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# include <iostream>
using namespace std ;
typedef long long LL ;
LL exgcd ( LL a , LL b , LL & x , LL & y ) {
if ( ! b ) {
x = 1 , y = 0 ;
return a ;
}
LL d = exgcd ( b , a % b , y , x ) ;
y - = a / b * x ;
return d ;
}
LL n , a1 , m1 , a2 , m2 , k1 , k2 ;
int main ( ) {
cin > > n ;
cin > > a1 > > m1 ; // 读入第一个方程
n - - ; // 共n-1个方程
while ( n - - ) {
cin > > a2 > > m2 ;
// 开始合并
// a1*k1+(-a2)*k2=m2-m1
// ① 求a1*k1+(-a2)*k2=gcd(a1,-a2)的解,视k1=x,k2=y
LL d = exgcd ( a1 , - a2 , k1 , k2 ) ;
if ( ( m2 - m1 ) % d ) { // 如果不是0,
cout < < - 1 ;
exit ( 0 ) ;
}
// ② 求 a1*k1+(-a2)*k2=m2-m1 的一组解,需要翻 (m2-m1)/d倍
k1 * = ( m2 - m1 ) / d ;
// ③ 求最小正整数解
int t = abs ( a2 / d ) ;
k1 = ( k1 % t + t ) % t ;
// ④ 更新a1和m1,准备下一轮合并
m1 = k1 * a1 + m1 ;
a1 = abs ( a1 / d * a2 ) ;
}
// 输出,m1是一个解, ,
cout < < ( m1 % a1 + a1 ) % a1 ;
return 0 ;
}
