You are the gym teacher in the school.
There are n
students in the row. And there are two rivalling students among them. The first one is in position a, the second in position b. Positions are numbered from 1 to n from left to right.
Since they are rivals, you want to maximize the distance between them. If students are in positions p and s respectively, then distance between them is |p−s|.You can do the following operation at most x times: choose two adjacent (neighbouring) students and swap them.Calculate the maximum distance between two rivalling students after at most x swaps.
Input
The first line contains one integer t (1≤t≤100) — the number of test cases.The only line of each test case contains four integers n, x, a and b (2≤n≤100, 0≤x≤100, 1≤a,b≤n, a≠b ) — the number of students in the row, the number of swaps which you can do, and positions of first and second rivaling students respectively.
Output
For each test case print one integer — the maximum distance between two rivaling students which you can obtain.
Example
Input
3
5 1 3 2
100 33 100 1
6 0 2 3
Output
2
99
1
Note
In the first test case you can swap students in positions 3 and 4. And then the distance between the rivals is equal to |4−2|=2.In the second test case you don’t have to swap students.In the third test case you can’t swap students.
题意:n个测试样例,然后是输入a,b,c,d;a表示一共a个学生,然后b是可以交换b次,c,d是两个学生在那个位置上面,在c位置上面的那个同学可以向左右移动一位,但是需要b-1;d也是这样,然后问b次操作后两位同学之间的距离,当然如果两位同学之间的距离已经最远的话,就不用再操作了
#include<iostream>
using namespace std;
int main()
{
int n,a,b,c,d;
cin>>n;
while(n--)
{
int count=0;
cin>>a>>b>>c>>d;
if(c>d) swap(c,d);
if(d-c+1+b>=a) cout<<a-1<<endl;
else if(b==0) cout<<d-c<<endl;
else cout<<d-c+b<<endl;
}
return 0;
}
