #define N 111111 BigInteger dp[111][111]; int main() { BigInteger ZERO("0"); for(int i=0;i<=110;i++) { for(int j=0;j<=110;j++) { dp[i][j]=ZERO; } } dp[2][1]=BigInteger(1); dp[2][2]=BigInteger(2); for(int i=3;i<=100;i++) { for(int j=1;j<=i;j++) { char tmpchar[11]; sprintf(tmpchar,"%d",j); /*if(i==7&&j==6) { cout<<"1::";(BigInteger(tmpchar)*dp[i-1][j]).Print(); cout<<"2::";(BigInteger(tmpchar)*dp[i-1][j-1]).Print(); cout<<"dp76::";dp[7][6].Print(); }*/ dp[i][j]=dp[i][j]+BigInteger(tmpchar)*dp[i-1][j]; dp[i][j]=dp[i][j]+BigInteger(tmpchar)*dp[i-1][j-1]; /*if(i==7&&j==6) { cout<<"dp76::";dp[7][6].Print(); }*/ } } int ques; while(scanf("%d",&ques)!=EOF) { if(ques==1) { printf("1\n"); continue; } BigInteger ans("0"); for(int i=1;i<=ques;i++) { /*if(ques==7) { cout<<"ans::";ans.Print(); cout<<"dp::"<<"ques::"<<ques<<"i::"<<i<<' ';dp[ques][i].Print(); }*/ ans=ans+dp[ques][i]; } ans.Print(); } return 0; }














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