Problem Description
Given two positive integers a and b,find suitable X and Y to meet the conditions:
X+Y=a
Least Common Multiple (X, Y) =b
Input
Input includes multiple sets of test data.Each test data occupies one line,including two positive integers a(1≤a≤2*10^4),b(1≤b≤10^9),and their meanings are shown in the description.Contains most of the 12W test cases.
Output
For each set of input data,output a line of two integers,representing X, Y.If you cannot find such X and Y,output one line of "No Solution"(without quotation).
Sample Input
6 8
798 10780
Sample Output
No Solution
308 490
题意:给出a和b,使x+y=a,lcm(x,y)=b
题解:我们来推一波公式
x+y=a
x*y/gcd(x,y)=b
上下都除个gcd(x,y)
x/gcd(x,y)+y/gcd(x,y)=a/gcd(x,y)
x/gcd(x,y)*y/gcd(x,y)=b/gcd(x,y)
令x/gcd(x,y)为x1,y/gcd(x,y)为y1
显然x1,y1互质
所以
gcd(x1,x1+y1)=1
gcd(y1,x1+y1)=1
gcd(x1*y1,x1+y1)=1
b/gcd(x,y)与a/gcd(x,y)互质
所以gcd(x,y)=gcd(a,b)
这样就可以推出b/gcd(x,y)=b/gcd(a,b)与a/gcd(x,y)=a/gcd(a,b);
我们可以开局就求出上面的东西
问题就变成了求x+y=n,xy=m
显然小学数学推一波就稳了
代码如下:
#include<cmath> #include<cstdio> #include<vector> #include<cstring> #include<iostream> #include<algorithm> #define lson root<<1 #define rson root<<1|1 using namespace std; long long a,b; int main() { while(~scanf("%lld%lld",&a,&b)) { long long tmp=__gcd(a,b); a/=tmp; b/=tmp; if(a*a-4*b<0) {puts("No Solution"); continue;} long long det=(long long) (sqrt(a*a-4*b)); if(det*det!=a*a-4*b) {puts("No Solution"); continue;} long long x=det+a; long long y=a-det; if(x&1||y&1) {puts("No Solution"); continue;} x>>=1; y>>=1; if(x>y)swap(x,y); printf("%lld %lld ",x*tmp,y*tmp); } }