我们很容易发现答案是C(R-L+N+1,N)-1
然后用一下lucas定理就行了
#include <iostream>
#include <cstdio>
#include <cstring>
#include <cmath>
#include <cstdlib>
#include <algorithm>
#define ll long long
#define P 1000003 using namespace std;
int pow2(int x,int y){
int ret=1;
while (y){
if (y&1) ret=(ll)ret*x%P;
x=(ll)x*x%P;
y=y>>1;
}
return ret;
} int fact[P+233];
int c(int n,int m){
if (n<m) return 0;
return (ll)fact[n]*pow2(fact[m],P-2)%P*pow2(fact[n-m],P-2)%P;
}
int lucas(int n,int m){
int ret=1;
for (;n||m;n/=P,m/=P) ret=(ll)ret*c(n%P,m%P)%P;
return ret;
} int main(){
for (int i=fact[0]=1;i<=P;++i) fact[i]=(ll)fact[i-1]*i%P;
int testnumber;scanf("%d",&testnumber);
while (testnumber--){
int n,l,r;
scanf("%d%d%d",&n,&l,&r);
printf("%d\n",(lucas(r-l+n+1,n)+P-1)%P);
}
return 0;
}