仅包含一个数M，即最少可能的山洞数。输入数据保证有解，且M不大于10^6。

#include <bits/stdc++.h>

#define ll long long

#define inf 0x3f3f3f3f

#define il inline

namespace io {

    #define in(a) a=read()

    #define out(a) write(a)

    #define outn(a) out(a),putchar('\n')

    #define I_int int

    inline I_int read() {

        I_int x =  , f =  ; char c = getchar() ;

        while( c < '' || c > '' ) { if( c == '-' ) f = - ; c = getchar() ; }

        while( c >= '' && c <= '' ) { x = x *  + c - '' ; c = getchar() ; }

        return x * f ;

    }

    char F[  ] ;

    inline void write( I_int x ) {

        if( x ==  ) { putchar( '' ) ; return ; }

        I_int tmp = x >  ? x : -x ;

        if( x <  ) putchar( '-' ) ;

        int cnt =  ;

        while( tmp >  ) {

            F[ cnt ++ ] = tmp %  + '' ;

            tmp /=  ;

        }

        while( cnt >  ) putchar( F[ -- cnt ] ) ;

    }

    #undef I_int

}

using namespace io ;

#define N 100010

int n , mod , c[N] , p[N] , l[N] ;

int x , y ;

int exgcd(int a , int b) {

    if(b == ) {x =  , y =  ; return a;}

    int ans = exgcd(b , a % b), tmp = x ;

    x = y; y = tmp - (a / b) * y;

    return ans ;

}

int main() {

    int mx =  ; n = read() ;

    for(int i = ; i <= n; i ++) {

        c[i] = read() , p[i] = read() , l[i] = read() ;

        mx = std::max(mx , c[i]) ;

    } mod = mx -  ;

    while() {

        mod ++ ;

        int flag = ;

        for(int i =  ; i <= n ; i ++) {

            for(int j = i +  ; j <= n ; j ++) {

                x =  , y =  ;

                int k = ((p[i] - p[j]) % mod + mod) % mod , tmp = c[j] - c[i] ;

                int gcd = exgcd(k , mod);

                if(tmp % gcd) continue ;

                int t = mod ;

                x *= tmp / gcd ; t /= gcd ; t = std::abs(t) ;

                x = ((x % t) + t) % t;

                if(x <= std::min(l[i] , l[j])) {flag =  ; break ;}

            }

            if(flag) break ;

        }

        if(!flag) { outn(mod) ; return  ; }

    }

}