There is an airplane which has n rows from front to back. There will be m people boarding this airplane.
This airplane has an entrance at the very front and very back of the plane.
Each person has some assigned seat. It is possible for multiple people to have the same assigned seat. The people will then board the plane one by one starting with person 1. Each person can independently choose either the front entrance or back entrance to enter the plane.
When a person walks into the plane, they will walk directly to their assigned seat. Then, while the seat they’re looking at is occupied, they will keep moving one space in the same direction. A passenger will get angry if they reach the end of the row without finding their assigned seat.
Find the number of ways to assign tickets to the passengers and board the plane without anyone getting angry. Two ways are different if there exists a passenger who chose a different entrance in both ways, or the assigned seat is different. Print this count modulo 109 + 7.
The first line of input will contain two integers n, m (1 ≤ m ≤ n ≤ 1 000 000), the number of seats, and the number of passengers, respectively.
Print a single number, the number of ways, modulo 109 + 7.
3 3
128
Here, we will denote a passenger by which seat they were assigned, and which side they came from (either "F" or "B" for front or back, respectively).
For example, one valid way is 3B, 3B, 3B (i.e. all passengers were assigned seat 3 and came from the back entrance). Another valid way would be 2F, 1B, 3F.
One invalid way would be 2B, 2B, 2B, since the third passenger would get to the front without finding a seat.
一群人要登机,飞机有前后两个门,可以任意选择一门登机。n个座位m排问有多少种登机方法
只考虑从1个门登机,那么总数就要乘上2^m,因为每个人都有2种选择,接下来考虑座位的问题,看样子好像是一个人有座位了就必须向下移,如果把这些人按照座位排队的话(只考虑先后),那么我就应该乘上(n-m+1),其实只要确定第一个人,每个人都有n+1种排队的选择
综上 (n+1)^(m-1)*(n-m+1)*2^m
#include<stdio.h> const int mod=1e9+7; int po(int x,int k) { int sum=1; while(k) { if(k&1) { sum=1LL*sum*x%mod; } x=1LL*x*x%mod; k>>=1; } return sum; } int main() { int n,m; scanf("%d%d",&n,&m); printf("%d ",1LL*po(n+1,m-1)*(n-m+1)%mod*po (2,m)%mod); return 0; }