csp20141203 集合竞价 解题报告

Solution：
对股票出价进行排序，然后按照价格递增的次序依次设定p的价格并求成交量。
1.
 //prove that the result of price(maximum--maxprice) is info[k].price:
 //If not,the nearest data that is bigger than price
 //result=maxresult & price>maxprice , conflict

2.
 //po assending as times by
 //so if maxamount is the same, use the newest

3.buy
先比较并设置maxamount值
再 买单 减

4.
sell
先 卖单 加
再比较并设置maxamount值

注意
1.出价价格的重复性
2.buy sell出价价格相同
3.数据2^64内的范围，用long long 或__int64。
而c注意用%I64d或%lld。而与购买股数有关的变量全部用long long 或__int64，不要遗漏，如min和max函数要用到long long 或__int64。
当你的程序为80分时，就是第三点没考虑。

建议：
把buy，sell合并或分开都可以，把相同价格的值分开或合并都可以，虽然后者时间效率会高一点，
但是无疑考试期间把把buy，sell合并，不把相同价格的值合并更容易写，更容易理解，也不容易写错。

#include <iostream>
#include <stdlib.h>
#include <cstring>
#include <algorithm>
using namespace std;
#define maxn 8000

//The softest way to write a right code in a competition
//Just time limite, we don't need to write the best code(in time aspect)

struct node
{
    double price;
    //mode: 1:sell 0:buy
    //why put sell ahead of buy?
    //sell:add  &  buy:delete    --- we need maximum
    long amount,mode;
}info[maxn+1];

bool cmp(struct node a,struct node b)
{
    if (a.price<b.price)
        return true;
    else if (a.price>b.price)
        return false;
    else if (a.mode>b.mode)
        return true;
    else
        return false;
}

__int64 min(__int64 a,__int64 b)
{
    if (a>b)
        return b;
    else
        return a;
}

int main()
{
    long g,pos,ans,i,b[maxn+1],c[maxn+1];
    __int64 x,y,z,maxamount;
    double a[maxn+1],maxprice;
    char s[10];
    bool vis[maxn+1];
    //use stdlib.h faster!
    g=0;
    while (scanf("%s",s)!=EOF)
    {
        g++;
        if (strcmp(s,"cancel")==0)
        {
            scanf("%ld",&pos);
            vis[g]=false;
            vis[pos]=false;
        }
        else
        {
            //pay attention:%lf        double a[]
            scanf("%lf%ld",&a[g],&b[g]);
            if (strcmp(s,"sell")==0)
                c[g]=1;
            else
                c[g]=0;
            vis[g]=true;
        }
    }
    ans=0;
    for (i=1;i<=g;i++)
        if (vis[i])
        {
            info[ans].price=a[i];
            info[ans].amount=b[i];
            info[ans].mode=c[i];
            ans++;
        }
    sort(info,info+ans,cmp);
    //prove that the result of price(maximum--maxprice) is info[k].price:
    //If not,the nearest data that is bigger than price
    //result=maxresult & price>maxprice , conflict
    
    //choose
    //in >= po
    //out <= po
    
    //po assending as times by
    //so if maxamount is the same, use the newest
    
    //buy
    x=0;
    for (i=0;i<ans;i++)
        if (info[i].mode==0)
            x+=info[i].amount;
    //sell
    y=0;
    maxamount=0;
    for (i=0;i<ans;i++)
    //when po is info[i].price
        //buy
        if (info[i].mode==0)
        {
            z=min(x,y);
            if (z>=maxamount)
            {
                maxamount=z;
                maxprice=info[i].price;
            }
            x-=info[i].amount;
        }
        //sell
        else
        {
            y+=info[i].amount;
            z=min(x,y);
            if (z>=maxamount)
            {
                maxamount=z;
                maxprice=info[i].price;
            }
        } 
    //数据默认maxamount>0 
    printf("%.2lf %I64d",maxprice,maxamount);
    return 0;
}