题解 第二章暴力求解| #剩下的树#
剩下的树
http://www.nowcoder.com/practice/f5787c69f5cf41499ba4706bc93700a2
思路如下
创建一个结构体数组,每一个结构体中都存有区间的左右值
在取数组的时候对其进行遍历
使每一个新来的区间结构体,都将之前的所有有交集的区间给吸收
而将被吸收的区间置空
随后遍历一次该结构体数组
即可得待减去的个数
从而易知,剩下多少
#include <bits/stdc++.h>
using namespace std;
typedef struct interval
{
int leftSide, rightSide;
} interval;
int main()
{
int L = 0, repeatTimes = 0;
cin >> L >> repeatTimes;
interval inter[repeatTimes];
for (int i = 0; i < repeatTimes; i++)
{
cin >> inter[i].leftSide >> inter[i].rightSide;
for (int j = 0; j < i; j++)
{
if ((inter[i].leftSide <= inter[j].rightSide && inter[i].leftSide >= inter[j].leftSide) ||
(inter[i].rightSide <= inter[j].rightSide && inter[i].rightSide >= inter[j].leftSide)||
(inter[j].leftSide <= inter[i].rightSide && inter[j].leftSide >= inter[i].leftSide) ||
(inter[j].rightSide <= inter[i].rightSide && inter[j].rightSide >= inter[i].leftSide))
{
inter[i].leftSide = min(inter[i].leftSide, inter[j].leftSide);
inter[i].rightSide = max(inter[i].rightSide, inter[j].rightSide);
inter[j].leftSide = 0;
inter[j].rightSide = -1;
}
}
}
int minus = 0;
for (int i = 0; i < repeatTimes; i++)
{
minus += inter[i].rightSide - inter[i].leftSide + 1;
}
cout << L + 1 - minus << endl;
return 0;
}
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