Let d(n) be defined as the sum of proper divisors of n (numbers less than n which divide evenly into n).
If d(a) = b and d(b) = a, where a b, then a and b are an amicable pair and each of a and b are called amicable numbers.
For example, the proper divisors of 220 are 1, 2, 4, 5, 10, 11, 20, 22, 44, 55 and 110; therefore d(220) = 284. The proper divisors of 284 are 1, 2, 4, 71 and 142; so d(284) = 220.
Evaluate the sum of all the amicable numbers under 10000.
我们直接编写函数d(n),如果d(d(n))=n,并且n!=d(n)那么n就是符合要求的数
我们直接暴力搜索
#include <iostream>
#include <cmath>
usingnamespace std;
int d(int tmp){
int sum =0;
int i;
for(i=1; i<sqrt(tmp); i++){
if(tmp%i ==0){
sum = sum+i+tmp/i;
}
}
if(i*i == tmp){
sum += i;
}
return sum-tmp;
}
int main(){
int sum =0;
for(int i=1; i<10000; i++){
if(i==d(d(i)) && i!=d(i)){
sum += i;
}
}
cout << sum << endl;
return0;
}
#include <cmath>
usingnamespace std;
int d(int tmp){
int sum =0;
int i;
for(i=1; i<sqrt(tmp); i++){
if(tmp%i ==0){
sum = sum+i+tmp/i;
}
}
if(i*i == tmp){
sum += i;
}
return sum-tmp;
}
int main(){
int sum =0;
for(int i=1; i<10000; i++){
if(i==d(d(i)) && i!=d(i)){
sum += i;
}
}
cout << sum << endl;
return0;
}