---
id: 5900f3811000cf542c50fe94
challengeType: 5
title: 'Problem 21: Amicable numbers'
---
## Description
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 n.
## Instructions
## Tests
```yml
tests:
- text: sumAmicableNum(1000) should return 504.
testString: assert.strictEqual(sumAmicableNum(1000), 504, 'sumAmicableNum(1000) should return 504.');
- text: sumAmicableNum(2000) should return 2898.
testString: assert.strictEqual(sumAmicableNum(2000), 2898, 'sumAmicableNum(2000) should return 2898.');
- text: sumAmicableNum(5000) should return 8442.
testString: assert.strictEqual(sumAmicableNum(5000), 8442, 'sumAmicableNum(5000) should return 8442.');
- text: sumAmicableNum(10000) should return 31626.
testString: assert.strictEqual(sumAmicableNum(10000), 31626, 'sumAmicableNum(10000) should return 31626.');
```
## Challenge Seed
```js
function sumAmicableNum(n) {
// Good luck!
return n;
}
sumAmicableNum(10000);
```
## Solution
```js
const sumAmicableNum = (n) => {
const fsum = (n) => {
let sum = 1;
for (let i = 2; i <= Math.floor(Math.sqrt(n)); i++)
if (Math.floor(n % i) === 0)
sum += i + Math.floor(n / i);
return sum;
};
let d = [];
let amicableSum = 0;
for (let i=2; i